Low viscosity lubricating oil composition

A lubricating oil composition with diester base oils and boron-containing dispersants addresses high volatility in low viscosity engine oils by reducing evaporative losses and improving fuel efficiency.

JP7777397B2Active Publication Date: 2025-11-28CHEVRON JAPAN
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Patent Information

Application Number
JP2021045466
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-03-20
Filing Date
2021-03-19
Publication Date
2025-11-28
Estimated Expiration
2041-03-19

AI Technical Summary

Technical Problem

Low viscosity engine oils exhibit high volatility, leading to increased evaporation losses and reduced fuel economy, which existing formulations with low volatility base oils like esters and poly-α-olefins fail to address effectively, especially in low viscosity grades such as 0W-12, 0W-8, and 0W-4.

Method used

A lubricating oil composition comprising diester base oils with specific kinematic viscosity and viscosity index, combined with boron-containing dispersants, to reduce evaporative losses and improve fuel efficiency.

Benefits of technology

The composition achieves lower NOACK volatility without increasing viscosity, thereby reducing evaporation loss and enhancing fuel efficiency in internal combustion engines.

✦ Generated by Eureka AI based on patent content.

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Abstract

To overcome the disadvantage of low-viscosity lubricating oils that they can have high volatility leading to high evaporation loss (i.e. increased oil consumption).SOLUTION: The invention generally relates to lubricating oil compositions useful for reducing NOACK volatility in finished lubricating oils of an internal combustion engine. Also disclosed is a method for reducing NOACK volatility in finished lubricating oils in the engine.SELECTED DRAWING: None
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Description

[Background technology]

[0001] The lubricant industry is actively engaged in research related to improving fuel economy. One well-known method of increasing fuel economy is to reduce the viscosity of the lubricating oil. Engine oils that exhibit good fuel economy performance are typically formulated to have low viscosity oils. Viscosity index improvers (VII) are often used to reduce fluid friction due to viscous drag at low temperatures. A disadvantage of low viscosity engine oils is that they can have high volatility (i.e., increased oil consumption) that leads to high evaporation losses.

[0002] Attempts to overcome the above problems include formulating with low volatility base oils, such as esters and poly-α-olefins, but these low volatility base oils may not be suitable for low viscosity engine oils, such as 0W-12, 0W-8, and 0W-4. Summary of the Invention

[0003] According to one embodiment of the present invention, there is provided a lubricating oil composition comprising: [ka] wherein each R is independently C1 to C 20 n is an integer of 1 to 8, and the diester has a kinematic viscosity of 2.5 to 3.5 mm at 100°C according to ASTM D445. 2 and 75 to 500 ppm of boron, based on the total weight of the lubricating oil composition, provided by one or more boron-containing dispersants.

[0004] According to another embodiment of the present invention, there is provided a method for reducing evaporative losses in an internal combustion engine, comprising: [ka] wherein each R is independently C1 to C 20 wherein n is an integer of 1 to 8, and the diester has a kinematic viscosity at 100°C according to ASTM D445 of 2.5 to 3.5 mm 2 / s and a viscosity index according to ASTM D2270 of 110 to 175; and 75 to 500 ppm boron, based on the total weight of the lubricating oil composition, the boron being provided by one or more boron-containing dispersants.

[0005] In accordance with yet another embodiment of the present invention, there is provided a method for improving the fuel efficiency of an engine, comprising: [ka] wherein each R is independently C1 to C 20 wherein n is an integer of 1 to 8, and the diester has a kinematic viscosity at 100°C according to ASTM D445 of 2.5 to 3.5 mm 2 / s and a viscosity index according to ASTM D2270 of 110 to 175; and 75 to 500 ppm of boron, based on the total weight of the lubricating oil composition, the boron being provided by one or more boron-containing dispersants. DETAILED DESCRIPTION OF THE INVENTION

[0006] While the present disclosure is susceptible to various modifications and alternative forms, specific embodiments thereof are described in detail herein. It should be understood, however, that the description of specific embodiments herein is not intended to limit the disclosure to the particular forms disclosed, but rather to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the present disclosure as set forth in the appended claims.

[0007] To facilitate understanding of the subject matter disclosed herein, certain terms, abbreviations or other shorthand forms used herein are defined below. Any term, abbreviation or shorthand form not defined will be understood to have its ordinary meaning as used by one of ordinary skill in the art contemporaneous with the filing of this application.

[0008] definition As used herein, the following terms have the following meanings unless expressly stated otherwise: As used herein, the following words and phrases have the following meanings, if and when used.

[0009] By "major amount" is meant greater than 50% by weight of the composition.

[0010] "Minor amount" means less than 50% by weight of the composition, and is used in reference to the additive being described, and also in reference to the total mass of all additives present in the composition, considered to be the active ingredient(s) of the additive.

[0011] "Active ingredient" or "active substance" or "oil-free" means an additive material that is not a diluent or solvent.

[0012] All percentages reported are weight percent based on active ingredient (ie, without consideration of carrier or diluent oil) unless otherwise specified.

[0013] The abbreviation "ppm" means parts per million by weight, based on the total weight of the lubricating oil composition.

[0014] High temperature high shear (HTHS) viscosity at 150°C was determined according to ASTM D4683.

[0015] Kinematic viscosity at 100°C (KV100) was determined according to ASTM D445.

[0016] Metal - The term "metal" means an alkali metal, an alkaline earth metal, or a mixture thereof.

[0017] The terms "oil-soluble" or "dispersible" are used to indicate that the amount necessary to provide the desired activity or performance level can be incorporated by dissolving, dispersing, or suspending in an oil of lubricating viscosity. Typically, this means that at least about 0.001 wt. % of the material can be incorporated into a lubricating oil composition. For a further discussion of the terms oil-solubility and dispersibility, particularly "stable dispersibility," see U.S. Pat. No. 4,320,019, the teachings of which on this point are expressly incorporated herein by reference.

[0018] As used herein, the term "sulfated ash" means the non-combustible residue resulting from detergents and metallic additives in a lubricating oil. Sulfated ash may be determined using ASTM test D874.

[0019] As used herein, the term "Total Base Number" or "TBN" means the amount of base equivalent to milligrams of KOH in one gram of sample. Thus, a higher TBN number represents a more alkaline product, i.e., higher alkalinity. TBN was determined using the ASTM D 2896 test.

[0020] The boron, calcium, magnesium, molybdenum, phosphorus, sulfur and zinc contents were determined according to ASTM D5185.

[0021] Nitrogen content was determined according to ASTM D4629.

[0022] NOACK volatility was determined by either ASTM D5800A-D or ASTM D6417.

[0023] Unless otherwise specified, all percentages are by weight.

[0024] While the present disclosure is susceptible to various modifications and alternative forms, specific embodiments thereof are described in detail herein. It should be understood, however, that the description of specific embodiments herein is not intended to limit the disclosure to the particular forms disclosed, but rather to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the present disclosure as set forth in the appended claims.

[0025] It should be noted that not all operations described in the general description or examples are necessarily required, some of the specific operations may not be required, and one or more subsequent operations may be performed in addition to the operations described. Furthermore, the order in which the operations are listed is not necessarily the order in which they are performed.

[0026] Although benefits, other advantages, and solutions to problems have been described herein with respect to particular embodiments, the benefits, other advantages, solutions to problems, and one or more features by which a benefit, advantage, or solution may be derived or made more pronounced, should not be construed as a key, required, or essential feature of any or all of the claims.

[0027] The detailed descriptions and examples of embodiments provided herein are intended to provide a general understanding of the structure of the various embodiments.

[0028] As used herein, the terms "comprises," "comprising," "includes," "including," "has," "having," or any other variation thereof, are intended to cover a non-exclusive inclusion. For example, a process, method, article, or apparatus that includes a list of features is not necessarily limited to only those features but may include other features not expressly listed or other features inherent in such process, method, article, or apparatus. Furthermore, unless expressly stated otherwise, "or" refers to an inclusive or, not an exclusive or. For example, a condition A or B is satisfied by any one of the following: A is true (or exists) and B is false (or does not exist), A is false (or does not exist) and B is true (or exists), or A and B are true (or exist).

[0029] The terms "a" or "an" are used to describe elements and components described herein. This is done merely for convenience and to give a general sense of the scope of the embodiments of the present disclosure. This description should be read to include one or at least one, and the singular also encompasses the plural, and vice versa, unless otherwise apparent. The term "average," when referring to a value, is intended to mean the mean, geometric mean, or median. Group numbers corresponding to columns in the Periodic Table of the Elements use the "New Notation" convention found in the CRC Handbook of Chemistry and Physics, 81st Edition (2000-2001).

[0030] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs. The materials, methods, and examples are illustrative only and are not intended to be limiting. To the extent not described herein, many details regarding specific materials and processing practices are conventional and can be found in lubricant and oil and gas industry textbooks and other sources.

[0031] The specification and examples are not intended to serve as an exhaustive and comprehensive description of all elements and features of formulations, compositions, devices, and systems that utilize the structures or methods described herein. Separate embodiments may be provided in combination in a single embodiment, and conversely, for brevity, various features described in the context of a single embodiment may be provided separately or in any subcombination. Furthermore, reference to values ​​described in ranges includes each value and every value within that range. Many other embodiments may become apparent to those skilled in the art upon reading this specification. Other embodiments may be utilized and derived from the present disclosure, such that structural substitutions, logical substitutions, or other changes may be made without departing from the scope of the disclosure. Accordingly, the present disclosure should be considered illustrative and not restrictive.

[0032] It has been found that lubricating oil compositions containing diester base oils and borated dispersants result in lower NOACK volatility without increasing the viscosity of the oil, which reduces evaporation loss of the lubricating oil compositions compared to other lubricating oil compositions formulated to have low viscosity.

[0033] The present disclosure provides a lubricating oil composition comprising: a. Below, [ka] wherein each R is independently C1 to C20 wherein n is an integer of 1 to 8, and the diester has a kinematic viscosity at 100°C according to ASTM D445 of 2.5 to 3.5 mm 2 / s and a viscosity index according to ASTM D2270 of 110 to 175; b. 75 to 500 ppm boron, based on the total weight of the lubricating oil composition, said boron being provided by one or more boron-containing dispersants.

[0034] Also disclosed is a method for reducing evaporative losses or improving fuel efficiency in an internal combustion engine, comprising: a. Below, [ka] wherein each R is independently C1 to C 20 wherein n is an integer of 1 to 8, and the diester has a kinematic viscosity at 100°C according to ASTM D445 of 2.5 to 3.5 mm 2 / s and a viscosity index according to ASTM D2270 of 110 to 175; b. lubricating the engine with a lubricating oil composition comprising: 75 to 500 ppm boron, based on the total weight of the lubricating oil composition, said boron provided by one or more boron-containing dispersants.

[0035] Also provided is a use of a lubricating oil composition for reducing evaporation losses or improving fuel efficiency in an internal combustion engine, the lubricating oil composition comprising: a. Below, [ka] wherein each R is independently C1 to C 20wherein n is an integer of 1 to 8, and the diester has a kinematic viscosity at 100°C according to ASTM D445 of 2.5 to 3.5 mm 2 / s and a viscosity index according to ASTM D2270 of 110 to 175; b. 75 to 500 ppm boron, based on the total weight of the lubricating oil composition, said boron being provided by one or more boron-containing dispersants.

[0036] The lubricating oil compositions of the present invention contain synergistically acting components that reduce NOACK volatility while maintaining a low lubricating oil viscosity. These components can be particularly useful in formulating lubricating oils that exhibit desirable properties, such as improved fuel efficiency in engines.

[0037] base oil In one embodiment, the present disclosure provides one or more base oils, including one or more diester base oils and optionally additional base oils, wherein the total amount of the one or more base oils is from about 50 to about 99 wt. % based on the finished lubricant.

[0038] In one embodiment, the diester is: [ka] and each R independently has one of the structures C1 to C 20 and n is an integer from 1 to 8. In one embodiment, each R is independently selected from the group consisting of C1 to C 18 In one embodiment, each R is independently selected from the group consisting of a saturated or unsaturated alkyl group of C1 to C 16 In one embodiment, each R is independently selected from the group consisting of a saturated or unsaturated alkyl group of C1 to C 14 In one embodiment, each R is independently selected from the group consisting of a saturated or unsaturated alkyl group of C1 to C 12 The saturated or unsaturated alkyl groups are selected from the group consisting of:

[0039] In one embodiment, the disclosure provides the diester base oil in an amount of 5-99 wt%, 25-99 wt%, 50-99 wt%, 55-99 wt%, 60-99 wt%, 65-99 wt%, 70-99 wt%, 75-99 wt%, or 80-99 wt%, based on the finished lubricant.

[0040] Usually, diesters are 2.5 to 3.5 mm 2 It has a kinematic viscosity at 100°C according to ASTM D445 of 1 / s.

[0041] Typically, the diester has a viscosity index according to ASTM D2270 of 110 to 175. In one embodiment, the diester has a viscosity index according to ASTM D2270 of 125 to 175, or 135 to 175.

[0042] Boron-containing dispersants Examples of boron-containing dispersants include borated ashless dispersants such as borated polyalkenyl succinic anhydrides, borated nitrogen-free derivatives of polyalkylene succinic anhydrides, succinimides, carboxylic acid amides, hydrocarbyl monoamines, hydrocarbyl polyamines, Mannich bases, phosphonoamides, thiophosphonamides and phosphorus amides, thiazoles (e.g., 2,5-dimercapto-1,3,4-thiadiazole, mercaptobenzothiazole and derivatives thereof), triazoles (e.g., alkyltriazoles and benzotriazoles), copolymers containing carboxylic acid esters and one or more additional polar functional groups including amine, amide, imine, imide, hydroxy, carboxyl, etc. (e.g., products prepared by copolymerization of long chain alkyl acrylates or methacrylates with monomers of the above functional groups), and combinations thereof. Preferred boronated dispersants are succinimide derivatives containing boron, such as boronated polyisobutenyl succinimide.

[0043] An example of a boronated ashless dispersant is a boronated ashless hydrocarbyl succinimide dispersant prepared by reacting a hydrocarbyl succinic acid or anhydride with an amine. Preferred hydrocarbyl succinic acids or anhydrides are those in which the hydrocarbyl group is derived from a polymer of a C3 or C4 monoolefin, particularly polyisobutylene, and the polyisobutenyl group has a number average molecular weight (Mn) of 700 to 5,000, more preferably 900 to 2,500. Such dispersants generally have at least one, preferably 1 to 2, more preferably 1.1 to 1.8 succinic groups per polyisobutenyl group. In one embodiment, the oil-soluble or oil-dispersible boronated polyisobutylene succinimide dispersant is derived from a polyisobutylene group having a number average molecular weight of about 550 to about 5,000. In one embodiment, the oil-soluble or oil-dispersible boronated polyisobutylene succinimide dispersant is derived from a polyisobutylene group having a number average molecular weight of from about 550 to about 4000. In one embodiment, the oil-soluble or oil-dispersible boronated polyisobutylene succinimide dispersant is derived from a polyisobutylene group having a number average molecular weight of from about 550 to about 3000. In one embodiment, the oil-soluble or oil-dispersible boronated polyisobutylene succinimide dispersant is derived from a polyisobutylene group having a number average molecular weight of greater than about 550 up to about 2300. In one embodiment, the oil-soluble or oil-dispersible boronated polyisobutylene succinimide dispersant is derived from a polyisobutylene group having a number average molecular weight of from about 950 to about 2300. In one embodiment, the oil-soluble or oil-dispersible boronated polyisobutylene succinimide dispersant is derived from a polyisobutylene group having a number average molecular weight of about 950 to about 1300. In one embodiment, the oil-soluble or oil-dispersible boronated polyisobutylene succinimide dispersant is derived from a polyisobutylene group having a number average molecular weight of about 2300. In one embodiment, the oil-soluble or oil-dispersible boronated polyisobutylene succinimide dispersant is derived from a polyisobutylene group having a number average molecular weight of about 1300. In one embodiment, the oil-soluble or oil-dispersible boronated polyisobutylene succinimide dispersant is derived from a polyisobutylene group having a number average molecular weight of about 1000.

[0044] Preferred amines for the reaction to form succinimides are polyamines having 2 to 60 carbon atoms and 2 to 12 nitrogen atoms per molecule. Particularly preferred are polyamines of structure (3): NH2(CH2) n -(NH(CH2) n ) m -NH2 Structure (3) where n is 2-3 and m is 0-10. Illustrative examples include ethylenediamine, diethylenetriamine, triethylenetetramine, tetraethylenepentamine, tetrapropylenepentamine, pentaethylenehexamine, and the like, as well as commercially available mixtures of such polyamines. Like polyoxyalkylenepolyamines, amines containing other groups, such as amines containing hydroxy, alkoxy, amide, nitride, and imidazoline groups, can also be used. The amine is reacted with the alkenylsuccinic acid or anhydride in a conventional molar ratio of polyamine to alkenylsuccinic acid or anhydride, typically from about 1:1 to 10:1, preferably from 1:1 to 3:1, and preferably about 1:1, by heating the reactants to 100°C to 250°C, preferably 125°C to 175°C, for 1-10 hours, preferably 2-6 hours.

[0045] Boration of alkenyl succinimide dispersants is also well known in the art, as disclosed in U.S. Patent Nos. 3,087,936 and 3,254,025. The succinimides may be treated with a boron compound selected from the group consisting of boron, boron oxide, boron halides, boronic acids and their esters, in an amount to provide from 0.1 to 10 atomic ratios of boron for each atomic ratio of nitrogen in the dispersant.

[0046] The boronated product typically contains 0.1-2.0 wt. % boron, preferably 0.2-0.8 wt. % boron, based on the total weight of the boronated dispersant. The boron is believed to exist as a dehydrated boric acid polymer bound to the metaborate salt of the imide. The boronation reaction is readily carried out by adding 1-3 wt. % of the above boron compound, preferably boric acid, based on the weight of the dispersant to the dispersant as a slurry in mineral oil, heating with stirring at 135-165°C for 1-5 hours, followed by filtration to remove nitrogen from the product. Alternatively, boric acid may be added to the hot reaction mixture of succinic acid or anhydride and amine while removing water.

[0047] The boron-containing dispersant is present in an amount sufficient to provide 100 to 1000 ppm, 100 to 900 ppm, 100 to 800 ppm, 100 to 700 ppm of boron, based on the total weight of the lubricating oil composition.

[0048] Other dispersants Dispersants keep in suspension oil-insoluble materials resulting from oxidation during engine operation, thereby preventing sludge from flocculating and settling or depositing on metal parts. Dispersants useful herein include nitrogen-containing ashless (metal-free) dispersants known to be effective in reducing deposit formation when used in gasoline and diesel engines.

[0049] Suitable dispersants include hydrocarbyl succinimides, hydrocarbyl succinamides, mixed esters / amides of hydrocarbyl-substituted succinic acids, hydroxyesters of hydrocarbyl-substituted succinic acids, and Mannich condensation products of hydrocarbyl-substituted phenols, formaldehyde, and polyamines. Also suitable are condensation products of polyamines with hydrocarbyl-substituted phenyl acids. Mixtures of these dispersants can also be used.

[0050] Basic nitrogen-containing ashless dispersants are well-known lubricating oil additives, and their preparation methods are widely described in the patent literature. Preferred dispersants are alkenyl succinimides and alkenyl succinamides, where the alkenyl substituent is a long chain, preferably having more than 40 carbon atoms. These materials are easily prepared by reacting a hydrocarbyl-substituted dicarboxylic acid material with a molecule containing an amine functionality. Examples of suitable amines include polyamines, such as polyalkylene polyamines, hydroxy-substituted polyamines, and polyoxyalkylene polyamines.

[0051] As is known in the art, the dispersant may be post-treated (eg, with a boronating agent or cyclic carbonate).

[0052] Nitrogen-containing ashless (metal-free) dispersants are basic and contribute to the TBN of the lubricating oil composition to which they are added without contributing additional sulfated ash.

[0053] The dispersant may be present at 0.1 to 10 wt % (e.g., 0.5 to 8 wt %, 0.7 to 7 wt %, 0.7 to 6 wt %, 0.7 to 6 wt %, 0.7 to 5 wt %, 0.7 to 4 wt %) based on the actives level of the lubricating oil composition.

[0054] Nitrogen from the dispersant is present in an amount greater than 0.0050 wt.% to 0.30 wt.% (e.g., 0.0050-0.10 wt.%, 0.0050-0.080 wt.%, 0.0050-0.060 wt.%, 0.0050-0.050 wt.%, 0.0050-0.040 wt.%, 0.0050-0.030 wt.%), based on the weight of dispersant in the finished oil.

[0055] Detergent Detergents that can be used include oil-soluble, overbased sulfonates, sulfur-free phenates, sulfurized phenates, salixarates, salicylates, saligenins, complex detergents and naphthenate detergents of metals, particularly alkali or alkaline earth metals such as barium, sodium, potassium, lithium, calcium and magnesium, as well as other oil-soluble alkylhydroxybenzoates. The most commonly used metals are calcium and magnesium (both of which may be present in detergents used in lubricants) and mixtures of calcium and / or magnesium with sodium.

[0056] Overbased metal detergents are typically made by carbonating a mixture of a hydrocarbon, a detergent acid such as a sulfonic acid or alkylhydroxybenzoate, a metal oxide or hydroxide (e.g., calcium oxide or hydroxide), and a promoter such as xylene, methanol, and water. For example, to prepare overbased calcium sulfonate, calcium oxide or hydroxide reacts with gaseous carbon dioxide during the carbonation process to form calcium carbonate. The sulfonic acid is neutralized with excess CaO or Ca(OH) to form the sulfonate.

[0057] The overbased detergent may be low overbased, e.g., an overbased salt having a TBN of less than 100, based on active material. In one embodiment, the TBN of the low overbased salt may be from about 30 to about 100. In another embodiment, the TBN of the low overbased salt may be from about 30 to about 80. The overbased detergent may be medium overbased, e.g., an overbased salt having a TBN of from about 100 to about 250, based on active material. In one embodiment, the TBN of the medium overbased salt may be from about 100 to about 200. In another embodiment, the TBN of the medium overbased salt may be from about 125 to about 175. The overbased detergent may be high overbased, e.g., an overbased salt having a TBN of greater than 250, based on active material. In one embodiment, the TBN of the high overbased salt may be from about 250 to about 800, based on active material.

[0058] In one embodiment, the detergent can be one or more alkali metal or alkaline earth metal salts of alkyl-substituted hydroxyaromatic carboxylic acids. Suitable hydroxyaromatic compounds include monocyclic mono- and polyhydric aromatic hydrocarbons having 1 to 4, preferably 1 to 3, hydroxy groups. Suitable hydroxyaromatic compounds include phenol, catechol, resorcinol, hydroquinone, pyrogallol, cresol, and the like.

[0059] Generally, the amount of detergent can be from about 0.001% to about 50% by weight, or from about 0.05% to about 25% by weight, or from about 0.1% to about 20% by weight, or from about 0.01 to 15% by weight, based on the total weight of the lubricating oil composition.

[0060] Anti-wear agents The lubricating oil compositions disclosed herein may contain one or more antiwear agents. Antiwear agents reduce wear of metal parts. Suitable antiwear agents include dihydrocarbyl dithiophosphate metal salts, such as those represented by the following structure: Zn[SP(=S)(OR 1 )(OR 2 )] 2( 8) Zinc dihydrocarbyl dithiophosphate (ZDDP) of the formula 1 and R 2 R has 1 to 18 (e.g., 2 to 12) carbon atoms and may be the same or different hydrocarbyl groups, including, for example, alkyl, alkenyl, aryl, arylalkyl, alkaryl, and alicyclic groups. 1 Groups and R 2 Particularly preferred as the group are alkyl groups having 2 to 8 carbon atoms (for example, the alkyl group may be ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, n-pentyl, isopentyl, n-hexyl, isohexyl, or 2-ethylhexyl). To obtain oil solubility, the total number of carbon atoms (i.e., R 1+R 2 ) is at least 5. Thus, the zinc dihydrocarbyl dithiophosphate can include a zinc dialkyldithiophosphate. The zinc dialkyldithiophosphate is a primary zinc dialkyldithiophosphate, a secondary zinc dialkyldithiophosphate, or a combination thereof. ZDDP may be present at 3 wt % or less (e.g., 0.1 to 1.5 wt % or 0.5 to 1.0 wt %) of the lubricating oil composition. In one embodiment, the lubricating oil composition containing the magnesium salicylate detergent described herein further comprises an antioxidant compound. In one embodiment, the antioxidant is a diphenylamine antioxidant. In another embodiment, the antioxidant is a hindered phenol antioxidant. In yet another aspect, the antioxidant is a combination of a diphenylamine antioxidant and a hindered phenol antioxidant.

[0061] antioxidants The lubricating oil compositions disclosed herein may contain one or more antioxidants. Antioxidants reduce the tendency of mineral oils to deteriorate during use. Oxidative deterioration can be evidenced by sludge in the lubricant, i.e., varnish-like deposits on metal surfaces, and increased viscosity. Suitable antioxidants include hindered phenols, aromatic amines, and sulfurized alkylphenols and their alkali metal and alkaline earth metal salts.

[0062] Hindered phenol antioxidants often contain secondary and / or tertiary butyl groups as sterically hindering groups. The phenol group may be further substituted with a hydrocarbyl group (usually a linear or branched alkyl) and / or a bridging group connecting to a second aromatic group. Examples of suitable hindered phenol antioxidants include 2,6-di-tert-butylphenol, 4-methyl-2,6-di-tert-butylphenol, 4-ethyl-2,6-di-tert-butylphenol, 4-propyl-2,6-di-tert-butylphenol, 4-butyl-2,6-di-tert-butylphenol, and 4-dodecyl-2,6-di-tert-butylphenol. Other useful hindered phenol antioxidants include 2,6-di-alkyl-phenol propionate ester derivatives, such as IRGANOX (registered trademark in some countries) L-135 manufactured by Ciba, and bisphenol antioxidants, such as 4,4'-bis(2,6-di-tert-butylphenol) and 4,4'-methylenebis(2,6-di-tert-butylphenol).

[0063] Typical aromatic amine antioxidants have at least two aromatic groups attached directly to one amine nitrogen. Typical aromatic amine antioxidants have alkyl substituents with at least six carbon atoms. Specific examples of aromatic amine antioxidants useful herein include 4,4'-dioctyldiphenylamine, 4,4'-dinonyldiphenylamine, N-phenyl-1-naphthylamine, N-(4-tert-octylphenyl)-1-naphthylamine, and N-(4-octylphenyl)-1-naphthylamine. The antioxidant may be present at 0.01 to 5 wt % (e.g., 0.1 to 2 wt %) of the lubricating oil composition.

[0064] Antifoaming agents The lubricating oil compositions disclosed herein can include one or more antifoam agents to destroy foam in the oil. Non-limiting examples of suitable antifoam agents or antifoam inhibitors include silicone oils or polydimethylsiloxanes, fluorosilicones, alkoxylated fatty acids, polyethers (e.g., polyethylene glycols), branched polyvinyl ethers, alkyl acrylate polymers, alkyl methacrylate polymers, polyalkoxyamines, and combinations thereof.

[0065] Additional co-additives The lubricating oil compositions of the present disclosure may also contain other conventional additives. These additives can be dispersed or dissolved in the lubricating oil composition to impart or enhance any desired properties to the lubricating oil composition. Any additive known to those skilled in the art may be used in the lubricating oil compositions disclosed herein. Some suitable additives are described in Mortier et al., "Chemistry and Technology of Lubricants," 2nd Edition, London, Springer (1996) and Leslie R. Rudnick, "Lubricant Additives: Chemistry and Applications," New York, Marcel Dekker (2003), both of which are incorporated herein by reference. For example, the lubricating oil compositions can be formulated with antioxidants, antiwear agents, detergents such as metal detergents, rust inhibitors, dehazing agents, demulsifiers, metal deactivators, friction modifiers, pour point depressants, antifoam agents, cosolvents, corrosion inhibitors, ashless dispersants, multifunctional agents, dyes, extreme pressure additives, and the like, and mixtures thereof. A variety of additives are known and commercially available. These additives or similar compounds can be used in preparing the lubricating oil compositions of this disclosure using conventional blending procedures.

[0066] In preparing lubricating oil formulations, the additives are generally introduced into a hydrocarbon oil, such as a mineral lubricating oil or other suitable solvent, in the form of a 10 to 100% by weight concentrate of the active ingredient.

[0067] Typically, these concentrates may be diluted with 3 to 100 parts by weight, e.g., 5 to 40 parts by weight, of lubricating oil per part by weight of additive package to form a finished lubricant, such as a crankcase motor oil. The purpose of the concentrate, of course, is to make the various materials easier and more convenient to handle and to facilitate dissolution or dispersion in the final formulation.

[0068] Each of the foregoing additives is used in a functionally effective amount to impart the desired characteristics to the lubricant when used. Thus, for example, if an additive is a friction modifier, a functionally effective amount of the friction modifier would be an amount sufficient to impart the desired friction modifying characteristics to the lubricant.

[0069] In general, the concentration of each additive in the lubricating oil composition, if used, can range from about 0.001% to about 20%, about 0.01% to about 15%, or about 0.1% to about 10%, about 0.005% to about 5%, or about 0.1% to about 2.5% by weight, based on the total weight of the lubricating oil composition. Furthermore, the total amount of additives in the lubricating oil composition can range from about 0.001% to about 20%, about 0.01% to about 10%, or about 0.1% to about 5% by weight, based on the total weight of the lubricating oil composition.

[0070] Additional base oil of lubricating viscosity An oil of lubricating viscosity (sometimes referred to as a "base stock" or "base oil") is the primary liquid component of a lubricant into which additives, and optionally other oils, are blended, e.g., to produce the final lubricant (i.e., lubricant composition). Base oils are useful for making concentrates and from which lubricating oil compositions are made, and may be selected from natural and synthetic lubricating oils and combinations thereof.

[0071] Natural oils include animal and vegetable oils, liquid petroleum oils, and hydrorefined and solvent-treated mineral lubricating oils of the paraffinic, naphthenic, and mixed paraffinic and naphthenic bases. Oils of lubricating viscosity derived from coal or shale are also useful base oils.

[0072] Synthetic lubricating oils include hydrocarbon oils such as polymerized and copolymerized olefins (e.g., polybutylene, polypropylene, propylene-isobutylene copolymers, chlorinated polybutylene, poly(1-hexene), poly(1-octene), poly(1-decene)), alkylbenzenes (e.g., dodecylbenzene, tetradecylbenzene, dinonylbenzene, di(2-ethylhexyl)benzene), polyphenols (e.g., biphenyl, terphenyl, alkylated polyphenols), and alkylated diphenyl ethers and alkylated diphenyl sulfides and their derivatives, analogs, and homologs.

[0073] Base oils may be derived from Fischer-Tropsch synthesized hydrocarbons. Fischer-Tropsch synthesized hydrocarbons are produced from H2 and CO-containing synthesis gas using a Fischer-Tropsch catalyst. Such hydrocarbons typically require further processing to be useful as base oils. For example, the hydrocarbons may be hydroisomerized, hydrocracked and hydroisomerized, dewaxed, or hydroisomerized and dewaxed using methods known to those skilled in the art.

[0074] Base oils may be derived from Fischer-Tropsch synthesized hydrocarbons. Fischer-Tropsch synthesized hydrocarbons are produced from H2 and CO-containing synthesis gas using a Fischer-Tropsch catalyst. Such hydrocarbons typically require further processing to be useful as base oils. For example, the hydrocarbons may be hydroisomerized, hydrocracked and hydroisomerized, dewaxed, or hydroisomerized and dewaxed using methods known to those skilled in the art.

[0075] The lubricating oil composition of the present invention can use unrefined, refined, and re-refined oils. Unrefined oils are those obtained directly from natural or synthetic sources without additional purification treatment. For example, shale oil obtained directly from a retorting operation, petroleum oil obtained directly from distillation, or ester oil obtained directly from an esterification process are unrefined oils used without further treatment. Refined oils are similar to unrefined oils except that they have been further treated in one or more purification steps to improve one or more properties. Many such purification techniques, such as distillation, solvent extraction, acid or base extraction, filtration, and percolation, are known to those skilled in the art.

[0076] Re-refined oils are applied to already used refined oils and are obtained by processes similar to those used to obtain the refined oils. Such re-refined oils are also known as reclaimed or reprocessed oils and often have been further processed by techniques to obtain approval of used additives and oil breakdown products.

[0077] Therefore, the base oils that can be used to make the lubricating oil compositions of the present invention can be selected from any of the base oils in Groups I to V set forth in the American Petroleum Institute (API) Base Oil Interchangeability Guidelines (API Publication 1509). Such base oil groups are summarized in Table 1 below. [Table 1]

[0078] The oil of lubricating viscosity (also referred to as base oil) for use in the lubricating oil compositions of this disclosure is typically present in a major amount, e.g., greater than 50 wt. %, preferably greater than about 70 wt. %, more preferably about 80 to about 99.5 wt. %, and most preferably about 85 to about 98 wt. % based on the total weight of the composition. As used herein, the term "base oil" is understood to mean a lubricant component, a base stock or blend of base stocks, produced by a single manufacturer to the same specifications (regardless of source material or location of manufacturer), meeting the same manufacturer's specifications, and identified by a unique formulation, product identification number, or both. As used herein, a base oil may be any oil of lubricating viscosity, now known or hereafter discovered, used in the preparation of lubricating oil compositions for all applications, such as engine oils, marine cylinder oils, and functional fluids (hydraulic oils, gear oils, transmission fluids, etc.). In addition, the base oils used herein may optionally contain viscosity index improvers such as polymeric alkyl methacrylates, olefin copolymers (eg, ethylene-propylene copolymers or styrene-butadiene copolymers), and combinations thereof.

[0079] Finished lubricant properties Typically, the kinematic viscosity of the lubricating oil composition at 100°C (according to ASTM D445) is 9.3 mm max. 2 / s, preferably 3.8 to 9.3 mm 2 / s, 3.8~8.2mm 2 / s, 3.8~7.1mm 2 / s, 3.8~6.1mm 2 / s.

[0080] Typically, the lubricating oil composition has a high temperature, high shear ("HTHS") viscosity at 150°C (according to ASTM D4683) in the range of 1.3 to 2.6 mPa·s, 1.3 to 2.4 mPa·s, 1.3 to 2.2 mPa·s, 1.3 to 2.0 mPa·s, or 1.3 to 1.8 mPa·s.

[0081] Typically, the lubricating oil composition has a high temperature, high shear ("HTHS") viscosity at 80°C of less than 4.5 mPa·s.

[0082] Typically, the lubricating oil composition has a NOACK volatility (according to ASTM D5800B) of 22.0 wt% or less, 21.0 wt% or less, 20.0 wt% or less, 19.0 wt% or less, 18.0 wt% or less, 17.0 wt% or less, 16.0 wt% or less, 15.0 wt% or less, 14.5 wt% or less, 14.0 wt% or less, 13.5 wt% or less, 13.0 wt% or less, 12.5 wt% or less, 12.0 wt% or less, 11.5 wt% or less, 11.0 wt% or less, 10.5 wt% or less, or 10.0 wt% or less. Typically, the NOACK volatility is at least 4.0 wt%. In other embodiments, the NOACK volatility is between 15.0 and 2.0 wt%, between 15.0 and 3.0 wt%, between 14.5 and 5.0 wt%, between 14.5 and 7.0 wt%, between 14.5 and 8.0 wt%, and between 14.5 and 9.0 wt%.

[0083] The following examples are presented to illustrate embodiments of the present disclosure, but are not intended to limit the disclosure to the specific embodiments described. Unless otherwise specified, all parts and percentages are by weight. All numerical values ​​are approximate. When numerical ranges are given, it should be understood that embodiments outside the stated ranges may still fall within the scope of the present disclosure. The specific details given in each example should not be construed as necessary features of the present disclosure.

[0084] It will be understood that various modifications may be made to the embodiments disclosed herein. Therefore, the above description should not be construed as limiting, but merely as exemplifications of preferred embodiments. For example, the functions described and implemented above as the best mode for operating the disclosure are for illustrative purposes only. Other arrangements and methods may be implemented by those skilled in the art without departing from the scope and spirit of the present disclosure. In addition, those skilled in the art will envision other modifications within the scope and spirit of the claims appended hereto. The following [1] to

[15] are all embodiments of the present invention. [1] 1. A lubricating oil composition comprising: a. Below,

change

change

[10] The method of [6], wherein the lubricating oil composition further comprises an additional base oil.

[11] 1. A method for improving the fuel efficiency of an engine, comprising: a. Below, [ka] wherein each R is independently C 1 ~C 20 wherein n is an integer of 1 to 8, and the diester has a kinematic viscosity at 100°C according to ASTM D445 of 2.5 to 3.5 mm 2 / s and a viscosity index according to ASTM D2270 of 110 to 175, b. lubricating said engine with a lubricating oil composition comprising: 75 to 500 ppm boron, based on the total weight of said lubricating oil composition, said boron being provided by one or more boron-containing dispersants.

[12]

[11] The method according to

[11] , wherein the high shear viscosity of the lubricating oil composition at 80°C is less than 4.5 mPa·s.

[13] 12. The method of claim 11, wherein the lubricating oil composition further comprises a detergent, an antiwear agent, an antioxidant, an antifoaming agent, a rust inhibitor, a dehazing agent, a demulsifier, a metal deactivator, a friction modifier, a pour point depressant, a cosolvent, a corrosion inhibitor, an ashless dispersant, a multifunctional agent, a dye, or an extreme pressure additive.

[14]

[11] The method according to

[11] , wherein the boron-containing dispersant is a boronated polyisobutenyl succinimide or a boronated polyalkenyl succinic anhydride.

[15] The method of

[11] , wherein the lubricating oil composition further comprises an additional base oil.

[0085] (Example) The following examples are for illustrative purposes only and are not intended to limit the scope of the disclosure in any way.

[0086] Comparative Example 1 A lubricating oil composition was prepared by adding 100 wt. % bis-2-ethylhexyl azelate base oil. The formulation had a NOACK volatility of 21.7% and an HTHS80 of 3.61 mPa·s. Comparative Example 2 A lubricating oil composition was prepared by adding 97 wt. % UNISTER® M-480R (NOF CORPORATION, 2 cSt) and 3 wt. % based on the concentrate of a boronated polyisobutenyl bis-succinimide dispersant, the polyisobutene having a number average molecular weight of about 1300 and providing about 0.019 wt. % boron to the finished oil. The formulation had a NOACK volatility of 34.3% and an HTHS80 of 2.60 mPa·s.

[0087] Comparative Example 3 A lubricating oil composition was prepared by adding 99 wt. % bis-2-ethylhexyl azelate base oil and 0.79 wt. % boronated polyisobutenyl bis-succinimide dispersant, based on the concentrate, where the polyisobutene has a number average molecular weight of about 1300 and provides about 0.005 wt. % boron to the finished oil. The formulation had a NOACK volatility of 21.4% and an HTHS80 of 3.87 mPa·s.

[0088] Comparative Example 4 A lubricating oil composition was prepared by adding 97 wt. % Group II base oil (KV100=3.05, VI=106) and 3 wt. % based on the concentrate of a boronated polyisobutenyl bis-succinimide dispersant, the polyisobutene having a number average molecular weight of about 1300 and providing about 0.019 wt. % boron to the finished oil. The formulation had a NOACK volatility of 36.0% and an HTHS80 of 3.94 mPa·s.

[0089] Comparative Example 5 A lubricating oil composition was prepared by adding 97 wt. % Group III base oil (KV100 = 4.19, VI = 125) and 3 wt. % based on the concentrate of a boronated polyisobutenyl bis-succinimide dispersant, the polyisobutene having a number average molecular weight of about 1300 and providing about 0.019 wt. % boron to the finished oil. The formulation had a NOACK volatility of 13.0% and an HTHS80 of 5.62 mPa·s.

[0090] Comparative Example 6 A lubricating oil composition was prepared by adding 97 wt. % di-isotridecyl adipate base oil (5 cSt) and 3 wt. % boronated polyisobutenyl bis-succinimide dispersant, based on the concentrate, where the polyisobutene number average molecular weight was about 1300 and the dispersant provided about 0.019 wt. % boron to the finished oil. The formulation had a NOACK volatility of 3.10% and an HTHS80 of 7.26 mPa·s.

[0091] Comparative Example 7 A lubricating oil composition was prepared by adding 99 wt. % bis-2-ethylhexyl azelate base oil and 0.37 wt. % HOB boronated sulfonate detergent, based on the concentrate, providing approximately 0.015 wt. % boron in the finished oil. The formulation had a NOACK volatility of 21.0% and an HTHS80 of 3.71 mPa·s.

[0092] Comparative Example 8 A lubricating oil composition was prepared by adding 99 wt. % bis-2-ethylhexyl azelate base oil and 0.22 wt. % potassium borate dispersion, based on the concentrate, providing approximately 0.015 wt. % boron in the finished oil. The formulation had a NOACK volatility of 20.8% and an HTHS80 of 3.58 mPa·s.

[0093] Comparative Example 9 A lubricating oil composition was prepared by adding 99 wt. % bis-2-ethylhexyl azelate base oil and 0.62 wt. % boronated glycerol monooleate friction modifier, based on the concentrate, providing approximately 0.015 wt. % boron in the finished oil. The formulation had a NOACK volatility of 20.6% and an HTHS80 of 3.59 mPa·s.

[0094] Example 1 A lubricating oil composition was prepared by adding 98 wt. % bis-2-ethylhexyl azelate base oil and 1.59 wt. % boronated polyisobutenyl bis-succinimide dispersant, based on the concentrate, where the polyisobutene has a number average molecular weight of about 1300 and provides about 0.008 wt. % boron to the finished oil. The formulation had a NOACK volatility of 17.7% and an HTHS80 of 3.73 mPa·s.

[0095] Example 2 A lubricating oil composition was prepared by adding 97 wt. % bis-2-ethylhexyl azelate base oil and 3 wt. % boronated polyisobutenyl bis-succinimide dispersant, based on the concentrate, where the polyisobutene has a number average molecular weight of about 1300 and provides about 0.019 wt. % boron to the finished oil. The formulation had a NOACK volatility of 16.4% and an HTHS80 of 4.01 mPa·s.

[0096] Example 3 A lubricating oil composition was prepared by adding 48 wt. % bis-2-ethylhexyl azelate base oil, 48 wt. % Group III base oil (KV100 = 4.19, VI = 125), and 3 wt. % boronated polyisobutenyl bis-succinimide dispersant (based on the concentrate), the polyisobutene having a number average molecular weight of about 1300 and providing about 0.019 wt. % boron to the finished oil. The formulation had a NOACK volatility of 15.9% and an HTHS80 of 4.50 mPa·s.

[0097] Example 4 A lubricating oil composition was prepared by adding 98 wt. % bis-2-ethylhexyl azelate base oil and 2.38 wt. % boronated polyisobutenyl bis-succinimide dispersant, based on the concentrate, where the polyisobutene has a number average molecular weight of about 1300 and provides about 0.015 wt. % boron to the finished oil. The formulation had a NOACK volatility of 16.7% and an HTHS80 of 4.05 mPa·s.

[0098] Example 5 A lubricating oil composition was prepared by adding 96 wt. % bis-2-ethylhexyl azelate base oil and 3.97 wt. % boronated polyisobutenyl bis-succinimide dispersant, based on the concentrate, where the polyisobutene has a number average molecular weight of about 1300 and provides about 0.025 wt. % boron to the finished oil. The formulation had a NOACK volatility of 15.9% and an HTHS80 of 4.30 mPa·s.

[0099] Example 6 A lubricating oil composition was prepared by adding 96 wt. % bis-2-ethylhexyl azelate base oil and 3 wt. % boronated polyisobutenyl bis-succinimide dispersant, based on the concentrate, where the polyisobutene has a number average molecular weight of about 1000 and provides about 0.018 wt. % boron to the finished oil. The formulation had a NOACK volatility of 15.0% and an HTHS80 of 3.85 mPa·s. [Table 2] [Table 3]

[0100] The measured viscosity characteristics and NOACK volatility performance of the lubricating oils are shown in Table 1. The inventive examples demonstrate the synergistic effect of combining a boronated dispersant with a low viscosity diester base oil (bis-2-ethylhexyl azelate) resulting in low NOACK volatility while maintaining a low HTHS80. Inventive Example 3 shows that blends of diester base oil with conventional base oils also perform well.

[0101] In contrast, Comparative Examples 2 and 4 show that monoester base oils or conventional base oils alone do not perform nearly as well in the NOACK test. While higher viscosity base oils, such as those used in Comparative Examples 5 and 6, produce low NOACK volatility, the resulting HTHS80 is undesirably high for fuel economy benefits. Comparative Examples 7-9 also show that boron sources other than boronated dispersants are not effective in reducing NOACK volatility.

Claims

1. A lubricating oil composition for an internal combustion engine, comprising: a. below, 【Chemistry 1】 wherein each R is independently C 1 ~C 20 n is an integer of 1 to 8, and the diester has a kinematic viscosity of 2.5 to 3.5 mm at 100°C according to ASTM D445. 2 / s and a viscosity index according to ASTM D2270 of 110 to 175; b. 75 to 500 ppm boron, based on the total weight of the lubricating oil composition, said boron being provided by one or more boron-containing dispersants; The above lubricating oil composition, wherein the boron-containing dispersant is a boronated polyisobutenyl succinimide or a boronated polyalkenyl succinic anhydride.

2. 2. The lubricating oil composition of claim 1, wherein the lubricating oil composition has a high shear viscosity at 80°C of less than 4.5 mPa·s.

3. further comprising a detergent, antiwear agent, antioxidant, antifoaming agent, rust inhibitor, dehazing agent, demulsifier, metal deactivator, friction modifier, pour point depressant, co-solvent, corrosion inhibitor, ashless dispersant, multifunctional agent, dye, or extreme pressure additive; The lubricating oil composition of claim 1.

4. The lubricating oil composition of claim 1 further comprising an additional base oil.

5. 1. A method for reducing evaporative losses in an internal combustion engine, comprising: a. below, 【Chemistry 2】 wherein each R is independently C 1 ~C 20 wherein n is an integer of 1 to 8, and the diester has a kinematic viscosity at 100°C according to ASTM D445 of 2.5 to 3.5 mm 2 / s and a viscosity index according to ASTM D2270 of 110 to 175; b. lubricating the internal combustion engine with a lubricating oil composition comprising 75 to 500 ppm boron, based on the total weight of the lubricating oil composition, said boron provided by one or more boron-containing dispersants; The method wherein said boron-containing dispersant is a boronated polyisobutenyl succinimide or a boronated polyalkenyl succinic anhydride.

6. 6. The method of claim 5, wherein the lubricating oil composition has a high shear viscosity at 80°C of less than 4.5 mPa·s.

7. 6. The method of claim 5, wherein the lubricating oil composition further comprises a detergent, antiwear agent, antioxidant, antifoam agent, rust inhibitor, dehazing agent, demulsifier, metal deactivator, friction modifier, pour point depressant, co-solvent, corrosion inhibitor, ashless dispersant, multifunctional agent, dye, or extreme pressure additive.

8. The method of claim 5 wherein the lubricating oil composition further comprises an additional base oil.

9. A method for improving the fuel efficiency of an internal combustion engine, comprising: a. below, 【Transformation 3】 wherein each R is independently C 1 ~C 20 wherein n is an integer of 1 to 8, and the diester has a kinematic viscosity at 100°C according to ASTM D445 of 2.5 to 3.5 mm 2 / s and a viscosity index according to ASTM D2270 of 110 to 175, b. lubricating the internal combustion engine with a lubricating oil composition comprising 75 to 500 ppm boron, based on the total weight of the lubricating oil composition, said boron provided by one or more boron-containing dispersants; The method wherein said boron-containing dispersant is a boronated polyisobutenyl succinimide or a boronated polyalkenyl succinic anhydride.

10. 10. The method of claim 9, wherein the lubricating oil composition has a high shear viscosity at 80°C of less than 4.5 mPa·s.

11. 10. The method of claim 9, wherein the lubricating oil composition further comprises a detergent, antiwear agent, antioxidant, antifoam agent, rust inhibitor, dehazing agent, demulsifier, metal deactivator, friction modifier, pour point depressant, co-solvent, corrosion inhibitor, ashless dispersant, multifunctional agent, dye, or extreme pressure additive.

12. The method of claim 9 wherein the lubricating oil composition further comprises an additional base oil.

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