[0001] The present invention relates to the use of certain compounds to improve the lubricating
properties of low sulfur-content fuels and to fuels containing the compounds.
[0002] Sulfur contained in fuel, for example middle distillate fuels such as diesel fuel
and jet fuel, is said to constitute a serious environmental hazard. Hence, strict
regulations limiting the amount of sulfur which may be present in such fuels have
been introduced. Unfortunately, fuels having a suitably low sulfur content exhibit
very poor inherent lubricity and this can lead to problems when the fuel is used.
For example, the use of low sulfur fuel in diesel engines frequently results in damage
to the fuel injector pump which relies on the natural lubricating properties of the
fuel to prevent component failure. There is therefore a need to improve the lubricating
properties of low sulphur fuels.
[0003] GB-A-1074232 discloses reaction products of polyamines and dicarboxylic acid esters
and mixtures of a polyamine or hydroxyamine and a dicarboxylic acid ester in improving
the lubricity of jet fuels. WO 95/33805 teaches that the lubricity of low sulphur
fuels is enhanced by incorporation of a cold flow improver. US-A-5352377 relates to
reaction products of hydrocarbyl substituted succinic anhydrides and aminoalcohols
as antiwear, antirust and corrosion inhibiting additives in hydrocarbonaeous media.
[0004] It has now been found that the lubricating properties of low sulfur fuels can be
improved by the use of certain additive compounds as described in detail below. This
enables mechanical failure, for example fuel injector pump failure, caused by inadequate
fuel lubricity to be avoided while retaining the environmental benefit of using a
low sulfur fuel.
[0005] In the present context the term "low sulfur-content fuel" is intended to mean fuels
having a sulfur content of 0.05% by weight or less and, more especially, 0.005% by
weight or less.
[0006] Accordingly, the present invention provides the use, as an additive for improving
the lubricity of a fuel having a sulphur content of 0.05% by weight or less, of a
carboxylic acid ester of an alkanolamine, which does not contain any hydroxy-substitution
in the acid backbone, wherein the alkanolamine is of formula:
R
1[N(R
1) (CH
2)
p]
qY
in which p is 2 to 10, q is 0 to 10, Y is -N(R
1)
2, 4-morpholinyl or 1-piperazinyl N-substituted by a group R
1 or a group - [(CH
2)
pN(R
1)]
qR
1 in which p and q are as defined above, and each substituent R
1 is independently selected from a groups of formula:
-(R
2O)
rR
3
in which r is 0 to 10, R
2 is an alkylene group having from 2 to 6 carbon atoms and R
3 is a hydroxyallcyl group having 2 to 6 carbon atoms.
[0007] Examples of fuels in which the additive compounds may be used include low sulfur
middle distillate fuels such as diesel and jet fuels and bio-diesel fuel. The latter
is derived from a petroleum or vegetable source or mixture thereof and typically contains
vegetable oils or their derivatives, such as esters produced by saponification and
re-esterification or transesterification. Middle distillate fuels are usually characterised
as having a boiling range of 100 to 500°C, more typically from 150 to 400°C.
[0008] The ester used in the present invention may be used alone or in combination with
other esters as described herein.
[0009] The acid used in the present invention is one which does not contain any hydroxy-substitution
in the acid backbone. The acid typically contains up to 60 carbon atoms. More typically,
it has from 10 to 60 carbon atoms. The acid may be a mono- or poly-carboxylic acid
or a dimerized acid. When mono-carboxylic acids are used they typically contain 10
to 40 carbon atoms, more commonly 10 to 30 and especially 12 to 24 carbon atoms. Examples
of such include aliphatic fatty acids such as lauric, myristic, heptadecanoic, palmitic,
stearic, oleic, linoleic, linolenic, nonadecanoic, arachic or behenic acid. Of these
the use of oleic acid is preferred. When poly-carboxylic acids are used, such as di-
or tri-carboxylic acids, they typically contain 3 to 40 carbon atoms, more commonly
3 to 30 and especially 3 to 24 carbon atoms. Examples of this kind of poly-carboxylic
acid include dicarboxylic acids such as succinic, glutaric, adipic, suberic, azelaic
or sebacic acid, and tricarboxylic acids such as 1,3,5-cyclohexane tricarboxylic acid
and tetracarboxylic acids such as 1,2,3,4-butane tetracarboxylic acid.
[0010] According to a preferred embodiment of the invention the acid is a dimerized fatty
acid, for example a dimer acid of oleic and linoleic acids. Typically this dimer exists
as a mixture of 2% by weight monomer, 83% by weight dimer and 15% by weight of trimer
and possibly higher acids. The preferred dimer acid, as well as the other acids described
above, are commercially available or may be prepared by the application or adaption
of known techniques.
[0011] The alkanolamine used to form the ester used in the present invention has the formula
gives above. Thus, the alkanolamine is one which does not contain any hydrogen-bearing
nitrogen atoms. The presence of free hydrogen atoms would be expected to lead to the
formation of an amide on reaction with the fatty acid.
[0012] In the formulae for the alkanolamine p is 2 to 10, preferably 2 or 3, q is 0 to 10,
preferably 0 to 5 and r is 0 to 15, preferably 0 to 10. When R
1 is alkyl it contains from 1 to 6 carbon atoms, preferably 2 to 4 carbon atoms. R
2 is an alkylene group having 2 to 6 carbon atoms, preferably 2 to 4 carbon atoms.
R
3 is an hydroxyalkyl group having 2 to 6 carbon atoms, preferably 2 to 4 carbon atoms.
The hydroxyalkyl group typically contains 1 to 3 hydroxy groups. When r is greater
than zero R
3 is typically a mono-hydroxyalkyl group, for example hydroxyethyl or hydroxypropyl.
When r is zero R
3 is typically a mono- or poly-hydroxyalkyl group having up to 4 hydroxy groups, for
example hydroxyethyl, hydroxypropyl or a 1-hydroxy-2,2-bis(hydroxymethyl)ethyl group.
The values p, q and r take are selected independently. This means for example that
when q is greater than zero, p may take different values in each repeat unit. Also,
when r is greater than zero, R
2 may be the same or different in each ether repeat unit.
[0013] The alkanolamines which may be used to form the ester are commercially available
or may be made by the application or adaptation of known techniques. For example,
the alkanolamines in which r is 1 or more, i.e. those containing an ether of polyether
linkage, can be prepared by reaction of a suitable amine, morpholine or piperazine
compound with a molar excess of one or more alkylene oxides. When the same kind of
alkylene oxide is used R
2 and R
3 contain the same alkylene moiety. When different kinds of alkylene oxide are used
R
2 and R
3 may contain the same or different alkylene groups.
[0014] According to a preferred embodiment, alkanolamines of the above formula are used
in which Y is -N(R
1)
2, p is 2 and q is 0 to 3. Preferably the alkanolamine is triethanolamine or triisopropanolamine
or ethylene diamine or diethylene triamine in which each nitrogen atom is substituted
by hydroxyethyl or hydroxypropyl groups.
[0015] According to an alternative preferred embodiment, in the formula shown above, Y is
4-morpholinyl or substituted 1-piperazinyl, p is 2 to 6 and q is 0 or 1. Examples
of such alkanolamines include aminoethylpiperazine, bis-(aminoethyl)piperazine or
morpholine, N-substituted by an hdyroxypropyl group.
[0016] The esters described may be made by the application or adaptation of known techniques,
or are commercially available ready for use.
[0017] According to one aspect of the present invention, the ester contains at least one
free carboxylic group in the acid-derived moiety. This kind of compound may be formed
using as the starting acid a polycarboxylic acid, for example a dicarboxylic acid
or a dimer or trimer acid. Suitably, the number of moles of acid and alkanolamine
which are reacted is controlled such that the resulting ester contains at least one
free carboxylic functional group in the acid derived-moiety. For example, if an acid
having two carboxyl functions is used, such as a dicarboxylic or dimer acid, the mole
ratio could be about 1:1.
[0018] In the case that the ester contains at least one free carboxylic group in the acid
moiety, it may be used as is or it may be derivatised further to enhance its properties.
The kind of compound used to derivatise the ester further usually depends upon the
kind of acid used initially to form the ester and the properties of the ester it is
desired to influence. For example, it is possible to increase the fuel-solubility
of the ester by introducing into the ester molecule a fuel-solubilizing species. As
an example of such, long-chain alkyl or alkenyl groups may be mentioned. To this end
the ester may be reacted with an alcohol, ROH or an amine, RNH
2 in which R is alkyl or alkenyl having up to 30 carbon atoms, for example 4 to 30
carbon atoms. The number of carbon atoms in the alkyl or alkenyl group may depend
upon the number of carbon atoms in the ester itself. These compounds react with the
free carboxylic functional group(s) of the ester to form a further ester linkage or
an amide linkage. Examples of particular alcohols and amides which may be used include
oleyl alcohol and oleyl amine.
[0019] Alternatively, it is possible to further derivatise the ester to introduce one or
more polar head groups. This has the result of increasing the lubricity enhancing
effect which the ester exhibits. This is believed to be due to the polar head group
increasing the affinity of the ester to metal surfaces. Examples of compounds which
may be used to introduce one or more polar head groups include polyamines (e.g. ethylene
diamine and diethylene triamine), alkanolamines such as those described above, monohydric
alcohols (e.g. ethanol and propanol) and polyhydric alcohols (e.g.ethylene glycol,
diethylene glycol, triethylene glycol, dipropylene glycol, glycerol, arabitol, sorbitol,
mannitol, pentaerythritol, sorbitan, 1,2-butanediol, 2,3-hexanediol, 2,4-hexanediol,
pinacol and 1,2-cyclohexanediol).
[0020] Typically, unless the ester is one derived from a dimer or trimer acid, the ester
is further derivatised to introduce fuel-solubilising species. Dimer and trimer acid
esters tend already to contain in the acid backbone long chain alkyl or alkenyl moieties
sufficient to provide adequate fuel-solubility.
[0021] While it has been described above that it is the ester which is derivatised further,
it is quite possible that the same final species can be formed by first reacting free
carboxyl functional group(s) of a polycarboxylic acid to introduce oil-solubilising
or polar head groups and then reacting the resultant product with the kind of alkanolamine
described above to form the ester. Of course, this assumes that the product formed
after being derivatised contains at least one free carboxylic group in the acid-derived
moiety such that ester formation with the alkanolamine is still possible. In either
case the further derivatives are commercially available or may be made by the application
or adaptation of known techniques.
[0022] Typically, the ester is present in the fuel at a concentration of from 10 to 1000
ppm, preferably 50 to 500 ppm, more preferably still from 100 to 400 ppm. When mixtures
of additives are used the overall additive concentration falls within the typical
range quoted.
[0023] The present invention further provides a fuel having a sulfur content of 0.05% by
weight or less, comprising a carboxylic acid ester as defined above.
[0024] Such fuel is formulated by simple mixing of the base fuel and the additive in the
desired proportions. The base fuel may be a middle distillate fuel or a bio-diesel
fuel as described above. For the sake of convenience, the additive may be provided
as a concentrate for dilution with fuel. Such a concentrate typically comprises from
99 to 1% by weight additive and from 1 to 99% by weight of solvent or diluent for
the additive which solvent or diluent is miscible and/or capable of dissolving in
the fuel in which the concentrate is to be used. The solvent or diluent may, of course,
be the low sulfur fuel itself. However, examples of other solvents or diluents include
white spirit, kerosene, alcohols (e.g. 2-ethyl hexanol, isopropanol and isodecanol),
high boiling point aromatic solvents (e.g. toluene and xylene) and cetane improvers
(e.g. 2-ethyl hexylnitrate). Of course, these may be used alone or as mixtures.
[0025] The concentrate or fuel may also contain other fuel additives in the appropriate
proportions thereby providing a multifunctional fuel additive package. Examples of
conventional fuel additives which may be used include fuel stabilisers, dispersants,
detergents, antifoams, cold flow improvers, cetane number improvers, antioxidants,
corrosion inhibitors, antistatic additives, biocides, dyes, smoke reducers, catalyst
life enhancers and demulcifiers. The total treat rate for multifunctional formulations
containing the lubricity enhancing additive compounds described is typically 200 to
2000 ppm, more usually 300 to 1200 ppm.
[0026] The invention also provides a method of reducing fuel pump wear in an engine which
operates on a fuel having a sulphur content of 0.05% by weight or less, which method
comprises using a fuel described herein. The fuel may be used to reduce wear in rotary
and in-line fuel pumps, for example as found in diesel engines, or in fuel transfer
pumps. The latter are positioned between the fuel tank and the high pressure fuel
pump. The fuel is particularly well suited for reducing wear in fuel injector pumps.
The fuel may also be used to reduce wear in the latest fuel injector units which combine
fuel pump and injector mechanisms. The invention is particularly well-suited to the
operation of diesel and jet engines.
[0027] The present invention is illustrated in the following Example.
Example
[0028] The efficacy of a number of diesel fuels was assessed using the Scuffing BOCLE (ball-on-
cylinder lubricity evaluator) test. This test is a modification of the standard aviation
BOCLE test (ASTM method D5001: "Standard Test Method for Measurement of Lubricity
of Aviation Turbine Fuels by the Ball-on-Cylinder Lubricity Evaluator (BOCLE)", ASTM
Standards, Section 5, Vol 3, 1993) in which a load of 1 kg is applied to a fixed ball
in contact with a rotating cylinder lubricated by the test fuel. In this standard
test fuel lubricity is assessed by measuring the size of the wear scar on the fixed
ball resulting from the constant load contact with the cylinder. However, the standard
BOCLE test suffers the disadvantage that the applied load is not high enough to model
the type of severe wear failure that occurs in the field, for example in fuel injector
pumps.
[0029] The Scuffing BOCLE test offers the advantage over the standard test of allowing discrimination
and ranking of fuels of differing lubricity. The Scuffing test also simulates more
closely the severe modes of wear failure encountered in fuel pumps than other fuel
lubricity tests which run under mild wear conditions. The Scuffing BOCLE test therefore
provides results which are more representative of how the fuel would behave in service.
[0030] In the Scuffing BOCLE test a load (0.25-8.0 kg) is applied to a fixed ball in contact
with a rotating cylinder. The ball and cylinder are made of a standard grade steel.
The cylinder rotates at 290 rpm. Since the temperature of the lubricating fuel can
have a marked effect on the scuffing load, this is carefully controlled at 25°C. A
nitrogen atmosphere is used to blanket the ball-on-cylinder assembly. Following a
one minute run-in period the load is applied to the ball for two minutes. After this
run, the ball is removed from the assembly and the type and size of wear scar examined
by microscope. Further runs are then carried using increased applied loads in a stepwise
manner until scuffing wear failure occurs. The load at which wear failure occurs is
referred to as the scuffing load and is a measure of the inherent lubricity of the
fuel. The scuffing load is primarily identified by the size and appearance of the
wear scar on the ball, which is considerably different in appearance to that found
under milder non-scuffing conditions. Fuels giving a high scuffing load on failure
have better lubricating properties than fuels giving a low scuffing load on failure.
[0031] The base fuel used was a Class 2 Scandinavian diesel fuel. This is a diesel fuel
having a sulfur content of 0.005% by weight. The composition and distillation profile
of this fuel are shown below.
| Density at 15°C (IP 160), g/ml |
0.8160 |
| Paraffins, %vol |
89.6 |
| Olefins, %vol |
0.7 |
| Aromatics, %vol |
9.7 |
| Distillation Characteristics (IP 123) |
|
| Initial B.P., °C |
184 |
| 5% |
200 |
| 10% |
204 |
| 20% |
212 |
| 30% |
217 |
| 40% |
223 |
| 50% |
228 |
| 60% |
235 |
| 70% |
243 |
| 80% |
251 |
| 90 % |
263 |
| 95% |
269 |
| Final B.P., °C |
290 |
| Recovered, % |
99 |
| Residue, % |
1 |
| Loss, % |
0 |
[0032] The table below shows the Scuffing BOCLE test results for a number of diesel fuels.
Samples B-E are fuels in accordance with the present invention. Sample A is included
for comparison.
| Additive |
Concentration (ppm) |
Scuffing load (kg) |
| A. None |
- |
2.7 |
| B. Ester: Dimer acid + TEA |
200 |
7.4 |
| C. Ester: Dimer acid + TIPA |
200 |
5.6 |
| D. Ester: Dimer acid + EDA.4PO |
200 |
5.7 |
| E. Ester: Dimer acid + DETA.5PO |
200 |
5.7 |
| F. Ester: Dimer acid + EDA. 9PO |
200 |
4.8 |
| G. Ester: Dimer acid + EDA.9PO then DETA |
200 |
5.1 |
| H. Ester: Dimer acid + EDA.9PO then TETA |
200 |
5.9 |
[0033] The dimer acid used is formed from oleic and linoleic acids and is commercially available
from Union Camp under the name Unidyme RTM 22.
In the table above:
TEA stands for triethanolamine;
TIPA stands for triisopropanolamine;
EDA stands for ethylene diamine;
EDA.XPO indicates that each mole of EDA is reacted with X moles of propylene oxide;
DETA stands for diethylene triamine;
TETA stands for triethylene tetramine;
DETA. 5PO indicates that each mole of DETA is reacted with five moles of propylene
oxide.
[0034] In runs B-E the mole ratio of dimer acid: alkanolamine was in each case 1:2. In runs
F-H the mole ratio of dimer acid:alkanolamine was 1:1. In runs G and H the ester is
derivatised further by reaction with DETA and TETA respectively.
[0035] These results clearly demonstrate the improvement in lubricity of diesel fuels in
accordance with the present invention. The base fuel used has a very low inherent
lubricity giving a low scuffing load result of 2.7 kg. The addition of 200 ppm of
additive in accordance with the present invention leads to a significant improvement
in lubricity performance exhibited as a higher scuffing load on failure. As can be
seen from the table above the additives used in accordance with the present invention
lead to a scuffing load on failure which is significantly higher than the load on
failure observed for the base fuel.
1. Use, as an additive for improving the lubricity of a fuel having a sulphur content
of 0.05% by weight or less, of a carboxylic acid ester of an alkanolamine which does
not contain any hydroxy-substitution in the acid backbone, wherein the alkanolamine
is of formula:
R1[N(R1) (CH2)p]qY
in which p is 2 to 10, q is 0 to 10, Y is -N(R1)2, 4-morpholinyl or 1-piperazinyl N-substituted by a group R1 or a group -[(CH2)pN(R1)]qR1 in which p and q are as defined above, and each substituent R1 is independently selected from groups of formula:
-(R2O)rR3
in which r is 0 to 10, R2 is an alkylene group having from 2 to 6 carbon atoms and R3 is a hydroxyalkyl group having 2 to 6 carbon atoms.
2. Use according to claim 1, wherein the fuel is a diesel fuel, jet fuel or bio-diesel
fuel.
3. Use according to claim 1 or 2, wherein the acid has from 10 to 60 carbon atoms.
4. Use according to any one of claims 1 to 3, wherein the acid is a dimer acid of oleic
and linoleic acids.
5. Use according to any one of the preceding claims, wherein the alkanolamine is triethanolamine
or triisopropanolamine or ethylene diamine or diethylene triamine in which each nitrogen
atom is substituted by hydroxyethyl or hydroxypropyl groups.
6. Use according to any one of claims 1 to 4, wherein the alkanolamine is aminoethylpiperazine,
bis-(aminoethyl) piperazine or morpholine, each of which is N-substituted by a hydroxypropyl
group.
7. Use according to any one of the preceding claims wherein the ester contains at least
one free carboxyl functional group in the acid-derived moiety.
8. Use according to claim 7, wherein the ester is further derivatised by reaction with
a compound which introduces a fuel-solubilising species into the ester molecule or
by reaction with a compound which introduces a polar head group into the ester molecule.
9. Use according to any one of the preceding claims, wherein the ester is present in
the fuel at a concentration of from 10 to 1000ppm.
10. A fuel having a sulphur content of 0.05% by weight or less, comprising a carboxylic
acid ester as defined in claim 1 or in any one of claims 3 to 8.
11. A method of reducing fuel pump wear in an engine which operates on a fuel having a
sulphur content of 0.05% by weight or less, which method comprises using a fuel as
defined in claim 10.
1. Verwendung eines Carbonsäure esters eines Alkanolamins, der keine Fiydroxysubstitution
in der Säurehauptkette aufweist, als Additiv zur Verbesserung der Schinierfähigkeit
eines Treibstoffs mit einem Schwefelgehalt von 0,05 Gew.-% oder weniger, wobei das
Alkanolamin die Formel
R1[N(R1)(CH2)p]qY
hat, in der p 2 bis 10 ist, q 0 bis 10 ist, Y -N(R1)2, 4-Morpholinyl oder 1-Piperazinyl ist, N-substituiert durch eine Gruppe R1 oder eine Gruppe -[(CH2)pN(R1)qR1, in der p und q wie vorstehend definiert sind, und jeder Substituent R1 unabhängig ausgewählt ist aus Gruppen der Formel
-(R2O)rR3,
in der r 0 bis 10 ist, R2 eine Alkylengruppe mit 2 bis 6 Kohlenstoffatomen ist und R3 eine Hydroxyalkylgruppe mit 2 bis 6 Kohlenstoffatomen ist.
2. Verwendung nach Anspruch 1, bei der der Treibstoff ein Dieseltriebstoff, Düsentreibstoff
oder Biodieseltreibstoff ist.
3. Verwendung nach Anspruch 1 oder 2, bei der die Säure 14 bis 60 Kohlenstoffatome aufweist.
4. Verwendung nach einem der Ansprüche 1 bis 3, bei der die Säure eine Dimersäure von
Olein- und Linolsäure ist.
5. Verwendung nach einem der vorstehenden Ansprüche, bei der das Alkanolamin Triethanolamin
oder Triisopropanolamin oder Ethylendiamin oder Diethylentriamin ist, in dem jedes
Stickstoffatom durch Hydroxyethyl- oder Hydroxypropylgruppen substituiert ist.
6. Verwendung nach einem der Ansprüche 1 bis 4, bei der das Alkanolamin Aminoethylpiperazin,
bis-(Aminoethyl)piperazin oder Morpholin ist, das jeweils durch eine Hydroxypropylgruppe
N-substituiert ist.
7. Verwendung nach einem der vorstehenden Ansprüche, bei der der Ester mindestens eine
freie carboxylfunktionelle Gruppe in der von der Säure abgeleiteten Komponente enthält.
8. Verwendung nach Anspruch 7, bei der der Ester außerdem durch die Reaktion mit einer
Verbindung, die eine Treibstoff solubilisierende Spezies in das Estermolekül einführt,
oder durch die Reaktion mit einer Verbindung, die eine polare Kopfgruppe in das Estermolekül
einfuhrt, derivatisiert wird.
9. Verwendung nach einem der vorstehenden Ansprüche, bei der der Ester im Treibstoff
in einer Konzentration von 10 bis 1000 ppm vorliegt.
10. Treibstoff mit einem Schwefelgehalt von 0,05 Gew.-% oder weniger, der einen wie in
Anspruch 1 oder einem der Ansprüche 3 bis 8 definierten Carbonsäureester umfasst,
11. Verfahren zur Verringerung des Verschleißes der Treibstoffpumpe in einem Motor, der
mit Treibstoff mit einem Schwefelgehalt von 0,05 Gew.-% oder weniger betrieben wird,
wobei das Verfahren die Verwendung eines Treibstoffs wie in Anspruch 10 definiert
umfasst.
1. Utilisation, comme additif pour améliorer le pouvoir lubrifiant d'un carburant ayant
une teneur en soufre égale ou inférieure à 0,05 % en poids, d'un ester d'acide carboxylique
d'une alcanolamine qui ne contient pas de substituant hydroxy dans le squelette de
l'acide, dans laquelle l'alcanolamine répond à la formule:
R1[N(R1)(CH2)p]qY
dans laquelle p a une valeur de 2 à 10, q a une valeur de 0 à 10, Y représente un
groupe -N(R1)2, 4-morpholinyle ou 1-pipérazinyle N-substitué avec un groupe R1 ou - [(CH2)pN (R1) qR1 dans lequel p et q répondent aux définitions précitées, et chaque substituant R1 est choisi indépendamment parmi des groupes de formule :
-(R2O)rR3
dans laquelle r a une valeur de 0 à 10, R2 représente un groupe alkylène ayant 2 à 6 atomes de carbone et R3 représente un groupe hydroxyalkyle ayant 2 à 6 atomes de carbone.
2. Utilisation suivant la revendication 1, dans laquelle le carburant est un carburant
Diesel, un carburéacteur ou un biocarburant Diesel.
3. Utilisation suivant la revendication 1 ou 2, dans laquelle l'acide a 10 à 60 atomes
de carbone.
4. Utilisation suivant l'une quelconque des revendications 1 à 3, dans laquelle l'acide
est un acide dimère d'acides oléique et linoléique.
5. Utilisation suivant l'une quelconque des revendications précédentes, dans laquelle
l'alcanolamine est la triéthanolamine ou la triisopropanolamine ou l'éthylènediamine
ou bien la diéthylènetriamine dans laquelle chaque atome d'azote est substitué avec
des groupes hydroxyéthyle ou hydroxypropyle.
6. Utilisation suivant l'une quelconque des revendications 1 à 4, dans laquelle l'alcanolamine
est l'aminoéthylpipérazine, la bis-(aminoéthyl)pipérazine ou la morpholine, chacune
étant N-substituée avec un groupe hydroxypropyle.
7. Utilisation suivant l'une quelconque des revendications précédentes, dans laquelle
l'ester contient au moins un groupe fonctionnel carboxyle libre dans le groupement
dérivé de l'acide.
8. Utilisation suivant la revendication 7, dans laquelle l'ester est en outre transformé
en dérivé par réaction avec un composé qui introduit une entité de solubilisation
dans les carburants dans la molécule de l'ester ou par réaction avec un composé qui
introduit un groupe de tête polaire dans la molécule d'ester.
9. Utilisation suivant l'une quelconque des revendications précédentes, dans laquelle
l'ester est présent dans le carburant à une concentration de 10 à 1000 ppm.
10. Carburant ayant une teneur en soufre égale ou inférieure à 0,05 % en poids, comprenant
un ester d'acide carboxylique tel que défini dans la revendication 1 ou dans l'une
quelconque des revendications 3 à 8.
11. Procédé pour réduire l'usure des pompes à carburant dans un moteur qui fonctionne
avec un carburant ayant une teneur en soufre égale ou inférieure à 0,05 % en poids,
procédé qui comprend l'utilisation d'un carburant tel que défini dans la revendication
10.