[0001] The present invention relates to a composition. In particular the present invention
relates to fuel compositions having reduced nitrogen oxide emissions when combusted.
[0002] As discussed in
US 7,491,247 environmental considerations and government regulations have increased the need to
reduce nitrogen oxide (NOx) production. Nitrogen oxides comprise a major irritant
in smog and are believed to contribute to tropospheric ozone which is a known threat
to health. Relatively high flame temperatures reached in internal combustion engines,
for example diesel-fuelled engines, increase the tendency for the production of nitrogen
oxides (NOx). These are formed from both the combination of nitrogen and oxygen in
the combustion chamber and from the oxidation of organic nitrogen species in the fuel.
[0003] Various methods for reducing NOx production include the use of catalytic converters,
engine timing changes, exhaust recirculation, and the burning of "clean" fuels. These
methods are generally too expensive and/or too complicated to be placed in widespread
use. The rates at which NOx are formed is related to the flame temperature; a small
reduction in flame temperature can result in a large reduction in the production of
nitrogen oxides.
[0004] It has been shown that introducing water into the combustion zone can lower the flame
temperature and thus lower NOx production, however; the direct injection of water
requires costly and complicated changes in engine design. Further attempts to use
water to reduce flame temperature include the use of aqueous fuels, i.e., incorporating
both water and fuel into an emulsion. Problems that may occur from long-term use of
aqueous fuels include precipitate depositions include coalescing ionic species resulting
in filter plugging and inorganic post combustion deposits resulting in turbo fouling.
Another problem related to aqueous fuel compositions is that they often require substantial
engine modifications, such as the addition of in-line homogenizers, thereby limiting
their commercial utility.
[0005] Another method for introducing water into the combustion area is to use fuel emulsions
in which water is emulsified into a fuel continuous phase, i.e., invert fuel emulsions.
A problem with these invert fuel emulsions is obtaining and maintaining the stability
of the emulsion under conventional use conditions. Gravitational phase separation
(during storage) and high temperature high pressure/shear flow rate phase separation
(in a working engine) of these emulsions present the major hurdle preventing their
commercial use.
[0006] DE-A-3229918 teaches the preparation of emulsions of 25 wt. of water in diesel oil using emulsifier
which are polyesters of saturated or unsaturated fatty acids having 8-22 carbon atoms.
The emulsifiers include polyglycerol esters, sorbitan esters or diacetyltartaric acid
esters of glycerol esters of the fatty acids. The emulsifiers are dosed in the fuel
compositions in amounts of 0.65 to 1.6 wt.%. The diesel emulsions are taught to be
stable for at least 6 months and, as compared with pure diesel oil used in engines,
give a better fuel economy, less coke deposition and a lower content of CO and hydrocarbons
in the exhaust gas. In such a system, the emulsifier is potentially the most expensive
component and dosage at the high levels of this document, such as at 1.6 wt.% would
be expensive in use and potentially not commercially viable.
[0007] JP-A-2003 201485 discloses a fuel composition containing a burning temperature lowering agent, such
as water, and one or more polyhydric-alcohol hydroxy-fatty acid ester, for reducing
NOx emissions.
[0008] The present invention addresses the problems associated with the use of fuel emulsion
compositions by providing a stable fuel emulsion composition with the beneficial reduction
in NOx emissions using commercially viable amounts of emulsifier.
[0009] The present invention alleviates the problems of the prior art.
[0010] The invention is disclosed in and by the appended claims.
[0011] In one aspect a fuel composition is provided comprising:
- (a) a fuel; and
- (b) a polyglycerol ester of a fatty acid;
wherein the polyglycerol composition used to form the polyglycerol ester of a fatty
acid comprises a mixture of diglycerol in an amount of 11.0 to 34.0 weight% based
on the combined weight of the polyglycerols; triglycerol in an amount of 9.5 to 24.5
weight% based on the combined weight of the polyglycerols; tetraglycerol in an amount
of 6.0 to 21.0 weight% based on the combined weight of the polyglycerols; pentaglycerol
in an amount of 3.5 to 19.0 weight% based on the combined weight of the polyglycerols;
hexaglycerol in an amount of 6.0 to 13.5 weight% based on the combined weight of the
polyglycerols; heptaglycerol in an amount of 5.0 to 13.0 weight% based on the combined
weight of the polyglycerols; octaglycerol in an amount of 3.0 to 12.0 weight% based
on the combined weight of the polyglycerols; nonaglycerol in an amount of 1.5 to 10.0
weight% based on the combined weight of the polyglycerols; decaglycerol in an amount
of 0.0 to 8.0 weight% based on the combined weight of the polyglycerols; and unadecaglycerol
in an amount of 0.0 to 7.0 weight% based on the combined weight of the polyglycerols.
[0012] In one aspect is provided a method for improving the stability of a fuel composition
containing (a) fuel and (c) water, the method comprising mixing with the fuel and
water, (b) a polyglycerol ester of a fatty acid;
wherein the polyglycerol composition used to form the polyglycerol ester of a fatty
acid comprises a mixture of
diglycerol in an amount of 11.0 to 34.0 weight% based on the combined weight of the
polyglycerols; triglycerol in an amount of 9.5 to 24.5 weight% based on the combined
weight of the polyglycerols; tetraglycerol in an amount of 6.0 to 21.0 weight% based
on the combined weight of the polyglycerols; pentaglycerol in an amount of 3.5 to
19.0 weight% based on the combined weight of the polyglycerols; hexaglycerol in an
amount of 6.0 to 13.5 weight% based on the combined weight of the polyglycerols; heptaglycerol
in an amount of 5.0 to 13.0 weight% based on the combined weight of the polyglycerols;
octaglycerol in an amount of 3.0 to 12.0 weight% based on the combined weight of the
polyglycerols; nonaglycerol in an amount of 1.5 to 10.0 weight% based on the combined
weight of the polyglycerols; decaglycerol in an amount of 0.0 to 8.0 weight% based
on the combined weight of the polyglycerols; and unadecaglycerol in an amount of 0.0
to 7.0 weight% based on the combined weight of the polyglycerols.
[0013] In one aspect is provided a kit for preparing a fuel composition as defined herein,
the kit comprising a polyglycerol ester of a fatty acid as described herein; together
with instructions for use to prepare a fuel composition containing fuel and water.
[0014] In one aspect is provided the use of a polyglycerol ester of a fatty acid for improving
the stability of a fuel composition containing fuel and water;
wherein the polyglycerol composition used to form the polyglycerol ester of a fatty
acid comprises a mixture of
diglycerol in an amount of 11.0 to 34.0 weight% based on the combined weight of the
polyglycerols; triglycerol in an amount of 9.5 to 24.5 weight% based on the combined
weight of the polyglycerols; tetraglycerol in an amount of 6.0 to 21.0 weight% based
on the combined weight of the polyglycerols; pentaglycerol in an amount of 3.5 to
19.0 weight% based on the combined weight of the polyglycerols; hexaglycerol in an
amount of 6.0 to 13.5 weight% based on the combined weight of the polyglycerols; heptaglycerol
in an amount of 5.0 to 13.0 weight% based on the combined weight of the polyglycerols;
octaglycerol in an amount of 3.0 to 12.0 weight% based on the combined weight of the
polyglycerols; nonaglycerol in an amount of 1.5 to 10.0 weight% based on the combined
weight of the polyglycerols; decaglycerol in an amount of 0.0 to 8.0 weight% based
on the combined weight of the polyglycerols; and unadecaglycerol in an amount of 0.0
to 7.0 weight% based on the combined weight of the polyglycerols.
[0015] We have shown that when a polyglycerol composition is used which has predominantly
one polyglycerol present, such as diglycerol or triglycerol, then the polyglycerol
composition must be present in a significantly higher amount to provide a fuel/water
emulsion which is stable during storage. In contrast we have surprisingly found that
having a broad range of polyglycerols present in a polyglycerol composition, and in
particular the specific ranges recited herein, then a lower and therefore commercially
viable amount of emulsifiers may be used while still providing a fuel and water emulsion
which is stable over the period required in use, such as 3 hours. The "flat" distribution
of polyglycerols allows for this enhanced effect at low dosages. By flat distribution
it is meant that the polyglycerols contain a broad range of polyglycerols chain lengths
and the broad range of polyglycerols are present in an amount such that only a few
polyglycerol chain lengths dominate the distribution of polyglycerols. For example
in a flat distribution one or two polyglycerol chain lengths do not make up 70 or
80% of the total amount of polyglycerols.
[0016] For ease of reference these and further aspects of the present invention are now
discussed under appropriate section headings. However, the teachings under each section
are not necessarily limited to each particular section.
Composition
[0017] As previously mentioned, in one aspect is provided a fuel composition comprising:
- (a) a fuel; and
- (b) a polyglycerol ester of a fatty acid;
wherein the polyglycerol composition used to form the polyglycerol ester of a fatty
acid comprises a mixture of diglycerol in an amount of 11.0 to 34.0 weight% based
on the combined weight of the polyglycerols; triglycerol in an amount of 9.5 to 24.5
weight% based on the combined weight of the polyglycerols; tetraglycerol in an amount
of 6.0 to 21.0 weight% based on the combined weight of the polyglycerols; pentaglycerol
in an amount of 3.5 to 19.0 weight% based on the combined weight of the polyglycerols;
hexaglycerol in an amount of 6.0 to 13.5 weight% based on the combined weight of the
polyglycerols; heptaglycerol in an amount of 5.0 to 13.0 weight% based on the combined
weight of the polyglycerols; octaglycerol in an amount of 3.0 to 12.0 weight% based
on the combined weight of the polyglycerols; nonaglycerol in an amount of 1.5 to 10.0
weight% based on the combined weight of the polyglycerols; decaglycerol in an amount
of 0.0 to 8.0 weight% based on the combined weight of the polyglycerols; and unadecaglycerol
in an amount of 0.0 to 7.0 weight% based on the combined weight of the polyglycerols.
Polyglycerol Ester of a Fatty Acid
[0018] As is understood by one skilled in the art polyglycerol ester of a fatty acid is
an emulsifier comprising a polyglycerol 'backbone' onto which fatty acid side chains
are attached.
[0019] Polyglycerol esters of fatty acids are typically prepared by polymerisation of glycerol
to provide one or more polyglycerols to which the fatty acids are then attached. The
fatty acids are generally attached by one of two routes. A first route involves the
direct attachment of the fatty acid to the polyglycerol. The second route involves
inter-esterifying a polyglycerol and a triglyceride thereby transferring fatty acids
from the triglyceride to the polyglycerol. The polymerisation of glycerol typically
provides a mixture of polyglycerols of different degrees of polymerisation. The mixture
of polyglycerols of different degrees of polymerisation is described herein as a polyglycerol
composition. It will be understood by one skilled in the art that references to a
polyglycerol composition having particular polyglycerol components requires only that
those components be present in the amount specified. It will be appreciated by one
skilled in the art that because of the nature of polymerisation of glycerol, the polyglycerol
composition may contain other polyglycerols having degrees of polymerisation not recited
herein. In determining the amounts of polyglycerols in the polyglycerol composition,
the total amount of all polyglycerols (irrespective of degree of polymerisation) is
determined to provide the total weight of the polyglycerol composition. Materials
which are not a polyglycerol do not form part of the polyglycerol composition and
their weight is not considered when determining the total weight of the polyglycerol
composition.
[0020] References in the present specification to "the combined weight of the polyglycerols"
encompass the total combined weight of all polyglycerols, irrespective of their chain
length and irrespective of whether the polyglycerol is recited in the listing of polyglycerols.
[0021] As discussed here in the polyglycerol composition used to form the polyglycerol ester
of a fatty acid comprises a mixture of diglycerol in an amount of 11.0 to 34.0 weight%
based on the combined weight of the polyglycerols; triglycerol in an amount of 9.5
to 24.5 weight% based on the combined weight of the polyglycerols; tetraglycerol in
an amount of 6.0 to 21.0 weight% based on the combined weight of the polyglycerols;
pentaglycerol in an amount of 3.5 to 19.0 weight% based on the combined weight of
the polyglycerols; hexaglycerol in an amount of 6.0 to 13.5 weight% based on the combined
weight of the polyglycerols; heptaglycerol in an amount of 5.0 to 13.0 weight% based
on the combined weight of the polyglycerols; octaglycerol in an amount of 3.0 to 12.0
weight% based on the combined weight of the polyglycerols; nonaglycerol in an amount
of 1.5 to 10.0 weight% based on the combined weight of the polyglycerols; decaglycerol
in an amount of 0.0 to 8.0 weight% based on the combined weight of the polyglycerols;
and unadecaglycerol in an amount of 0.0 to 7.0 weight% based on the combined weight
of the polyglycerols.
[0022] It will be appreciated by one skilled in the art that polyglycerols may be either
in the form of a cyclic polyglycerol or an acyclic polyglycerol. Acyclic polyglycerols
are straight chain and branched chain polyglycerols, that is acyclic polyglycerols
are formed entirely from glycerol groups linked such that no rings are formed. Cyclic
polyglycerols contain a ring structure. References in the present specification to
a polyglycerol of a particular degree of polymerisation, for example triglycerol referring
to a polyglycerol having a degree of polymerisation of 3, include both the polyglycerol
in cyclic form and in acyclic form. We have further determined the preferred amounts
of cyclic and acyclic polyglycerols for each of diglycerol, triglycerol, tetraglycerol
and pentaglycerol. In one preferred aspect the diglycerol comprises acyclic diglycerol
in an amount of 6.0 to 25.0 weight% based on the combined weight of the polyglycerols,
and cyclic diglycerol in an amount of 5.0 to 13.0 weight% based on the combined weight
of the polyglycerols. In one preferred aspect the triglycerol comprises acyclic triglycerol
in an amount of 7.0 to 21.0 weight% based on the combined weight of the polyglycerols,
and cyclic triglycerol in an amount of 2.5 to 9.5 weight% based on the combined weight
of the polyglycerols. In one preferred aspect the tetraglycerol comprises acyclic
tetraglycerol in an amount of 5.5 to 15.0 weight% based on the combined weight of
the polyglycerols, and cyclic tetraglycerol in an amount of 0.5 to 8.0 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the pentaglycerol
comprises acyclic pentaglycerol in an amount of 3.0 to 11.0 weight% based on the combined
weight of the polyglycerols, and cyclic pentaglycerol in an amount of 0.5 to 8.0 weight%
based on the combined weight of the polyglycerols.
[0023] In one preferred aspect
the diglycerol comprises acyclic diglycerol in an amount of 6.0 to 25.0 weight% based
on the combined weight of the polyglycerols, and cyclic diglycerol in an amount of
5.0 to 13.0 weight% based on the combined weight of the polyglycerols;
the triglycerol comprises acyclic triglycerol in an amount of 7.0 to 21.0 weight%
based on the combined weight of the polyglycerols, and cyclic triglycerol in an amount
of 2.5 to 9.5 weight% based on the combined weight of the polyglycerols;
the tetraglycerol comprises acyclic tetraglycerol in an amount of 5.5 to 15.0 weight%
based on the combined weight of the polyglycerols, and cyclic tetraglycerol in an
amount of 0.5 to 8.0 weight% based on the combined weight of the polyglycerols; and
the pentaglycerol comprises acyclic pentaglycerol in an amount of 3.0 to 11.0 weight%
based on the combined weight of the polyglycerols, and cyclic pentaglycerol in an
amount of 0.5 to 8.0 weight% based on the combined weight of the polyglycerols.
[0024] In one preferred aspect the diglycerol comprises acyclic diglycerol in an amount
of 6.0 to 15.0 weight% based on the combined weight of the polyglycerols, and cyclic
diglycerol in an amount of 5.0 to 13.0 weight% based on the combined weight of the
polyglycerols. In one preferred aspect the triglycerol comprises acyclic triglycerol
in an amount of 7.0 to 15.0 weight% based on the combined weight of the polyglycerols,
and cyclic triglycerol in an amount of 2.5 to 9.5 weight% based on the combined weight
of the polyglycerols. In one preferred aspect the tetraglycerol comprises acyclic
tetraglycerol in an amount of 5.0 to 13.0 weight% based on the combined weight of
the polyglycerols, and cyclic tetraglycerol in an amount of 0.5 to 8.0 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the pentaglycerol
comprises acyclic pentaglycerol in an amount of 3.0 to 11.0 weight% based on the combined
weight of the polyglycerols, and cyclic pentaglycerol in an amount of 0.5 to 8.0 weight%
based on the combined weight of the polyglycerols.
[0025] In one preferred aspect the diglycerol comprises acyclic diglycerol in an amount
of 6.0 to 15.0 weight% based on the combined weight of the polyglycerols, and cyclic
diglycerol in an amount of 5.5 to 13.0 weight% based on the combined weight of the
polyglycerols. In one preferred aspect the triglycerol comprises acyclic triglycerol
in an amount of 7.0 to 15.0 weight% based on the combined weight of the polyglycerols,
and cyclic triglycerol in an amount of 2.5 to 9.5 weight% based on the combined weight
of the polyglycerols. In one preferred aspect the tetraglycerol comprises acyclic
tetraglycerol in an amount of 5.0 to 13.0 weight% based on the combined weight of
the polyglycerols, and cyclic tetraglycerol in an amount of 0.5 to 8.0 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the pentaglycerol
comprises acyclic pentaglycerol in an amount of 3.0 to 11.0 weight% based on the combined
weight of the polyglycerols, and cyclic pentaglycerol in an amount of 0.5 to 8.0 weight%
based on the combined weight of the polyglycerols.
[0026] In one preferred aspect
the diglycerol comprises acyclic diglycerol in an amount of 6.0 to 15.0 weight% based
on the combined weight of the polyglycerols, and cyclic diglycerol in an amount of
5.5 to 13.0 weight% based on the combined weight of the polyglycerols
the triglycerol comprises acyclic triglycerol in an amount of 7.0 to 15.0 weight%
based on the combined weight of the polyglycerols, and cyclic triglycerol in an amount
of 2.5 to 9.5 weight% based on the combined weight of the polyglycerols;
the tetraglycerol comprises acyclic tetraglycerol in an amount of 5.0 to 13.0 weight%
based on the combined weight of the polyglycerols, and cyclic tetraglycerol in an
amount of 0.5 to 8.0 weight% based on the combined weight of the polyglycerols; and
the pentaglycerol comprises acyclic pentaglycerol in an amount of 3.0 to 11.0 weight%
based on the combined weight of the polyglycerols, and cyclic pentaglycerol in an
amount of 0.5 to 8.0 weight% based on the combined weight of the polyglycerols.
[0027] In one preferred aspect
the diglycerol comprises acyclic diglycerol in an amount of 6.0 to 15.0 weight% based
on the combined weight of the polyglycerols, and cyclic diglycerol in an amount of
5.5 to 13.0 weight% based on the combined weight of the polyglycerols
the triglycerol comprises acyclic triglycerol in an amount of 7.0 to 15.0 weight%
based on the combined weight of the polyglycerols, and cyclic triglycerol in an amount
of 2.5 to 9.5 weight% based on the combined weight of the polyglycerols;
the tetraglycerol comprises acyclic tetraglycerol in an amount of 5.0 to 13.0 weight%
based on the combined weight of the polyglycerols, and cyclic tetraglycerol in an
amount of 1.0 to 8.0 weight% based on the combined weight of the polyglycerols; and
the pentaglycerol comprises acyclic pentaglycerol in an amount of 3.0 to 11.0 weight%
based on the combined weight of the polyglycerols, and cyclic pentaglycerol in an
amount of 0.5 to 8.0 weight% based on the combined weight of the polyglycerols.
[0028] In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises a mixture of
acyclic diglycerol in an amount of 6.0 to 15.0 weight% based on the combined weight
of the polyglycerols, and cyclic diglycerol in an amount of 5.5 to 13.0 weight% based
on the combined weight of the polyglycerols
acyclic triglycerol in an amount of 7.0 to 15.0 weight% based on the combined weight
of the polyglycerols, and cyclic triglycerol in an amount of 2.5 to 9.5 weight% based
on the combined weight of the polyglycerols;
acyclic tetraglycerol in an amount of 5.0 to 13.0 weight% based on the combined weight
of the polyglycerols, and cyclic tetraglycerol in an amount of 0.5 to 8.0 weight%
based on the combined weight of the polyglycerols; and
acyclic pentaglycerol in an amount of 3.0 to 11.0 weight% based on the combined weight
of the polyglycerols, and cyclic pentaglycerol in an amount of 0.5 to 8.0 weight%
based on the combined weight of the polyglycerols.
hexaglycerol in an amount of 6.0 to 13.5 weight% based on the combined weight of the
polyglycerols
heptaglycerol in an amount of 5.0 to 13.0 weight% based on the combined weight of
the polyglycerols
octaglycerol in an amount of 4.0 to 12.0 weight% based on the combined weight of the
polyglycerols
nonaglycerol in an amount of 2.0 to 10.0 weight% based on the combined weight of the
polyglycerols
decaglycerol in an amount of 0.5 to 8.0 weight% based on the combined weight of the
polyglycerols; and
unadecaglycerol in an amount of 0.1 to 7.0 weight% based on the combined weight of
the polyglycerols.
[0029] In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises a mixture of
acyclic diglycerol in an amount of 6.0 to 15.0 weight% based on the combined weight
of the polyglycerols, and cyclic diglycerol in an amount of 5.0 to 13.0 weight% based
on the combined weight of the polyglycerols
acyclic triglycerol in an amount of 7.0 to 15.0 weight% based on the combined weight
of the polyglycerols, and cyclic triglycerol in an amount of 2.5 to 9.5 weight% based
on the combined weight of the polyglycerols;
acyclic tetraglycerol in an amount of 5.0 to 13.0 weight% based on the combined weight
of the polyglycerols, and cyclic tetraglycerol in an amount of 1.0 to 8.0 weight%
based on the combined weight of the polyglycerols; and
acyclic pentaglycerol in an amount of 3.0 to 11.0 weight% based on the combined weight
of the polyglycerols, and cyclic pentaglycerol in an amount of 0.5 to 8.0 weight%
based on the combined weight of the polyglycerols.
hexaglycerol in an amount of 6.0 to 13.5 weight% based on the combined weight of the
polyglycerols
heptaglycerol in an amount of 5.0 to 13.0 weight% based on the combined weight of
the polyglycerols
octaglycerol in an amount of 4.0 to 12.0 weight% based on the combined weight of the
polyglycerols
nonaglycerol in an amount of 2.0 to 10.0 weight% based on the combined weight of the
polyglycerols
decaglycerol in an amount of 0.5 to 8.0 weight% based on the combined weight of the
polyglycerols; and
unadecaglycerol in an amount of 0.1 to 7.0 weight% based on the combined weight of
the polyglycerols.
[0030] In one preferred aspect the polyglycerol composition used to form the, polyglycerol
ester of a fatty acid comprises diglycerol in an amount of 15.0 to 23.5 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises triglycerol
in an amount of 13.5 to 20.5 weight% based on the combined weight of the polyglycerols.
In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises tetraglycerol in an amount of 10.0 to 17.0 weight%
based on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises pentaglycerol
in an amount of 8.0 to 14.5 weight% based on the combined weight of the polyglycerols.
In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises hexaglycerol in an amount of 8.0 to 11.5 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises heptaglycerol
in an amount of 7.5 to 11.0 weight% based on the combined weight of the polyglycerols.
In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises octaglycerol in an amount of 6.5 to 10.0 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises nonaglycerol
in an amount of 4.0 to 8.0 weight% based on the combined weight of the polyglycerols.
In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises decaglycerol in an amount of 1.5 to 6.0 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises unadecaglycerol
in an amount of 0.5 to 5.0 weight% based on the combined weight of the polyglycerols.
[0031] In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises a mixture of
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
diglycerol in an amount of 15.0 to 23.5 weight% based on the combined weight of the
polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
triglycerol in an amount of 13.5 to 20.5 weight% based on the combined weight of the
polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
tetraglycerol in an amount of 10.0 to 17.0 weight% based on the combined weight of
the polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
pentaglycerol in an amount of 8.0 to 14.5 weight% based on the combined weight of
the polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
hexaglycerol in an amount of 8.0 to 11.5 weight% based on the combined weight of the
polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
heptaglycerol in an amount of 7.5 to 11.0 weight% based on the combined weight of
the polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
octaglycerol in an amount of 6.5 to 10.0 weight% based on the combined weight of the
polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
nonaglycerol in an amount of 4.0 to 8.0 weight% based on the combined weight of the
polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
decaglycerol in an amount of 1.5 to 6.0 weight% based on the combined weight of the
polyglycerols; and
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
unadecaglycerol in an amount of 0.5 to 5.0 weight% based on the combined weight of
the polyglycerols.
[0032] In one preferred aspect the diglycerol comprises acyclic diglycerol in an amount
of 8.0 to 12.5 weight% based on the combined weight of the polyglycerols, and cyclic
diglycerol in an amount of 7.5 to 11.0 weight% based on the combined weight of the
polyglycerols. In one preferred aspect the triglycerol comprises acyclic triglycerol
in an amount of 9.0 to 13.0 weight% based on the combined weight of the polyglycerols,
and cyclic triglycerol in an amount of 4.5 to 7.5 weight% based on the combined weight
of the polyglycerols. In one preferred aspect the tetraglycerol comprises acyclic
tetraglycerol in an amount of 7.5 to 11.0 weight% based on the combined weight of
the polyglycerols, and cyclic tetraglycerol in an amount of 2.5 to 6.0 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the pentaglycerol
comprises acyclic pentaglycerol in an amount of 5.0 to 9.0 weight% based on the combined
weight of the polyglycerols, and cyclic pentaglycerol in an amount of 2.5 to 6.0 weight%
based on the combined weight of the polyglycerols.
[0033] In one preferred aspect
the diglycerol comprises acyclic diglycerol in an amount of 8.0 to 12.5 weight% based
on the combined weight of the polyglycerols, and cyclic diglycerol in an amount of
7.5 to 11.0 weight% based on the combined weight of the polyglycerols;
the triglycerol comprises acyclic triglycerol in an amount of 9.0 to 13.0 weight%
based on the combined weight of the polyglycerols, and cyclic triglycerol in an amount
of 4.5 to 7.5 weight% based on the combined weight of the polyglycerols;
the tetraglycerol comprises acyclic tetraglycerol in an amount of 7.5 to 11.0 weight%
based on the combined weight of the polyglycerols, and cyclic tetraglycerol in an
amount of 2.5 to 6.0 weight% based on the combined weight of the polyglycerols; and
the pentaglycerol comprises acyclic pentaglycerol in an amount of 5.0 to 9.0 weight%
based on the combined weight of the polyglycerols, and cyclic pentaglycerol in an
amount of 2.5 to 6.0 weight% based on the combined weight of the polyglycerols.
[0034] In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises a mixture of
acyclic diglycerol in an amount of 8.0 to 12.5 weight% based on the combined weight
of the polyglycerols, and cyclic diglycerol in an amount of 7.5 to 11.0 weight% based
on the combined weight of the polyglycerols;
acyclic triglycerol in an amount of 9.0 to 13.0 weight% based on the combined weight
of the polyglycerols, and cyclic triglycerol in an amount of 4.5 to 7.5 weight% based
on the combined weight of the polyglycerols;
acyclic tetraglycerol in an amount of 7.5 to 11.0 weight% based on the combined weight
of the polyglycerols, and cyclic tetraglycerol in an amount of 2.5 to 6.0 weight%
based on the combined weight of the polyglycerols; and
acyclic pentaglycerol in an amount of 5.0 to 9.0 weight% based on the combined weight
of the polyglycerols, and cyclic pentaglycerol in an amount of 2.5 to 6.0 weight%
based on the combined weight of the polyglycerols.
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
hexaglycerol in an amount of 8.0 to 11.5 weight% based on the combined weight of the
polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
heptaglycerol in an amount of 7.5 to 11.0 weight% based on the combined weight of
the polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
octaglycerol in an amount of 6.5 to 10.0 weight% based on the combined weight of the
polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
nonaglycerol in an amount of 4.0 to 8.0 weight% based on the combined weight of the
polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
decaglycerol in an amount of 1.5 to 6.0 weight% based on the combined weight of the
polyglycerols; and
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
unadecaglycerol in an amount of 0.5 to 5.0 weight% based on the combined weight of
the polyglycerols.
[0035] In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises diglycerol in an amount of 17.6 to 21.0 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises triglycerol
in an amount of 15.9 to 18.1 weight% based on the combined weight of the polyglycerols.
In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises tetraglycerol in an amount of 12.5 to 14.0 weight%
based on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises pentaglycerol
in an amount of 10.5 to 12.2 weight% based on the combined weight of the polyglycerols.
In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises hexaglycerol in an amount of 9.3 to 10.1 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises heptaglycerol
in an amount of 8.6 to 9.9 weight% based on the combined weight of the polyglycerols.
In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises octaglycerol in an amount of 7.3 to 8.9 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises nonaglycerol
in an amount of 5.5 to 6.4 weight% based on the combined weight of the polyglycerols.
In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises decaglycerol in an amount of 2.9 to 4.5 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises unadecaglycerol
in an amount of 1.8 to 3.7 weight% based on the combined weight of the polyglycerols.
[0036] In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises a mixture of
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
diglycerol in an amount of 17.6 to 21.0 weight% based on the combined weight of the
polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
triglycerol in an amount of 15.9 to 18.1 weight% based on the combined weight of the
polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
tetraglycerol in an amount of 12.5 to 14.0 weight% based on the combined weight of
the polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
pentaglycerol in an amount of 10.5 to 12.2 weight% based on the combined weight of
the polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
hexaglycerol in an amount of 9.3 to 10.1 weight% based on the combined weight of the
polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
heptaglycerol in an amount of 8.6 to 9.9 weight% based on the combined weight of the
polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
octaglycerol in an amount of 7.3 to 8.9 weight% based on the combined weight of the
polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
nonaglycerol in an amount of 5.5 to 6.4 weight% based on the combined weight of the
polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
decaglycerol in an amount of 2.9 to 4.5 weight% based on the combined weight of the
polyglycerols; and
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
unadecaglycerol in an amount of 1.8 to 3.7 weight% based on the combined weight of
the polyglycerols.
[0037] In one preferred aspect the diglycerol comprises acyclic diglycerol in an amount
of 9.1 to 11.4 weight% based on the combined weight of the polyglycerols, and cyclic
diglycerol in an amount of 8.5 to 9.5 weight% based on the combined weight of the
polyglycerols. In one preferred aspect the triglycerol comprises acyclic triglycerol
in an amount of 10.0 to 11.8 weight% based on the combined weight of the polyglycerols,
and cyclic triglycerol in an amount of 5.9 to 6.3 weight% based on the combined weight
of the polyglycerols. In one preferred aspect the tetraglycerol comprises acyclic
tetraglycerol in an amount of 8.4 to 9.5 weight% based on the combined weight of the
polyglycerols, and cyclic tetraglycerol in an amount of 4.1 to 4.4 weight% based on
the combined weight of the polyglycerols. In one preferred aspect the pentaglycerol
comprises acyclic pentaglycerol in an amount of 6.7 to 7.6 weight% based on the combined
weight of the polyglycerols, and cyclic pentaglycerol in an amount of 3.8 to 4.6 weight%
based on the combined weight of the polyglycerols.
[0038] In one preferred aspect
the diglycerol comprises acyclic diglycerol in an amount of 9.1 to 11.4 weight% based
on the combined weight of the polyglycerols, and cyclic diglycerol in an amount of
8.5 to 9.5 weight% based on the combined weight of the polyglycerols;
the triglycerol comprises acyclic triglycerol in an amount of 10.0 to 11.8 weight%
based on the combined weight of the polyglycerols, and cyclic triglycerol in an amount
of 5.9 to 6.3 weight% based on the combined weight of the polyglycerols;
the tetraglycerol comprises acyclic tetraglycerol in an amount of 8.4 to 9.5 weight%
based on the combined weight of the polyglycerols, and cyclic tetraglycerol in an
amount of 4.1 to 4.4 weight% based on the combined weight of the polyglycerols; and
the pentaglycerol comprises acyclic pentaglycerol in an amount of 6.7 to 7.6 weight%
based on the combined weight of the polyglycerols, and cyclic pentaglycerol in an
amount of 3.8 to 4.6 weight% based on the combined weight of the polyglycerols.
[0039] In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises a mixture of
acyclic diglycerol in an amount of 9.1 to 11.4 weight% based on the combined weight
of the polyglycerols, and cyclic diglycerol in an amount of 8.5 to 9.5 weight% based
on the combined weight of the polyglycerols;
acyclic triglycerol in an amount of 10.0 to 11.8 weight% based on the combined weight
of the polyglycerols, and cyclic triglycerol in an amount of 5.9 to 6.3 weight% based
on the combined weight of the polyglycerols;
acyclic tetraglycerol in an amount of 8.4 to 9.5 weight% based on the combined weight
of the polyglycerols, and cyclic tetraglycerol in an amount of 4.1 to 4.4 weight%
based on the combined weight of the polyglycerols; and
acyclic pentaglycerol in an amount of 6.7 to 7.6 weight% based on the combined weight
of the polyglycerols, and cyclic pentaglycerol in an amount of 3.8 to 4.6 weight%
based on the combined weight of the polyglycerols.
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
hexaglycerol in an amount of 9.3 to 10.1 weight% based on the combined weight of the
polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
heptaglycerol in an amount of 8.6 to 9.9 weight% based on the combined weight of the
polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
octaglycerol in an amount of 7.3 to 8.9 weight% based on the combined weight of the
polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
nonaglycerol in an amount of 5.5 to 6.4 weight% based on the combined weight of the
polyglycerols;
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
decaglycerol in an amount of 2.9 to 4.5 weight% based on the combined weight of the
polyglycerols; and
the polyglycerol composition used to form the polyglycerol ester of a fatty acid comprises
unadecaglycerol in an amount of 1.8 to 3.7 weight% based on the combined weight of
the polyglycerols.
[0040] In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises diglycerol in an amount of 18.0 to 32.0 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises triglycerol
in an amount of 16.0 to 24.0 weight% based on the combined weight of the polyglycerols.
In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises tetraglycerol in an amount of 12.0 to 16.0 weight%
based on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises pentaglycerol
in an amount of 8.0 to 12.0 weight% based on the combined weight of the polyglycerols.
In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises hexaglycerol in an amount of 7.0 to 11.0 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises heptaglycerol
in an amount of 5.0 to 10.0 weight% based on the combined weight of the polyglycerols.
In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises octaglycerol in an amount of 3.0 to 9.0 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises nonaglycerol
in an amount of 1.5 to 7.0 weight% based on the combined weight of the polyglycerols.
In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises decaglycerol in an amount of 0.0 to 4.5 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises unadecaglycerol
in an amount of 0.0 to 4.0 weight% based on the combined weight of the polyglycerols.
[0041] In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises a mixture of
diglycerol in an amount of 18.0 to 32.0 weight% based on the combined weight of the
polyglycerols;
triglycerol in an amount of 16.0 to 24.0 weight% based on the combined weight of the
polyglycerols;
tetraglycerol in an amount of 12.0 to 16.0 weight% based on the combined weight of
the polyglycerols;
pentaglycerol in an amount of 8.0 to 12.0 weight% based on the combined weight of
the polyglycerols;
hexaglycerol in an amount of 7.0 to 11.0 weight% based on the combined weight of the
polyglycerols;
heptaglycerol in an amount of 5.0 to 10.0 weight% based on the combined weight of
the polyglycerols;
octaglycerol in an amount of 3.0 to 9.0 weight% based on the combined weight of the
polyglycerols;
nonaglycerol in an amount of 1.5 to 7.0 weight% based on the combined weight of the
polyglycerols;
decaglycerol in an amount of 0.0 to 4.5 weight% based on the combined weight of the
polyglycerols; and
unadecaglycerol in an amount of 0.0 to 4.0 weight% based on the combined weight of
the polyglycerols.
[0042] In one preferred aspect the diglycerol comprises acyclic diglycerol in an amount
of 9.0 to 24.5 weight% based on the combined weight of the polyglycerols, and cyclic
diglycerol in an amount of 6.5 to 10.0 weight% based on the combined weight of the
polyglycerols. In one preferred aspect the triglycerol comprises acyclic triglycerol
in an amount of 9.0 to 20.5 weight% based on the combined weight of the polyglycerols,
and cyclic triglycerol in an amount of 3.5 to 6.5 weight% based on the combined weight
of the polyglycerols. In one preferred aspect the tetraglycerol comprises acyclic
tetraglycerol in an amount of 8.0 to 13.5 weight% based on the combined weight of
the polyglycerols, and cyclic tetraglycerol in an amount of 2.0 to 4.5 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the pentaglycerol
comprises acyclic pentaglycerol in an amount of 6.0 to 9.0 weight% based on the combined
weight of the polyglycerols, and cyclic pentaglycerol in an amount of 2.0 to 5.0 weight%
based on the combined weight of the polyglycerols.
[0043] In one preferred aspect in the polyglycerol composition used to form the polyglycerol
ester of a fatty acid
the diglycerol comprises acyclic diglycerol in an amount of 9.0 o 24.5 weight% based
on the combined weight of the polyglycerols, and cyclic diglycerol in an amount of
6.5 to 10.0 weight% based on the combined weight of the polyglycerols;
the triglycerol comprises acyclic triglycerol in an amount of 9.0 to 20.5 weight%
based on the combined weight of the polyglycerols, and cyclic triglycerol in an amount
of 3.5 to 6.5 weight% based on the combined weight of the polyglycerols;
the tetraglycerol comprises acyclic tetraglycerol in an amount of 8.0 to 13.5 weight%
based on the combined weight of the polyglycerols, and cyclic tetraglycerol in an
amount of 2.0 to 4.5 weight% based on the combined weight of the polyglycerols; and
the pentaglycerol comprises acyclic pentaglycerol in an amount of 6.0 to 9.0 weight%
based on the combined weight of the polyglycerols, and cyclic pentaglycerol in an
amount of 2.0 to 5.0 weight% based on the combined weight of the polyglycerols.
[0044] In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises a mixture of
acyclic diglycerol in an amount of 9.0 to 24.5 weight% based on the combined weight
of the polyglycerols, and cyclic diglycerol in an amount of 6.5 to 10.0 weight% based
on the combined weight of the polyglycerols;
acyclic triglycerol in an amount of 9.0 to 20.5 weight% based on the combined weight
of the polyglycerols, and cyclic triglycerol in an amount of 3.5 to 6.5 weight% based
on the combined weight of the polyglycerols;
acyclic tetraglycerol in an amount of 8.0 to 13.5 weight% based on the combined weight
of the polyglycerols, and cyclic tetraglycerol in an amount of 2.0 to 4.5 weight%
based on the combined weight of the polyglycerols;
acyclic pentaglycerol in an amount of 6.0 to 9.0 weight% based on the combined weight
of the polyglycerols, and cyclic pentaglycerol in an amount of 2.0 to 5.0 weight%
based on the combined weight of the polyglycerols;
hexaglycerol in an amount of 7.0 to 11.0 weight% based on the combined weight of the
polyglycerols;
heptaglycerol in an amount of 5.0 to 10.0 weight% based on the combined weight of
the polyglycerols;
octaglycerol in an amount of 3.0 to 9.0 weight% based on the combined weight of the
polyglycerols;
nonaglycerol in an amount of 1.5 to 7.0 weight% based on the combined weight of the
polyglycerols;
decaglycerol in an amount of 0.0 to 4.5 weight% based on the combined weight of the
polyglycerols; and
unadecaglycerol in an amount of 0.0 to 4.0 weight% based on the combined weight of
the polyglycerols.
[0045] In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises diglycerol in an amount of 26.0 to 34.0 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises triglycerol
in an amount of 21.0 to 25.0 weight% based on the combined weight of the polyglycerols.
In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises tetraglycerol in an amount of 12.0 to 17.0 weight%
based on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises pentaglycerol
in an amount of 8.0 to 12.0 weight% based on the combined weight of the polyglycerols.
In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises hexaglycerol in an amount of 6.0 to 10.0 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises heptaglycerol
in an amount of 4.5 to 7.5 weight% based on the combined weight of the polyglycerols.
In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises octaglycerol in an amount of 2.5 to 5.5 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises nonaglycerol
in an amount of 1.0 to 3.0 weight% based on the combined weight of the polyglycerols.
In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises decaglycerol in an amount of 0.0 to 1.0 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises unadecaglycerol
in an amount of 0.0 to 0.5 weight% based on the combined weight of the polyglycerols.
[0046] In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises unadecaglycerol in an amount of 0.0 to 0.01 weight%
based on the combined weight of the polyglycerols.
[0047] In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises a mixture of
diglycerol in an amount of 26.0 to 34.0 weight% based on the combined weight of the
polyglycerols;
triglycerol in an amount of 21.0 to 25.0 weight% based on the combined weight of the
polyglycerols;
tetraglycerol in an amount of 12.0 to 17.0 weight% based on the combined weight of
the polyglycerols;
pentaglycerol in an amount of 8.0 to 12.0 weight% based on the combined weight of
the polyglycerols;
hexaglycerol in an amount of 6.0 to 10.0 weight% based on the combined weight of the
polyglycerols;
heptaglycerol in an amount of 4.5 to 7.5 weight% based on the combined weight of the
polyglycerols;
octaglycerol in an amount of 2.5 to 5.5 weight% based on the combined weight of the
polyglycerols;
nonaglycerol in an amount of 1.0 to 3.0 weight% based on the combined weight of the
polyglycerols;
decaglycerol in an amount of 0.0 to 1.0 weight% based on the combined weight of the
polyglycerols; and
unadecaglycerol in an amount of 0.0 to 0.5 weight% based on the combined weight of
the polyglycerols.
[0048] In one preferred aspect the diglycerol comprises acyclic diglycerol in an amount
of 20.0 to 26.0 weight% based on the combined weight of the polyglycerols, and cyclic
diglycerol in an amount of 6.5 to 8.0 weight% based on the combined weight of the
polyglycerols. In one preferred aspect the triglycerol comprises acyclic triglycerol
in an amount of 18.0 to 21.0 weight% based on the combined weight of the polyglycerols,
and cyclic triglycerol in an amount of 2.5 to 5.0 weight% based on the combined weight
of the polyglycerols. In one preferred aspect the tetraglycerol comprises acyclic
tetraglycerol in an amount of 11.0 to 14.5 weight% based on the combined weight of
the polyglycerols, and cyclic tetraglycerol in an amount of 1.5 to 4.0 weight% based
on the combined weight of the polyglycerols. In one preferred aspect the pentaglycerol
comprises acyclic pentaglycerol in an amount of 6.5 to 9.5 weight% based on the combined
weight of the polyglycerols, and cyclic pentaglycerol in an amount of 1.5 to 4.0 weight%
based on the combined weight of the polyglycerols.
[0049] In one preferred aspect the triglycerol comprises acyclic triglycerol in an amount
of 18.0 to 21.0 weight% based on the combined weight of the polyglycerols,
[0050] in one preferred aspect in the polyglycerol composition used to form the polyglycerol
ester of a fatty acid
the diglycerol comprises acyclic diglycerol in an amount of 20.0 to 26.0 weight% based
on the combined weight of the polyglycerols, and cyclic diglycerol in an amount of
6.5 to 8.0 weight% based on the combined weight of the polyglycerols;
the triglycerol comprises acyclic triglycerol in an amount of 18.0 to 21.0 weight%
based on the combined weight of the polyglycerols, and cyclic triglycerol in an amount
of 2.5 to 5.0 weight% based on the combined weight of the polyglycerols;
the tetraglycerol comprises acyclic tetraglycerol in an amount of 11.0 to 14.5 weight%
based on the combined weight of the polyglycerols, and cyclic tetraglycerol in an
amount of 1.5 to 4.0 weight% based on the combined weight of the polyglycerols; and
the pentaglycerol comprises acyclic pentaglycerol in an amount of 6.5 to 9.5 weight%
based on the combined weight of the polyglycerols, and cyclic pentaglycerol in an
amount of 1.5 to 4.0 weight% based on the combined weight of the polyglycerols.
[0051] In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid comprises a mixture of
acyclic diglycerol in an amount of 20.0 to 26.0 weight% based on the combined weight
of the polyglycerols, and cyclic diglycerol in an amount of 6.5 to 8.0 weight% based
on the combined weight of the polyglycerols;
acyclic triglycerol in an amount of 18.0 to 21.0 weight% based on the combined weight
of the polyglycerols, and cyclic triglycerol in an amount of 2.5 to 5.0 weight% based
on the combined weight of the polyglycerols;
acyclic tetraglycerol in an amount of 11.0 to 14.5 weight% based on the combined weight
of the polyglycerols, and cyclic tetraglycerol in an amount of 1.5 to 4.0 weight%
based on the combined weight of the polyglycerols;
acyclic pentaglycerol in an amount of 6.5 to 9.5 weight% based on the combined weight
of the polyglycerols, and cyclic pentaglycerol in an amount of 1.5 to 4.0 weight%
based on the combined weight of the polyglycerols;
hexaglycerol in an amount of 6.0 to 10.0 weight% based on the combined weight of the
polyglycerols;
heptaglycerol in an amount of 4.5 to 7.5 weight% based on the combined weight of the
polyglycerols;
octaglycerol in an amount of 2.5 to 5.5 weight% based on the combined weight of the
polyglycerols;
nonaglycerol in an amount of 1.0 to 3.0 weight% based on the combined weight of the
polyglycerols;
decaglycerol in an amount of 0.0 to 1.0 weight% based on the combined weight of the
polyglycerols; and
unadecaglycerol in an amount of 0.0 to 0.5 weight% based on the combined weight of
the polyglycerols.
[0052] The fatty acid side chains attached to the polyglycerol may be of any suitable length.
The polyglycerol ester of a fatty acid may be a polyglycerol ester of a single fatty
acid, or polyglycerol ester of a mixture of fatty acids. The fatty chain lengths of
the fatty acids of the polyglycerol ester need not be of the same length. Typically
the polyglycerol ester of a fatty acid is an ester of a fatty acid of a C12 to C22
fatty acid. Preferably the polyglycerol ester of a fatty acid is an ester of a C16
or C22 fatty acid. Preferably the polyglycerol ester of a fatty acid is an ester of
a C16 or C18 fatty acid. Preferably the polyglycerol ester of a fatty acid is an ester
of a C18 fatty acid.
[0053] The fatty acid of the polyglycerol ester of a fatty acid may be saturated fatty acid,
unsaturated fatty acid or a mixture of saturated fatty acid and unsaturated fatty
acid. In one aspect the fatty acid of the polyglycerol ester of a fatty acid is an
unsaturated fatty acid. The fatty acid of the polyglycerol ester of a fatty acid may
be mono- or di-unsaturated fatty acid. Preferably the fatty acid of the polyglycerol
ester of a fatty acid is a mono-unsaturated fatty acid.
[0054] A highly preferred fatty acid of the polyglycerol ester of a fatty acid is oleic
acid ((9Z)-Octadec-9-enoic acid).
[0055] The fatty acids attached to the polyglycerol may be provided from any suitable source.
Thus in one aspect, the polyglycerol fatty acid ester is prepared from fatty acids
from oils selected from rape seed oil, high oleic rape seed oil, soy oil, high oleic
sunflower oil, tall oil and mixtures thereof.
[0056] In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid has a hydroxyl value of from 880 to 1230 mg KOH/g. In one preferred
aspect the polyglycerol composition used to form the polyglycerol ester of a fatty
acid has a hydroxyl value of from 1130 to 1230 mg KOH/g. In one preferred aspect the
polyglycerol composition used to form the polyglycerol ester of a fatty acid has a
hydroxyl value of from 880 to 1060 mg KOH/g. In a further preferred aspect the polyglycerol
composition used to form the polyglycerol ester of a fatty acid has a hydroxyl value
of from 950 to 990 mg KOH/g.
[0057] In one preferred aspect the polyglycerol composition used to form the polyglycerol
ester of a fatty acid has a refractive index at 50°C of from 1.4860 to 1.4925. In
one preferred aspect the polyglycerol composition used to form the polyglycerol ester
of a fatty acid has a refractive index at 50°C of from 1.4895 to 1.4925. In a further
preferred aspect the polyglycerol composition used to form the polyglycerol ester
of a fatty acid has a refractive index at 50°C of from 1.4900 to 1.4920. In a further
preferred aspect the polyglycerol composition used to form the polyglycerol ester
of a fatty acid has a refractive index at 50°C of from 1.4900 to 1.4910. In one preferred
aspect the polyglycerol composition used to form the polyglycerol ester of a fatty
acid has a refractive index at 25°C of from 1.4855 to 1.4935.
[0058] In one preferred aspect the polyglycerol ester of a fatty acid has a viscosity of
less than 700 mPa s at 20°C, such as less than 600 mPa s at 20°C, such as less than
500 mPa s at 20°C, such as less than 400 mPa s at 20°C, such as less than 350 mPa
s at 20°C, such as less than 300 mPa s at 20°C, such as less than 250 mPa s at 20°C,
such as less than 200 mPa s at 20°C. We have found that during the preparation of
a fuel emulsion in accordance with the present invention a low viscosity, such as
that described above, and preferably less than 200 mPa s at 20°C, is an important
factor in the preparation of an effective emulsion.
[0059] We have found that a means by which the viscosity the polyglycerol ester of a fatty
acid may be controlled is by control of the ratio of the polyol to triglyceride source
when preparing the present polyglycerol ester of a fatty acid, as well as the fatty
acid profile which is described in detail herein. The effect of ratio of the polyol
to triglyceride source is shown in Figure 8. Thus in one aspect the polyglycerol ester
of a fatty acid is prepared by reacting a polyglycerol and a fatty acid triglyceride
in a ratio of polyglycerol to fatty acid triglyceride of from 1:1 to 1:10. Preferably
the polyglycerol ester of a fatty acid is prepared by reacting a polyglycerol and
a fatty acid triglyceride in a ratio of polyglycerol to fatty acid triglyceride of
from 1:1 to 1:9, such as from 1:1 to 1:8, such as from 1:1 to 1:7, such as from 1:1
to 1:6, such as from 1:1 to 1:5, such as from 1:1 to 1:4, such as from 1:2 to 1:4,
such as from 1:2 to 1:3, such as approximately 1:2.8, such as from 1:4 to 1:9, such
as from 1:4 to 1:8, such as from 1:4 to 1:7, such as from 1:4 to 1:6, such as from
1:4 to 1:5, such as from 1:5 to 1:7, such as from 1:6 to 1:7, such as approximately
1:6.7.
Fuel Composition
[0060] When a polyglycerol ester of a fatty acid prepared from a mixture of polyglycerols
as described herein is provided the polyglycerol ester may be dosed in the water and
fuel composition in any suitable amount to provide an emulsion of desired stability.
In one aspect the fuel composition comprises a polyglycerol ester of a fatty acid
prepared from a mixture of polyglycerols as described herein in an amount of from
0.1 to 2.0 wt.% based on the total fuel composition. In a further aspect the fuel
composition comprises a polyglycerol ester of a fatty acid prepared from a mixture
of polyglycerols as described herein in an amount of from 0.1 to 1.0 wt.% based on
the total fuel composition. In a further aspect the fuel composition comprises a polyglycerol
ester of a fatty acid prepared from a mixture of polyglycerols as described herein
in an amount of from 0.1 to 0.5 wt.% based on the total fuel composition. In a further
aspect the fuel composition comprises a polyglycerol ester of a fatty acid prepared
from a mixture of polyglycerols as described herein in an amount of less than 0.5
wt.% based on the total fuel composition. In a further aspect the fuel composition
comprises a polyglycerol ester of a fatty acid prepared from a mixture of polyglycerols
as described herein in an amount of less than 0.3 wt.% based on the total fuel composition.
[0061] According to the invention, the fuel composition comprises a polyglycerol ester of
a fatty acid prepared from a mixture of polyglycerols as described herein in an amount
of less than 0.25 wt.% based on the total fuel composition. In a further aspect the
fuel composition comprises a polyglycerol ester of a fatty acid prepared from a mixture
of polyglycerols as described herein in an amount of less than 0.2 wt.% based on the
total fuel composition. In a further aspect the fuel composition comprises a polyglycerol
ester of a fatty acid prepared from a mixture of polyglycerols as described herein
in an amount of less than 0.15 wt.% based on the total fuel composition. In a further
aspect the fuel composition comprises a polyglycerol ester of a fatty acid prepared
from a mixture of polyglycerols as described herein in an amount of less than 0.1
wt.% based on the total fuel composition.
[0062] As discussed herein we have identified that by use of the "flat" composition of polyglycerols
the emulsifier may be used in lower amounts than required in the prior art. Thus in
the preferred aspect the polyglycerol ester of a fatty acid is present in an amount
of less than 0.25 wt.%. The improved activity of the composition of polyglycerol esters
of the present invention allows for the emulsifier to be dosed at lower amounts than
had previously been required in the prior art. This is advantageous both for reasons
of cost and also for storage. These materials are dosed in use and therefore must
be transported by the user. Minimising the amount of material required to achieve
the desired effect is important for end users. Although the present composition allows
for use at lower levels than the prior art, the present composition may be dosed at
any level, for example it may be dosed at a higher level in a demanding application.
It is appreciated by one skilled in the art that depending on the required use and
stability time desired the polyglycerol ester of a fatty acid may be dosed at any
amount.
Fuel
[0063] As discussed herein, the emulsifiers described allow for the preparation of an emulsion
of fuel and water. A fuel suitable for preparing into an emulsion but which has yet
to be combined with water is hereby disclosed. According to the invention the fuel
containing the emulsifiers is combined with water and the fuel composition comprises
(c) water. It will be appreciated that in this aspect the fuel composition may be
prepared by first dosing the polyglycerol ester of a fatty acid into the fuel, such
as marine gasoil (MGO), after which water is dosed into the fuel/emulsifier blend.
[0064] The amount of water may be selected based on the requirements of the combustion system.
According to the invention the fuel composition farther comprises (c) water in an
amount of from 10 to 70 wt.% based on the total fuel composition. Preferably the water
is present in an amount of from 30 to 60 wt.% based on the total fuel composition.
Preferably the water is present in an amount of from 33 to 50 wt.% based on the total
fuel composition.
[0065] The composition according to the present invention may comprise one or more additives
for example, to improve various aspects of the fuel to which the composition is typically
added or to improve various aspects of the combustion system performance. Suitable
additional additives include detergents, carrier oils, anti-oxidants, corrosion inhibitors,
colour stabilisers, metal deactivators, cetane number improvers, other combustion
improvers, antifoams, pour point depressants, cold filter plugging point depressants,
wax anti-settling additives, dispersants, deodorants, dyes, smoke suppressants, lubricity
agents, and other particulate filter regeneration additives.
[0066] The fuel may be any fuel suitable for combustion where reduction of NOx is desired.
In one aspect the fuel is a fuel for spark ignition engines such as a gasoline engine.
Preferably the fuel is a fuel for a high compression spontaneous ignition engine.
In one aspect the fuel is selected from diesel, heavy fuel oil, marine gasoil (MGO)
and kerosene. The diesel may be biodiesel, low sulphur diesel and ultra-low sulphur
diesel. Preferably the fuel is marine gasoil. The marine gasoil may be any suitable
marine gasoil. In one aspect it is a fuel having a (i) a density of 0.85-0.89g/cm
3, a cetane Number of approximately 45; and a flash point of greater than 55°C.
[0067] Aspects of the invention are defined in the appended claims.
[0068] The present invention will now be described in further detail in the following examples
in which:
Figures 1, 3a, 3b, 7 to 9 and 13 show graphs; and
Figures 2, 3c, 4, 5, 6, 10, 11, 12 and 14 show images.
EXAMPLES
Example 1
[0069] Four polyglycerol esters were prepared and tested. Two were broad range polyglycerol
(BRPG) esters in accordance with the present invention - one based on soya bean oil
and one based on oleic acid. Two were triglycerol esters prepared as a comparison
- one based on soya bean oil and one based on oleic acid.
Manufacture of polyglycerol:
| Glycerol: |
1250 kg |
| 50% NaOH in water: |
9.17 kg |
[0070] Glycerol and NaOH solution is added to the reactor. Heated to 240°C while taking
care with columns and condensers not to distill off glycerol. The heating to 240°C
takes about 3h. Then the pressure is lowered carefully to about 30 mbar to remove
reaction water from the polymerisation of glycerol. After about 7-14 hours at 240°C
samples are withdrawn from the reactor for measurement of refractive index at 50.0°C,

[0071] The refractive index is used to determine the termination of the reaction. The refractive
index should be in the interval of 1.4900-1.4920. If the refractive index is not yet
in the interval, the reaction is continued for further 1 hour and another sample is
withdrawn for measurement. This continues until the refractive index is within the
interval. When the polyglycerol is within the stop-interval the temperature is lowered
to 120°C.
[0072] The glycerol and polyglycerol content of the BRPG samples was determined. The details
of this analysis are given below.
| Polyglycerol composition |
BRPG Batch 1 |
BRPG Batch 2 |
BRPG Batch 3 (reanalysis in [ ]) |
BRPG Batch 4 |
| %Glycerol |
4.81 |
5.49 |
4.22 [4.24] |
5.15 |
| % CY-Diglycerol |
8.68 |
8.42 |
9.14 [9.14] |
8.13 |
| % Diglycerol |
10.04 |
10.85 |
8.68 [8.67] |
10.58 |
| % CY-Triglycerol |
5.94 |
5.58 |
6.00 [6.02] |
5.70 |
| % Triglycerol |
10.57 |
11.15 |
9.47 [9.46] |
11.00 |
| % CY-Tetraglycerol |
4.20 |
3.90 |
3.93 [4.24] |
4.06 |
| % Tetraglycerol |
8.76 |
9.12 |
8.00 [8.00] |
9.06 |
| % CY-Pentaglycerol |
4.13 |
3.60 |
4.44 [4.38] |
3.59 |
| % Pentaglycerol |
6.95 |
7.20 |
6.44 [6.53] |
6.40 |
| % Hexaglycerol |
9.36 |
8.98 |
8.89 [9.22] |
9.58 |
| % Heptaglycerol |
8.71 |
8.15 |
8.63 [8.96] |
9.44 |
| % Octaglycerol |
7.27 |
7.02 |
8.52 [7.57] |
7.02 |
| % Nonaglycerol |
5.58 |
5.20 |
6.07 [5.80] |
5.36 |
| % Decaglycerol |
3.31 |
3.51 |
4.20 [4.25] |
2.76 |
| %Undecaglycerol |
1.69 |
1.82 |
3.38 [3.54] |
2.17 |
| Normalised from |
95.89 |
97.02 |
95.59 [95.06] |
98.53 |
[0073] Specifications of the hydroxyl values and the refractive index for the broad range
polyglycerol of the present invention and the triglycerol used for the esters below
are given below:
Broad range polyglycerol
[0074]
Hydroxyl value (OHV): 950-990
Refractive index at 50°C: 1.4900-1.4920
Triglycerol
[0075]
Hydroxyl value (OHV): 1090-1190
Refractive index (20°C): 1.4930-1.4970
Manufacture of Triglycerol and Polyglycerol esters:
[0076]
Polyglycerol PGE 24401198:
| Soyabean oil: |
700g |
| Polyglycerol: |
203.2g |
| 50% NaOH in water: |
3.80g |
[0077] The polyglycerol was prepared in accordance with the above process.
[0078] All ingredients are charged to a 3-necked flask with mechanical stirring, condenser,
temperature control, nitrogen protection is used, vacuum pump is connected to the
set-up.
[0079] Temperature is raised to 90°C. Pressure is lowered to about 50 mBar when the mixture
reaches 90°C. Temperature is then raised to 230°C and held at that temperature for
30 min. Cooled to about 90°C. Pressure equalised with nitrogen at 90°C. The product
is clear.
[0080] Analysis: Acid value: 0.3; Saponification value: 146.2; Hydroxyl value: 219.2.
Polyglycerol PGE 2528/160:
| Oleic acid 90%: |
340g |
| Polyglycerol: |
102g |
| Glycerol: |
37g |
| 50% NaOH in water: |
1.75g |
[0081] The polyglycerol was prepared in accordance with the above process.
[0082] All ingredients are charged to a 3-necked flask with mechanical stirring, vigreux
column, condenser, temperature control, nitrogen protection is used, vacuum pump is
connected to the set-up.
[0083] Temperature is raised gradually to 235°C. At 208°C reaction water is distilled off.
After 80 min. the mixture is clear and the temperature is 235°C. The reaction mixture
is reacted for further 1h.
The pressure is lowered gradually to 75 mBar. Then the mixture reacts for further
1h. A sample is withdrawn for acid value measurement.
When the acid value is below 2 the product is finished and the temperature is lowered
to 90°C. Pressure equalised with nitrogen. The product is clear.
[0084] Analysis: Acid value: 0.5; Saponification value: 145.5; Hydroxyl value: 214.9; Alcaline
number: 7.4.
Triglycerol PGE 2528/072 (Comparative):
| Soyabean oil: |
700g |
| Triglycerol: |
215g |
| 50% NaOH in water: |
3.80g |
[0085] The triglycerol was obtained from Solvay.
[0086] All ingredients are charged to a 3-necked flask with mechanical stirring, condenser,
temperature control, nitrogen protection is used, vacuum pump is connected to the
set-up.
[0087] Pressure is lowered to about 50 mBar when the mixture reaches 90°C. Temperature is
raised from room temperature to 230°C in 85 min. The reaction mixture is held at 230°C
for 2.5h, then cooled to 90°C and pressure equalised with nitrogen. The product is
clear.
[0088] Analysis: Acid value: 0.2; Saponification value: 142.6; Iodine value: 95.2; Color
5 1/4", Total: 3.0 yellow: 15 red: 1.5.
Triglycerol PGE 2526/159 (Comparative):
| Oleic acid 90%: |
340g |
| Triglycerol: |
108g |
| Glycerol: |
37g |
| 50% NaOH in water: |
1.75g |
[0089] The triglycerol was obtained from Solvay.
[0090] All ingredients are charged to a 3-necked flask with mechanical stirring, vigreux
column, condenser, temperature control, nitrogen protection is used, vacuum pump is
connected to the set-up.
[0091] Temperature is raised gradually to 235°C. At 208°C reaction water is observed. After
65 min. the mixture is clear and the temperature is 235°C. The reaction mixture is
reacted for further 1h. The pressure is lowered gradually to 75 mBar, then the mixture
reacts for further 1h. A sample is withdrawn for acid value measurement. When the
acid value is below 2 the product is finished and the temperature is lowered to 90°C.
Pressure equalised with nitrogen. The product is clear.
[0092] Analysis: Acid value: 0.8; Saponification value: 143.6; Hydroxyl value: 262.8; Alcaline
number: 4.6.
[0093] Four polyglycerol esters based on either soy oil or oleic acid and either triglycerol
or broad range polyglycerol (BRPG) esters were tested in water-in-fuel emulsion (WIF-emulsion)
with 50% water content at 55°C with focus on water droplet size distribution, stability
and emulsion viscosity.
[0094] The results of the investigations show that BRPG esters provides smaller water droplets
and reduced water droplet sedimentation during storage compared to triglycerol esters.
[0095] Four samples were tested with two polyol distributions (triglycerol vs. BRPG) and
two fatty acid sources (soy oil vs. pure oleic acid). The main focus of the test was
the effect of reduced emulsifier addition on the emulsion stability.
EXPERIMENTAL
[0096] Four emulsifiers were tested in water-in-fuel emulsions, WIF-emulsions, with 50%
water content at 55°C. The emulsifiers are listed in table 1. Dosages 0.5%, 0.25%
and 0.1% based on the emulsion. The emulsions (200 g) were prepared by slowly adding
the water phase to the fuel (MGO) during homogenization with Ultra Turrex at 20500
rpm for 64 s. Both the MGO and the water were heated to 55°C prior to emulsification.
[0097] The following analyses were carried out immediately after preparation of the emulsion:
- 1. Water droplet size distribution by NMR.
- 2. Microscopy by CLSM.
- 3. Emulsion stability during 3 hours storage at 55°C by imaging and image analysis.
Table 1 * The low polyol percentage is due to the fatty acid source.
| Polyglycerol Type |
Material |
Fatty acid composition |
Polyglycerol % |
| BRPG |
2440/198 |
soy oil |
23.8* |
| BRPG |
2526/160 |
Oleate |
27.0 |
| Triglycerol |
2528/072 |
soy oil |
23.8* |
| Triglycerol |
2526/159 |
Oleate |
28.6 |
[0098] The marine gasoil (diesel) used in the testing was Shell Thermo heating oil.
RESULTS
[0099] The water droplet size distribution is shown in Table 2. Note the significant increase
in water droplet size at low emulsifier concentration.
Table 2 Water droplet size distribution.
| Emulsifier |
Conc % Emulsion |
Conc % Diesel |
Water % Emulsion |
Temp °C |
D2.5 µm |
D50.0 µm |
| 2440/198 |
0.50 |
1.00 |
50 |
55 |
0.6 |
7.7 |
| BRPG-soy |
0.25 |
0.50 |
50 |
55 |
3.3 |
16.6 |
| |
0.10 |
0.20 |
50 |
55 |
4.2 |
63.0 |
| 2526/160 |
0.50 |
1.00 |
50 |
55 |
0.5 |
7.1 |
| BRPG - oleate |
0.25 |
0.50 |
50 |
55 |
3.7 |
18.6 |
| |
0.10 |
0.20 |
50 |
55 |
6.7 |
47.0 |
| 2528/072 |
0.50 |
1.00 |
50 |
55 |
0.4 |
6.6 |
| Triglycerol - soy |
0.25 |
0.50 |
50 |
55 |
2.7 |
17.8 |
| |
0.10 |
0.20 |
50 |
55 |
2.8 |
87.8 |
| 2526/159 |
0.50 |
1.00 |
50 |
55 |
0.5 |
7.4 |
| Triglycerol - oleate |
0.25 |
0.50 |
50 |
55 |
1.9 |
14.9 |
| 0.10 |
0.20 |
50 |
55 |
4.5 |
72.7 |
[0100] The D50.0 values are compared in Figure 1, where the huge increase in droplet size
at 0.1 % dosage level is clearly seen. The graph also shows that at very stressing
conditions (0.1% emulsifier dosage) PGE based on BRPG (broad range polyglycerol) results
in smaller water droplets than PGE based on triglycerol. At the same time PGE based
on fatty acids from soy oil results in larger droplets than PGE based on pure oleic
acid.
[0101] The droplet size distribution by CLSM is seen below with a comparison between 0.5%
and 0.1% emulsifier dosage. The huge increase in droplet size at low emulsifier dosage
is clearly seen on the pictures. Pictures of samples with 0.25% emulsifier addition
are shown in Figure 2. Pictures of samples with 0.1%, 0.25% and 0.5% emulsifier addition
are shown in Figure 6.
[0102] In Figure 3a, 3b and 3c are shown the degree of water droplet sedimentation in the
emulsions during 3 hours storage at 55°C with 0.5%, 0.25% and 0.1% emulsifier addition.
The degree of sedimentation is expressed as the free diesel oil on top of the samples
in percentage of the total samples height. The values were generated by image analysis.
The difference in the degree of sedimentation between the dosage levels is to be noted.
At 0.1% dosage the sedimentation is ten-fold larger than at 0.5% dosage level.
[0103] The ester of triglycerol and soy oil performs poorly at low concentration. Hence
the performance of this emulsifier is more sensitive to dosage reduction compared
to the broad range polyglycerol ester emulsifiers of the present invention.
[0104] At low concentration the two emulsifiers based on BRPG of the present invention perform
better than the emulsifiers based on triglycerol. This is in agreement with the difference
in water droplet size illustrated in Figure 1.
[0105] Pictures of the samples are available in Figures 4 and 5.
CONCLUSION
[0106] It is clearly documented that polyglycerol esters based on broad range polyglycerols
results in smaller water droplet and reduced water droplet sedimentation during storage
as compared to polyglycerolesters based on triglycerol. This effect is seen at very
low emulsifier addition (0.1%) representing stressing conditions, which most like
a real life situation. Furthermore it is concluded that a fatty acids composition
with high oleic acid content is superior to a composition with high linoleic acid
(soy oil) based on above attributes.
Example 2
[0107] Four further polyglycerol esters were prepared and tested. Each was a broad range
polyglycerol (BRPG) esters in accordance with the present invention and each was based
on rape seed oil. Two were triglycerol esters and two were hexaglycerol esters.
[0108] The esters in accordance with the present invention were compared against a comparison
prepared from triglycerol and soy oil (REF PGE or REF).
EXPERIMENTAL
[0109]
PGE 2680/060 with polyol 13%:
| Rapeseed oil: |
920g |
| Broad Range Hexaglycerol (BRHG): |
138g |
| 50% NaOH in water: |
1.92g |
[0110] The hexaglycerol was prepared by polymerisation in the same manner as described in
Example 1.
[0111] All ingredients are charged to a 3-necked flask with mechanical stirring, condenser,
temperature control, nitrogen protection is used, vacuum pump is connected to the
set-up.
[0112] Pressure is lowered to 50 - 100 mBar when the mixture reaches 235°C and is clear.
Temperature is raised from room temperature to 235°C in 50 min. The reaction mixture
is held at 235°C for 2.5h, then cooled to 100°C and pressure equalised with nitrogen.
The product is clear.
[0113] Analysis: Acid value: 0.2; Saponification value: 161.8; Hydroxyl value: 125; Alcaline
number: 3.9
PGE 2680/065 with polyol 10%:
| Rapeseed oil: |
960g |
| Broad Range Hexaglycerol (BRHG): |
106.6g |
| 50% NaOH in water: |
2.4g |
[0114] The hexaglycerol was prepared by polymerisation in the same manner as described in
Example 1.
[0115] All ingredients are charged to a 3-necked flask with mechanical stirring, condenser,
temperature control, nitrogen protection is used, vacuum pump is connected to the
set-up.
[0116] Pressure is lowered to 50 - 100 mBar when the mixture reaches 235°C and is clear.
Temperature is raised from room temperature to 235°C in 50 min. The reaction mixture
is held at 235°C for 2.5h, then cooled to 100°C and pressure equalised with nitrogen.
The product is clear.
[0117] Analysis: Acid value: 0.2; Saponification value: 168.6; Hydroxyl value: 100.2; Alcaline
number: 4.1
PGE 2680/062 with polyol 23%:
| Rapeseed oil: |
450g |
| Broad Range Triglycerol (BRTG): |
135g |
| 50% NaOH in water: |
0.82g |
[0118] The triglycerol was prepared by polymerisation in the same manner as described in
Example 1 except the refractive index was at 25°C was changed from 1.4855 to 1.4935.
[0119] All ingredients are charged to a 3-necked flask with mechanical stirring, condenser,
temperature control, nitrogen protection is used, vacuum pump is connected to the
set-up.
[0120] Pressure is lowered to 50 - 100 mBar when the mixture reaches 235°C and is clear.
Temperature is raised from room temperature to 235°C in 50 min. The reaction mixture
is held at 235°C for 2.5h, then cooled to 100°C and pressure equalised with nitrogen.
The product is clear.
[0121] Analysis: Acid value: 0.1; Saponification value: 144.9; Hydroxyl value: 241.4; Alcaline
number: 5.0
PGE 2680/073 with polyol 13%:
| Rapeseed oil: |
500g |
| Broad Range Triglycerol (BRTG): |
75g |
| 50% NaOH in water: |
0.8g |
[0122] The triglycerol was prepared by polymerisation in the same manner as described in
Example 1 except the refractive index was at 25°C was changed from 1.4855 to 1.4935.
[0123] All ingredients are charged to a 3-necked flask with mechanical stirring, condenser,
temperature control, nitrogen protection is used, vacuum pump is connected to the
set-up.
[0124] Pressure is lowered to 50 - 100 mBar when the mixture reaches 235°C and is clear.
Temperature is raised from room temperature to 235°C in 50 min. The reaction mixture
is held at 235°C for 2.5h, then cooled to 100°C and pressure equalised with nitrogen.
The product is clear.
[0125] Analysis: Acid value: 0.2; Saponification value: 163.9; Hydroxyl value: 147.5; Alcaline
number: 3.7
Polyol Distribution
[0126] The polyol distribution of the polyol used in the preparation of each of 2680/062
and 2680/073 was analysed. The analyses was performed twice and an average taken.
The results of this analysis are given in Table 3 below.
Table 3 - Polyol duplicate analysis
| |
Analysis 1 |
Analysis 2 |
Average of 2 Analyses |
Polyol % based on total Polyols |
| %Glycerol |
11.08 |
10.9998 |
11.03 |
|
| % CY-Diglycerol |
6.42 |
6.37 |
6.4 |
7.19% |
| % Diglycerol |
21.56 |
21.51 |
21.54 |
24.20% |
| % CY-Triglycerol |
2.96 |
3 |
2.98 |
3.35% |
| % Triglycerol |
17.74 |
17.89 |
17.8182 |
20.02% |
| % CY-Tetraglycerol |
1.98 |
2.06 |
2.02 |
2.27% |
| % Tetraglycerol |
11.52 |
11.79 |
11.6566 |
13.10% |
| % CY-Pentaglycerol |
2.78 |
2.7 |
2.74 |
3.08% |
| % Pentaglycerol |
6.8 |
6.93 |
6.87 |
7.72% |
| % Hexaglycerol |
6.53 |
6.67 |
6.6 |
7.42% |
| % Heptaglycerol |
4.84 |
4.89 |
4.87 |
5.47% |
| % Octaglycerol |
3.15 |
3 |
3.07 |
3.45% |
| % Nonaglycerol |
1.9 |
1.62 |
1.76 |
1.98% |
| % Decaglycerol |
0.74 |
0.58 |
0.66 |
0.74% |
| %Undecaglycerol |
0 |
0 |
0 |
0.00% |
[0127] The polyglycerol esters synthesized are summarised in Table 4. Three types of polyglycerol
were included in series, they were two triglycerols and one hexaglycerol The fatty
acid source was either soy oil or rape seed oil.
Table 4. BRHG / BRTG: Broad range Hexa/Tri-Glycerol
| Sample |
Polyol type |
Wt. % Polyol |
Oil Type |
| REF PGE |
Tri |
23.8 |
Soy |
| J 2680/053 |
BRHG |
19.0 |
Soy |
| J 2680/054 |
BRHG |
16.0 |
rape seed |
| J 2680/060 |
BRHG |
13.0 |
rape seed |
| J 2680/062 |
BRTG |
23.1 |
rape seed |
| J 2680/065 |
BRHG |
10.0 |
rape seed |
| J 2680/073 |
BRTG |
13.0 |
rape seed |
[0128] The difference in polyol composition is shown below
[0129] The polyol distribution of samples REF PGE, the BRTG used in the preparation of 2680/073
and the BRHG used in the preparation of 2680/060 are shown in Table 5.
Table 5. polyol distribution of samples
| |
REF PGE |
BRTG |
BRHG |
| %Glycerol |
0.1 |
11 |
5.2 |
| % CY-Diglycerol |
0 |
6.4 |
9 |
| % Diglycerol |
27 |
21.5 |
9.7 |
| % CY-Triglycerol |
2.5 |
3 |
5.7 |
| % Triglycerol |
44.2 |
17.8 |
10.3 |
| % CY-Tetraglycerol |
4.1 |
2 |
4 |
| % Tetraglycerol |
12.4 |
11.7 |
8.5 |
| % CY-Pentaglycerol |
1.6 |
2.7 |
4.1 |
| % Pentaglycerol |
4.2 |
6.9 |
6.8 |
| % Hexaglycerol |
2.5 |
6.6 |
9.2 |
| % Heptaglycerol |
1.2 |
4.9 |
8.5 |
| % Octaglycerol |
0 |
3.1 |
7 |
| % Nonaglycerol |
0 |
1.8 |
5.4 |
| % Decaglycerol |
0 |
0.7 |
3.6 |
| %Undecaglycerol |
0 |
0 |
3.1 |
[0130] The viscosity of each emulsifier was measured on a Physica Rheometer using the following
setup:
Temp: 60°C to -10°C (1 °C/min), Shear rate : 23 1/s, Measuring system: DG26.7 7-SN711;
d=0mm
[0131] Selected emulsifiers (REF PGE, J2680/060, J2680/065, J2680/073) were further tested
in WIF-emulsions with 50% water content at 55°C at 0.1% and 0.2% dosage. Diesel quality:
MGO.
[0132] WIF-samples were prepared as described in Example 1.
RESULTS
[0133] The droplet size distribution is shown in Table 6 and graphically in Figure 9 for
D50.0 values. Samples 2680/065 and 2680/073 were not stable enough to allow NMR measurement.
Table 6 water droplet size distribution
| Sample |
Dosage % |
D2.5 µm |
D50.0 µm |
comments |
| REF PGE |
0.1 |
1.6 |
81.0 |
|
| J 2680/060 |
0.1 |
5.3 |
100.0 |
|
| J 2680/065 |
0.1 |
- |
- |
Too fast sedimentation |
| J 2680/073 |
0.1 |
- |
- |
Water phase separation |
| REFPGE |
0.2 |
4.2 |
19.3 |
|
| J 2680/060 |
0.2 |
7.9 |
32.6 |
|
| J 2680/065 |
0.2 |
3.7 |
100.0 |
|
| J 2680/073 |
0.2 |
- |
- |
Water phase separation |
[0134] The CLSM pictures of the emulsion are shown in Figure 10. The images were recorded
immediately after emulsification. Samples 2680/065 and 2680/073 both provides much
bigger water droplets at both emulsifier dosage levels as compared to the reference
(REF PGE) and 2680/060..
[0135] The CLSM images of Figure 11 show a dramatic increase in the water droplet size at
low emulsifier dosage for samples 2680/065 and 2680/073 as a sign of reduced functionality.
Also at 0.2% dosage level, the droplets are clearly larger than for samples REF PGE
and 2680/060.
[0136] Sedimentation and water phase separation after 1h, 2, and 3h storage at 55°C for
sample 2680/073 are shown in Figure 12. Such pronounced water separation is unusual
with WIF-emulsions. Sedimentation at rest however is not a problem as a homogeneous
emulsion will be reformed during flow
[0137] Images of the emulsions are shown in Figure 14.
[0138] The degree of water droplet sedimentation in the emulsions expressed as the amount
of free oil on top formed during 3 hours of storage at 55°C is shown in Figure 13.
1. A fuel composition comprising:
(a) a fuel;
(b) a polyglycerol ester of a fatty acid, wherein the polyglycerol ester of a fatty
acid is present in an amount no greater than 0.25 wt% based on the total fuel composition;
and
(c) water in an amount of from 10 to 70 wt% based on the total fuel composition;
wherein the polyglycerol composition used to form the polyglycerol ester of a fatty
acid comprises, based on the combined weight of the polyglycerols, a mixture of
diglycerol in an amount of 11.0 to 34.0 weight%;
triglycerol in an amount of 9.5 to 24.5 weight%;
tetraglycerol in an amount of 6.0 to 21.0 weight%;
pentaglycerol in an amount of 3.5 to 19.0 weight%;
hexaglycerol in an amount of 6.0 to 13.5 weight%;
heptaglycerol in an amount of 5.0 to 13.0 weight%;
octaglycerol in an amount of 3.0 to 12.0 weight%;
nonaglycerol in an amount of 1.5 to 10.0 weight%;
decaglycerol in an amount of 0.0 to 8.0 weight; and
unadecaglycerol in an amount of 0.0 to 7.0 weight%.
2. A fuel composition according to claim 1 wherein the polyglycerol composition used
to form the polyglycerol ester of a fatty acid comprises, based on the combined weight
of the polyglycerols, a mixture of
diglycerol in an amount of 11.0 to 28.0 weight%;
triglycerol in an amount of 9.5 to 24.5 weight%;
tetraglycerol in an amount of 6.0 to 21.0 weight%;
pentaglycerol in an amount of 3.5 to 19.0 weight%;
hexaglycerol in an amount of 6.0 to 13.5 weight%;
heptaglycerol in an amount of 5.0 to 13.0 weight%;
octaglycerol in an amount of 4.0 to 12.0 weight%;
nonaglycerol in an amount of 2.0 to 10.0 weight%;
decaglycerol in an amount of 0.5 to 8.0 weight%; and
unadecaglycerol in an amount of 0.1 to 7.0 weight%.
3. A fuel composition according to claim 1 wherein, based on the combined weight of the
polyglycerols,
the diglycerol comprises acyclic diglycerol in an amount of 6.0 to 25.0 weight%, and
cyclic diglycerol in an amount of 5.0 to 13.0 weight%;
the triglycerol comprises acyclic triglycerol in an amount of 7.0 to 21.0 weight%,
and cyclic triglycerol in an amount of 2.5 to 9.5 weight;
the tetraglycerol comprises acyclic tetraglycerol in an amount of 5.5 to 15.0 weight%,
and cyclic tetraglycerol in an amount of 0.5 to 8.0 weight%; and
the pentaglycerol comprises acyclic pentaglycerol in an amount of 3.0 to 11.0 weight%
and cyclic pentaglycerol in an amount of 0.5 to 8.0 weight%.
4. A fuel composition according to claim 2 wherein, based on the combined weight of the
polyglycerols,
the diglycerol comprises acyclic diglycerol in an amount of 6.0 to 15.0 weight%, and
cyclic diglycerol in an amount of 5.0 to 13.0 weight%
the triglycerol comprises acyclic triglycerol in an amount of 7.0 to 15.0 weight%,
and cyclic triglycerol in an amount of 2.5 to 9.5 weight%;
the tetraglycerol comprises acyclic tetraglycerol in an amount of 5.0 to 13.0 weight%,
and cyclic tetraglycerol in an amount of 1.0 to 8.0 weight%; and
the pentaglycerol comprises acyclic pentaglycerol in an amount of 3.0 to 11.0 weight%,
and cyclic pentaglycerol in an amount of 0.5 to 8.0 weight%.
5. A fuel composition according to any one of the preceding claims wherein the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises, based on
the combined
weight of the polyglycerols, a mixture of
diglycerol in an amount of 15.0 to 23.5 weight%;
triglycerol in an amount of 13.5 to 20.5 weight%;
tetraglycerol in an amount of 10.0 to 17.0 weight%;
pentaglycerol in an amount of 8.0 to 14.5 weight%;
hexaglycerol in an amount of 8.0 to 11.5 weight%;
heptaglycerol in an amount of 7.5 to 11.0 weight%;
octaglycerol in an amount of 6.5 to 10.0 weight%;
nonaglycerol in an amount of 4.0 to 8.0 weight%;
decaglycerol in an amount of 1.5 to 6.0 weight%; and
unadecaglycerol in an amount of 0.5 to 5.0 weight%.
6. A fuel composition according to any one of the preceding claims wherein the polyglycerol
composition used to form the polyglycerol ester of a fatty acid comprises, based on
the combined
weight of the polyglycerols, a mixture of
diglycerol in an amount of 17.6 to 21.0 weight%;
triglycerol in an amount of 15.9 to 18.1 weight%;
tetraglycerol in an amount of 12.5 to 14.0 weight%;
pentaglycerol in an amount of 10.5 to 12.2 weight%;
hexaglycerol in an amount of 9.3 to 10.1 weight%;
heptaglycerol in an amount of 8.6 to 9.9 weight%;
octaglycerol in an amount of 7.3 to 8.9 weight%;
nonaglycerol in an amount of 5.5 to 6.4 weight%;
decaglycerol in an amount of 2.9 to 4.5 weight%; and
unadecaglycerol in an amount of 1.8 to 3.7 weight%.
7. A fuel composition according to claim 1 wherein in the polyglycerol composition, based
on
the combined weight of the polyglycerols, used to form the polyglycerol ester of a
fatty acid
the diglycerol comprises acyclic diglycerol in an amount of 9.0 to 24.5 weight%, and
cyclic diglycerol in an amount of 6.5 to 10.0 weight%;
the triglycerol comprises acyclic triglycerol in an amount of 9.0 to 20.5 weight%,
and cyclic triglycerol in an amount of 3.5 to 6.5 weight%;
the tetraglycerol comprises acyclic tetraglycerol in an amount of 8.0 to 13.5 weight%,
and cyclic tetraglycerol in an amount of 2.0 to 4.5 weight%; and
the pentaglycerol comprises acyclic pentaglycerol in an amount of 6.0 to 9.0 weight%,
and cyclic pentaglycerol in an amount of 2.0 to 5.0 weight%.
8. A fuel composition according to claim 6 wherein in the polyglycerol composition, based
on
the combined weight of the polyglycerols, used to form the polyglycerol ester of a
fatty acid
the diglycerol comprises acyclic diglycerol in an amount of 20.0 to 26.0 weight%,
and cyclic diglycerol in an amount of 6.5 to 8.0 weight%;
the triglycerol comprises acyclic triglycerol in an amount of 18.0 to 21.0 weight%,
and cyclic triglycerol in an amount of 2.5 to 5.0 weight%;
the tetraglycerol comprises acyclic tetraglycerol in an amount of 11.0 to 14.5 weight%,
and cyclic tetraglycerol in an amount of 1.5 to 4.0 weight%; and
the pentaglycerol comprises acyclic pentaglycerol in an amount of 6.5 to 9.5 weight%,
and cyclic pentaglycerol in an amount of 1.5 to 4.0 weight%.
9. A fuel composition according to any one of the preceding claims wherein the polyglycerol
composition used to form the polyglycerol ester of a fatty acid has a hydroxyl value
of from 880 to 1230 mg KOH/g.
10. A fuel composition according to any one of the preceding claims wherein the polyglycerol
composition used to form the polyglycerol ester of a fatty acid has a refractive index
at 50°C of from 1.4860 to 1.4925.
11. A fuel composition according to any one of the preceding claims wherein the (b) a
polyglycerol ester of a fatty acid is present in an amount of no greater than 0.1wt%
based on the total fuel composition.
12. A fuel composition according to any one of the preceding claims wherein the fuel is
marine gasoil.
13. A method for improving the stability of a fuel composition containing (a) fuel and
(c) water, the method comprising mixing with the fuel and water,
(b) a polyglycerol ester of a fatty acid, wherein the polyglycerol ester of a fatty
acid is present in an amount no greater than 0.25 wt% based on the total fuel composition;
and wherein the polyglycerol composition used to form the polyglycerol ester of a
fatty acid comprises, based on the combined weight of the polyglycerols, a mixture
of
diglycerol in an amount of 11.0 to 34.0 weight%;
triglycerol in an amount of 9.5 to 24.5 weight%;
tetraglycerol in an amount of 6.0 to 21.0 weight%;
pentaglycerol in an amount of 3.5 to 19.0 weight%;
hexaglycerol in an amount of 6.0 to 13.5 weight%;
heptaglycerol in an amount of 5.0 to 13.0 weight%;
octaglycerol in an amount of 3.0 to 12.0 weight%;
nonaglycerol in an amount of 1.5 to 10.0 weight%;
decaglycerol in an amount of 0.0 to 8.0 weight%; and
unadecaglycerol in an amount of 0.0 to 7.0 weight%.
14. Use of a polyglycerol ester of a fatty acid for improving the stability of a fuel
composition containing fuel and water,
wherein the polyglycerol ester of a fatty acid is present in an amount no greater
than 0.25 wt% based on the total fuel composition;
and wherein the polyglycerol composition used to form the polyglycerol ester of a
fatty acid comprises, based on the combined weight of the polyglycerols, a mixture
of
diglycerol in an amount of 11.0 to 34.0 weight%;
triglycerol in an amount of 9.5 to 24.5 weight%;
tetraglycerol in an amount of 6.0 to 21.0 weight%;
pentaglycerol in an amount of 3.5 to 19.0 weight%;
hexaglycerol in an amount of 6.0 to 13.5 weight%;
heptaglycerol in an amount of 5.0 to 13.0 weight%;
octaglycerol in an amount of 3.0 to 12.0 weight%;
nonaglycerol in an amount of 1.5 to 10.0 weight%;
decaglycerol in an amount of 0.0 to 8.0 weight%; and
unadecaglycerol in an amount of 0.0 to 7.0 weight%.
1. Kraft- oder Brennstoffzusammensetzung, umfassend:
(a) einen Kraft- oder Brennstoff;
(b) einen Polyglycerinester einer Fettsäure, wobei der Polyglycerinester einer Fettsäure
in einer Menge von nicht mehr als 0,25 Gew.-%, bezogen auf die gesamte Kraft- oder
Brennstoffzusammensetzung, vorliegt; und
(c) Wasser in einer Menge von 10 bis 70 Gew.-%, bezogen auf die gesamte Kraft- oder
Brennstoffzusammensetzung;
wobei die zur Bildung des Polyglycerinesters einer Fettsäure verwendete Polyglycerinzusammensetzung,
bezogen auf das kombinierte Gewicht der Polyglycerine, ein Gemisch von
Diglycerin in einer Menge von 11,0 bis 34,0 Gew.-%;
Triglycerin in einer Menge von 9,5 bis 24,5 Gew.-%;
Tetraglycerin in einer Menge von 6,0 bis 21,0 Gew.-%;
Pentaglycerin in einer Menge von 3,5 bis 19,0 Gew.-%;
Hexaglycerin in einer Menge von 6,0 bis 13,5 Gew.-%;
Heptaglycerin in einer Menge von 5,0 bis 13,0 Gew.-%;
Octaglycerin in einer Menge von 3,0 bis 12,0 Gew.-%;
Nonaglycerin in einer Menge von 1,5 bis 10,0 Gew.-%;
Decaglycerin in einer Menge von 0,0 bis 8,0 Gew.-%; und
Undecaglycerin in einer Menge von 0,0 bis 7,0 Gew.-%
umfasst.
2. Kraft- oder Brennstoffzusammensetzung nach Anspruch 1, wobei die zur Bildung des Polyglycerinesters
einer Fettsäure verwendete Polyglycerinzusammensetzung, bezogen auf das kombinierte
Gewicht der Polyglycerine, ein Gemisch von
Diglycerin in einer Menge von 11,0 bis 28,0 Gew.-%;
Triglycerin in einer Menge von 9,5 bis 24,5 Gew.-%;
Tetraglycerin in einer Menge von 6,0 bis 21,0 Gew.-%;
Pentaglycerin in einer Menge von 3,5 bis 19,0 Gew.-%;
Hexaglycerin in einer Menge von 6,0 bis 13,5 Gew.-%;
Heptaglycerin in einer Menge von 5,0 bis 13,0 Gew.-%;
Octaglycerin in einer Menge von 4,0 bis 12,0 Gew.-%;
Nonaglycerin in einer Menge von 2,0 bis 10,0 Gew.-%;
Decaglycerin in einer Menge von 0,5 bis 8,0 Gew.-%; und
Undecaglycerin in einer Menge von 0,1 bis 7,0 Gew.-%
umfasst.
3. Kraft- oder Brennstoffzusammensetzung nach Anspruch 1, wobei, bezogen auf das kombinierte
Gewicht der Polyglycerine,
das Diglycerin acyclisches Diglycerin in einer Menge von 6,0 bis 25,0 Gew.-% und cyclisches
Diglycerin in einer Menge von 5,0 bis 13,0 Gew.-% umfasst; das Triglycerin acyclisches
Triglycerin in einer Menge von 7,0 bis 21,0 Gew.-% und cyclisches Triglycerin in einer
Menge von 2,5 bis 9,5 Gew.-% umfasst;
das Tetraglycerin acyclisches Tetraglycerin in einer Menge von 5,5 bis 15,0 Gew.-%
und cyclisches Tetraglycerin in einer Menge von 0,5 bis 8,0 Gew.-% umfasst; und
das Pentaglycerin acyclisches Pentaglycerin in einer Menge von 3,0 bis 11,0 Gew.-%
und cyclisches Pentaglycerin in einer Menge von 0,5 bis 8,0 Gew.-% umfasst.
4. Kraft- oder Brennstoffzusammensetzung nach Anspruch 2, wobei, bezogen auf das kombinierte
Gewicht der Polyglycerine,
das Diglycerin acyclisches Diglycerin in einer Menge von 6,0 bis 15,0 Gew.-% und cyclisches
Diglycerin in einer Menge von 5,0 bis 13,0 Gew.-% umfasst; das Triglycerin acyclisches
Triglycerin in einer Menge von 7,0 bis 15,0 Gew.-% und cyclisches Triglycerin in einer
Menge von 2,5 bis 9,5 Gew.-% umfasst;
das Tetraglycerin acyclisches Tetraglycerin in einer Menge von 5,0 bis 13,0 Gew.-%
und cyclisches Tetraglycerin in einer Menge von 1,0 bis 8,0 Gew.-% umfasst; und
das Pentaglycerin acyclisches Pentaglycerin in einer Menge von 3,0 bis 11,0 Gew.-%
und cyclisches Pentaglycerin in einer Menge von 0,5 bis 8,0 Gew.-% umfasst.
5. Kraft- oder Brennstoffzusammensetzung nach einem der vorhergehenden Ansprüche, wobei
die zur Bildung des Polyglycerinesters einer Fettsäure verwendete Polyglycerinzusammensetzung,
bezogen auf das kombinierte Gewicht der Polyglycerine, ein Gemisch von
Diglycerin in einer Menge von 15,0 bis 23,5 Gew.-%;
Triglycerin in einer Menge von 13,5 bis 20,5 Gew.-%;
Tetraglycerin in einer Menge von 10,0 bis 17,0 Gew.-%;
Pentaglycerin in einer Menge von 8,0 bis 14,5 Gew.-%;
Hexaglycerin in einer Menge von 8,0 bis 11,5 Gew.-%;
Heptaglycerin in einer Menge von 7,5 bis 11,0 Gew.-%;
Octaglycerin in einer Menge von 6,5 bis 10,0 Gew.-%;
Nonaglycerin in einer Menge von 4,0 bis 8,0 Gew.-%;
Decaglycerin in einer Menge von 1,5 bis 6,0 Gew.-%; und
Undecaglycerin in einer Menge von 0,5 bis 5,0 Gew.-%
umfasst.
6. Kraft- oder Brennstoffzusammensetzung nach einem der vorhergehenden Ansprüche, wobei
die zur Bildung des Polyglycerinesters einer Fettsäure verwendete Polyglycerinzusammensetzung,
bezogen auf das kombinierte Gewicht der Polyglycerine, ein Gemisch von
Diglycerin in einer Menge von 17,6 bis 21,0 Gew.-%;
Triglycerin in einer Menge von 15,9 bis 18,1 Gew.-%;
Tetraglycerin in einer Menge von 12,5 bis 14,0 Gew.-%;
Pentaglycerin in einer Menge von 10,5 bis 12,2 Gew.-%;
Hexaglycerin in einer Menge von 9,3 bis 10,1 Gew.-%;
Heptaglycerin in einer Menge von 8,6 bis 9,9 Gew.-%;
Octaglycerin in einer Menge von 7,3 bis 8,9 Gew.-%;
Nonaglycerin in einer Menge von 5,5 bis 6,4 Gew.-%;
Decaglycerin in einer Menge von 2,9 bis 4,5 Gew.-%; und
Undecaglycerin in einer Menge von 1,8 bis 3,7 Gew.-%
umfasst.
7. Kraft- oder Brennstoffzusammensetzung nach Anspruch 1, wobei in der zur Bildung des
Polyglycerinesters einer Fettsäure verwendeten Polyglycerinzusammensetzung, bezogen
auf das kombinierte Gewicht der Polyglycerine,
das Diglycerin acyclisches Diglycerin in einer Menge von 9,0 bis 24,5 Gew.-% und cyclisches
Diglycerin in einer Menge von 6,5 bis 10,0 Gew.-% umfasst; das Triglycerin acyclisches
Triglycerin in einer Menge von 9,0 bis 20,5 Gew.-% und cyclisches Triglycerin in einer
Menge von 3,5 bis 6,5 Gew.-% umfasst;
das Tetraglycerin acyclisches Tetraglycerin in einer Menge von 8,0 bis 13,5 Gew.-%
und cyclisches Tetraglycerin in einer Menge von 2,0 bis 4,5 Gew.-% umfasst; und
das Pentaglycerin acyclisches Pentaglycerin in einer Menge von 6,0 bis 9,0 Gew.-%
und cyclisches Pentaglycerin in einer Menge von 2,0 bis 5,0 Gew.-% umfasst.
8. Kraft- oder Brennstoffzusammensetzung nach Anspruch 6, wobei in der zur Bildung des
Polyglycerinesters einer Fettsäure verwendeten Polyglycerinzusammensetzung, bezogen
auf das kombinierte Gewicht der Polyglycerine,
das Diglycerin acyclisches Diglycerin in einer Menge von 20,0 bis 26,0 Gew.-% und
cyclisches Diglycerin in einer Menge von 6,5 bis 8,0 Gew.-% umfasst;
das Triglycerin acyclisches Triglycerin in einer Menge von 18,0 bis 21,0 Gew.-% und
cyclisches Triglycerin in einer Menge von 2,5 bis 5,0 Gew.-% umfasst;
das Tetraglycerin acyclisches Tetraglycerin in einer Menge von 11,0 bis 14,5 Gew.-%
und cyclisches Tetraglycerin in einer Menge von 1,5 bis 4,0 Gew.-% umfasst; und
das Pentaglycerin acyclisches Pentaglycerin in einer Menge von 6,5 bis 9,5 Gew.-%
und cyclisches Pentaglycerin in einer Menge von 1,5 bis 4,0 Gew.-% umfasst.
9. Kraft- oder Brennstoffzusammensetzung nach einem der vorhergehenden Ansprüche, wobei
die zur Bildung des Polyglycerinesters einer Fettsäure verwendete Polyglycerinzusammensetzung
eine Hydroxylzahl von 880 bis 1230 mg KOH/g aufweist.
10. Kraft- oder Brennstoffzusammensetzung nach einem der vorhergehenden Ansprüche, wobei
die zur Bildung des Polyglycerinesters einer Fettsäure verwendete Polyglycerinzusammensetzung
einen Brechungsindex bei 50 °C von 1,4860 bis 1,4925 aufweist.
11. Kraft- oder Brennstoffzusammensetzung nach einem der vorhergehenden Ansprüche, wobei
(b) der Polyglycerinester einer Fettsäure in einer Menge von nicht mehr als 0,1 Gew.-%,
bezogen auf die gesamte Kraft- oder Brennstoffzusammensetzung, vorliegt.
12. Kraft- oder Brennstoffzusammensetzung nach einem der vorhergehenden Ansprüche, wobei
es sich bei dem Kraft- oder Brennstoff um Marinegasöl handelt.
13. Verfahren zur Verbesserung der Stabilität einer Kraft- oder Brennstoffzusammensetzung,
die (a) Kraft- oder Brennstoff und (c) Wasser umfasst, bei dem man mit dem Kraft-
oder Brennstoff und dem Wasser
(b) einen Polyglycerinester einer Fettsäure mischt, wobei der Polyglycerinester einer
Fettsäure in einer Menge von nicht mehr als 0,25 Gew.-%, bezogen auf die gesamte Kraft-
oder Brennstoffzusammensetzung, vorliegt;
und wobei die zur Bildung des Polyglycerinesters einer Fettsäure verwendete Polyglycerinzusammensetzung,
bezogen auf das kombinierte Gewicht der Polyglycerine, ein Gemisch von
Diglycerin in einer Menge von 11,0 bis 34,0 Gew.-%;
Triglycerin in einer Menge von 9,5 bis 24,5 Gew.-%;
Tetraglycerin in einer Menge von 6,0 bis 21,0 Gew.-%;
Pentaglycerin in einer Menge von 3,5 bis 19,0 Gew.-%;
Hexaglycerin in einer Menge von 6,0 bis 13,5 Gew.-%;
Heptaglycerin in einer Menge von 5,0 bis 13,0 Gew.-%;
Octaglycerin in einer Menge von 3,0 bis 12,0 Gew.-%;
Nonaglycerin in einer Menge von 1,5 bis 10,0 Gew.-%;
Decaglycerin in einer Menge von 0,0 bis 8,0 Gew.-%; und
Undecaglycerin in einer Menge von 0,0 bis 7,0 Gew.-%
umfasst.
14. Verwendung eines Polyglycerinesters einer Fettsäure zur Verbesserung der Stabilität
einer Kraft- oder Brennstoffzusammensetzung, die Kraft- oder Brennstoff und Wasser
enthält,
wobei der Polyglycerinester einer Fettsäure in einer Menge von nicht mehr als 0,25
Gew.-%, bezogen auf die gesamte Kraft- oder Brennstoffzusammensetzung, vorliegt;
und wobei die zur Bildung des Polyglycerinesters einer Fettsäure verwendete Polyglycerinzusammensetzung,
bezogen auf das kombinierte Gewicht der Polyglycerine, ein Gemisch von
Diglycerin in einer Menge von 11,0 bis 34,0 Gew.-%;
Triglycerin in einer Menge von 9,5 bis 24,5 Gew.-%;
Tetraglycerin in einer Menge von 6,0 bis 21,0 Gew.-%;
Pentaglycerin in einer Menge von 3,5 bis 19,0 Gew.-%;
Hexaglycerin in einer Menge von 6,0 bis 13,5 Gew.-%;
Heptaglycerin in einer Menge von 5,0 bis 13,0 Gew.-%;
Octaglycerin in einer Menge von 3,0 bis 12,0 Gew.-%;
Nonaglycerin in einer Menge von 1,5 bis 10,0 Gew.-%;
Decaglycerin in einer Menge von 0,0 bis 8,0 Gew.-%; und
Undecaglycerin in einer Menge von 0,0 bis 7,0 Gew.-%
umfasst.
1. Composition de combustible comprenant :
(a) un combustible ;
(b) un ester de polyglycérol d'un acide gras, l'ester de polyglycérol d'un acide gras
étant présent en une quantité inférieure ou égale à 0,25% en poids sur la base de
la composition totale de combustible ; et
(c) de l'eau une quantité de 10 jusqu'à 70% en poids sur la base de la composition
totale de combustible ;
la composition de polyglycérol utilisée pour former l'ester de polyglycérol d'un acide
gras comprenant, sur la base du poids combiné des polyglycérols, un mélange de
diglycérol en une quantité de 11,0 jusqu'à 34,0% en poids ;
triglycérol en une quantité de 9,5 jusqu'à 24,5% en poids ;
tétraglycérol en une quantité de 6,0 jusqu'à 21,0% en poids ;
pentaglycérol en une quantité de 3,5 jusqu'à 19,0% en poids ;
hexaglycérol en une quantité de 6,0 jusqu'à 13,5% en poids ;
heptaglycérol en une quantité de 5,0 jusqu'à 13,0% en poids ;
octaglycérol en une quantité de 3,0 jusqu'à 12,0% en poids ;
nonaglycérol en une quantité de 1,5 jusqu'à 10,0% en poids ;
décaglycérol en une quantité de 0,0 jusqu'à 8,0% en poids ;
undécaglycérol en une quantité de 0,0 jusqu'à 7,0% en poids.
2. Composition de combustible selon la revendication 1, la composition de polyglycérol
utilisée pour former l'ester de polyglycérol d'un acide gras comprenant, sur la base
du poids combiné des polyglycérols, un mélange de
diglycérol en une quantité de 11,0 jusqu'à 28,0% en poids ;
triglycérol en une quantité de 9,5 jusqu'à 24,5% en poids ;
tétraglycérol en une quantité de 6,0 jusqu'à 21,0% en poids ;
pentaglycérol en une quantité de 3,5 jusqu'à 19,0% en poids ;
hexaglycérol en une quantité de 6,0 jusqu'à 13,5% en poids ;
heptaglycérol en une quantité de 5,0 jusqu'à 13,0% en poids ;
octaglycérol en une quantité de 4,0 jusqu'à 12,0% en poids ;
nonaglycérol en une quantité de 2,0 jusqu'à 10,0% en poids ;
décaglycérol en une quantité de 0,5 jusqu'à 8,0% en poids ;
undécaglycérol en une quantité de 0,1 jusqu'à 7,0% en poids.
3. Composition de combustible selon la revendication 1,
le diglycérol comprenant le diglycérol acyclique en une quantité de 6,0 jusqu'à 25,0%
en poids et le diglycérol cyclique en une quantité de 5,0 jusqu'à 13,0% en poids ;
le triglycérol comprenant le triglycérol acyclique en une quantité de 7,0 jusqu'à
21,0% en poids et le triglycérol cyclique en une quantité de 2,5 jusqu'à 9,5% en poids
;
le tétraglycérol comprenant le tétraglycérol acyclique en une quantité de 5,5 jusqu'à
15,0% en poids et le tétraglycérol cyclique en une quantité de 0,5 jusqu'à 8,0% en
poids ;
le pentaglycérol comprenant le pentaglycérol acyclique en une quantité de 3,0 jusqu'à
11,0% en poids et le pentaglycérol cyclique en une quantité de 0,5 jusqu'à 8,0% en
poids,
sur la base du poids combiné des polyglycérols.
4. Composition de combustible selon la revendication 2,
le diglycérol comprenant le diglycérol acyclique en une quantité de 6,0 jusqu'à 15,0%
en poids et le diglycérol cyclique en une quantité de 5,0 jusqu'à 13,0% en poids ;
le triglycérol comprenant le triglycérol acyclique en une quantité de 7,0 jusqu'à
15,0% en poids et le triglycérol cyclique en une quantité de 2,5 jusqu'à 9,5% en poids
;
le tétraglycérol comprenant le tétraglycérol acyclique en une quantité de 5,5 jusqu'à
13,0% en poids et le tétraglycérol cyclique en une quantité de 1,0 jusqu'à 8,0% en
poids ;
le pentaglycérol comprenant le pentaglycérol acyclique en une quantité de 3,0 jusqu'à
11,0% en poids et le pentaglycérol cyclique en une quantité de 0,5 jusqu'à 8,0% en
poids,
sur la base du poids combiné des polyglycérols.
5. Composition de combustible selon l'une quelconque des revendications précédentes,
la composition de polyglycérol utilisée pour former l'ester de polyglycérol d'un acide
gras comprenant, sur la base du poids combiné des polyglycérols, un mélange de
diglycérol en une quantité de 15,0 jusqu'à 23,5% en poids ;
triglycérol en une quantité de 13,5 jusqu'à 20,5% en poids ;
tétraglycérol en une quantité de 10,0 jusqu'à 17,0% en poids ;
pentaglycérol en une quantité de 8,0 jusqu'à 14,5% en poids ;
hexaglycérol en une quantité de 8,0 jusqu'à 11,5% en poids ;
heptaglycérol en une quantité de 7,5 jusqu'à 11,0% en poids ;
octaglycérol en une quantité de 6,5 jusqu'à 10,0% en poids ;
nonaglycérol en une quantité de 4,0 jusqu'à 8,0% en poids ;
décaglycérol en une quantité de 1,5 jusqu'à 6,0% en poids ;
undécaglycérol en une quantité de 0,5 jusqu'à 5,0% en poids.
6. Composition de combustible selon l'une quelconque des revendications précédentes,
la composition de polyglycérol utilisée pour former l'ester de polyglycérol d'un acide
gras comprenant, sur la base du poids combiné des polyglycérols, un mélange de
diglycérol en une quantité de 17,6 jusqu'à 21,0% en poids ;
triglycérol en une quantité de 15,9 jusqu'à 18,1% en poids ;
tétraglycérol en une quantité de 12,5 jusqu'à 14,0% en poids ;
pentaglycérol en une quantité de 10,5 jusqu'à 12,2% en poids ;
hexaglycérol en une quantité de 9,3 jusqu'à 10,1% en poids ;
heptaglycérol en une quantité de 8,6 jusqu'à 9,9% en poids ;
octaglycérol en une quantité de 7,3 jusqu'à 8,9% en poids ;
nonaglycérol en une quantité de 5,5 jusqu'à 6,4% en poids ;
décaglycérol en une quantité de 2,9 jusqu'à 4,5% en poids ;
undécaglycérol en une quantité de 1,8 jusqu'à 3,7% en poids.
7. Composition de combustible selon la revendication 1,
le diglycérol comprenant le diglycérol acyclique en une quantité de 9,0 jusqu'à 24,5%
en poids et le diglycérol cyclique en une quantité de 6,5 jusqu'à 10,0% en poids ;
le triglycérol comprenant le triglycérol acyclique en une quantité de 9,0 jusqu'à
20,5% en poids et le triglycérol cyclique en une quantité de 3,5 jusqu'à 6,5% en poids
;
le tétraglycérol comprenant le tétraglycérol acyclique en une quantité de 8,0 jusqu'à
13,5% en poids et le tétraglycérol cyclique en une quantité de 2,0 jusqu'à 4,5% en
poids ;
le pentaglycérol comprenant le pentaglycérol acyclique en une quantité de 6,0 jusqu'à
9,0% en poids et le pentaglycérol cyclique en une quantité de 2,0 jusqu'à 5,0% en
poids, sur la base du poids combiné des polyglycérols, dans la composition de polyglycérol
utilisée pour former l'ester de polyglycérol d'un acide gras.
8. Composition de combustible selon la revendication 6,
le diglycérol comprenant le diglycérol acyclique en une quantité de 20,0 jusqu'à 26,0%
en poids et le diglycérol cyclique en une quantité de 6,5 jusqu'à 8,0% en poids ;
le triglycérol comprenant le triglycérol acyclique en une quantité de 18,0 jusqu'à
21,0% en poids et le triglycérol cyclique en une quantité de 2,5 jusqu'à 5,0% en poids
;
le tétraglycérol comprenant le tétraglycérol acyclique en une quantité de 11,0 jusqu'à
14,5% en poids et le tétraglycérol cyclique en une quantité de 1,5 jusqu'à 4,0% en
poids ;
le pentaglycérol comprenant le pentaglycérol acyclique en une quantité de 6,5 jusqu'à
9,5% en poids et le pentaglycérol cyclique en une quantité de 1,5 jusqu'à 4,0% en
poids, sur la base du poids combiné des polyglycérols, dans la composition de polyglycérol
utilisée pour former l'ester de polyglycérol d'un acide gras.
9. Composition de combustible selon l'une quelconque des revendications précédentes,
la composition de polyglycérol utilisée pour former l'ester de polyglycérol d'un acide
gras possédant un indice d'hydroxyle de 880 jusqu'à 1230 mg de KOH/g.
10. Composition de combustible selon l'une quelconque des revendications précédentes,
la composition de polyglycérol utilisée pour former l'ester de polyglycérol d'un acide
gras possédant un indice de réfraction à 50°C de 1,4860 jusqu'à 1,4925.
11. Composition de combustible selon l'une quelconque des revendications précédentes,
le (b) ester de polyglycérol d'un acide gras étant présent en une quantité inférieure
ou égale à 0,1% en poids sur la base de composition totale de combustible.
12. Composition de combustible selon l'une quelconque des revendications précédentes,
le combustible étant du gazole marin.
13. Procédé pour l'amélioration de la stabilité d'une composition de combustible contenant
(a) du combustible et (c) de l'eau, le procédé comprenant le mélange, avec le combustible
et l'eau, de
(b) un ester de polyglycérol d'un acide gras, l'ester de polyglycérol d'un acide gras
étant présent en une quantité inférieure ou égale à 0,25% en poids sur la base de
la composition totale de combustible ;
et
la composition de polyglycérol utilisée pour former l'ester de polyglycérol d'un acide
gras comprenant, sur la base du poids combiné des polyglycérols, un mélange de
diglycérol en une quantité de 11,0 jusqu'à 34,0% en poids ;
triglycérol en une quantité de 9,5 jusqu'à 24,5% en poids ;
tétraglycérol en une quantité de 6,0 jusqu'à 21,0% en poids ;
pentaglycérol en une quantité de 3,5 jusqu'à 19,0% en poids ;
hexaglycérol en une quantité de 6,0 jusqu'à 13,5% en poids ;
heptaglycérol en une quantité de 5,0 jusqu'à 13,0% en poids ;
octaglycérol en une quantité de 3,0 jusqu'à 12,0% en poids ;
nonaglycérol en une quantité de 1,5 jusqu'à 10,0% en poids ;
décaglycérol en une quantité de 0,0 jusqu'à 8,0% en poids ;
undécaglycérol en une quantité de 0,0 jusqu'à 7,0% en poids.
14. Utilisation d'un ester de polyglycérol d'un acide gras pour l'amélioration de la stabilité
d'une composition de combustible contenant du combustible et de l'eau,
l'ester de polyglycérol d'un acide gras étant présent en une quantité inférieure ou
égale à 0,25% en poids sur la base de la composition totale de combustible ;
et
la composition de polyglycérol utilisée pour former l'ester de polyglycérol d'un acide
gras comprenant, sur la base du poids combiné des polyglycérols, un mélange de
diglycérol en une quantité de 11,0 jusqu'à 34,0% en poids ;
triglycérol en une quantité de 9,5 jusqu'à 24,5% en poids ;
tétraglycérol en une quantité de 6,0 jusqu'à 21,0% en poids ;
pentaglycérol en une quantité de 3,5 jusqu'à 19,0% en poids ;
hexaglycérol en une quantité de 6,0 jusqu'à 13,5% en poids ;
heptaglycérol en une quantité de 5,0 jusqu'à 13,0% en poids ;
octaglycérol en une quantité de 3,0 jusqu'à 12,0% en poids ;
nonaglycérol en une quantité de 1,5 jusqu'à 10,0% en poids ;
décaglycérol en une quantité de 0,0 jusqu'à 8,0% en poids ;
undécaglycérol en une quantité de 0,0 jusqu'à 7,0% en poids.