[0001] The present invention relates to the method and use of engine lubricants in four-stroke
engines, and more especially to the use of engine lubricants having an SAE class rating
of less than SAE 5W in four-stroke engines.
[0002] Owing to the ever increasing environmental, legislative and economic pressures, engine
lubricants are required that contribute to increased engine efficiency, ie greater
mpg or kpl and lowered engine emissions, and decreased frequency between lubricant
changes, ie less oil usage.
[0003] However, these requirements are difficult to meet, especially when using petroleum-based
oils, eg mineral oils, as lubricants, as they impose conflicting requirements on the
viscosity and volatility properties exhibited by such oils. For example, engine oils
are required to allow easy cold engine starting at low ambient temperatures whilst
ensuring good lubrication at high operating temperatures. This may be achieved by
blending lubricant stocks of different viscosities. However, such formulations may
not be sufficient to meet the operating temperature range requirements owing to disparate
viscosity indices of the component lubricant stocks. This has led to the use of viscosity
index improvers, often in relatively high amounts. Such viscosity index improvers
are frequently polymeric in nature and may be broken down by the operating temperatures
and shearing of the fluid in the engines, especially in high performance vehicles,
leading to potential loss in viscosity and engine failure.
[0004] Other approaches use synthetic lubricant stocks such as specially processed mineral
oils, α-olefin oligomers and polymers (hereinafter poly-α-olefins) and esters including
monoesters, diesters, polyol esters and complex esters, with or without appropriate
additives such as viscosity index improvers.
[0006] DE OL 2133042 discloses an engine lubricant of viscosity class 10W-20 to 5W-20 which consists of
a mineral oil raffinate having a viscosity index of between 80 and 105 and a kinematic
viscosity at 100°C of between 7.5cSt and 12cSt, an oil-soluble synthetic lubricating
oil, such as a diester, having a kinematic viscosity at 100°C of between 3cSt and
5cSt and a Noack evaporation loss of between 3 and 10% and additives. A specific example
of a 10W engine oil having a kinematic viscosity at 100 °C of 7sSt and a viscosity
index of 116 and has a 5% additive packages is derived from 75% mineral oil having
a kinematic viscosity at 100°C of 9cST, a viscosity index of 102 and a Noack evaporation
loss of 6% and 25% di-n-decanol trimethyl adipate.
[0007] EP-A-0089709 discloses organic carbonic acid diesters derived from alcohols as components in engine
lubricants.
[0008] EP-B-0792334 discloses an engine lubricant having at least one ester derived from a saturated
branched chain aliphatic monohydric alcohol having at least 8 carbon atoms and a saturated
branched chain aliphatic monocarboxylic acid having at least 10 carbon atoms.
[0009] JP 1993331483A discloses an engine oil in which reduced amounts of viscosity index improvers are
required. The engine oil has 10% to 30% of a diester or polyol ester, 60% to 89% of
an α-olefin oligomer, 1% to 20% of an ethylene α-olefin oligomer and 0.5% to 3% zinc
dialkyl dithiophosphate as an anti-wear agent. The oil has a kinematic viscosity at
100°C of 4cSt or greater. A specific example incorporates diisodecyl adipate which
has a kinematic viscosity at 100°C of 3.62cSt.
[0010] US-A-4155861 discloses lubricating oils based on mixed esters consisting of a monomeric diester
of a dicarboxylic acid and a complex ester derived from a dicarboxylic acid (preferably
branched) and hexanediol or trimethyl hexanediol. In the specific examples, the monomeric
diester is n-octyl, n-decyl trimethyl adipate. The addition of the complex ester at
levels of 1% to 10% to the n-octyl, n-decyl trimethyl adipate is said to result in
engine oils in the SAE classes 5W/20, 5W/30 or 10W/40.
[0011] US-B2-6303548 discloses an SAE 0W-40 lubricant composition consisting of 5% to 80% of a mineral
oil base stock, 5% to 90% of a poly-α-olefin which has a kinematic viscosity at 100°C
in the range 3.5cSt to 4.5cSt and 1% to 30% of an ester derived from monocarboxylic
acids and polycarboxylic acids with monohydroxyl alcohols and polyols together with
a viscosity improver comprising a mixture of 3% to 7% of a polymethacrylate and 4%
to 9% olefin copolymer or hydrogenated diene copolymer. A specific example uses di-
isooctyl adipate.
DE 10 2004 034202 discloses ester oils with a low volatility and a low viscosity.
[0012] US-A-2004198614 discloses a method of reducing intake valve deposits in a direct injection engine,
GB716086 discloses synthetic lubricants having utility at both high and low temperatures,
GB1293225 discloses a lubricant composition comprising at least one diester of tripropylene
glycol as a base fluid and an antioxidant,
GB828956 discloses a lubricant composition which is particularly designed for lubrication
of turbine engines,
US3194764 discloses a process for the preparation of complex esters having improved viscosity
characteristics and low acid number and
US3546116 discloses functional fluid compositions which exhibit improved oxidative stability
together with improved resistance to the corrosion of metal surfaces
[0013] Some disadvantages of such lubricants include the inherent limitation imposed by
the viscosity indices of the base oils (which impacts film thickness); and the inability
to reduce viscosity without increasing volatility (ie increasing the Noack evaporation
loss of the lubricant). Additionally, very low viscosity esters can also have high
polarity which can lead to seal compatibility issues and potential wear issues due
to competition with antiwear agents such as ZDDP when the esters are used at high
dose rates, eg >15 wt%. For example, di-
isooctyl adipate has an NPI of 41. In addition, low viscosity lubricants, which have
been optimised to give low volatilities, can also suffer from either low viscosity
indices (<125), poor low temperature flow properties or shorter drain intervals resulting
from poor oxidative stability (from the use of components in which gem dimethyl branching
is present).
[0014] It is an object of the present invention to provide method and use of an engine lubricant
in four-stroke engines. It is a further object of the present invention to provide
use of an engine lubricant which has an SAE class rating of less than 5W, more especially
an SAE class rating of 0W or lower.
[0015] According to the present invention, there is provided a use and a method as defined
in the claims.
[0016] As used in this specification in relation to the invention described and claimed,
as required by the context, the term "wt%" indicates the percentage by weight of the
component referred to as a percentage of the total weight of the engine lubricant.
Where the context refers to a specific component, for example a Noack evaporation
loss, the term "wt%" indicates the percentage by weight of the total weight of the
component.
[0017] Preferably, said engine lubricant comprises at least 20 wt%, more preferably at least
25 wt% of said at least one diester. Said engine lubricant may comprise up to 75 wt%,
more preferably up to 50 wt% and, up to 40 wt% of said at least one diester. In one
embodiment, said engine lubricant comprises about 30 wt% of said at least one diester.
[0018] When said engine lubricant does not consist essentially of said at least one diester
and said additives, the balance of said engine lubricant comprises lubricant components
selected from API Groups III, IV and V lubricants and gas-to-liquid lubricants (GTL)
and mixtures thereof. Examples of suitable Group III lubricants include mineral oils.
Examples of suitable Group IV lubricants included poly-α-olefins derived from C
8 to C
12 α-olefins and having kinematic viscosities in the range 3.6 cSt to 8 cSt at 100°C.
Examples of Group V lubricants include alkyl naphthalenes, alkyl benzenes and esters,
for example esters derived from monohydric alcohols and/or polyols and monocarboxylic
acids or polycarboxylic acids. Examples of alkyl naphthalenes include Synesstic™ 5
and Synesstic™ 12 alkyl naphthalenes available from Mobil. Examples of esters are
Priolube 1976™ a monoester and Priolube 3970™ a TMP
nC
8InC
10 polyol ester. GTL base stocks are made by conversion of natural gas (ie, methane
and higher alkanes) to synthesis gas (carbon monoxide and hydrogen) and then via oligomerisation
(eg the Fischer-Tropsch process) to higher molecular weight molecules that are hydrocracked
to produce
iso-paraffins in the required lubricant boiling/viscosity range. GTL base stocks are
only just being commercialised and consequently there is little or no data relating
to them that is freely available. As far as it is known, such GTL base stocks will
have viscosity grades similar to poly-α-olefins.
[0019] In one embodiment, said engine lubricant consists essentially of said at least one
diester, at least one Group V lubricant, especially an alkyl naphthalene or an ester
other than said at least one diester such as a polyol ester or complex ester, and
said additives.
[0020] Preferably, said at least one diester has a kinematic viscosity at 100°C of not more
than 3.0cSt. Preferably, said at least one diester has a viscosity index of at least
140. Said at least one diester has a pour point of not more than about - 30°C, more
particularly of not more than -35°C and especially not more than -40°C. Preferably,
said at least one diester has a Noack evaporation loss of not more than 14.5 wt%,
more preferably of not more than 14.0 wt%.
[0021] Preferably, said at least one diester has a flash point of at least 200°C, more preferably
at least 210°C, more particularly at least 220°C and especially of about 230°C.
[0022] Preferably, said at least one diester has a non-polarity index (NPI), as described
in
EP-B-0792334, of more than 30 but less than 100, more preferably less than 80.
[0023] Preferably, said at least one diester is stable when held at -20 °C for one week.
This low temperature stability may be tested by storing approximately 30ml of diester
in a glass vial and placing the vial in a freezer unit at -20°C for one week, checking
the sample at regular intervals and noting any signs of crystal formation or gelling.
[0024] Preferably, said at least one diester has a cold crank simulation (CCS) dynamic viscosity
at -35°C of not more than 6200 cPs.
[0025] Preferably, said engine lubricant comprises only one of said at least one diester.
[0026] Where said engine lubricant comprises at least two of said at least one diester,
each diester may be selected with different properties. Preferably, the properties
of each diester are within the values of such properties as described above; alternatively,
one or more of the properties of at least one diester may be outside the values of
such properties as described above provided that the properties of the mixture of
diesters are within the values of such properties as described above.
[0027] Preferably, said at least one diester is selected from the group consisting of:
- a) reaction products of at least one C6 to C10, aliphatic dicarboxylic acid or an anhydride thereof with at least one primary C8 to C10, aliphatic monohydric alcohol, wherein, if said at least one acid is branched, then
at least one of said at least one alcohol is linear and, if said at least one acid
is linear, then at least one of said at least one alcohol is branched; and
- b)
[0028] Preferably, the diester, when derived from diacids or anhydrides thereof and monohydric
alcohols, contains 17 to 36, more particularly 20 to 30 and especially 23 to 26 carbon
atoms.
[0029] The reaction products of dicarboxylic acids and alcohols are reaction products of
either branched acids with linear alcohols or linear acids with branched alcohols.
[0030] The branched chains of the branched acids and/or branched alcohols may be C
1 to C
4 alkyl, more preferably C
1 or C
2 alkyl and especially methyl. The branched acids are preferably not branched in the
α-position but are preferably branched in the β-position. Preferably, the acids do
not contain any gem branched groups, eg gem dimethyl or gem diethyl, and preferably
contain only one or two branches, especially a single branch in the β-position.
[0031] The dicarboxylic acids include adipic acid, 3-methyl adipic acid and sebacic acid.
The primary alcohols include 1-octanol, 1-decanol and mixtures thereof, 2-ethylhexanol
and isononyl alcohol.
[0032] Preferred diesters are selected from the group consisting of di-isononyl adipate,
di-n-octyl 3-methyl-adipate, di-2-ethylhexyl sebacate and mixtures thereof. More particularly,
the diesters are selected from the group consisting of di-isononyl adipate, di-n-octyl
3-methyl-adipate and di-2-ethylhexyl sebacate and mixtures thereof.
[0033] As will be appreciated, the acids and alcohols used to make said diesters will be
from commercial sources and may not necessarily comprise 100 wt% of the acid or alcohol.
Such commercial products usually comprise a major proportion of the primary product
together with other isomers and/or additional products of shorter or longer chain
length. This may lead to variations in properties of the diesters which are reaction
products. Such variations in properties are exemplified below in the Examples.
[0034] In one embodiment, said engine lubricant optionally may comprise esters selected
from simple esters, diesters, not being diesters as hereinbefore described, and complex
esters or mixtures thereof. Preferably, the weight ratio of said diesters to said
optional esters will be between 100:0 to 60:40, more preferably between 100:0 to 75:25,
more particularly between 99:1 and 80:20 and, especially between 95:5 to 85:15.
[0035] As previously described, said engine lubricant comprises not more than 15 wt% of
additives, more especially not more than 10 wt% of additives. Typically, said additives
are:
- a) viscosity index improvers, for example alkyl methacrylate copolymers, olefin copolymers
(OCP) and mixtures thereof, which are added in effective amounts, typically in the
range 0.1 wt% to 6 wt%;
- b) antioxidants, for example phenolic antioxidants, such as hindered phenols, and
alkylated diphenyl amines and mixtures thereof, which are added in effective amounts,
typically in the range 0.5 wt% to 1 wt%;
- c) metal deactivators, for example metal dialkyldithiophosphates, thiadiazoles and
triazoles (which may also function as corrosion inhibitors and extreme pressure additives),
which are added in effective amounts, typically in the range 0.01 wt% to 0.5 wt%;
- d) pour point depressants which are added in effective amounts, typically in the range
0.1 wt% to 1.0 wt%;
- e) extreme pressure additives, for example zinc diaryl dithiophosphates (ZDDP), which
are added in effective amounts, typically in the range 0.5 wt% to 3.0 wt%;
- f) As friction modifiers, glycerol mono-oleate, which is added in the range 0.3 wt%
to 1.3 wt%;
- g) anti-foam agents, for example dimethyl polysiloxane, polyacrylate, which are added
in effective amounts, typically in the range 1ppm to 100ppm;
- h) multifunctional additives such as DDI (detergent-dispersion-inhibitor) packages;
- i) and mixtures of such additives.
[0036] In engine lubricants according to the claims in which said diesters and, optionally,
other esters are present in significant quantities, preferably as a major component
of the engine lubricants, such engine lubricants may be free of some additives such
as viscosity index improvers.
[0037] The combinations of additives used in engine lubricants and the amounts thereof may
vary significantly; however, the total amount of all additives included in said engine
lubricant according to the invention is subject to the upper limits of 15 wt% and
more especially 10 wt%, as previously described.
[0038] The present invention includes the use of said engine lubricant as herein described
in lubricating four-stroke engines and a method of lubricating a four-stroke engine
comprising lubricating said engine with said engine lubricant as herein described.
[0039] The present invention further includes use of an SAE 0W engine lubricant, said engine
lubricant comprising at least one diester as herein described. The features and embodiments
herein described apply also
mutatis mutandis to said SAE 0W engine lubricant.
[0040] The invention will now be further illustrated with reference to the following Example.
Example
[0041] Samples 1 to 4 as identified in Table 1 below are diesters suitable for use in said
engine lubricants according to the invention. Comparative samples 5 to 11 are also
identified in Table 1. The properties of the samples are given in Table 2.
Table 1
| Sample |
Linear Acid |
Branched Acid |
Linear Alcohol |
Branched Alcohol |
Poly(alkyl glycol) |
| |
|
|
|
|
|
| 1 |
Adipic |
- |
- |
Isononyl* |
- |
| 2 |
Adipic |
- |
- |
Isononyl** |
- |
| 3 |
- |
3-methyl adipic |
1-octanol |
- |
- |
| 4 |
Sebacic |
- |
- |
2-ethylhexanol |
- |
| 5 |
Caprylic/capric (approximately 50:50 mixture) |
- |
- |
- |
PPG 225 |
| 6 |
Caprylic/capric (approximately 50:50 mixture) |
- |
- |
Trimethylol propane |
|
| 7 |
Adipic |
- |
1-octanol/1-decanol (approximately 50:50 mixture) |
- |
- |
| 8 |
Heptanoic |
- |
Glycerol |
- |
- |
| 9 |
Caprylic |
- |
- |
Guerbert iso-C20 |
- |
| 10 |
Adipic |
- |
- |
2-propylheptanol |
- |
| 11 |
- |
2,2,4-methyl adipic |
- |
2-ethylhexanol |
- |
*Commercially-sourced isononyl alcohol comprising <85 wt% isononyl alcohol.
**Commercially-sourced isononyl alcohol comprising at least 85 wt% isononyl alcohol. |
Table 2
| Sample |
Viscosity @ 40°C (cSt) |
Viscosity @ 100°C (cSt) |
Viscosity Index |
Flash Point (°C) |
Pour Point (°C) |
Noack Evaporation Loss (wt%) |
Stability at -20°C for 1 week |
NPI |
CCS -35°C (cPs) |
| |
|
|
|
|
|
|
|
|
|
| 1 |
12.0 |
3.3 |
156 |
210 |
-60 |
12 |
Pass |
48 |
<500 |
| 2 |
10.5 |
3.0 |
159 |
230 |
-50 |
13 |
Pass |
48 |
<500 |
| 3 |
8.9 |
2.8 |
169 |
227* |
-36** |
14 |
Pass |
47 |
<500 |
| 4 |
11.5 |
3.3 |
157 |
230 |
<-60 |
12 |
Pass |
55 |
<500 |
| 5 |
10.6 |
3.0 |
149 |
228 |
-62 |
14? |
- |
<61 |
- |
| 6 |
19.5 |
4.4 |
140 |
245 |
-51 |
3 |
Pass |
60 |
3390 |
| 7 |
12.2 |
3.4 |
157 |
230 |
-26 |
11 |
Fail |
48 |
<500 |
| 8 |
9.6 |
2.7 |
128 |
240 |
-56 |
14 |
Pass |
34 |
<500 |
| 9 |
10.5 |
2.9 |
138 |
230 |
-28 |
12? |
- |
118 |
>6200 |
| 10 |
11.4 |
3.0 |
122 |
210 |
<-38 |
15 |
Pass |
48 |
<500 |
| 11 |
9.9 |
2.5 |
116 |
- |
<-60 |
22 |
Pass |
48 |
- |
*Pre-1950's literature data.
**Precipitate started to form at about -36°C and continued to build up. At -48°C,
the sample still had a liquid layer that was fluid.
? = modelled data based on flashpoint. |
1. Use in a four-stroke engine of an engine lubricant comprising from 15 wt% to 40 wt%
of at least one diester and not more than 15 wt% of additives, said additives comprising
0.3wt% to 1.3wt% of glycerol mono-oleate as a percentage of the total weight of the
engine lubricant, wherein said at least one diester, or mixture of said diesters if
more than one is present, has a kinematic viscosity at 100 °C of not more than 3.3
cSt, a viscosity index of at least 130, a pour point of not more than -30 °C and a
Noack evaporation loss of not more than 15 wt% and said at least one diester is selected
from the group consisting of reaction products of at least one dicarboxylic acid selected
from adipic acid, 3-methyl adipic acid and sebacic acid or an anhydride thereof with
at least one primary alcohol selected from 1-octanol, 1-decanol and mixtures thereof,
2-ethylhexanol and isononyl alcohol, wherein, if said at least one acid is branched,
then at least one of said at least one alcohol is linear and, if said at least one
acid is linear, then at least one of said at least one alcohol is branched.
2. Use according to claim 1 wherein the engine lubricant is an SAE 0W engine lubricant.
3. Use according to claims 1 or 2 wherein the engine lubricant comprises at least 25
wt% and up to 40 wt% of said at least one diester.
4. Use according to any one of claims 1 to 3 wherein the engine lubricant comprises lubricant
components selected from API Groups III, IV and V and mixtures thereof.
5. Use according to claim 4 wherein the engine lubricant consists essentially of said
at least one diester, said additives and at least one API Group V lubricant.
6. Use according to any one of the preceding claims in which said at least one diester
has a kinematic viscosity at 100 °C of not more than 3.0cSt and/or a viscosity index
of at least 140 and/or a pour point of not more than -35°C and/or a Noack evaporation
loss of not more than 14.0 wt%.
7. Use according to any one of the preceding claims wherein said diesters are selected
from the group consisting of di-isononyl adipate, di-n-octyl 3-methyl-adipate, di-2-ethylhexyl
sebacate and mixtures thereof.
8. Use according to any one of the preceding claims wherein the engine lubricant comprises
not more than 10 wt% of said additives.
9. A method of lubricating a four-stroke engine comprising lubricating said engine with
an engine lubricant as defined in any preceding claim.
1. Verwendung, in einem Viertaktmotor, eines Motorschmiermittels, das zwischen 15 Gew.-%
und 40 Gew.-% von mindestens einem Diester und nicht mehr als 15 Gew.-% Zusatzstoffe
umfasst, wobei die Zusatzstoffe zwischen 0,3 Gew.-% und 1,3 Gew.-% Glycerolmonooleat
in Prozent des Gesamtgewichts des Motorschmiermittels umfassen, wobei der mindestens
eine Diester oder die Mischung aus den Diestern, wenn mehr als einer vorhanden ist,
eine kinematische Viskosität bei 100°C von nicht mehr als 3,3 cSt, einen Viskositätsindex
von mindestens 130, einen Pourpoint von nicht mehr als -30°C und einen Verdampfungsverlust
nach Noack von nicht mehr als 15 Gew.-% aufweist und der mindestens eine Diester aus
der Gruppe ausgewählt ist, die aus Reaktionsprodukten von mindestens einer Dicarbonsäure,
ausgewählt aus Adipinsäure, 3-Methyl-Adipinsäure und Sebacinsäure oder einem Anhydrid
davon, mit mindestens einem primären Alkohol besteht, der ausgewählt ist aus 1-Octanol,
1-Decanol und Mischungen daraus, 2-Ethylhexanol und Isononylalkohol, wobei, wenn die
mindestens eine Säure verzweigt ist, mindestens einer von dem mindestens einen Alkohol
unverzweigt ist, und wenn die mindestens eine Säure unverzweigt ist, mindestens einer
von dem mindestens einen Alkohol verzweigt ist.
2. Verwendung nach Anspruch 1, wobei das Motorschmiermittel ein Motorschmiermittel SAE
0W ist.
3. Verwendung nach Anspruch 1 oder 2, wobei das Motorschmiermittel mindestens 25 Gew.-%
und bis zu 40 Gew.-% von dem mindestens einen Diester umfasst.
4. Verwendung nach einem der Ansprüche 1 bis 3, wobei das Motorschmiermittel Schmiermittelbestandteile
umfasst, die ausgewählt sind aus der API-Gruppe III, IV und V und Mischungen daraus.
5. Verwendung nach Anspruch 4, wobei das Motorschmiermittel im Wesentlichen aus dem mindestens
einen Diester, den Zusatzstoffen und mindestens einem Schmiermittel der API-Gruppe
V besteht.
6. Verwendung nach einem der vorhergehenden Ansprüche, bei der das mindestens eine Diester
eine kinematische Viskosität bei 100 °C von nicht mehr als 3,0 cSt und/oder einen
Viskositätsindex von mindestens 140 und/oder einen Pourpoint von nicht mehr als -35°C
und/oder einen Verdampfungsverlust nach Noack von nicht mehr als 14,0 Gew.-% aufweist.
7. Verwendung nach einem der vorhergehenden Ansprüche, wobei die Diester aus der Gruppe
bestehend aus Di-isononyladipat, Di-n-octyl-3-methyl-adipat, Di-2-ethylhexylsebacat
und Mischungen daraus ausgewählt sind.
8. Verwendung nach einem der vorhergehenden Ansprüche, wobei das Motorschmiermittel nicht
mehr als 10 Gew.-% der Zusatzstoffe umfasst.
9. Verfahren zum Schmieren eines Viertaktmotors, umfassend das Schmieren des Motors mit
einem Motorschmiermittel nach einem der vorhergehenden Ansprüche.
1. Utilisation dans un moteur à quatre temps d'un lubrifiant pour moteurs comprenant
de 15 % en poids à 40 % en poids d'au moins un diester et pas plus de 15 % en poids
d'additifs, lesdits additifs comprenant 0,3 % en poids à 1,3 % en poids de monooléate
de glycérol en pourcentage du poids total du lubrifiant pour moteurs, dans laquelle
ledit au moins un diester, ou un mélange desdits diesters si plus d'un est présent,
a une viscosité cinématique à 100 °C ne dépassant pas 3,3 cSt, un indice de viscosité
d'au moins 130, un point d'écoulement ne dépassant pas -30 °C et une perte par évaporation
selon Noack ne dépassant pas 15 % en poids et ledit au moins un diester est sélectionné
dans le groupe constitué de produits réactionnels d'au moins un acide dicarboxylique
sélectionné parmi l'acide adipique, l'acide 3-méthyladipique et l'acide sébacique
ou un anhydride de ceux-ci avec au moins un alcool primaire sélectionné parmi le 1-octanol,
le 1-décanol et des mélanges de ceux-ci, le 2-éthylhexanol et l'alcool isononylique,
dans laquelle, si ledit au moins un acide est ramifié, au moins l'un desdits au moins
un alcool est linéaire et, si ledit au moins un acide est linéaire, au moins l'un
desdits au moins un alcool est ramifié.
2. Utilisation selon la revendication 1, dans laquelle le lubrifiant pour moteurs est
un lubrifiant pour moteurs SAE 0W.
3. Utilisation selon les revendications 1 ou 2, dans laquelle le lubrifiant pour moteurs
comprend au moins 25 % en poids et jusqu'à 40 % en poids dudit au moins un diester.
4. Utilisation selon l'une quelconque des revendications 1 à 3, dans laquelle le lubrifiant
pour moteurs comprend des constituants lubrifiants sélectionnés dans les Groupes III,
IV et V de la classification API et des mélanges de ceux-ci.
5. Utilisation selon la revendication 4, dans laquelle le lubrifiant pour moteurs se
compose essentiellement dudit au moins un diester, desdits additifs et d'au moins
un lubrifiant du Groupe V de la classification API.
6. Utilisation selon l'une quelconque des revendications précédentes, dans laquelle ledit
au moins un diester a une viscosité cinématique à 100 °C ne dépassant pas 3,0 cSt
et/ou un indice de viscosité d'au moins 140 et/ou un point d'écoulement ne dépassant
pas -35 °C et/ou une perte par évaporation selon Noack ne dépassant pas 14,0 % en
poids.
7. Utilisation selon l'une quelconque des revendications précédentes, dans laquelle lesdits
diesters sont sélectionnés dans le groupe constitué de l'adipate de di-isononyle,
du 3-méthyladipate de di-n-octyle, du sébaçate de di-2-éthylhexyle, et de mélanges
de ceux-ci.
8. Utilisation selon l'une quelconque des revendications précédentes, dans laquelle le
lubrifiant pour moteurs ne comprend pas plus de 10 % en poids desdits additifs.
9. Procédé de lubrification d'un moteur à quatre temps, comprenant la lubrification dudit
moteur avec un lubrifiant pour moteurs tel que défini dans l'une quelconque des revendications
précédentes.