Field of the invention
[0001] The present invention relates to an additive for fuel oil, in particular fuel oil
leaving Visbreaking (VSB) plants.
Known art
[0002] Visbreaking (VSB) is a thermal conversion process applied to petroleum distillation
residues, otherwise intended for bitumen or fuel oil (products which are well-known
to be of low commercial value), to partially convert them into lighter products of
higher value. The conversion provides in part distillation products such as gas, petrols,
kerosene, gas oil and in part residue (hereinafter also referred to as tar or TAR),
that can still constitute the basis for use as fuel oil. The conversion process is
conducted in such a manner as to maximise the yield of distillation products, while
reducing the overall yield of tar oil. It should be noted that even a conversion increase
equal to 1% of the feedstock is be considered extremely satisfactory in terms of economic
yield.
[0003] The VSB plant, as illustrated schematically in Figure 1 attached, comprises the following
parts: a heat exchanger bank (A) through which the feedstock enters the VSB plant
for pre-heating; a fumace (B) in which the actual thermal cracking takes place; and
a fractionation column (C), from the top of which the distillates are extracted and
from the bottom of which the residue (TAR) leaves. This residue passes through a heat
exchanger bank (D) to transfer part of its heat to the feedstock and is then stored
in tanks (E). A soaker and a preflash column (not shown) can be provided between the
fumace and the fractionation column.
[0004] The VSB plant operative conditions, known to the expert of the art, may be briefly
described as follows: a feedstock, consisting generally of a primary or vacuum distillation
residue, is fed into the fumace (B) which operates at temperatures ranging from 420°C
to 500°C and at pressures of between 3 bar and 20 bar. The feedstock treated in this
manner passes to the fractionating column (C), which operates using known procedures,
for example as described in patent application EP0818524; from it the following products
can be obtained, for example in the following proportions: light distillates (gas
and petrols, 3-10%), medium distillates (kerosene and gas oil, 15-20%) and a residue
(TAR, 65-75%); the percentages are by weight on the total products leaving the VSB
plant.
[0005] The TAR, present in a greater proportion than the other components, must conform
to specifications set by the market, for example those indicated in Table 1, if it
is to be used as fuel oil.
TABLE 1
| Determination |
Method |
Specification |
| Water and sediments |
%v |
ASTM D 1796 |
Max 0.5 |
| Asphaltenes |
%w |
IP 143*** |
Max 6 |
| Heat of combustion |
Kcal/Kg |
ASTM D 240 |
Min 9.850 |
| Ash |
%w |
ASTM D 482 |
Max 0.03 |
| Density at 15°C |
Kg/m3 |
ASTM D 1298 |
Max 990 |
| Distillation at 300°C |
%v |
ASTM D 86 |
Max 60* |
| Distillation at 350°C |
%v |
ASTM D 86 |
< 85* |
| HFT (Hot Filtration Test) |
%w |
ASTM D 4870 |
Max 0.20 |
| Inflammability, Pensky Martens |
°C |
ASTM D 93 |
Min 65 |
| Upper pour point |
°C |
ASTM D 97 |
Max +40 |
| Conradson carbon residue |
%w |
ASTM D 189 |
Max 13 |
| Nickel |
ppm |
SAA**** |
Max 60 |
| Sodium |
ppm |
SAA**** |
Max 100 |
| Vanadium |
ppm |
SAA**** |
Max 90 |
| Viscosity at 50°C |
cst |
ASTM D 445 |
Max 400* |
| Viscosity at 50°C |
°E** |
ASTM D 455 |
Max 52.6* |
| Sulphur |
%w |
ISO14596 |
Max 1.0* |
| *required by Italian law |
| ** viscosity °E at 50°C greater than 12 and ASTM colour diluted min 4.0 |
| ***IP: The Institute of Petroleum (recognised standard method); |
| ****SAA: Spectrophotometry by Atomic Absorption |
[0006] Usually the plant is operated so that the TAR obtained, except for slight viscosity
corrections, already satisfies the required specifications for fuel oil, and as such
"TAR" and "fuel oil" shall be hereinafter considered synonyms for the purposes of
the present invention.
[0007] Patent application EP0818524 describes a method for decreasing the viscosity of the
TAR, for equal distillates leaving the plant, but the tar thus produced has the drawback
of being unstable with time.
[0008] The fuel oil leaving the plants is stored in tanks where it is maintained at a temperature
between 70°C and 110°C until the time of its pumping into tankers or its arrival in
the bumers. This time can be some weeks.
[0009] During these manipulations, the oil comes into contact with air and is subjected
to heat, which, combined with the variable time, can facilitate the formation of insoluble
compounds in the oil.
[0010] In this respect it has been noted that, over time, i.e. during storage in the tanks,
the fuel oil shows ageing phenomena, indicated by a progressive increase in the HFT
value (indicating the presence of sediments) until the fuel oil, even within a very
short time, of the order of a few days, lies outside specification.
[0011] The aged TAR no longer conforms to specifications required by the market; its viscosity
increases so as has its HFT value. This results operationally in TAR pumpability difficulties
and above all, on use (combustion), the occurrence of the following drawbacks:
- Abundant formation of carbon in the preheaters, due to the coking of heavy carbon
containing materials
- Abundant formation of soot produced by the incomplete combustion of precipitated insoluble
heavy compounds
- Sediments, paraffins and substances similar to gum occurring in the lines of the combustion
system
[0012] Current solutions adopted to counteract the instability of TAR all have drawbacks.
For example, the exit temperature of the VSB plant furnace (B) can be lowered, but
this reduces the production of (valuable) light products. Alternatively the TAR can
be mixed with suitable distillates, for example gas oil, to counteract the separation
of the insoluble compounds present in the oil, but in this manner a low value-added
product is diluted with other products of a higher added value. In both cases, therefore,
the solutions adopted have too high a cost. The problem of effective and at the same
time economically advantageous stabilisation of TAR or fuel oil consequently remains
unsolved to this day.
[0013] An additive has now been found to counteract the increase of HFT in fuel oil during
storage; this additive solves the aforesaid problems.
Field of the invention
[0014] The present invention refers to a composition to be added to fuel oil to render it
storage stable and to counteract the formation of insolubles. More particularly the
composition according to the invention comprises the mixture of the following classes
of products: at least one compound pertaining to the organic phosphite class in which
the patom is bonded to at least one aromatic ring, at least one compound pertaining
to the sterically hindered phenol class, at least one compound pertaining to the formate
class.
[0015] Another object of the invention is the method for stabilising fuel oil, characterised
by adding the additive according to the invention to the TAR leaving the VSB column
in the line leading to the storage tank (E).
[0016] Further objcts will become evident from the detailed description of the invention.
Brief description of the figures
[0017]
Figure 1 illustrates schematically a VSB plant.
Detailed description of the invention
[0018] The composition of the additive according to the invention is a mixture of at least
two active principles, each in proportion from 5% to 95% by weight on the total composition,
chosen from the following group:
(a) At least one organic phosphite;
(b) At least one hindered phenol of general formula (I):

in which: R1=t-butyl group; R2=linear or branched C1-C5 carbon atom chain; R3=H, linear
or branched C1-C5 carbon atom chain. Preferred are compounds with: R2=C(CH3)3 and
R3=H or R2=C(CH3)3 and R3=CH3.
(c)At least one formate, in particular trimethyl-orthoformate;
said composition being characterised by being soluble in fuel oil, preferably at a
temperature between 50° and 300°C.
[0019] Organic phosphites are a class of compounds well known to the expert of the art and
are for example described in "Nuovo dizionario di merceologia e chimica applicata",
Villavecchia Eigenmann, Vol. 4 Fisostigmina-Mangimi, page 1558, or in patents U.S.
6,362,260B1; EP 1028142A2; U.S. 5,614,571; U.S. 4,321,218; U.S. 3,897,388; W.O. 96/17913;
U.S. 3,969,315, which describe the application of phosphites as stabilisers for various
uses. Preferred are phosphites in which the P atom is bonded to at least one aromatic
ring, possibly alkyl-substituted. Particularly preferred are triphenylphosphite (TPP)
and methyl-di-phenylphosphite, possibly in which at least one phenyl group is substituted
by an alkyl radical (nonyl).
[0020] The formates are a class of compounds well known to the expert of the art and are
for example described in U.S. 4,347,175. Preferred are the alkyl formates. Particularly
preferred is trimethyl-ortho-formate (TMOF).
[0021] Any proportions (% by weight) of the active ingredients indicated above can be used;
preferred are ternary mixtures with the following ratios: (a):(b):(c), with (a) variable
from 1 to 5, (b) variable from 1 to 3 and (c) variable from 1 to 3; particularly preferred
is the following percentage composition: 47.6% of (a), in particular triphenylphosphite
(TPP), 23.8% of (b), in particular di-tert-butyl-hydroxytoluene (BHT) and 28.6% of
(c), in particular trimethyl-orthoformate (TMOF) (ratio 2:1:1.7)
[0022] A method for stabilising TAR according to the present invention is one which provides
a stage of adding the composition according to the invention directly to the line
that connects the bottom of the fractionation column (C) to the TAR storage tank (E).
[0023] The preferred quantities are between 50 and 200 ppm on the fuel oil or tar.
[0024] The most obvious advantage of the invention is that the commercial specifications
required by the market for oil thus treated are guaranteed at very low additional
costs.
[0025] The following examples are given to illustrate the invention and are not to be considered
as limiting the scope thereof.
Examples
Preparation of the blank sample and additive-treated sample.
[0026] A portion of fuel oil is heated for about 20 minutes in an oven at 110°C. A known
volume of the sample (100g) is taken. The sample is placed on a plate at 105°C and
the compositions indicated below are added, taking great care to fully mix them into
the sample using a magnetic agitator or glass rod, with agitation on the plate for
15 minutes. The samples, with or without additive, are then placed in the oven or
in a temperature controlled bath for 24 hours at 100°C to simulate ageing.
[0027] The blank sample contained no additive. The compounds used in the additive treatment
were the following: (a) TPP supplied by Atofina ltalia, (b) BHT supplied by Pantrade,
(c) TMOF supplied by Romana Chimici.
Binary compositions (% by weight): (a) 66.7; (b) 33.3
Ternary compositions (% by weight): (a) 47.6; (b) 23.8; (c) 28.6
[0028] The TAR (VSB residue) used in the tests had the specifications reported in Tab. 2.
Table 2
| Determination |
Method |
Specification |
| Density at 15°C |
Kg/m3 |
ASTM D 1298 |
0.953 |
| %S |
%w |
IS014596 |
0.81 |
| Viscosity at 50°C |
cst |
ASTM D 445 |
35.5 |
| PV |
|
Shell Method |
1.1 |
| HFT |
%w |
ASTM D 4870 |
<0.01 |
[0029] This matrix was processed according to ASTM D 4870, following ageing in the oven
at 100°C for 24 hours, to determine the total sediments content and this value was
compared with that obtained on the same sample with the mixtures of the invention
added.
Determination of sediment contents
[0030] After 24 hours the samples are removed from the oven or from the temperature controlled
bath and the HFT value is determined according to the ASTM D 4870 method.
[0031] Tests were carried out with the compounds indicated above containing a single additive
(Table 3), or in binary mixture (Table 4) or in ternary mixture (Table 5).
[0032] The amount of additive added, consisting of the products listed in the aforesaid
tables in the percentages indicated, was in each test equal to 200 ppm.
[0033] In the tables the ΔHFT% value is calculated as indicated below:

where:
HFT
blank is the value of HFT in the untreated sample
HFT
additive-treated is the value of HFT in the sample treated with the additive of the invention.
Table 3
| Product |
HFT (%w/w) |
ΔHFT% |
| Blank |
0.43 |
|
| TPP 100% |
0.32 |
26.5% |
| BHT 100% |
0.34 |
21.3% |
Table 4
| Product |
HFT (%w/w) |
ΔHFT% |
| Blank |
0.43 |
|
| TPP (66.7) - BHT (33.3) |
0.24 |
44.2 |
Table 5
| Product |
HFT (%w/w) |
ΔHFT% |
| Blank |
0.43 |
|
| MixE=TPP(47,6)-BHT(23,8)-TMOF(28,6) |
0.18 |
58.1% |
[0034] By comparing the data in the tables, it can be deduced that the best result compared
with blank sample was obtained with the ternary mixture, namely Mix E, with an efficiency
greater than 50%.
Plant test
[0035] The mixture Mix E was also tested in a VSB plant during a six day industrial trial.
[0036] In order to adequately illustrate the trial it is important to recall the following
concept, namely that the VSB plant is operated with the aim of obtaining maximum conversion
into medium and light distillates (high value added products). This aim is achieved
by increasing the fumace exit temperature (FET), but this has the disadvantage of
obtaining an unstable tar which falls easily outside specification.
[0037] The composition of the invention allows the FET to be raised while at the same time
obtaining a stable Tar.
[0038] The mixture Mix E was additive-treated with an average amount of approximately 100
ppm on a TAR, whose characteristics correspond to those in table 2. The samples poured
from the heat exchanger bank (D), were subjected to analysis prior to ageing in an
oven for 24 hours and the results are reported in table 6.
HFT
24h additive-treated (%w/w): value of sediment content in the sample withdrawn after
the treatment with additive
HFT
24h blank
(%w,w): value of sediment content in the sample withdrawn before the treatment with additive
Table 6
| Sample |
HFT24h additive-treated (%w/w) |
HFT24h blank (%w/w) |
ΔHFT% |
| Mix E:100 ppm - FET +3°C |
0.02 |
0.04 |
50.0 |
| Mix E: 50 ppm - FET +3°C |
0.04 |
0.08 |
50.0 |
| Mix E: 50 ppm - FET +3°C |
0.07 |
0.10 |
30.0 |
| Mix E:100 ppm - FET +5°C |
0.08 |
0.15 |
46.7 |
| Mix E: 150 ppm - FET +5°C |
0.18 |
0.25 |
28.0 |
| Mix E:150 ppm - FET +5°C |
0.18 |
0.26 |
30.8 |
| Tank |
0.197 |
|
|
[0039] As shown in the data reported in table 6, the product Mix E used in the plant demonstrates
an average efficiency in the order of 40%. As the table data show, increasing the
FET by a minimum of +3°C to a maximum of +5°C (FET
initial=487°C) and therefore the severity of the system, the HFT values calculated on the
samples with the stabiliser added demonstrate a valuable containment of ageing. This
phenomenon, quantifiable as ΔHFT%, lies within the range 28-50%.
[0040] The additive-treated TAR was collected during the time taken for the trial, in a
storage tank (E) and at the end of this time, a representative sample, withdrawn from
the tank, was subjected to HFT analysis showing a value which conforms to the required
commercial specifications, In accordance with the tables.
1. Stabilising composition for fuel oil or tar able to counteract the formation of solids
contained therein, said composition comprising the mixture of the following classes
of products: at least one compound pertaining to the organic phosphite class (a) in
which the P atom is bonded to at least 1 aromatic ring, at least one compound pertaining
to the sterically hindered phenol class (b), at least one compound pertaining to the
formate class (c), each in a proportion from 5% to 95% by weight on the total composition.
2. Composition according to claim 1, added to the tar in amounts ranging between 50 and
200 ppm.
3. Composition according to claim 1, wherein the hindered phenol has the general formula
(I):

in which R1=t-butyl group; R2=linear or branched C1-C5 carbon atom chain: R3=H, linear
or benched C1-C5 carbon atom chain.
4. Composition as clamed inclaim 3 wherein R2=C(CH3)3 and R3=H or R2:C(CH3)3 and R3=CH3
5. Composition according to claim 1 wherein the formate is trimethyl-orthoformate.
6. Composition as claimed in claim wherein the phosphite P atom is bonded to at least
1 aromatic ring, possibly alkyl-substituted.
7. Composition according to claim 6, wherein the phosphite is chosen from: triphenylphosphite
(TPP) and methyl-di-phenylphosphite, possibly in which at least a phenyl group is
substituted with an alkyl radical.
8. Composition according to claim 1, characterised in that it is soluble in fuel oil at a temperature between 50° and 300°C.
9. Composition according to claim 1, wherein the additive components are in the following
ratios (a):(b):(c), with (a) variable from 1 to 5, (b) variable from 1 to 3 and (c)
variable from 1 to 3.
10. Composition according to claim 1 comprising: 47.6% by weight of (a), 23.8% by weight
of (b) and 26.6% by weight of (c).
11. Composition according to claim 10, wherein (a) is triphenylphosphite, (b) is ditert-butyl-hydroxytoluene
and (c) is trimethyl-orthoformate.
12. Fuel oil or tar comprising a composition according to any of claims 1-11.
13. Method for stabilising tar or fuel oil deriving from the VSB process, characterised in that an additive according to claims 1-11 is added to the TAR leaving the VSB column (C)
in the line connecting the bottom of (C) to the TAR storage tank (E).
1. Composition stabilisante pour du mazout ou pour du goudron capable de contrecarrer
la formation des solides qui y sont contenus, ladite composition comprenant le mélange
des classes suivantes de produits : au moins un composé appartenant à la classe des
phosphites organiques (a) dans lequel l'atome P est lié à au moins 1 cycle aromatique,
au moins un composé appartenant à la classe du phénol encombré stériquement (b), au
moins un composé appartenant à la classe du formate (c), chacun dans une proportion
de 5 % à 95 % en poids de la composition totale.
2. Composition selon la revendication 1, ajoutée au goudron en quantités comprises entre
50 et 200 ppm.
3. Composition selon la revendication 1, dans laquelle le phénol encombré a la formule
générale (I) :

dans laquelle R1 = groupe t-butyle ; R2 = chaîne linéaire ou ramifiée d'atomes de
carbone en C1 à C5 ; R3 = H, chaîne linéaire ou ramifiée d'atomes de carbone en C1
à C5.
4. Composition selon la revendication 3, dans laquelle R2 = C(CH3)3 et R3 = H ou R2 =
C(CH3)3 et R3 = CH3.
5. Composition selon la revendication 1, dans laquelle le formate est de l'orthoformate
de triméthyle.
6. Composition selon la revendication 1, dans laquelle l'atome de phosphite P est lié
à au moins un cycle aromatique, éventuellement substitué par un alkyle.
7. Composition selon la revendication 6, dans laquelle le phosphite est choisi parmi
: le triphénylphosphite (TPP) et le méthyl-di-phénylphosphite, éventuellement dans
lesquels au moins un groupe phényle est substitué avec un radical alkyle.
8. Composition selon la revendication 1, caractérisée en ce qu'elle est soluble dans le mazout à une température entre 50°C et 300°C.
9. Composition selon la revendication 1, dans laquelle les composants de l'additif sont
dans les rapports suivants (a) / (b) / (c), (a) étant variable de 1 à 5, (b) étant
variable de 1 à 3 et (c) étant variable de 1 à 3.
10. Composition selon la revendication 1, comprenant : 47,6 % en poids de (a), 23,8 %
en poids de (b) et 28,6 % en poids de (c).
11. Composition selon la revendication 10, dans laquelle (a) est du triphénylphosphite,
(b) est du ditert-butyl-hydroxytoluène et (c) est de l'orthoformate de triméthyle.
12. Mazout ou goudron comprenant une composition selon l'une quelconque des revendications
1 à 11.
13. Procédé pour stabiliser du goudron ou du mazout dérivé à partir du procédé VSB, caractérisé en ce qu'un additif selon les revendications 1 à 11 est ajouté au goudron quittant la colonne
VSB (C) dans la ligne connectant le fond de (C) au réservoir de stockage de goudron
(E).
1. Stabilisierende Zusammensetzung für Heizöl oder Teer, welche der Bildung von darin
enthaltenen Feststoffen entgegenwirken kann, wobei genannte Zusammensetzung die Mischung
der folgenden Klassen von Produkten umfasst: mindestens eine Verbindung, welche die
Klasse der organischen Phosphite (a) betrifft, in welcher das P-Atom an mindestens
1 aromatischen Ring gebunden ist, mindestens eine Verbindung, welche die Klasse der
sterisch gehinderten Phenole (b) betrifft, mindestens eine Verbindung, welche die
Klasse der Formiate (c) betrifft, jedes in einem Anteil zwischen 5 Gew.-% bis 95 Gew.-%
der gesamten Zusammensetzung.
2. Zusammensetzung gemäß Anspruch 1, welche zu dem Teer in Mengen zwischen 50 und 200
ppm gegeben wird.
3. Zusammensetzung gemäß Anspruch 1, in welcher das gehinderte Phenol die allgemeine
Formel (1) aufweist:

in welcher R1 = tert.-Butylgruppe, R2 = lineare oder verzweigte C
1-C
5-Kohlenstoffatomkette, R3 = H, lineare oder verzweigte C
1-C
5-Kohlenstoffatomkette
4. Zusammensetzung gemäß Anspruch 2, in welcher R2 = C(CH3)3 und R3 = H oder R2 = C(CH3)3 und R3 = CH3.
5. Zusammensetzung gemäß Anspruch 1, in welcher das Formiat Orthoameisensäuretrimethylester
ist.
6. Zusammensetzung gemäß Anspruch 1, in welcher das Phosphit-P-Atom an mindestens 1 aromatischen
Ring gebunden ist, der gegebenenfalls Alkyl-substituiert ist.
7. Zusammensetzung gemäß Anspruch 6, in welcher das Phosphit ausgewählt wird aus: Triphenylphosphit
(TPP) und Methyl-di-phenylphosphit, in welchen gegebenenfalls mindestens eine Phenylgruppe
mit einem Alkylrest substituiert ist.
8. Zusammensetzung gemäß Anspruch 1, dadurch gekennzeichnet, dass sie in Heizöl bei einer Temperatur zwischen 50° und 300°C löslich ist.
9. Zusammensetzung gemäß Anspruch 1, in welcher die Additivbestandteile in den folgenden
Verhältnissen vorliegen (a):(b):(c), mit (a) zwischen 1 bis 5, (b) zwischen 1 bis
3 und (c) zwischen 1 bis 3 variierend.
10. Zusammensetzung gemäß Anspruch 1, umfassend: .47,6Gew.-% (a), 23,8 Gew.-% (b) und
28,6 Gew.-% (c).
11. Zusammensetzung gemäß Anspruch 10, in welcher (a) Triphenylphosphit, (b) Ditert-butylhydroxytoluol und (c) Orthoameisensäuretrimethylester ist.
12. Heizöl oder Teer, umfassend eine Zusammensetzung gemäß einem der Ansprüche 1 - 11.
13. Verfahren zur Stabilisierung von Teer oder Heizöl, ausgehend vom VSB-Verfahren, dadurch gekennzeichnet, dass das Additiv gemäß einem der Ansprüche 1-11 zu dem Teer gegeben wird, welcher die
VSB-Säule (C) über die Leitung verlässt, welche den Boden von (C) mit dem Teerlagertank
(E) verbindet.