[0001] This invention is directed to a lubricating oil composition containing an oxygenated
(hydroxy) ester of a dimer acid in combination with an oil soluble alkanol phosphate
to provide improved friction reducing properties and to a method of reducing friction
in an internal combustion engine by using a lubricating oil composition which contains
said additives.
[0002] European published patent application 93 598A discloses a lubricating oil composition
containing, as a friction reducing additive, the reaction product of a dimer carboxylic
acid having a total of 24 to 90 carbon atoms and a polyhydric alcohol having at least
three hydroxyl groups and 3 to 18 carbon atoms.
[0003] UK patent 708 017 discloses a lubricating oil composition containing a fatty acid
ester of an alcohol as an oiliness agent combined with an alkyl phosphate as a film
strength improver. The ester is preferably an ester of a fatty acid containing between
10 to 20 carbon atoms and a monohydric alcohol. The alkyl phosphate is preferably
a trialkyl phosphate. The two additives act together synergistically to improve the
load bearing properties of the lubricating oil composition. The composition is particularly
suitable for turbine oils.
[0004] The friction reducing additive which is used in this invention is an oil soluble
oxygenated (hydroxy) ester of a dimer acid (HEDA hydroxy ester of dimer acid) in combination
with an oil soluble alkanol or alkyl phosphate, wherein the oxygenated (hydroxy) ester
is characterized by the formula:

where R is selected from the group consisting of
-CH₂CH₂⁅-OCH₂CH₂]
nOH;
with n being equal to 1 to 5 (hereafter designated as HEDA);
-CH₂-CH₂-N(CH₂CH₂OH)₂
(hereinafter designated as LA214);
and
(hereinafter designated as LA200).
[0005] The use of an oxygenated (hydroxy) ester of the dimer acid as a friction-reducing
agent for oils in a gasoline engine can be limited by poor solubility in the lubricating
oil and adverse interactions with other lubricating oil components, wherein some of
these interactions show up as sediment formation. The present invention teaches that
the solubilization and stabilization of the dimer acid esters in the lubricating oils
is improved by the addition of an oil-soluble alkanol or alkyl phosphate.
[0006] The oxygenated (hydroxy) esters of the dimer acid are classified as reaction products
of a dimer carboxylic acid and a polyhydric alcohol. Such a reaction product may be
a partial, di- or polyester, with typical formulae represented as follows when using
a trihydric alcohol:

wherein Rʺ is the hydrocarbon radical of the dimer acid; each R and Rʹ may be the
same or different hydrocarbon radicals associated with a trihydric alcohol; and n
is an integer which typically is 1 to 5 or higher. It will, of course, be appreciated
that the ester reaction products can be obtained by reacting a dimer carboxylic acid
or a mixture of such acids with a trihydric alcohol or other polyhydric alcohol or
mixtures of such alcohols.
[0007] The alcohol used in preparing the friction reducing reaction product additive of
this invention is a polyhydric alcohol having at least 2 hydroxy groups and from 3
to 18 carbon atoms. Generally, such compounds will be aliphatic and may contain branched
or unbranched hydrocarbon groups, as well as other functional groups, such as nitrogen,
sulfur and phosphorus. Such polyhydric alcohols will contain at least 2 hydroxyl groups
and may contain more, generally from 3 to 6 hydroxyl groups, with the upper amount
limited by the degree of solubility and effectiveness of the reaction product in the
lubricating oil composition. Preferably, such polyhydric alcohol will contain 2 to
4 hydroxyl groups and 3 to 12 carbon atoms. More preferably, such polyhydric alcohol
will be saturated, contain 3 hydroxyl groups and 3 to 8 carbon atoms. Compounds of
this type include diethylene glycol, glycerol (i.e., 1, 2, 3, propane triol), 1, 2,
6-trihydroxyhexane and 2, 2ʹ, 2ʺ nitrilotriethanol.
[0008] The carboxylic acid used in preparing the oxygenated (hydroxy) esters of the dimer
acid friction reducing reaction product of this invention will be a dimer of an aliphatic
saturated or unsaturated carboxylic acid, said dimer acid having a total of 24 to
90 carbon atoms, and from 9 to 42 carbon between the carboxylic acid groups. Preferably,
the dimer acid will have a total of 24 to 60 carbon atoms and 12 to 42 carbon atoms
between the carboxylic acid groups, and more preferably a total of 24 to 44 carbon
atoms and 16 to 22 carbon atoms between the carboxylic acid groups.
[0009] The molar quantities of the dimer acid and polyhydric alcohol reactants may be adjusted
so as to secure either a complete ester or partial ester and generally from 1 to 3
or more moles of polyhydric alcohol will be used per mole of dimer acid and preferably
from 2 to 3 moles of alcohol per mole of acid.
[0010] While any of the dimer acids and polyhydric alcohols described above may be used
in preparing the friction reducing additive of this invention, the most preferred
esters, as set forth above, are those wherein the carboxyl groups are separated from
the closest carboxyl group by from 2 to 12 carbon atoms. Particularly useful ester
additives are obtained when the acid used is a dimer of a fatty acid, preferably those
fatty acids containing 12 to 22 carbon atoms. Such dimers are, of course, clearly
taught in U. S. Patent No. 3,180,832, which was granted on April 27, 1965, and U.
S. Patent No. 3,429,817, which was granted on February 25, 1969, and as here indicated
the hydrocarbon portion of the dimer carboxylic acid thus obtained may contain a 6
member ring. The formation of the dimer from linoleic acid, oleic acid and mixtures
of these acids is illustrated by the following reactions:

It will, of course, be appreciated that while the reactions illustrated produce the
dimers, commercial application of the reactions will generally also lead to trimer
formation and, in some cases, the product thus obtained will contain minor amounts
of unreacted monomer or monomers. As a result, commercially available dimer acids
may contain as much as 25% trimer and the use of such mixtures is within the scope
of the present invention. It is also noted that prepared dimer acids may be saturated
or unsaturated. While in some instances the unsaturated dimer acids are preferred,
it is also contemplated that if desired dimer acids formed having one or more saturated
bonds may have such unsaturation removed, e.g., by hydrogenation.
[0011] The ester friction reducing additive of this invention will generally be used at
a concentratoin level of from 0.1 to 2.0 parts by weight per 100 parts of lubricating
oil composition, more preferably from 0.1 to 1.0, and most preferably from 0.2 to
1.0 parts.
[0012] The oil soluble alkanols which are added to the lubricating base oil and the oxygenated
(hydroxy) ester of the dimer acid are:

wherein R = 2-16 carbon atoms and is straight chained or branched and Rʹ is H or a
straight or branched hydrocarbon chain containing 1 to 5 carbon atoms.
[0013] The oil-soluble alkanol will generally be used at a concentration of from 1 to 10
parts by weight per part of the ester friction reducing additive, more preferably
1 to 5, and most preferably about 2 to about 4.
[0014] The lubricating base oil will generally comprise a major amount of the lubricating
composition, i.e., at least 50% by weight thereof, and will include liquid hydrocarbons,
such as the mineral lubricating oils and the synthetic lubricating oils, and mixtures
thereof. The synthetic oils which can be used include diester oils, such as di(2-ethylhexyl)
sebacate, azelate and adipate; complex ester oils, such as those formed from dicarboxylic
acids, glycols and either monobasic acids or monohydric alcohols; silicone oils; sulfide
esters; organic carbonates; and other synthetic oils known in the art.
[0015] Other additives, known in the art, may be added to the oil composition of the present
invention to form a finished oil. Such additives include dispersants, antiwear agents,
antioxidants, corrosion inhibitors, detergents, pour point depressants, extreme pressure
additives, viscosity index improvers, etc. These additives are typically disclosed,
for example, in
Lubricant Additives by C. V. Smalheer and R. Kennedy Smith, 1967, pages 1-11, and in U. S. Patent No.
4,105,571.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0016] The following Examples are further illustrative of this invention and are not to
be construed as limitations thereof.
Example 1
[0017] Oils A and B are fully formulated SF quality SAE 10W-30 passenger car engine oils.
Each oil is formulated with standard additives used in the industry to meet the requirements
of current gasoline engines. Oils A and B contain the sam viscosity index improvers,
dispersants, detergents, antioxidants, pour depressants and antifoamant additives.
Oil A contains a zinc dialkyl dithiophosphate antiwear additive made with primary
alcohols, while oil B contains a zinc dialkyl dithiophosphate antiwear additive made
with secondary alcohols. This is the only difference between oils A and B.
[0018] Oil A and oil B, each formulated with 0.5 weight percent HEDA solubilized with C₈Oh
at a 3/1 alcohol/HEDA weight ratio were tested for relative friction using a ball
on cylinder test, described in the
Journal of the American Society of Lubricating Engineers, entitled
ASLE Transactions, Volume 4, pages 1-11, 1961. In essence, the apparatus consists basically of a fixed
metal ball loaded against a rotating cylinder. The weight on the ball and the rotation
of the cylinder can be varied during any given test or from test to test. Also, the
time of any given test can be varied. Generally, however, steel on steel is used at
a constant load, constant rpm, and a fixed time and in each of the tests of these
examples a 4 Kg load, 0.26 rpm and 70 minutes was used.

[0019] As summarized above, oil A and oil B, each with 0.5 weight percent HEDA and 1.5 weight
percent C₈OH, gave lower BOC friction than the base case oils without HEDA/C₈ alcohol
(oil A or oil B). As indicated in U. S. Patent No. 4,479,883, the BOC data on the
oxidized oil from the 3 hour Lube Stability Test (LST) is a better predictor of fuel
economy differences during field service than fresh oil data.
Example 2
Example 3
[0021] A series of alkanols, including C₆, C₈ and C₁₃, were used as solubilization agents
with HEDA in lubricating oils A and B. Shown in Table II is the appearance of the
oils using 0.5 weight percent HEDA solubilized by the alkanols. As illustrated, solubilization
of HEDA in oil B requires more alkanol than required by oil A to obtain a bright and
clear oil. To test the stability of these systems, oil A, containing 0.5 weight percent
of HEDA, solubilized with 3 parts of C₈OH per part of HEDA was stored two months at
22°C with no apparent change. In addition, this oil was temperature cycled for one-half
hour at 100°C, one and one-half hours at -14°C, one-half hour at -40°C and one hour
at 100°C with no apparent change in clarity. Also indicated is the criticality of
the chain length in the alkanol. C₁₃OH is less effective in solubilizing HEDA in both
oil A and oil B relative to C₈OH and C₆OH.
TABLE II
| Solubilization of 0.5 Wt.% HEDA by Oxo-Alcohols |
| |
|
|
Appearance(¹ |
| Alcohol |
B. P. oC |
Alcohol Ester Ratio |
Oil A |
Oil B |
| C₆OH |
151° |
2/1 |
1 |
2 |
| 3/1 |
1 |
1 |
| 4/1 |
1 |
1 |
| C₈ OH |
183° |
2/1 |
1 |
2 |
| 3/1 |
1 |
|
| 4/1 |
1 |
1 |
| C₁₃ OH |
260° |
4/1 |
2 |
2 |
| (1) 1-Bright and Clear; 2-Clear |
1. A lubricating oil composition comprising:
(a) a lubricating base oil;
(b) from 0.1 to 2.0 parts by weight per 100 parts by weight of said lubricating oil
composition of the reaction product of a dimer carboxylic acid having a total of 24
to 90 carbon atoms with 9 to 42 carbon atoms between carboxylic acid groups and a
polyhydric alcohol having at least 3 to 18 carbon atoms, said reaction product being
formed using from 1 to 3 moles of alcohol per mole of dimer acid; and
(c) from 1 to 10 parts by weight of an oil soluble compound per part of the reaction
product of (b) wherein said oil soluble compound is selected from the alkanols and
alkyl phosphates.
2. The composition of claim 1 wherein said dimer carboxylic acid has 24 to 60 carbon
atoms and said polyhydric alcohol has 3 to 12 carbon atoms.
3. The composition of claim 1 or claim 2 wherein said polyhydric alcohol has 2 or more
hydroxyl groups.
4. The composition of any one of claims 1 to 3 wherein from 0.1 to 1.0 parts by weight
of said reaction product is used per 100 parts by weight of lubricating oil composition.
5. The composition of any one of claims 1 to 4 wherein said alcohol is selected from
diethylene glycol, glycerol, 1, 2, 6 trihydroxyhexane and 2, 2', 2" nitrilotriethanol.
6. The composition of any one of claims 1 to 5 wherein said carboxylic acid is a fatty
acid which contains 12 to 22 carbon atoms.
7. The composition of any one of claims 1 to 6 wherein from 0.1 to 1.0 parts by weight
(pbw) of said reaction product is used per 100 pbw of the composition, and said alcohol
is selected from diethylene glycol, glycerol, 1, 2, 6 trihydroxyhexane and 2, 2',
2" nitrilotriethanol.
8. The composition of any one of claims 1 to 7 wherein said alkanol is characterized
by the formula:

where R = 2-16 carbon atoms and can be linear or branched and R' is H or a straight
or branched hydrocarbon chain containing 1 to 5 carbon atoms.
9. The composition of any one of claims 1 to 8 wherein said alkyl phosphate is characterized
by the formula:

where R₁ is an alkyl or alkyl aryl group of 6-18 carbons on the alkyl chain and R₂
is the same as R₁ or H.
10. A method of reducing friction in an internal combustion engine comprising lubricating
said engine using a lubricating oil composition containing from 0.1 to 2 parts by
weight per 100 parts by weight of said lubricating oil composition of an additive
which is the reaction product of a dimer carboxylic acid having 24 to 90 carbon atoms
and a polyhydric alcohol having at least 2 hydroxyl groups and 3 to 18 carbon atoms,
in combination with an oil soluble compound selected from the group consisting of
alkanols and alkyl phosphates.
1. Composition d'huile lubrifiante, comprenant :
(a) une huile de base lubrifiante;
(b) de 0,1 à 2,0 parties en poids pour 100 parties en poids de ladite composition
d'huile lubrifiante, du produit de réaction d'un acide carboxylique dimère comportant
un total de 24 à 90 atomes de carbone, 9 à 42 atomes de carbone étant répartis entre
les groupes acides carboxyliques, et d'un polyalcool comportant au moins 3 à 18 atomes
de carbone, ledit produit de réaction étant formé au moyen de 1 à 3 moles d'alcool
par mole d'acide dimère; et
(c) de 1 à 10 parties en poids d'un composé oléosoluble par partie du produit de réaction
de (b), dans lequel ledit composé oléosoluble est choisi parmi les alcanols et les
phosphates d'alkyle.
2. Composition selon la revendication 1, dans laquelle ledit acide carboxylique dimère
comporte 24 à 60 atomes de carbone et ledit polyalcool comporte 3 à 12 atomes de carbone.
3. Composition selon la revendication 1 ou 2, dans laquelle le polyalcool comporte 2
groupes hydroxyle ou plus.
4. Composition selon l'une quelconque des revendications 1 à 3, dans laquelle on utilise
de 0,1 à 1,0 partie en poids dudit produit de réaction pour 100 parties en poids de
composition d'huile lubrifiante.
5. Composition selon l'une quelconque des revendications 1 à 4, dans laquelle ledit alcool
est choisi parmi le diéthylèneglycol, le glycérol, le 1,2,6-trihydroxyhexane et le
2,2',2"-nitrilotriéthanol.
6. Composition selon l'une quelconque des revendications 1 à 5, dans laquelle ledit acide
carboxylique est un acide gras qui contient 12 à 22 atomes de carbone.
7. Composition selon l'une quelconque des revendications 1 à 6, dans laquelle on utilise
de 0,1 à 1,0 parties en poids dudit produit de réaction, pour 100 parties en poids
de la composition, et ledit alcool est choisi parmi le diéthylèneglycol, le glycérol,
le 1,2,6-trihydroxyhexane et le 2,2',2"-nitrilotriéthanol.
8. Composition selon l'une quelconque des revendications 1 à 7, dans laquelle ledit alcanol
est caractérisé par la formule :

dans laquelle R = 2-16 atomes de carbone et peut être linéaire ou ramifié et R' est
H ou une chaîne hydrocarbonée linéaire ou ramifiée contenant 1 à 5 atomes de carbone.
9. Composition selon l'une quelconque des revendications 1 à 8, dans laquelle ledit phosphate
d'alkyle est caractérisé par la formule :

dans laquelle R₁ est un groupe alkyle ou alkylaryle de 6-18 atomes de carbone sur
la chaîne alkyle et R₂ est identique à R₁ ou est H.
10. Procédé pour réduire le frottement dans un moteur à combustion interne, comprenant
la lubrification dudit moteur au moyen d'une composition d'huile lubrifiante contenant
de 0,1 à 2 parties en poids, pour 100 parties en poids de ladite composition d'huile
lubrifiante, d'un additif qui est le produit de réaction d'un acide carboxylique dimère
comportant 24 à 90 atomes de carbone et d'un polyalcool comportant au moins 2 groupes
hydroxyle et 3 à 18 atomes de carbone, en combinaison avec un composé oléosoluble
choisi dans le groupe constitué par les alcanols et les phosphates d'alkyle.
1. Schmierölzusammensetzung, die
a) ein Basisschmieröl;
b) 0,1 bis 2,0 Gewichtsteile pro 100 Gewichtsteile der Schmierölzusammensetzung des
Reaktionsprodukts einer dimeren Carbonsäure mit insgesamt 24 bis 90 Kohlenstoffatomen
und 9 bis 42 Kohlenstoffatomen zwischen den Carbonsäuregruppen und einem mehrwertigen
Alkohol mit mindestens 3 bis 18 Kohlenstoffatomen, wobei das Reaktionsprodukt unter
Verwendung von 1 bis 3 Molen Alkohol pro Mol dimerer Säure gebildet worden ist; und
c) ein bis 10 Gewichtsteile einer öllöslichen Verbindung pro Teil des Reaktionsprodukts
aus b), wobei die öllösliche Verbindung ausgewählt ist aus den Alkanolen und Alkylphosphaten,
umfaßt.
2. Zusammensetzung nach Anspruch 1, bei der die dimere Carbonsäure 24 bis 60 Kohlenstoffatome
aufweist und der mehrwertige Alkohol 3 bis 12 Kohlenstoffatome aufweist.
3. Zusammensetzung nach Anspruch 1 oder 2, bei der der mehrwertige Alkohol 2 oder mehr
Hydroxylgruppen aufweist.
4. Zusammensetzung nach einem der Ansprüche 1 bis 3, bei der 0,1 bis 1,0 Gewichtsteile
des Reaktionsprodukts pro 100 Gewichtsteile der Schmierölzusammensetzung eingesetzt
worden sind.
5. Zusammensetzung nach einem der Ansprüche 1 bis 4, bei dem der Alkohol ausgewählt ist
aus Diethylenglykol, Glycerin, 1,2,6-Trihydroxyhexan und 2,2',2"-Nitrilotriethanol.
6. Zusammensetzung nach einem der Ansprüche 1 bis 5, bei dem die Carbonsäure eine Fettsäure
ist, die 12 bis 22 Kohlenstoffatome enthält.
7. Zusammensetzung nach einem der Ansprüche 1 bis 6, bei der 0,1 bis 1,0 Gewichtsteile
(pbw) des Reaktionsprodukts pro 100 pbw der Zusammensetzung eingesetzt worden sind
und der Alkohol ausgewählt ist aus Diethylenglykol, Glycerin, 1,2',6-Trihydroxyhexan
und 2,2',2"-Nitrilotriethanol.
8. Zusammensetzung nach einem der Ansprüche 1 bis 7, bei der das Alkanol durch die Formel:

gekennzeichnet ist, wobei R 2 bis 16 Kohlenstoffatome enthält und linear oder verzweigt
sein kann und R' Wasserstoff oder eine gerade oder verzweigte Kohlenwasserstoffkette
ist, die 1 bis 5 Kohlenstoffatome enthält.
9. Zusammensetzung nach einem der Ansprüche 1 bis 8, bei der das Alkylphosphat durch
die Formel

gekennzeichnet ist, wobei R₁ ein Alkyl- oder eine Alkylarylgruppe mit 6 bis 18 Kohlenstoffen
in der Alkylkette ist und R₂ das gleiche wie R₁ oder H ist.
10. Verfahren zur Reibungsminderung in einem Verbrennungsmotor, bei dem der Motor geschmiert
wird, indem eine Schmierölzusammensetzung verwendet wird, die 0,1 bis 2 Gewichtsteile
pro 100 Gewichtsteile der Schmierölzusammensetzung eines Additivs enthält, daß das
Reaktionspropdukt in der dimeren Carbonsäure mit 24 bis 90 Kohlenstoffatomen und eines
mehrwertigen Alkohols mit mindestens zwei Hydroxylgruppen und 3 bis 18 Kohlenstoffatomen
ist, in Kombination mit einer öl-löslichen Verbindung ausgewählt aus der Gruppe bestehend
aus Alkanolen und Alkylphosphaten.