[0001] This invention relates to distillate fuel compositions containing a flow improver.
[0002] Heating oils and other distillate petroleum fuels, e.g. diesel fuels, contain normal
alkane waxes which, at low temperatures, tend to precipitate as large crystals in
such a way as to set up a gel structure which causes the fuel to lose its fluidity.
The lowest temperature at which the fuel will still flow is generally known as the
pour point.
[0003] When the fuel temperature reaches or goes below the pour point and the fuel no longer
freely flows, difficulty arises in transporting the fuel through flow lines and pumps,
as for example, when attempting to transfer the fuel from one storage vessel to another
by gravity or under pump pressure or when attempting to feed the fuel to a burner.
[0004] The crystals coming out of solution also tend to plug fuel lines, screens and filters
at temperatures above the pour point. These problems have been well recognised in
the past and various additives have been suggested for depressing the pour point of
the fuel oil and reducing the size of the wax crystals. One function of such additives
has been to change the nature of the crystals that precipitate from the fuel oil,
thereby reducing the tendency of the wax crystals to set into a gel. Small size crystals
are desirable so that the precipitated wax will not clog the fine mesh screens that
are provided in fuel transport, storage, and dispensing equipment. It is thus desirable
to obtain not only fuel oils with low pour points (flow points) but also oils that
will form small wax crystals so that the clogging of filters will not impair the flow
of the fuel at low operating temperatures.
[0005] Effective wax crystal modification (as measured by CFPP and other operability tests,
as well as simulated and field performance) can be achieved by flow improvers, mostly
ethylene-vinyl acetate copolymer (EVA) based, in distillates containing up to 4 wt%-n-alkanes
at 10°C below cloud point, as determined by gravimetric or DSC methods. Additive response
in these distillates is normally stimulated by the refiner adjusting ASTM D-86 distillation
characteristics of the distillates to increase the tail 90% to Final Boiling Point
to deltas between 20°C and 25°C.
[0006] It has been proposed in US-A-3620696 that the response of the low wax content middle
distillate fuels available in the United States in 1968 to copolymers of ethylene
and vinyl esters prepared according to FR-A-1461008 may be improved by the incorporation
of a small amount of a paraffin wax to furnish from 0.03 to 2 wt.% of wax of average
molecular weight within the range of from 300 to 650. Similarly, US-A-3640691 proposes
that the response of the same types of middle distillate to similar additives may
be improved by the addition of a paraffinic distillate fraction containing normal
alkanes higher than n-nexacosane and as high as n-tetracontane to provide from 0.1
to 2 wt.% of normal alkanes of C₂₄ and higher. In these patents as little as 0.1 wt.%
and a maximum of 0.3 wt.% of the C₂₄ and higher added wax is shown to improve response.
[0007] These practices are not, however, effective when treating high wax content narrow
boiling distillates, like those encountered in the Far East and Australia, which although
featuring similar distillation characteristics have much higher wax contents (between
5 and 10% at 10°C below the cloud point as measured by DSC or gravimetric analysis)
and different carbon number distribution, particularly in the C₂₂ to C₂₈ range. Particularly
difficult to treat fuels are those with a high wax content and a relatively low final
boiling point, i.e. no higher than 370°C sometimes below 360°C, which have high wax
contents over a narrow carbon number distribution. The most difficult to treat are
those fuels obtained from high wax crudes such as those from the crudes in Australia
and the Far East where the total n alkane content of the distillate can be greater
than 20%, the total content being C₁₂ and higher n-alkanes as measured by Gas Liquid
Chromatography.
[0008] More recently it has been proposed in JP-A-615811586 that a middle distillate responsive
to flow improvers may be obtained by adjusting the total wax content of the fuel to
between 5.5 and 12 wt.%, preferably by blending of high and low wax content fuels,
the wax content being that precipitated with methyl ethyl ketone from a 1 gram of
the fuel at -20°C. This technique is not a satisfactory indication of the wax content
of the fuel to be treated by the additives since it is the wax precipitated between
the cloud point of the fuel and its operability point which is treated by the additive
and which is important to the low temperature characteristics of the fuel. We have
found that the ability of these fuels to respond to flow improvers is not dependent
on the total wax content of the fuel.
[0009] A typical hard to treat distillate fuel containing 5 to 10 wt.% wax at 10°C below
its cloud point and/or greater than 20 wt.% n-alkanes C
12+ has the following ASTM D-86 characteristics:
| Initial Boiling Point |
212°C |
| 5% |
234°C |
| 10% |
243°C |
| 20% |
255°C |
| 30% |
263°C |
| 40% |
279°C |
| 50% |
288°C |
| 60% |
298°C |
| 70% |
303°C |
| 80% |
321°C |
| 90% |
334°C |
| 95% |
343°C |
| Final Boiling Point |
361°C |
[0010] We have discovered that in contrast to the recommendations of JP-A-615811586 the
response of such distillate fuels to flow improvers can be improved by the addition
thereto of materials to broaden the carbon number distribution of the wax content
within a defined range.
[0011] According to this invention a liquid fuel composition comprises a major proportion
by weight of a distillate fuel containing between 4 and 10 wt.% wax at 10°C below
cloud point and having a narrow n-alkane distribution, i.e. containing substantially
no paraffins longer than n-triacontane (C₃₀), 0.001 to 2.0 wt.% based on the weight
of the distillate fuel of a copolymer of ethylene and at least one second unsaturated
monomer and 0.1 to 0.5 wt.% of a hydrocarbon wax.
[0012] Also according to this invention is the use as a cold flow improver for a distillate
fuel containing between 4 and 10 wt.% of wax at 10°C below cloud point and having
a narrow carbon distribution, i.e. containing substantially no paraffins longer than
n-triacontane (C₃₀) of a mixture of 0.1 to 0.5 wt % of a hydrocarbon wax and 0.001
to 2.0 wt % of a copolymer of ethylene and at least one second unsaturated monomer.
[0013] The second unsaturated monomer can be another monoolefin, e.g. a C₃ to C₁₈ alpha-monoolefin
or it can be an unsaturated ester, as for example, vinyl acetate, vinyl butyrate,
vinyl propionate, lauryl methacrylate, ethyl acrylate or the like. The second monomer
can also be a mixture of an unsaturated mono or diester and a branched or straight
chain alpha monoolefin. Mixtures of copolymers can also be used, as for example mixtures
of a copolymer of ethylene and vinyl acetate with an alkylated polystyrene or with
an acylated polystyrene. Alternative materials are the amino succinic acid derivatives,
esters such as polyacrylates and esterified maleic anhydride copolymers, polyalpha
olefins, etc.
[0014] The preferred copolymer useful in this invention consists of 1 to 40, and preferably
1 to 20, more preferably 3 to 20 molar proportions of ethylene per molar proportion
of the ethylenically unsaturated monomer, which latter monomer can be a single monomer
or a mixture of such monomers in any proportion, said polymer being oil soluble and
having a number average molecular weight in the range of about 1,000 to 50,000, preferably
about 1,000 to about 5,000. Molecular weights can be measured by cryoscopic methods
or by vapor phase osmometry, for example by using a Mechrolab Vapor Phase OsmometerModel
310A.
[0015] The unsaturated monomers, which may be homopolymerised or copolymerised with ethylene
or with each other include unsaturated acids, acid anhydrides, and mono and diesters
of the general formula:

wherein R₁ is hydrogen or methyl; R₃ is a -OOCR₄ or -COOR₄ group wherein R₄ is hydrogen
or a C₁ to C₁₆, preferably C₁ to C₄ straight or branched chain alkyl group and R₃
is hydrogen or -COOR₄. The monomer, when R₁ to R₃ are hydrogen and R₂ is -OOCR₄ includes
vinyl alcohol esters of C₂ to C₁₇ monocarboxylic acids. Examples of such esters include
vinyl acetate, vinyl isobutyrate, vinyl laurate, vinyl myristate, vinyl palmitate,
etc. When R₂ is -COOR₄ such esters include C₈ oxo alcohol acrylate, methyl-acrylate,
methyl methacrylate, lauryl acrylate, isobutyl methacrylate, palmityl alcohol ester
of alpha-methacylic acid, C₁₃ oxo alcohol esters of methacrylic acid, etc. Examples
of monomers wherein R₁ is hydrogen and R₂ and R₃ are-OOCR₄ groups, include mono C₁₂
oxo alcohol fumarate, di-isopropyl maleate; di-lauryl fumarate; ethyl methyl fumarate;
fumaric acid, maleic acid, etc. Where R₂ is H and R₁ is COOR₄ and R₃ is CH₂ COOR₄
such as the itaconates.
[0016] Other unsaturated monomers copolymerizable with ethylene to prepare copolymer useful
in this invention include C₃ to C₁₆ branched chain or straight-chain alpha monoolefins,
as for example, propylene, n-octene-1, 2-ethyl decene-1, n-decene-1, etc.
[0017] Small proportions, e.g. about 0 to 20 mole percent, of a third monomer, or even of
a fourth monomer, can also be included in the copolymers, as for example a C₂ to C₁₆
branched or straight-chain alpha monoolefin, e.g. propylene, n-octene-1, n-decene-1,
etc. Thus, for example, copolymers of 3 to 40 moles of ethylene with one mole of a
mixture of 30 to 99 mole percent of unsaturated ester and 70 to 1 mole percent of
olefin could be used.
[0018] The copolymers that are formed are random copolymers consisting primarily of an ethylene
polymer backbone along which are distributed side chains of hydrocarbon or oxy-substituted
hydrocarbon.
[0019] The alcohols used in preparing the esters mentioned above are isomeric mixtures of
branched chain aliphatic primary alcohols prepared from olefins, such as polymers
and copolymers of C₃ to C₄ monoolefins, reacted with carbon monoxide and hydrogen
in the presence of a cobalt-containing catalyst such as cobalt carbonyl, at temperatures
of about 148.9-204,4°C (300°F to 400°F), under pressures of about 69.0-206,8 bar (1,000
to 3,000 p.s.i.) to form aldehydes. The resulting aldehyde product is then hydrogenated
to form the alcohol, the latter being recovered by distillation from the hydrogenated
product.
[0020] It is also preferred that the copolymers have a low degree of side chain branching;
particularly they contain less than 10 preferably less than 8 methyl terminating side
chains (other than the ester groups) per 100 methyl groups as measured by nuclear
magnetic resonance, particularly 500 megaherz proton NMR analysis.
[0021] The copolymer is used in a concentration in the range of from about 0.001 to about
2 wt.%, preferably from about 0.005 to about 0.2 percent by weight, based on the weight
of the distillate fuel being treated.
[0022] The second additive is a wax, preferably having a carbon number distribution from
about 20 to about 40. We prefer also that the wax consist predominantly of linear
alkanes although it may also contain a small amount of branched hydrocarbons. It is
believed that the wax nucleates the crystallisation of the n-alkanes in the fuel and
also co-crystallises with the first n-alkanes to precipitate from the fuel. The preferred
n-alkane distribution of the added wax therefore depends upon the particular fuel.
[0023] Other additives may also be used to give further improvements in low temperature
properties, for example a diamide or preferably a half amide, half amine salt of a
dicarboxylic acid or anhydride such as phthalic anhydride, and a secondary amine,
the alkyl groups preferably containing 12 to 20 carbon atoms may be added. A particularly
preferred compound is the half amide, half amine salt of phthalic acid and dihydrogenated
tallow amine - Armeen 2HT (approx. 4 wt.% n-C₁₄ alkyl, 30 wt.% n-C₁₆ alkyl, 60 wt.%
n-C₁₈ alkyl, the remainder being unsaturated). The amount of diamide or half amide,
half amine salt which is added is usually 0.001 to 2 wt.%, preferably 0.005 to 0.2
wt.%, based on the weight of distillate fuel.
[0024] Examples of other additives are the glycol esters such as those defined in our EP-B-0
061 895, the esters and amines of maleic anhydide copolymers such as those defined
in EP-A-0214786, polyolefines and chlorinated polyolefines and the amines or amides
of alkyl succinic anhydrides.
[0025] The cold flow properties of the distillate fuel can be further improved by adding
thereto a wax-naphthalene condensate. A typical condensate is prepared by chlorinating
a wax containing n- and branched C₁₈ to C₃₉ paraffins (C₂₆ average) to obtain a chlorinated
wax containing about 15 weight % chlorine. The chlorowax thus obtained is polymerised
with naphthalene via an alkylation reaction to give a condensate using containing
alternating wax and naphthalene units.
[0026] The amount of condensate added is usually 0.00005 to 0.1 wt.% based on the weight
of the distillate fuel.
[0027] The additives of the present invention may be supplied as concentrates for incorporation
into the bulk fuel, such a concentrate comprising a solution containing from 30 to
70 wt.% preferably, 40 to 60 wt.% of a mixture of the copolymer of ethylene and another
ethylenically unsaturated monomer and the hydrocarbon wax.
[0028] The following Additives were used in the Examples,
- Additive 1
- 63 wt.% solution of a mixture of two ethylene vinyl acetate copolymers, marketed by
Exxon Chemicals as ECA 8400.
- Additive 2
- A blend of ethylene vinyl acetate copolymers and fumarate vinyl acetate copolymers
marketed by Exxon as Paraflow 206.
Example 1
[0029] To a distillate fuel of cloud point +3°C, pour point of -3°C and having the following
ASTM D-86 characteristics
| Initial boiling point |
244°C |
| 10% |
256°C |
| 20% |
263°C |
| 50% |
294°C |
| 90% |
340°C |
| 95% |
351°C |
| Final Boiling Point |
358°C |
and a wax content of about 5.7 wt.% at 10°C below cloud point was added 1500 ppm of
Additive 1.
[0030] The ability of the fuel to pass filters was assessed using the cold filter plugging
point test (CFPPT) which is carried out by the procedure described in detail in "Journal
of the Institute of Petroleum" Vol. 52, No. 510, June 1966 pp 173-185. In brief, a
40 ml. sample of the oil to be tested is cooled by a bath maintained at about -34°C.
Periodically (at each one degree centigrade drop in temperature starting from not
less than 5°C above cloud point) the cooled oil is tested for its ability to flow
through a fine screen in a time period. This cold property is tested with a device
consisting of a pipette to whose lower end is attached an inverted funnel positioned
below the surface of the oil to be tested. Stretched across the mouth of the funnel
is a 350 mesh screen having an area of about 2.90 cm² (0.45 square inches). The periodic
tests are each initiated by applying a vacuum to the upper end of the pipette whereby
oil is drawn through the screen up into the pipette to a mark indicating 20 ml. of
oil. The test is repeated with each one degree drop in temperature until the oil fails
to fill the pipette to a mark indicating 20 ml. of oil
[0031] The test is repeated with each one degree drop in temperature until the oil fails
to fill the pipette within 60 seconds. The temperature at which the last filtration
commenced is recorded and reported as the cold filter plugging point.
[0032] The value for the untreated fuel and the fuel containing 1500 ppm of the ethylene/vinyl
acetate copolymer solution as sole additive was -1°C.
[0033] Varying amounts of the following commercially available waxes were then added to
the fuel containing the ethylene/vinyl acetate copolymer.
| Wax Reference |
|
| A |
Astor Chemical Wax A |
| B |
Shell Wax 130/135 |
| C |
Shell Wax 125/130 |
| D |
Astor Chemical Wax B |
[0034] The n-alkane distributions of these waxes are as follows:

The treated fuels were tested in the CFPP test with the following results:

Use of each wax as sole additive had no effect on the CFPP performance.
Example 2
[0035] This example shows the effects of the addition of wax to a base of cloud point +5°C
distillate fuel obtained from a chinese crude. The D-86 distillation of the distillate
was:.
| IBP |
205 |
| 10% |
233 |
| 20% |
245 |
| 50% |
278 |
| 90% |
335 |
| FBP |
355 |
[0036] The n-alkane distribution of the fuel and the added waxes were as follows:
| N-alkanes |
Base Fuel |
Wax B |
Wax E |
Wax F |
Wax G |
| C₁₀ |
0.36 |
|
|
|
|
| C₁₁ |
1.02 |
|
|
|
|
| C₁₂ |
2.13 |
|
|
|
|
| C₁₃ |
2.89 |
|
|
|
|
| C₁₄ |
2.80 |
|
|
|
|
| C₁₅ |
2.92 |
|
|
|
|
| C₁₆ |
2.81 |
|
|
|
|
| C₁₇ |
2.82 |
|
|
|
|
| C₁₈ |
2.71 |
|
|
|
|
| C₁₉ |
2.53 |
|
|
|
|
| C₂₀ |
2.36 |
0.03 |
|
0.20 |
|
| C₂₁ |
2.02 |
0.25 |
0.10 |
0.14 |
0.13 |
| C₂₂ |
1.56 |
1.31 |
0.60 |
0.87 |
0.56 |
| C₂₃ |
1.19 |
3.75 |
3.00 |
2.83 |
1.74 |
| C₂₄ |
0.63 |
7.12 |
8.63 |
6.15 |
3.81 |
| C₂₅ |
0.39 |
8.73 |
13.08 |
9.66 |
7.26 |
| C₂₆ |
0.19 |
10.00 |
15.43 |
13.44 |
10.72 |
| C₂₇ |
0.08 |
8.85 |
12.16 |
14.47 |
13.91 |
| C₂₈ |
0.04 |
8.08 |
9.20 |
13.92 |
15.12 |
| C₂₉ |
0.01 |
6.77 |
6.24 |
11.17 |
11.50 |
| C₃₀ |
0.004 |
5.70 |
4.23 |
6.65 |
7.19 |
| C₃₁ |
|
4.34 |
2.67 |
3.13 |
3.12 |
| C₃₂ |
|
3.53 |
1.62 |
1.22 |
1.13 |
| C₃₃ |
|
2.52 |
1.11 |
0.43 |
0.81 |
| C₃₄ |
|
1.79 |
0.69 |
0.20 |
0.50 |
| C₃₅ |
|
1.09 |
0.39 |
0.04 |
0.36 |
| C₃₆ |
|
0.66 |
0.25 |
0.05 |
0.27 |
| C₃₇ |
|
0.36 |
0.12 |
0.02 |
0.19 |
| C₃₈ |
|
0.19 |
|
|
0.14 |
| C₃₉ |
|
0.08 |
|
|
0.10 |
| C₄₀ |
|
0.04 |
|
|
0.07 |
| C₄₁ |
|
|
|
|
|
The base fuel contained 30.1 wt.% n-alkanes of C₁₂ and higher.
The following blends were prepared:
[0037]
| Added Wax |
WT % |
WT % C₂₄+ |
CFFP Improvement Additive 2 |
CFFP Improvement |
| |
|
|
500 ppm |
1000 ppm |
With Additive 2 500 ppm |
With BASF 5486 1000 ppm |
| None |
0 |
0 |
0 |
0 |
0 |
0 |
| B |
0.30 |
0.21 |
0 |
1 |
1 |
8 |
| 0.50 |
0.35 |
2 |
5 |
| 1.00 |
0.69 |
3 |
8 |
| E |
0.30 |
0.23 |
0 |
0 |
|
|
| 0.50 |
0.38 |
2 |
1 |
| 0.75 |
0.57 |
2 |
8 |
| 1.00 |
0.76 |
5 |
9 |
| F |
0.25 |
0.2 |
1 |
1 |
|
|
| 0.50 |
0.4 |
2 |
2 |
| 0.75 |
0.6 |
3 |
6 |
| G |
0.25 |
0.19 |
0 |
1 |
|
|
| 0.50 |
0.38 |
1 |
4 |
| 1.00 |
0.76 |
2 |
7 |
| n C₂₈ |
0.30 |
0.30 |
2 |
0 |
|
|
| 0.50 |
0.50 |
3 |
10 |
| Note: In this example, additive treat rates are amounts of polymer |
1. A liquid fuel composition comprising a major proportion by weight of a distillate
fuel containing between 4 and 10 wt% wax at 10°C below cloud point and containing
substantially no paraffins longer than n-triacontane, 0.001 to 2.0 wt% based on the
weight of the distillate fuel of a copolymer of ethylene and at least one second unsaturated
monomer, and 0.1 to 0.5 wt% of a hydrocarbon wax.
2. A composition according to claim 1 wherein the distillate fuel contains about 8 wt%
of wax at 10°C below cloud point.
3. A composition according to claim 1 or claim 2 wherein the amount of copolymer is 0.005
to 0.2 percent by weight based on the weight of distillate fuel.
4. A composition according to any one of the preceding claims where the hydrocarbon wax
has a carbon number distribution from 20 to 40.
5. A composition according to any of the preceding claims in which the fuel has a final
boiling point below 370°C.
6. The use as a cold flow improver for a distillate fuel containing between 4 and 10
wt% of wax at 10°C below cloud point and containing no paraffins longer than n-triacontane
of a mixture of 0.1 to 0.5 wt% of a hydrocarbon wax and 0.001 to 2.0 wt% of a copolymer
of ethylene and at least one second unsaturated monomer.
7. The use according to claim 6 in which the wax contains from 20 to about 40 carbon
atoms.
8. The use according to claim 6 or claim 7 wherein the copolymer is a copolymer of ethylene
and an unsaturated ester.
9. The use according to claim 8 wherein the unsaturated ester is vinyl acetate.
1. Flüssige Brennstoffzusammensetzung, die einen größeren Gewichtsteil eines Destillatbrennstoffs,
der bei 10°C unter dem Trübungspunkt zwischen 4 und 10 Gew.% Paraffin und im wesentlichen
keine Paraffine, die länger als n-Triacontan sind, enthält, 0,001 bis 2,0 Gew.%, bezogen
auf das Gewicht des Destillatbrennstoffs, eines Copolymers von Ethylen und mindestens
einem zweiten ungesättigten Monomer und 0,1 bis 0,5 Gew.% eines Kohlenwasserstoffwachses
umfaßt.
2. Zusammensetzung nach Anspruch 1, bei der der Destillatbrennstoff bei 10°C unter dem
Trübungspunkt etwa 8 Gew.% Paraffin enthält.
3. Zusammensetzung nach Anspruch 1 oder 2, bei der die Menge des Copolymers 0,005 bis
0,2 Gew.%, bezogen auf das Gewicht des Destillatbrennstoffs, beträgt.
4. Zusammensetzung nach einem der vorhergehenden Ansprüche, bei der das Kohlenwasserstoffwachs
eine Kohlenstoffzahlverteilung von 20 bis 40 besitzt.
5. Zusammensetzung nach einem der vorhergehenden Ansprüche, bei der der Brennstoff einen
Endsiedepunkt unter 370°C besitzt.
6. Verwendung einer Mischung von 0,1 bis 0,5 Gew.% eines Kohlenwasserstoffwachses und
0,001 bis 2,0 Gew.% eines Copolymers von Ethylen und mindestens einem zweiten ungesättigten
Monomer als Kaltfließverbesserer für einen Destillatbrennstoff, der bei 10°C unter
dem Trübungspunkt zwischen 4 und 10 Gew.% Paraffin und keine Paraffine, die länger
als n-Triacontan sind, enthält.
7. Verwendung nach Anspruch 6, bei der das Paraffin 20 bis 40 Kohlenstoffatome enthält.
8. Verwendung nach Anspruch 6 oder 7, bei der das Copolymer ein Copolymer von Ethylen
und einem ungesättigten Ester ist.
9. Verwendung nach Anspruch 8, bei der der ungesättigte Ester Vinylacetat ist.
1. Composition de combustible liquide comprenant une proportion dominante, en poids,
d'un combustible distillé contenant 4 à 10 % en poids d'une cire à une température
inférieure de 10°C au point de trouble et ne contenant pratiquement aucune paraffines
plus longues que le n-triacontane, 0,001 à 2,0 % en poids, sur la base du poids du
combustible distillé, d'un copolymère d'éthylène et d'au moins un second monomère
insature, et 0,1 à 0,5 % en poids d'une cire hydrocarbonée.
2. Composition suivant la revendication 1, dans laquelle le combustible distillé contient
environ 8 % en poids de cire à une température inférieure de 10°C au point de trouble.
3. Composition suivant la revendication 1 ou la revendication 2, dans laquelle la quantité
de copolymère est comprise dans l'intervalle de 0,005 à 0,2 % en poids, sur la base
du poids du combustible distillé.
4. Composition suivant l'une quelconque des revendications précédentes, dans laquelle
la cire hydrocarbonée possède une distribution du nombre d'atomes de carbone de 20
à 40.
5. Composition suivant l'une quelconque des revendications précédentes, dans laquelle
le combustible possède un point d'ébullition final inférieur à 370°C.
6. Utilisation, comme agent améliorant l'écoulement à froid pour un combustible distillé
contenant 4 à 10 % en poids d'une cire à une température inférieure de 10°C au point
de trouble et ne contenant aucune parrafines plus longues que le n-triacontane, d'un
mélange de 0,1 à 0,5 % en poids d'une cire hydrocarbonée et de 0,001 à 2,0 % en poids
d'un copolymère d'éthylène et d'au moins un second monomère insaturé.
7. Utilisation suivant la revendication 6, dans laquelle la cire contient 20 à environ
40 atomes de carbone.
8. Utilisation suivant la revendication 6 ou 7, dans laquelle le copolymère est un copolymère
d'éthylène et d'un ester insaturé.
9. Utilisation suivant la revendication 8, dans laquelle l'ester insaturé est l'acétate
de vinyle.