Methods for reducing lead corrosion in internal combustion engines

A lubricating oil composition with a hydrocarbyl-substituted succinimide dispersant, nitrogen-free friction modifier, and boron-containing compound addresses the challenge of lead corrosion in internal combustion engines by enhancing friction reduction and fuel economy through additive blending.

JP7723181B2Active Publication Date: 2025-08-13AFTON CHEMICAL CORPORATION
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Patent Information

Application Number
JP2024501144
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-07-21
Filing Date
2022-07-15
Publication Date
2025-08-13
Estimated Expiration
2042-07-15

AI Technical Summary

Technical Problem

Modern lubricants face challenges in achieving reduced lead corrosion while maintaining friction reduction benefits, as increasing friction modifiers to improve fuel economy often lead to undesirable increases in lead corrosion.

Method used

A lubricating oil composition comprising a hydrocarbyl-substituted succinimide dispersant, a nitrogen-free mechanical friction modifier with carboxylic acid and/or hydroxyl groups, and a boron-containing compound like boric acid, blended together to form a lubricating oil that reduces lead corrosion without pre-reacting the friction modifier with boron.

Benefits of technology

The composition effectively reduces lead corrosion in internal combustion engines by blending specific additives, outperforming pre-boronated friction modifiers, thus maintaining friction reduction benefits and improving fuel economy.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The present disclosure describes lubricant compositions that are effective in reducing lead corrosion through an admixture of lubricant additives including at least a base oil of lubricating viscosity, a dispersant, a friction modifier, and a boron-containing compound.
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Description

[Technical Field]

[0001] FIELD OF THE DISCLOSURE This disclosure relates generally to lubricating oil compositions and additives therefor, and methods for reducing lead corrosion. [Background technology]

[0002] Lubricants intended for use as motor oils (commonly referred to as engine oils or crankcase oils) in gasoline or diesel automotive engines typically contain a base oil or blend of base oils of lubricating viscosity and one or more additives to meet specific performance requirements for the intended application. Modern industry standards impose increasingly stringent requirements on the composition and performance of such oils, often leaving little room for flexibility in lubricant formulations. As lubricant manufacturers strive to meet various industry standards, it becomes a challenge to simultaneously achieve all required performance and industry specifications in a cost-effective manner. While various additive blends are often included in lubricants to achieve the desired performance for each application, improving performance using complex additive mixtures is often difficult because a particular additive that may improve one performance benefit often adversely affects other required benefits of the lubricant.

[0003] For example, friction modifiers are a type of lubricant additive commonly used to improve a lubricant's ability to reduce friction and / or wear, which often results in improved fuel economy. One common type of friction modifier is a nitrogen-free organic friction modifier having carboxylic acid and / or hydroxyl groups. While such friction modifiers are beneficial additives for providing improved friction and wear, they also tend to be associated with an undesirable increase in lead corrosion. Because increasing the amount of friction modifier leads to a corresponding increase in lead corrosion, lead corrosion due to such friction modifiers appears to be directly related to the treat rate of the friction modifier. Summary of the Invention

[0004] According to one embodiment, a method for reducing lead corrosion in an internal combustion engine lubricated with a lubricating oil composition is described herein. In one aspect, the method comprises supplying to the internal combustion engine a lubricating oil composition comprising a hydrocarbyl-substituted succinimide dispersant derived from a hydrocarbyl-substituted acylating agent reacted with a nitrogen source, a nitrogen-free mechanical friction modifier having carboxylic acid and / or hydroxyl groups, and a major amount of a base oil or blend of base oils of lubricating viscosity. The lubricating oil composition comprises an admixture of a boron-containing compound selected from boric acid or boronic acid.

[0005] In other embodiments, the method of the preceding paragraph can be combined with optional features or steps in any combination thereof, including one or more of the following: the nitrogen-free mechanical friction modifier has pendant hydroxyl groups derived from a fatty acid reacted with an alkanol, and / or the lubricating oil composition contains from about 250 ppm to about 350 ppm of boron provided by a boron-containing compound per each weight percent of the nitrogen-free mechanical friction modifier ... as defined by ASTM and / or the hydrocarbyl-substituted succinimide dispersant is boronated from a boron source separate from the boron-containing compound, and / or the boron-containing compound has the structure XB-(OH)2, where X is a hydroxyl group, a linear or branched alkyl group, a cyclic hydrocarbyl group, one or more aromatic groups, a benzofuranyl group, a dibenzofuranyl group, or a combination thereof, and / or the boron-containing compound is a boronic acid and X is a linear or branched C1-C10 group, one or more aromatic groups, a benzofuranyl group, a dibenzofuranyl group, or a combination thereof. and / or the nitrogen-free mechanical friction modifier comprises a blend of mono- and di-esters of fatty acids, and / or the nitrogen-free mechanical friction modifier comprises a blend of mono- and di-esters of oleic acid, and / or the nitrogen-free mechanical friction modifier comprises glycerol monooleate, and / or the lubricating oil composition comprises about 100 ppm to about 300 ppm of boron provided by a boron-containing compound, up to about 10 weight percent of a hydrocarbyl-substituted succinimide dispersant, and up to about 1 weight percent of a nitrogen-free mechanical friction modifier.

[0006] In another embodiment or approach, a lubricating oil composition for reducing lead corrosion in an internal combustion engine is described herein. In an aspect of this embodiment, the lubricating oil composition includes at least an admixture of a hydrocarbyl-substituted succinimide dispersant derived from a hydrocarbyl-substituted acylating agent reacted with a nitrogen source, a nitrogen-free mechanical friction modifier having carboxylic acid and / or hydroxyl groups, a boron-containing compound selected from boric acid or boronic acid, and a major amount of a base oil or blend of base oils of lubricating viscosity.

[0007] In other embodiments, the compositions of the preceding paragraphs can be combined with optional features or limitations in any combination thereof, including one or more of the following: the nitrogen-free mechanical friction modifier has pendant hydroxyl groups derived from a fatty acid reacted with an alkanol, and / or the lubricating oil composition contains from about 250 ppm to about 350 ppm of boron provided by a boron-containing compound per each weight percent of the nitrogen-free mechanical friction modifier ... as defined by ASTM and / or the hydrocarbyl-substituted succinimide dispersant is boronated from a boron source separate from the boron-containing compound, and / or the boron-containing compound has the structure XB-(OH)2, where X is a hydroxyl group, a linear or branched alkyl group, a cyclic hydrocarbyl group, one or more aromatic groups, a benzofuranyl group, a dibenzofuranyl group, or a combination thereof, and / or the boron-containing compound is a boronic acid and X is a linear or branched C1-C10 group, one or more aromatic groups, a benzofuranyl group, a dibenzofuranyl group, or a combination thereof. a benzofuranyl group, or a combination thereof; and / or the nitrogen-containing mechanical friction modifier comprises a blend of mono- and di-esters of fatty acids; and / or the nitrogen-containing mechanical friction modifier comprises a blend of mono- and di-esters of oleic acid; and / or the nitrogen-containing mechanical friction modifier comprises glycerol monooleate; and / or the lubricating oil composition comprises about 100 ppm to about 300 ppm of boron provided from a boron-containing compound, up to about 10 weight percent of a hydrocarbyl-substituted succinimide dispersant, and up to about 1 weight percent of a nitrogen-containing mechanical friction modifier; and / or the lubricating oil composition is a passenger car motor oil.

[0008] In yet another embodiment or approach, the use of a lubricating oil composition for reducing lead corrosion in an internal combustion engine is described herein. In an aspect of this embodiment, the use of the lubricating oil composition includes using at least a blend of a hydrocarbyl-substituted succinimide dispersant obtained from a hydrocarbyl-substituted acylating agent reacted with a nitrogen source, a nitrogen-free mechanical friction modifier having carboxylic acid and / or hydroxyl groups, a boron-containing compound selected from boric acid or boronic acid, and a major amount of a base oil or blend of base oils of lubricating viscosity to reduce lead corrosion in an internal combustion engine. Additionally, the use of the lubricating oil composition may also include any of the further embodiments described in this Summary.

[0009] The following definitions are provided to clarify the meaning of certain terms used herein.

[0010] The terms "oil composition," "lubrication composition," "lubricating oil composition," "lubricating oil," "lubricant composition," "lubricating composition," "fully formulated lubricant composition," "lubricant," "crankcase oil," "crankcase lubricant," "engine oil," "engine lubricant," "motor oil," and "motor lubricant" are considered to be synonymous and fully interchangeable terms that refer to a finished lubricant product that includes a major amount of a base oil plus a minor amount of an additive composition.

[0011] As used herein, the terms "additive package," "additive concentrate," "additive composition," "engine oil additive package," "engine oil additive concentrate," "crankcase additive package," "crankcase additive concentrate," "motor oil additive package," and "motor oil concentrate" are considered synonymous and fully interchangeable terms that refer to that portion of a lubricating oil composition that excludes a major amount of a base oil stock blend. The additive package may or may not include a viscosity index improver or a pour point depressant.

[0012] As used herein, "lead corrosion" refers to the change in lead concentration of a lubricant over the course of an evaluation performed in accordance with ASTM D6594. Lead concentration can be measured via ICP in accordance with ASTM D5185.

[0013] The term "overbased" refers to metal salts, such as those of sulfonates, carboxylates, salicylates, and / or phenates, in which the amount of metal present exceeds the stoichiometric amount. Such salts may have conversion levels greater than 100% (i.e., they may contain more than 100% of the theoretical amount of metal required to convert the acid to its "normal" or "neutral" salt). The expression "metal ratio," often abbreviated as MR, is used to indicate the ratio of the total chemical equivalents of metal in an overbased salt to the chemical equivalents of metal in a neutral salt, according to known chemical reactivity and stoichiometry. In normal or neutral salts, the metal ratio is 1, while in overbased salts, the MR is greater than 1. These are commonly referred to as overbased, highly based, or superbased salts and may be salts of organic sulfur acids, carboxylic acids, salicylates, sulfonates, and / or phenols.

[0014] The term "alkaline earth metals" refers to calcium, barium, magnesium, and strontium, and the term "alkali metals" refers to lithium, sodium, potassium, rubidium, and cesium.

[0015] As used herein, the term "hydrocarbyl" or "hydrocarbyl substituent" or "hydrocarbyl group" is used in its ordinary sense, as is well known to those skilled in the art. Specifically, it refers to a group having a carbon atom directly attached to the remainder of the molecule and having a predominantly hydrocarbon character. Each hydrocarbyl group is independently selected from hydrocarbon substituents containing one or more of halo, hydroxyl, alkoxy, mercapto, nitro, nitroso, amino, pyridyl, furyl, imidazolyl, oxygen, and nitrogen, and no more than two non-hydrocarbon substituents are present for every 10 carbon atoms in the hydrocarbyl group.

[0016] As used herein, the term "hydrocarbylene substituent" or "hydrocarbylene group" is used in its ordinary sense, as is well known to those skilled in the art. Specifically, it refers to a group that is directly attached to the remainder of the molecule by carbon atoms at two locations and has a predominantly hydrocarbon character. Each hydrocarbylene group is independently selected from divalent hydrocarbon substituents, including halo, alkyl, aryl, alkylaryl, arylalkyl, hydroxyl, alkoxy, mercapto, nitro, nitroso, amino, pyridyl, furyl, imidazolyl, oxygen, and nitrogen, and no more than two non-hydrocarbon substituents are present for every 10 carbon atoms in the hydrocarbylene group.

[0017] As used herein, the term "weight percent" means the percentage that the recited component represents relative to the weight of the entire composition, unless expressly stated otherwise.

[0018] The terms "soluble," "oil-soluble," or "dispersible" as used herein may, but do not necessarily, indicate that a compound or additive is soluble, dissolvable, miscible, or capable of being suspended in oil in any proportion. However, the terms do mean that they are, for example, soluble, suspendable, dissolvable, or stably dispersible in oil to a sufficient degree to exert their intended effect in the environment in which the oil is used. Furthermore, if desired, the incorporation of other additives may also allow for the incorporation of higher levels of the specific additive.

[0019] As used herein, the term "TBN" is used to indicate the Total Base Number in mg KOH / g as measured by the method of ASTM D2896.

[0020] The term "alkyl" as used herein refers to straight, branched, cyclic, and / or substituted saturated chain moieties of about 1 to about 100 carbon atoms. The term "alkenyl" as used herein refers to straight, branched, cyclic, and / or substituted unsaturated chain moieties of about 3 to about 10 carbon atoms. The term "aryl" as used herein refers to monocyclic and polycyclic aromatic compounds that can contain alkyl, alkenyl, alkylaryl, amino, hydroxyl, alkoxy, halo substituents, and / or heteroatoms including, but not limited to, nitrogen, oxygen, and sulfur.

[0021] Molecular weights of any embodiment herein can be determined using a gel permeation chromatography (GPC) instrument from Waters or similar instrumentation, and data processed with Waters Empower Software or similar software. The GPC instrument can be equipped with a Waters Separation Module and a Waters Refractive Index Detector (or similar optional equipment). GPC operating conditions can include a guard column, four Agilent PLgel columns (300 x 7.5 mm long, 5 μm particle size, and pore size range 100-10,000 Å), and a column temperature of approximately 40°C. Unstabilized HPLC-grade tetrahydrofuran (THF) can be used as the solvent at a flow rate of 1.0 mL / min. The GPC instrument can be calibrated with commercially available polystyrene (PS) standards with narrow molecular weight distributions ranging from 500 to 380,000 g / mol. The calibration curve can be extrapolated for samples with masses less than 500 g / mol. Samples and PS standards can be dissolved in THF at concentrations of 0.1 to 0.5% by weight and used without filtration. GPC measurements are also described in U.S. Pat. No. 5,266,223, which is incorporated herein by reference. The GPC method also provides molecular weight distribution information. See, for example, W.W. Yau, J.J. Kirkland, and D.D. Bly, "Modern Size Exclusion Liquid Chromatography," John Wiley and Sons, New York, 1979, which is incorporated herein by reference.

[0022] The lubricants herein are configured for use in various types of lubricants, such as automotive lubricants and / or greases, internal combustion engine oils, hybrid engine oils, electric engine lubricants, drivetrain lubricants, transmission lubricants, gear oils, hydraulic lubricants, tractor hydraulic fluids, metal working fluids, turbine engine lubricants, stationary engine lubricants, tractor lubricants, motorcycle lubricants, power steering fluids, clutch fluids, axle fluids, wet brake fluids, and the like. Suitable engine types may include, but are not limited to, heavy-duty diesel, passenger car, light-duty diesel, medium-speed diesel, or marine engines. The internal combustion engine may be a diesel-fueled engine, a gasoline-fueled engine, a natural gas-fueled engine, a biofuel engine, a blended diesel / biofuel-fueled engine, a blended gasoline / biofuel-fueled engine, an alcohol-fueled engine, a blended gasoline / alcohol-fueled engine, a compressed natural gas (CNG)-fueled engine, or a mixture thereof. The diesel engine may be a compression-ignition engine. The gasoline engine may be a spark-ignition engine. The internal combustion engine may also be used in combination with electric or battery power sources. Engines configured in this manner are commonly known as hybrid engines. The internal combustion engine may be a two-stroke, four-stroke, or rotary engine. Suitable internal combustion engines include marine diesel engines (such as inland marine), aviation piston engines, light-duty diesel engines, and engines for motorcycles, automobiles, locomotives, and trucks. The engine may be coupled with a turbocharger.

[0023] The lubricating oil composition for internal combustion engines may be suitable for any engine lubricant, regardless of sulfur, phosphorus, or sulfated ash (ASTM D-874) content. The sulfur content of the engine oil lubricant may be about 1 wt. % or less, or about 0.8 wt. % or less, or about 0.5 wt. % or less, or about 0.3 wt. % or less, or about 0.2 wt. % or less. In one embodiment, the sulfur content may range from about 0.001 wt. % to about 0.5 wt. %, or from about 0.01 wt. % to about 0.3 wt. %. The phosphorus content may be about 0.2 wt. % or less, or about 0.1 wt. % or less, or about 0.085 wt. % or less, or about 0.08 wt. % or less, or even about 0.06 wt. % or less, about 0.055 wt. % or less, or about 0.05 wt. % or less. In one embodiment, the phosphorus content may be about 50 ppm to about 1000 ppm, or about 325 ppm to about 850 ppm. The total sulfated ash content may be about 2% by weight or less, or about 1.5% by weight or less, or about 1.1% by weight or less, or about 1% by weight or less, or about 0.8% by weight or less, or about 0.5% by weight or less. In one embodiment, the sulfated ash content may be about 0.05% by weight to about 0.9% by weight, or 0.1% by weight or about 0.2% by weight to about 0.45% by weight. In another embodiment, the sulfur content may be about 0.4% by weight or less, the phosphorus content may be about 0.08% by weight or less, and the sulfated ash content may be about 1% by weight or less. In yet another embodiment, the sulfur content may be about 0.3% by weight or less, the phosphorus content may be about 0.05% by weight or less, and the sulfated ash content may be about 0.8% by weight or less.

[0024] Additionally, the lubricants herein may meet one or more industry specification requirements such as ILSAC GF-3, GF-4, GF-5, GF-6, PC-11, CF, CF-4, CH-4, CK-4, FA-4, CJ-4, CI-4 Plus, CI-4, API SG, SJ, SL, SM, SN, SN PLUS, ACEA A1 / B1, A2 / B2, A3 / B3, A3 / B4, A5 / B5, C1, C2, C3, C4, C5, E4 / E6 / E7 / E9, Euro 5 / 6, JASO DL-1, Low SAPS, Mid SAPS, or Dexos1™, Dexos2™, MB-Approval, etc. 229.1, 229.3, 229.5, 229.51 / 229.31, 229.52, 229.6, 229.71, 226.5, 226.51, 228.0 / .1, 228.2 / .3, 228.31, 228.5, 228.51, 228.61, VW 501.01,502.00,503.00 / 503.01,504.00,505.00,505.01,506.00 / 506.01,507.00,508.00,509.00,508.88,509.99,BMW Longlife-01, Longlife-01FE, Longlife-04, Longlife-12FE, Longlife-14FE+, Longlife-17FE+, Porsche A40, C30, Peugeot Citroen Automobiles B712290, B712294, B712295, B712296, B712297, B712300, B712302, B712312, B712007, B712008, RenaultRN0700, RN0710, RN0720, Ford WSS-M2C153-H, WSS-M2C930-A, WSS-M2C945-A, WSS-M2C913A, WSS-M2C913-B, WSS-M2C913-C, WSS-M2C913-D, WSS-M2C948-B, WSS-M2C948-A, GM 6094-M, Chrysler MS-6395, Fiat 9.55535G1, G2, M2, N1, N2, Z2, S1, S2, S3, S4, T2, DS1, DSX, GH2, GS1, GSX, CR1, Jaguar Land Rover STJLR.03.5003, STJLR.03.5004, STJLR.03.5005, STJLR.03.The compositions may be suitable to meet original equipment manufacturer specifications, such as STJLR.5006, STJLR.03.5007, STJLR.51.5122, or past or future PCMO or HDD specifications not listed herein. In some embodiments for passenger car motor oil (PCMO) applications, the amount of phosphorus in the final fluid is 1000 ppm or less, or 900 ppm or less, or 800 ppm or less.

[0025] In one embodiment, the lubricating oil composition is an engine oil, and the lubricating oil composition may have (i) a sulfur content of less than or equal to about 0.5 wt. %, (ii) a phosphorus content of less than or equal to about 0.1 wt. %, and (iii) a sulfated ash content of less than or equal to about 1.5 wt. %.

[0026] In one embodiment, the lubricating oil composition is suitable for a two-stroke or four-stroke marine diesel internal combustion engine. In one embodiment, the marine diesel combustion engine is a two-stroke engine. In some embodiments, the lubricating oil composition is not suitable for a two-stroke or four-stroke marine diesel internal combustion engine for one or more reasons, including, but not limited to, the high sulfur content of fuels used to power marine engines and the high TBN required for engine oils suitable for marine use (e.g., greater than about 40 TBN for engine oils suitable for marine use).

[0027] In some embodiments, the lubricating oil compositions are suitable for use in engines powered by low sulfur fuels, such as fuels containing about 1 to about 5% sulfur. Highway vehicle fuels contain about 15 ppm sulfur (or about 0.0015% sulfur).

[0028] Additional details and advantages of the present disclosure are set forth in part in the description which follows, and / or may be learned by practice of the present disclosure. The details and advantages of the present disclosure may be realized and attained by means of the elements and combinations particularly pointed out in the appended claims. It is to be understood that both the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the present disclosure as claimed. [Brief explanation of the drawings]

[0029] [Figure 1] 1 is a plot of lead corrosion of a prior art non-boronated friction modifier showing the increase in lead corrosion and the corresponding increase in friction modifier treat rate. [Figure 2] 1 is a lead corrosion plot comparing lubricants with pre-boronated friction modifiers to lubricant blends containing friction modifiers, dispersants, and boron-containing compounds. [Figure 3] 1 is a plot of lead corrosion from different lubricant blends using various boron-containing compounds compared to a control lubricant with no friction modifier. [Figure 4] 1 is a plot of lead corrosion per weight percent friction modifier comparing lubricant admixtures of the present invention with prior non-boronated friction modifiers. DETAILED DESCRIPTION OF THE INVENTION

[0030] Engine or crankcase lubricant compositions are typically used in vehicles including spark-ignition or compression-ignition engines to provide friction reduction and other benefits. Such engines may be used in passenger or heavy-duty vehicle applications and may include internal combustion engines in automobiles, trucks, motorcycles, and / or locomotives / trains, to name a few, and may run on fuels including, but not limited to, gasoline, diesel, alcohol, biofuels, compressed natural gas, and the like. These engines may also include hybrid-electric engines including both internal combustion engines and electric or battery power sources, and / or advanced hybrid or internal combustion engines including automatic engine shut-off features when the vehicle is stationary. The methods and lubricant compositions herein are effective in reducing lead corrosion in such engines.

[0031] In one approach or embodiment, the present disclosure describes a method and composition effective for reducing lead corrosion in an internal combustion engine lubricated with a lubricating oil composition. In one aspect, the method involves supplying to an internal combustion engine a lubricating oil composition or lubricant containing at least: (i) a hydrocarbyl-substituted succinimide dispersant derived from a hydrocarbyl-substituted acylating agent reacted with a nitrogen source; (ii) a nitrogen-free mechanical friction modifier having carboxylic acid and / or hydroxyl groups, and in some approaches, pendant hydroxyl groups derived from a fatty acid reacted with an alkanol; and (iii) a major amount of a base oil or blend of base oils of lubricating viscosity. The lubricating oil composition also contains a boron-containing compound selected from boric acid or boronic acid. In this approach, the friction modifier is not pre-reacted or pre-boronated with the boron-containing compound, but the succinimide dispersant, friction modifier, and boron-containing compound are blended in the lubricating composition. Surprisingly, the amount of lead corrosion of the method herein with the admixed components is improved over lubricants containing friction modifiers that are pre-reacted with a boron-containing compound before being added to the lubricant.

[0032] The method herein involves supplying to an engine a lubricating oil composition having a blend of a hydrocarbyl-substituted succinimide dispersant, a nitrogen-free mechanical friction modifier, and a boron-containing compound. It is therefore even more surprising that the blend herein has better lead corrosion than a lubricating oil composition containing a preboronated friction modifier.

[0033] Turning to the components, the methods and lubricating compositions herein first include a dispersant, which comprises at least a hydrocarbyl-substituted succinimide dispersant obtainable by reacting a hydrocarbyl-substituted acylating agent with a nitrogen source, such as various polyalkylene polyamines, as discussed in more detail below.

[0034] In one approach, the dispersant may comprise an oil-soluble ashless dispersant selected from the group consisting of: succinimide dispersants, succinate ester dispersants, and / or succinate ester-amide dispersants. In another approach, the lubricating compositions herein may comprise up to about 10 weight percent of a dispersant herein, or from about 1 to about 8 weight percent, and in another approach, from about 2 to about 6 weight percent (or any other range within such endpoints) of a dispersant.

[0035] Hydrocarbyl dicarboxylic acids or anhydrides reacted with a nitrogen source, such as a polyalkylene polyamine, are used to make succinimide dispersants. Succinimide dispersants and their preparation are disclosed in U.S. Pat. No. 7,897,696 and U.S. Pat. No. 4,234,435, both of which are incorporated herein by reference. The hydrocarbyl portion of the hydrocarbyl-dicarboxylic acid or anhydride may be derived from a polyolefin-based polymer, such as, but not limited to, a butene polymer, e.g., a polymer of isobutylene. Suitable polyisobutenes for use herein include those formed from conventional polyisobutylene or highly reactive polyisobutylenes having a terminal vinylidene content of at least about 60%, e.g., about 70% to about 90% or more. Suitable polyisobutenes may include those prepared using a BF catalyst.

[0036] The number average molecular weight of the hydrocarbyl substituent (e.g., polyisobutylene substituent) of the dispersants herein may vary over a wide range, e.g., from about 500 to about 5,000 (alternatively, from about 1,000 to about 3,000 or from about 1,000 to about 2,000), as determined by gel permeation chromatography (GPC) using polystyrene (having a number average molecular weight of 180 to about 18,000) as a calibration standard. The polyisobutylene moiety in the dispersant preferably has a molecular weight distribution (MWD), also referred to as polydispersity, determined by the ratio of the weight average molecular weight (MW) to the number average molecular weight (Mn). Polymers having an Mw / Mn ratio of less than about 2.2, preferably less than about 2.0, are most desirable. Suitable polyisobutylene substituents have a polydispersity of from about 1.5 to about 2.1, or from about 1.6 to about 1.8.

[0037] The dicarboxylic acid or anhydride of the dispersant can be selected from carboxylic reactants, including maleic anhydride, maleic acid, fumaric acid, malic acid, tartaric acid, itaconic acid, itaconic anhydride, citraconic acid, citraconic anhydride, mesaconic acid, ethyl maleic anhydride, dimethyl maleic anhydride, ethyl maleic acid, dimethyl maleic acid, hexyl maleic acid, and the like, including the corresponding acid halides and C1-C4 aliphatic esters. The molar ratio of dicarboxylic acid or anhydride to hydrocarbyl moieties in the reaction mixture used to make the hydrocarbyl dicarboxylic acid or anhydride can vary widely. Thus, the molar ratio may vary from about 5:1 to about 1:5, for example, from about 3:1 to about 1:3. A molar ratio of acid or anhydride to hydrocarbyl moieties of about 1:1 to about 2:1 is particularly preferred. Another useful molar ratio of dicarboxylic acid or anhydride to hydrocarbyl moieties is about 1.3:1 to about 1.8:1.

[0038] Any of a number of polyalkylene polyamines can be used to prepare the dispersant additives for the lubricants herein. Non-limiting exemplary polyamines can include aminoguanidine bicarbonate (AGBC), diethylene triamine (DETA), triethylene tetramine (TETA), tetraethylene pentamine (TEPA), pentaethylene hexamine (PEHA), and heavy polyamines. Heavy polyamines can include mixtures of polyalkylene polyamines that contain small amounts of polyamine oligomers such as TEPA and PEHA, but primarily have oligomers with seven or more nitrogen atoms per molecule, two or more primary amines, and have more extensive branching than conventional polyamine mixtures. Typically, these heavy polyamines have an average of 6.5 nitrogen atoms per molecule. Additional non-limiting polyamines that can be used to prepare hydrocarbyl-substituted succinimide dispersants are disclosed in U.S. Patent No. 6,548,458, the entire disclosure of which is incorporated herein by reference. The molar ratio of hydrocarbyl dicarboxylic acid or anhydride to polyalkylene polyamine can be from about 1:1 to about 3:1.

[0039] In one embodiment, the dispersant may be the reaction product of polyisobutenyl succinic anhydride (PIBSA) with a polyamine, for example, a polyethyleneamine such as tetraethylenepentamine or various heavy polyamines. The dispersant herein may have a molar ratio of polyisobutenyl-substituted succinic anhydride to polyamine ranging from about 4:3 to about 1:10.

[0040] In some cases, the dispersants herein may be optionally borated, phosphated, or post-reacted with various agents, such as maleic anhydride or a boron source different from the boron-containing compounds similarly incorporated into the lubricant, before being incorporated into the lubricant. These dispersants are generally the reaction product of at least one phosphorus compound, boron compound, and / or maleic anhydride with at least one ashless dispersant, as described above. When the dispersant is boronated before being incorporated into the lubricant, the dispersant is boronated with a boron compound or boron source different from the boron compound incorporated into the lubricant.

[0041] Suitable boron compounds useful for pre-reacting with the dispersants herein, if used, include any boron compound or mixture of boron compounds capable of introducing a boron-containing species into the ashless dispersant. Any organic or inorganic boron compound capable of undergoing such a reaction can be used. Thus, boron oxide, boron oxide hydrate, boron trifluoride, boron tribromide, boron trichloride, HBF4 boric acids, such as boronic acids (e.g., alkyl-B(OH)2 or aryl-B(OH)2), boric acid (i.e., H3BO3), tetraboric acid (i.e., H2BO7), metaboric acid (i.e., HBO2), ammonium salts of such boric acids, and esters of such boric acids can be used. The use of complexes of boron trihalides with ethers, organic acids, inorganic acids, or hydrocarbons is a convenient means of introducing the boron reactant into the reaction mixture. Such complexes are known and are exemplified by boron trifluoride-diethyl ether, boron trifluoride-phenol, boron trifluoride-phosphoric acid, boron trichloride-chloroacetic acid, boron tribromide-dioxane, and boron trifluoride-methyl ethyl ether.

[0042] If used, suitable phosphorus compounds for forming the dispersants herein include any phosphorus compound or mixture of phosphorus compounds capable of introducing phosphorus-containing species into the ashless dispersant. Therefore, any organic or inorganic phosphorus compound capable of undergoing such a reaction can be used. Thus, such inorganic phosphorus compounds can be used as inorganic phosphorus oxides, including inorganic phosphoric acid and hydrates thereof. Typical organic phosphorus compounds include full and partial esters of phosphoric acid, such as the mono-, di-, and triesters of phosphoric, thiophosphoric, dithiophosphoric, trithiophosphoric, and tetrathiophosphoric acids; mono-, di-, and triesters of phosphorous, thiophosphorous, dithiophosphorous, and trithiophosphorous acids; trihydrocarbyl phosphine oxides; trihydrocarbyl phosphine sulfides; mono- and dihydrocarbyl phosphonates, (RPO(OR')(OR") (where R and R' are hydrocarbyl and R" is a hydrogen atom or a hydrocarbyl group), and their mono-, di-, and trithio analogs; mono- and dihydrocarbyl phosphonites, (RP(OR') (OR"), where R and R' are hydrocarbyl and R" is a hydrogen atom or a hydrocarbyl group, and their mono- and dithio analogs. Thus, such compounds may be referred to as, for example, phosphorous acid (H3PO3, sometimes represented as H2(HPO3) and sometimes called ortho-phosphorous acid or phosphoric acid), phosphoric acid (H3PO4, sometimes called orthophosphoric acid), hypophosphoric acid (H4P2O6), metaphosphoric acid (HPO3), pyrophosphoric acid (H4P2O7), hypophosphorous acid (H3PO2, sometimes called phosphinic acid), pyrophosphorous acid (H4P2O5, sometimes called pyrophosphonic acid), phosphinous acid (H3PO), tripolyphosphoric acid (H5P3O 10 ), tetrapolyphosphate (H5P4O 13 ), trimetaphosphoric acid (H3P3O9), phosphorus trioxide, phosphorus tetroxide, phosphorus pentoxide, etc. Phosphorotetrathioic acid (H3PS4), phosphoromonothioic acid (H3PO3S), phosphorodithioic acid (H3PO2S2), phosphorotrithioic acid (H3POS3), phosphorus sesquisulfide, phosphorus heptasulfide, and phosphorus pentasulfide (PS5, P4S10 Partial or all sulfur analogs such as HCl, HCl (sometimes referred to as HCl), HCl ( ...

[0043] Similarly, organic phosphorus compounds such as mono-, di-, and triesters of phosphoric acid (e.g., trihydrocarbyl phosphates, dihydrocarbyl monoacid phosphates, monohydrocarbyl diacid phosphates, and mixtures thereof), mono-, di-, and triesters of phosphorous acid (e.g., trihydrocarbyl phosphites, dihydrocarbyl hydrogen phosphites, hydrocarbyl diacid phosphites, and mixtures thereof), esters of phosphonic acid (both "primary" R P(O)(OR) and "secondary" R P(O)(OR)), esters of phosphinic acid, phosphonyl halides (e.g., For example, RP(O)Cl and RP(O)Cl), halophosphates (e.g., (RO)PCl and (RO)PCl), halophosphites (e.g., ROP(O)Cl and (RO)P(O)Cl), tertiary pyrophosphate esters (e.g., (RO)P(O)-OP(O)(OR)), and all- or partial-sulfur analogs of any of the foregoing organophosphorus compounds can be used, with each hydrocarbyl group containing up to about 100 carbon atoms, preferably up to about 50 carbon atoms, more preferably up to about 24 carbon atoms, and most preferably up to about 12 carbon atoms. Halophosphines (e.g., phosphorus tetrahalides, dihydrocarbyl trihalides, and trihydrocarbyl dihalides), and halophosphines (monohalophosphines and dihalophosphines) can also be used.

[0044] In yet another approach, the hydrocarbyl-substituted succinimide dispersants herein may have the structure of Formula I:

[0045] [ka] wherein R1 is a hydrocarbyl substituent (or those described above) having a number average molecular weight of about 350 to about 5,000, R2, R3, and R4 are independently a divalent C1-C6 moiety, R5 and R6 are each independently hydrogen, a C1-C6 alkyl group, or together with the nitrogen to which they are attached form a 5- or 6-membered ring, optionally fused to one or more aromatic or non-aromatic rings, n is an integer from 0 to 8, y and z are each an integer, and y + z = 1. In some approaches, the dispersant is a bissuccinimide, and R5 and R6 together with the nitrogen to which they are attached form a radical of Formula II:

[0046] [ka]

[0047] In some approaches, the acylating agent is maleic anhydride, the nitrogen source is a polyalkylene polyamine selected from polyethylene polyamine, diethylene triamine, triethylene tetramine, tetraethylene pentamine, pentaethylene hexamine, or a mixture of combinations thereof, having an average of 5 nitrogen atoms, and the hydrocarbyl substituent has a number average molecular weight of about 1,000 to about 2,500.

[0048] The methods and lubricating compositions herein then include a nitrogen-free mechanical friction modifier having carboxylic acid and / or hydroxyl pendant groups that have not been pre-boronated or pre-reacted with a boron-containing compound. Suitable friction modifiers may include metal-free and nitrogen-free friction modifiers, including, but not limited to, imidazolines, amides, amines, succinimides, alkoxylated amines, alkoxylated etheramines, amine oxides, amidoamines, nitriles, betaines, quaternary amines, imines, amine salts, aminoguanidines, alkanolamides, phosphonates, glycerol esters, sulfurized fatty compounds and olefins, sunflower oil and other naturally occurring vegetable or animal oils, dicarboxylic acid esters, esters or partial esters of polyols with one or more aliphatic or aromatic carboxylic acids, and the like.

[0049] Suitable friction modifiers may contain hydrocarbyl groups selected from linear, branched, or aromatic hydrocarbyl groups, or mixtures thereof, and may be saturated or unsaturated. The hydrocarbyl groups may be composed of carbon and hydrogen or heteroatoms such as sulfur or oxygen. The hydrocarbyl groups may range from about 12 to about 25 carbon atoms. In some embodiments, the friction modifier may be a long-chain fatty acid ester. In other embodiments, the long-chain fatty acid ester may be a mono-ester, a di-ester, or a (tri)glyceride. The friction modifier may be a long-chain fatty amide, a long-chain fatty ester, a long-chain fatty epoxide derivative, or a long-chain imidazoline.

[0050] In some approaches, friction modifiers may include organic, ashless (metal-free), nitrogen-free mechanical friction modifiers. Such friction modifiers include esters formed by reacting carboxylic acids (or fatty acids) and anhydrides with alkanols and generally may contain polar end groups (e.g., carboxyl or hydroxyl) covalently attached to an oleophilic hydrocarbon chain. An example of an organic ashless, nitrogen-free friction modifier is generally known as glycerol monooleate (GMO), which may contain a blend of mono-, di-, and tri-esters of oleic acid. Other suitable friction modifiers are described in U.S. Patent No. 6,723,685, the entire contents of which are incorporated herein by reference. Preferably, the nitrogen-free mechanical friction modifier has pendant hydroxyl groups derived from fatty acids, such as C10-C20 fatty acids, reacted with alkanols. In another approach, the nitrogen-free mechanical friction modifier includes a blend of mono- and di-esters of fatty acids. In yet another approach, the nitrogen-free mechanical friction modifier comprises a blend of mono- and di-esters of oleic acid, preferably the nitrogen-free mechanical friction modifier comprises predominantly glycerol monooleate.

[0051] The lubricating compositions herein may contain up to about 1 weight percent, or alternatively about 0.1 to about 1 weight percent, about 0.1 to about 0.8 weight percent, about 0.2 to about 0.8 weight percent, or any other range therein, of such friction modifiers.

[0052] The lubricating oil composition also includes a boron-containing compound in admixture with the dispersant and friction modifier discussed above. Preferably, the boron-containing compound is selected from boric acid or one or more boronic acids, but suitable boron-containing compounds may include any boron-containing compound or mixture of boron-containing compounds that can introduce boron-containing species or react with the carboxyl or hydroxyl groups of the nitrogen-free friction modifier. Any organic or inorganic boron compound that can undergo such a reaction may be used. Thus, and depending on the friction modifier, boron oxide, boron oxide hydrate, boron trifluoride, boron tribromide, boron trichloride, HBF4 boric acids, such as boronic acids (e.g., alkyl-B(OH)2 or aryl-B(OH)2), boric acid (i.e., H3BO3), tetraboric acid (i.e., H2BO7), metaboric acid (i.e., HBO2), ammonium salts of such boric acids, and esters of such boric acids can be used. In some cases, the use of complexes of boron trihalides with ethers, organic acids, inorganic acids, or hydrocarbons is a convenient means of introducing the boron reactant into the reaction mixture. Such complexes are known and are exemplified by boron trifluoride-diethyl ether, boron trifluoride-phenol, boron trifluoride-phosphoric acid, boron trichloride-chloroacetic acid, boron tribromide-dioxane, and boron trifluoride-methyl ethyl ether.

[0053] In one approach, the boron-containing compound may have the structure XB-(OH)2, where X is a hydroxyl group, a linear or branched alkyl group, a cyclic hydrocarbyl group, one or more aromatic groups, a benzofuranyl group, a dibenzofuranyl group, or a combination thereof. In another approach, the boron-containing compound may be a boronic acid, where X is a linear or branched C1-C10 group, one or more aromatic groups, a benzofuranyl group, a dibenzofuranyl group, or a combination thereof. In yet another approach, the boron-containing compound may be boric acid, (2-methylpropyl)boronic acid, phenylboronic acid, naphthalene-1-boronic acid, 4-(dibenzofuranyl)boronic acid, or a mixture thereof.

[0054] In one approach, an admixture of dispersant, friction modifier, and boron-containing compound may be prepared by blending at a temperature of about 50°C to about 100°C (or about 70°C to about 80°C) using gentle mixing of the blend at about 100 to 500 rpm. The methods and lubricating oil compositions herein contain about 100 ppm to about 300 ppm of boron provided by the boron-containing compound (and not including boron from any pre-boronated compounds), up to about 10 weight percent of a hydrocarbyl-substituted succinimide dispersant (or about 1 to about 8 weight percent), and up to about 1 weight percent of a nitrogen-free mechanical friction modifier (or about 0.2 to about 0.8 weight percent). Without wishing to be limited by theory, the admixtures herein may contain spare boron or spare boron-containing compound that may be available to further react with hydroxyl or other acid moieties formed in the composition or during use. In yet another approach, the methods and lubricating oil compositions herein may include an admixture of about 250 ppm to about 350 ppm (or other suitable range within such endpoints) of boron provided by a boron-containing compound per each 1 weight percent of nitrogen-free mechanical friction modifier.

[0055] In compositions and methods including such a weight ratio of boron to friction modifier, when the friction modifiers are not pre-reacted (or pre-boronated) but simply blended together, the methods and lubricating oil compositions herein surprisingly exhibit about 500 ppm or less lead corrosion per weight percent of each nitrogen-containing mechanical friction modifier, as measured by ASTM D6594; alternatively, about 400 ppm or less lead corrosion, about 300 ppm or less lead corrosion, about 200 ppm or less lead corrosion, or about 150 ppm or less lead corrosion per weight percent of each nitrogen-containing mechanical friction modifier, as measured by ASTM D6594. As shown in the examples below, what is even more surprising is that the lead corrosion of the admixtures herein is often better than pre-boronated friction modifiers, and in some cases, surprisingly, even better than lubricant compositions without any friction modifiers.

[0056] lubricating oil composition The method herein includes supplying to an internal combustion engine a lubricating oil composition comprising, in a majority of a base oil or base oil blend, the dispersant, friction modifier, and boron-containing compound discussed above. Such admixtures of the above additives, in combination with one or more further optional additives, may be combined with a major amount of a base oil blend of lubricating viscosity or base oil blends (as described below) to produce the lubricating oil composition. In some approaches, the lubricating oil composition comprises at least about 50 weight percent of the base oil blend, at least about 60 weight percent, at least about 70 weight percent, or at least about 80 weight percent to at most about 95 weight percent, at most about 90 weight percent, at most about 85 weight percent of the base oil blend, such blends being discussed further below.

[0057] Base Oil Blends: The base oil used in the lubricating oil compositions herein may be an oil of lubricating viscosity and may be selected from any of the base oils in Groups I to V, as specified in the American Petroleum Institute (API) Base Oil Interchangeability Guidelines. The five base oil groups are as follows:

[0058] [Table 1]

[0059] Group I, Group II, and Group III are mineral oil process feedstocks. Group IV base oils contain true synthetic molecular species produced by the polymerization of olefinically unsaturated hydrocarbons. Many Group V base oils are also true synthetic products and may include diesters, polyol esters, polyalkylene glycols, alkylated aromatics, polyphosphate esters, polyvinyl ethers, and / or polyphenyl ethers, but may also be natural oils such as vegetable oils. Group III base oils are derived from mineral oils, but it should be noted that the rigorous processing these fluids undergo makes their physical properties very similar to some true synthetic oils, such as PAOs. Therefore, oils derived from Group III base oils may be referred to in industry as synthetic fluids. Group II+ may include high viscosity index Group II.

[0060] The base oil blends used in the disclosed lubricating oil compositions can be mineral, animal, vegetable, synthetic, synthetic oil blends, or mixtures thereof. Suitable oils can be derived from hydrocracked, hydrogenated, hydrofinished, unrefined, refined, and rerefined oils, and mixtures thereof.

[0061] Unrefined oils are derived from natural, mineral, or synthetic sources with little or no further purification processing. Refined oils are similar to unrefined oils except that they have been processed in one or more purification steps, which may result in the improvement of one or more properties. Examples of suitable purification techniques include solvent extraction, secondary distillation, acid or base extraction, filtration, percolation, etc. Oils refined to edible quality may or may not be useful. Edible oils may also be called white oils. In some embodiments, the lubricating oil composition does not include edible oils or white oils.

[0062] Re-refined oils are also known as reclaimed or reprocessed oils. These oils are obtained using the same or similar processes as refined oils. Often, these oils are further processed by techniques directed to the removal of spent additives and oil breakdown products.

[0063] Mineral oils may include oils obtained by drilling, or from plants and animals, or any mixture thereof. For example, such oils may include, but are not limited to, castor oil, lard oil, olive oil, peanut oil, corn oil, soybean oil, and linseed oil, as well as mineral lubricating oils, such as liquid petroleum oils and solvent- or acid-treated mineral lubricating oils of the paraffinic, naphthenic, or mixed paraffinic-naphthenic types. Such oils may be partially or fully hydrogenated, if desired. Oils derived from coal or shale may also be useful.

[0064] Useful synthetic lubricating oils may include hydrocarbon oils such as polymerized, oligomerized, or interpolymerized olefins (e.g., polybutylene, polypropylene, propylene-isobutylene copolymers); poly(1-hexene), poly(1-octene), trimers or oligomers of 1-decene, such as poly(1-decene) (such materials are often referred to as α-olefins), and mixtures thereof; alkyl-benzenes (e.g., dodecylbenzene, tetradecylbenzene, dinonylbenzene, di-(2-ethylhexyl)-benzene); polyphenyls (e.g., biphenyl, terphenyl, alkylated polyphenyls); diphenylalkanes, alkylated diphenylalkanes, alkylated diphenyl ethers, and alkylated diphenyl sulfides, as well as their derivatives, analogs, and homologs, or mixtures thereof. Polyalphaolefins are typically hydrogenated materials.

[0065] Other synthetic lubricating oils include polyol esters, diesters, liquid esters of phosphorus-containing acids (e.g., tricresyl phosphate, trioctyl phosphate, and diethyl ester of decane phosphonic acid), or polymeric tetrahydrofurans. Synthetic oils can be produced by the Fischer-Tropsch reaction and are typically hydroisomerized Fischer-Tropsch hydrocarbons or waxes. In one embodiment, the oils can be prepared by the Fischer-Tropsch gas-to-liquid synthesis procedure, as well as other gas-to-liquid oils.

[0066] A major amount of base oil included in the lubricating composition may be selected from the group consisting of Group I, Group II, Group III, Group IV, Group V, and combinations of two or more of the foregoing, where the major amount of base oil is other than the base oil resulting from the provision of an additive component or viscosity index improver in the composition. In another embodiment, a major amount of base oil included in the lubricating composition may be selected from the group consisting of Group II, Group III, Group IV, Group V, and combinations of two or more of the foregoing, where the major amount of base oil is other than the base oil resulting from the provision of an additive component or viscosity index improver in the composition.

[0067] The amount of oil of lubricating viscosity present may be the remainder remaining after subtracting the sum of the amounts of performance additives, including viscosity index improvers and / or pour point depressants and / or other top treat additives, from 100% by weight. For example, the oil of lubricating viscosity may be present in the final fluid in a "major amount," such as greater than about 50%, greater than about 60%, greater than about 70%, greater than about 80%, greater than about 85%, or greater than about 90% by weight.

[0068] Optional Additives: The methods and lubricating oil compositions herein may also include several optional additives in combination with the dispersants, friction modifiers, and boron-containing compounds discussed above, as needed to meet performance criteria, so long as the relationships described are maintained. These optional additives are described in the following paragraphs.

[0069] Optional Dispersants: The lubricating oil composition may optionally contain one or more additional dispersants or mixtures thereof. Dispersants are often known as ashless dispersants because they do not contain ash-forming metals prior to incorporation into the lubricating oil composition and do not typically contribute ash when added to the lubricant. Ashless dispersants are characterized by polar groups attached to a relatively high molecular weight hydrocarbon chain. Typical ashless dispersants include N-substituted long-chain alkenyl succinimides. Examples of N-substituted long-chain alkenyl succinimides include polyisobutylene succinimides in which the number average molecular weight of the polyisobutylene substituent ranges from about 350 to about 50,000, or from about 5,000, or from about 3,000, as measured by GPC. Succinimide dispersants and their preparation are disclosed, for example, in U.S. Pat. No. 7,897,696 or U.S. Pat. No. 4,234,435. The alkenyl substituent may be prepared from polymerizable monomers containing from about 2 to about 16, or from about 2 to about 8, or from about 2 to about 6 carbon atoms. Succinimide dispersants are typically imides formed from polyamines, typically poly(ethyleneamines).

[0070] Preferred amines are selected from polyamines and hydroxyamines. Examples of polyamines that can be used include, but are not limited to, diethylene triamine (DETA), triethylene tetramine (TETA), tetraethylene pentamine (TEPA), and higher homologs such as pentaethylamine hexamine (PEHA).

[0071] Suitable heavy polyamines are mixtures of polyalkylene-polyamines containing oligomers with six or more nitrogen atoms, two or more primary amines per molecule, and more extensive branching than conventional polyamine mixtures, although they contain small amounts of lower polyamine oligomers such as TEPA and PEHA (pentaethylenehexamine). Heavy polyamines preferably include polyamine oligomers containing seven or more nitrogen atoms per molecule and two or more primary amines per molecule. Heavy polyamines contain greater than 28% by weight (e.g., >32% by weight) of total nitrogen and an equivalent weight of 120 to 160 grams of primary amine groups per equivalent.

[0072] In some approaches, suitable polyamines are commonly known as PAMs and contain a mixture of ethyleneamines, with TEPA and pentaethylenehexamine (PEHA) being the major portion of the polyamine, usually less than about 80%.

[0073] Typically, PAM has 8.7-8.9 milliequivalents of primary amine per gram (115-112 gram equivalents per equivalent of primary amine) and a total nitrogen content of about 33-34% by weight. Heavier cuts of PAM oligomers that are substantially free of TEPA and contain only small amounts of PEHA, but contain primarily oligomers with more than six nitrogens and more extensive branching, may produce dispersants with improved dispersancy.

[0074] In some embodiments, the present disclosure further includes at least one polyisobutylene succinimide dispersant derived from polyisobutylene having a number average molecular weight, as determined by GPC, ranging from about 350 to about 50,000, or from about 5000, or from about 3000. The polyisobutylene succinimide may be used alone or in combination with other dispersants.

[0075] In some embodiments, polyisobutylene, if present, may have a terminal double bond content of greater than 50 mol%, greater than 60 mol%, greater than 70 mol%, greater than 80 mol%, or greater than 90 mol%. Such PIB is also referred to as highly reactive PIB (HR-PIB). HR-PIB having a number average molecular weight in the range of about 800 to about 5000 as determined by GPC is suitable for use in embodiments of the present disclosure. Conventional PIB typically has a terminal double bond content of less than 50 mol%, less than 40 mol%, less than 30 mol%, less than 20 mol%, or less than 10 mol%.

[0076] HR-PIB having a number average molecular weight in the range of about 900 to about 3000, as determined by GPC, may be suitable. Such HR-PIB is commercially available or can be synthesized by polymerization of isobutene in the presence of a non-chlorinated catalyst, such as boron trifluoride, as described in U.S. Patent No. 4,152,499 to Boerzel et al. and U.S. Patent No. 5,739,355 to Gateau et al. When used in the thermal ene reaction described above, HR-PIB can result in higher conversions and less precipitate formation during the reaction due to increased reactivity. A suitable method is described in U.S. Patent No. 7,897,696.

[0077] In one embodiment, the present disclosure further comprises at least one dispersant derived from polyisobutylene succinic anhydride ("PIBSA"), which may have an average of about 1.0 to about 2.0 succinic moieties per polymer.

[0078] The percent active ingredient of the alkenyl or alkyl succinic anhydride can be determined using chromatographic techniques, which are described in columns 5 and 6 of U.S. Patent No. 5,334,321.

[0079] Polyolefin conversion is calculated from the % active ingredient using the formula in columns 5 and 6 of US Pat. No. 5,334,321.

[0080] Unless otherwise specified, all percentages are weight percent and all molecular weights are number average molecular weights as determined by gel permeation chromatography (GPC) using commercially available polystyrene standards (having number average molecular weights of 180 to about 18,000) as calibration standards.

[0081] In one embodiment, the dispersant may be derived from a polyalphaolefin (PAO) succinic anhydride. In one embodiment, the dispersant may be derived from an olefin maleic anhydride copolymer. As an example, the dispersant may be described as poly-PIBSA. In one embodiment, the dispersant may be derived from an anhydride grafted to an ethylene-propylene copolymer.

[0082] A suitable class of nitrogen-containing dispersants can be derived from olefin copolymers (OCPs), more specifically ethylene-propylene dispersants that can be grafted with maleic anhydride. A more complete list of nitrogen-containing compounds that can be reacted with functionalized OCPs is described in U.S. Patent Nos. 7,485,603, 7,786,057, 7,253,231, 6,107,257, and 5,075,383, and / or is commercially available.

[0083] One class of suitable dispersants can also be Mannich bases. Mannich bases are materials formed by the condensation of higher molecular weight alkyl-substituted phenols, polyalkylene polyamines, and aldehydes such as formaldehyde. Mannich bases are described in more detail in U.S. Pat. No. 3,634,515.

[0084] A suitable class of dispersants may also be high molecular weight esters or half-ester amides. Suitable dispersants may also be post-treated by conventional methods with any of a variety of agents. Among these are boron, urea, thiourea, dimercaptothiadiazole, carbon disulfide, aldehydes, ketones, carboxylic acids, hydrocarbon-substituted succinic anhydrides, maleic anhydride, nitriles, epoxides, carbonates, cyclic carbonates, hindered phenol esters, and phosphorus compounds. U.S. Patent Nos. 7,645,726, 7,214,649, and 8,048,831 are incorporated herein by reference in their entireties.

[0085] In addition to the carbonate and boric acid post-treatments, any of the compounds may be post-treated or further post-treated with a variety of post-treatments designed to improve or impart different properties. Such post-treatments include those summarized in columns 27-29 of U.S. Patent No. 5,241,003, which is incorporated herein by reference. Such treatments include treatment with inorganic phosphoric acids or anhydrides (e.g., U.S. Patent Nos. 3,403,102 and 4,648,980), organic phosphorus compounds (e.g., U.S. Patent No. 3,502,677), phosphorus pentasulfide, boron compounds as already mentioned above (e.g., U.S. Patent Nos. 3,178,663 and 4,652,387), carboxylic acids, polycarboxylic acids, anhydrides, and / or acid halides (e.g., U.S. Patent Nos. 3,708,522 and 4,948,386), epoxides, polyepoxy compounds, and the like. esters or thioepoxides (e.g., U.S. Pat. Nos. 3,859,318 and 5,026,495), aldehydes or ketones (e.g., U.S. Pat. No. 3,458,530), carbon disulfide (e.g., U.S. Pat. No. 3,256,185), glycidol (e.g., U.S. Pat. No. 4,617,137), urea, thiourea, or guanidine (e.g., U.S. Pat. Nos. 3,312,619, 3,865,813, and British Patent No. 1,065,595), organic sulfones Acids (e.g., U.S. Pat. No. 3,189,544 and British Patent No. 2,140,811), alkenyl cyanides (e.g., U.S. Pat. Nos. 3,278,550 and 3,366,569), diketenes (e.g., U.S. Pat. No. 3,546,243), diisocyanates (e.g., U.S. Pat. No. 3,573,205), alkanesultones (e.g., U.S. Pat. No. 3,749,695), 1,3-dicarbonyl compounds (e.g., U.S. Pat. No. 4,579,675), alkane sultones ...546,243), diisocyanates (e.g., U.S. Pat. No. 3,573,205), alkane sultones (e.g., U.S. Pat. No. 3,749,695), alkane sultones (e.g., U.S. Pat. No. 3,749,695), alkane sultones (e.g., U.S. Pat. No. 3,749,695), alkane sultones (e.g., U.S. Pat. No. 3,749,695), alkane sultones (e.g., U.S. Pat. No. 3,749,695), alkane sultones (e.g., U.S. Pat. No. Sulfates of oxylated alcohols or phenols (e.g., U.S. Pat. No. 3,954,639), cyclic lactones (e.g., U.S. Pat. Nos. 4,617,138, 4,645,515, 4,668,246, 4,963,275, and 4,971,711), cyclic carbonates or thiocarbonates, linear monocarbonates or polycarbonates, or chloroformates (e.g., U.S. Pat. Nos. 4,612,132, 4,647,390, 4,648,886, 4,670,170), nitrogen-containing carboxylic acids (e.g., U.S. Pat. No. 4,971,598 and British Patent No. 2,140,811), hydroxy-protected chlorodicarbonyloxy compounds (e.g., U.S. Pat. No. 4,614,522), lactams, thiolactams, thiolactones, or dithiolactones (e.g., U.S. Pat. Nos. 4,614,603 and 4,666,460), cyclic carbonates or thiocarbonates, linear monocarbonates or polycarbonates, or chloroformates (e.g., U.S. Pat. Nos. 4,614,603 and 4,666,460). Nos. 4,612,132, 4,647,390, 4,646,860, and 4,670,170), nitrogen-containing carboxylic acids (e.g., U.S. Pat. No. 4,971,598 and British Patent No. 2,440,811), hydroxy-protected chlorodicarbonyloxy compounds (e.g., U.S. Pat. No. 4,614,522), lactams, thiolactams, thiolactones, or dithiolactones (e.g., U.S. Pat. Nos. 4,614,603 and 4,666,460), cyclic carbamates, cyclic thiocarbamates, or cyclic dithiocarbamates (e.g., U.S. Pat. Nos. 4,612,132, 4,647,390, 4,646,860, and 4,670,170), For example, U.S. Pat. Nos. 4,663,062 and 4,666,459), hydroxyaliphatic carboxylic acids (e.g., U.S. Pat. Nos. 4,482,464, 4,521,318, and 4,713,189), oxidizing agents (e.g., U.S. Pat. No. 4,379,064), combinations of phosphorus pentasulfide and polyalkylene polyamines (e.g., U.S. Pat. No. 3,185,647), combinations of carboxylic acids or aldehydes or ketones and sulfur or sulfur chloride (e.g., U.S. Pat. Nos. 3,390,086 and 3,470,098), hydrazine and carbon disulfide. Combinations of aldehydes and phenols (e.g., U.S. Pat. No. 3,519,564), combinations of aldehydes and phenols (e.g., U.S. Pat. Nos. 3,649,229, 5,030,249, and 5,039,307), combinations of aldehydes and O-diesters of dithiophosphoric acids (e.g., U.S. Pat. No. 3,865,740), combinations of hydroxyaliphatic carboxylic acids and boric acid (e.g., U.S. Pat. No. 4,554,086), combinations of hydroxyaliphatic carboxylic acids followed by formaldehyde and phenols (e.g., U.S. Pat. No. 4,636,322), a combination of a hydroxyaliphatic carboxylic acid and then an aliphatic dicarboxylic acid (e.g., U.S. Pat. No. 4,663,064), a combination of formaldehyde and a phenol and then glycolic acid (e.g., U.S. Pat. No. 4,699,724), a combination of a hydroxyaliphatic carboxylic acid or oxalic acid and then a diisocyanate (e.g., U.S. Pat. No. 4,713,191), a combination of an inorganic acid or anhydride of phosphorus or its partial or total sulfur analog and a boron compound (e.g., U.S. Pat. No. 4,857,214), an organic diacid and then an unsaturated fatty acid and then a nitrosoaromatic amine, optionally followed by a boron compound, and then a glycosylating agent. Combinations of aldehydes and triazoles (e.g., U.S. Pat. No. 4,973,412), combinations of aldehydes and triazoles (e.g., U.S. Pat. No. 4,963,278), combinations of aldehydes and triazoles followed by boron compounds (e.g., U.S. Pat. No. 4,981,492), and combinations of cyclic lactones and boron compounds (e.g., U.S. Pat. Nos. 4,963,275 and 4,971,711). The above-mentioned patents are incorporated herein in their entirety.

[0086] Suitable dispersants may have a TBN of from about 10 to about 65 mg KOH / g on an oil-free basis, which equates to about 5 to about 30 TBN when measured on a dispersant sample containing about 50% diluent oil. TBN is measured by the method of ASTM D2896.

[0087] In yet another embodiment, the optional dispersant additive may be a hydrocarbyl-substituted succinamide or succinimide dispersant. In this approach, the hydrocarbyl-substituted succinamide or succinimide dispersant may be derived from a hydrocarbyl-substituted acylating agent reacted with a polyalkylene polyamine, the hydrocarbyl substituent of the succinamide or succinimide dispersant being a linear or branched hydrocarbyl group having a number average molecular weight of about 250 to about 5,000 as determined by GPC using polystyrene as a calibration standard.

[0088] In some approaches, the polyalkylene polyamine used to form the dispersant has the formula:

[0089] [ka] wherein each R and R' is independently a divalent C1-C6 alkylene linker, and each R1 and R2 is independently hydrogen, a C1-C6 alkyl group, or together with the nitrogen atom to which they are attached form a 5- or 6-membered ring optionally fused to one or more aromatic or non-aromatic rings, and n is an integer from 0 to 8. In another approach, the polyalkylene polyamine is selected from the group consisting of a mixture of polyethylene polyamines having an average of 5 to 7 nitrogen atoms, triethylenetetramine, tetraethylenepentamine, and combinations thereof.

[0090] The optional dispersant, when present, may be used in an amount sufficient to provide up to about 20 wt. % dispersant ...

[0091] Antioxidants: The lubricating oil compositions herein may also optionally contain one or more antioxidants. Antioxidant compounds are known and include, for example, phenates, phenate sulfides, sulfurized olefins, phosphosulfurized terpenes, sulfurized esters, aromatic amines, alkylated diphenylamines (e.g., nonyldiphenylamine, di-nonyldiphenylamine, octyldiphenylamine, di-octyldiphenylamine), phenyl-alpha-naphthylamines, alkylated phenyl-alpha-naphthylamines, hindered non-aromatic amines, phenols, hindered phenols, oil-soluble molybdenum compounds, polymeric antioxidants, or mixtures thereof. The antioxidant compounds may be used alone or in combination.

[0092] The hindered phenol antioxidant may contain a secondary butyl group and / or a tertiary butyl group as a steric hindering group. The phenol group may be further substituted with a hydrocarbyl group 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, or 4-dodecyl-2,6-di-tert-butylphenol. In one embodiment, the hindered phenol antioxidant may be an ester and may include, for example, Irganox™ L-135 available from BASF or an addition product derived from 2,6-di-tert-butylphenol and an alkyl acrylate, where the alkyl group may contain from about 1 to about 18, or from about 2 to about 12, or from about 2 to about 8, or from about 2 to about 6, or about 4 carbon atoms. Another commercially available hindered phenol antioxidant may be an ester and may include Ethanox™ 4716 available from Albemarle Corporation.

[0093] Useful antioxidants may include diarylamines and high molecular weight phenols. In one embodiment, the lubricating oil composition may contain a mixture of diarylamines and high molecular weight phenols, such that each antioxidant may be present in an amount sufficient to provide up to about 5 wt. %, based on the final weight of the lubricating oil composition. In one embodiment, the antioxidant may be a mixture of about 0.3 to about 1.5 wt. % diarylamines and about 0.4 to about 2.5 wt. % high molecular weight phenols, based on the final weight of the lubricating oil composition.

[0094] Examples of suitable olefins that can be sulfurized to form sulfurized olefins include propylene, butylene, isobutylene, polyisobutylene, pentene, hexene, heptene, octene, nonene, decene, undecene, dodecene, tridecene, tetradecene, pentadecene, hexadecene, heptadecene, octadecene, nonadecene, eicosene, or mixtures thereof. In one embodiment, hexadecene, heptadecene, octadecene, nonadecene, eicosene, or mixtures thereof, as well as their dimers, trimers, and tetramers, are particularly useful olefins. Alternatively, the olefin can be a Diels-Alder adduct of a diene, such as 1,3-butadiene, and an unsaturated ester, such as butyl acrylate.

[0095] Another class of sulfurized olefins includes sulfurized fatty acids and their esters. The fatty acids are often derived from vegetable or animal oils and typically contain from about 4 to about 22 carbon atoms. Examples of suitable fatty acids and their esters include triglycerides, oleic acid, linoleic acid, palmitoleic acid, or mixtures thereof. Often, the fatty acids are derived from lard oil, tall oil, peanut oil, soybean oil, cottonseed oil, sunflower seed oil, or mixtures thereof. The fatty acids and / or esters may be mixed with an olefin, such as an α-olefin.

[0096] In another alternative embodiment, the antioxidant composition contains a molybdenum-containing antioxidant in addition to the phenolic and / or aminic antioxidants discussed above. When a combination of these three antioxidants is used, preferably the ratio of phenol to amine to molybdenum-containing is (0-2):(0-2):(0-1).

[0097] The one or more antioxidants may be present in the range of about 0% to about 20%, or about 0.1% to about 10%, or about 1% to about 5% by weight of the lubricating oil composition.

[0098] Antiwear Agents: The lubricating oil compositions herein may also optionally contain one or more antiwear agents. Examples of suitable additional antiwear agents include, but are not limited to, metal thiophosphates; metal dialkyldithiophosphates; phosphoric acid esters or salts thereof; phosphoric acid esters; phosphites; phosphorus-containing carboxylic acid esters, ethers, or amides; sulfurized olefins; thiocarbamate-containing compounds such as thiocarbamate esters, alkylene-linked thiocarbamates, and bis(S-alkyldithiocarbamyl) disulfides; and mixtures thereof. A suitable antiwear agent may be molybdenum dithiocarbamate. Phosphorus-containing antiwear agents are more fully described in EP 612839. The metal in the dialkyldithiophosphate salt may be an alkali metal, alkaline earth metal, aluminum, lead, tin, molybdenum, manganese, nickel, copper, titanium, or zinc. A useful antiwear agent may be zinc dialkyldithiophosphate.

[0099] Further examples of suitable antiwear agents include titanium compounds, tartrates, tartrimides, oil-soluble amine salts of phosphorus compounds, sulfurized olefins, phosphites (e.g., dibutyl phosphite), phosphonates, thiocarbamate-containing compounds such as thiocarbamate esters, thiocarbamate amides, thiocarbamic acid ethers, alkylene-linked thiocarbamates, and bis(S-alkyldithiocarbamyl) disulfides. The tartrates or tartrimides may contain alkyl-ester groups, and the total number of carbon atoms on the alkyl group may be at least 8. In one embodiment, the antiwear agent may include citrate.

[0100] The antiwear agent may be present in a range including from about 0% to about 15%, or from about 0.01% to about 10%, or from about 0.05% to about 5%, or from about 0.1% to about 3% by weight of the lubricating oil composition.

[0101] Detergents: The lubricating oil composition may optionally contain one or more neutral detergents, underbased detergents, or overbased detergents, and mixtures thereof. Suitable additional detergent bases include phenates, sulfur-containing phenates, sulfonates, calixarates, salixarates, salicylates, carboxylic acids, phosphorus acids, mono- and / or di-thiophosphoric acids, alkylphenols, sulfur-linked alkylphenol compounds, or methylene-bridged phenols. Suitable detergents and methods for their preparation are described in more detail in numerous patent publications, including U.S. Pat. No. 7,732,390 and the references cited therein.

[0102] The detergent substrate may be salified with an alkali metal or alkaline earth metal, such as, but not limited to, calcium, magnesium, potassium, sodium, lithium, barium, or mixtures thereof. In some embodiments, the detergent is barium-free. In some embodiments, the detergent may contain trace amounts of other metals, such as magnesium or calcium, in amounts of 50 ppm or less, 40 ppm or less, 30 ppm or less, 20 ppm or less, or 10 ppm or less. Suitable detergents may include alkali metal or alkaline earth metal salts of petroleum sulfonic acids and long-chain mono- or di-alkylaryl sulfonic acids in which the aryl groups are benzyl, tolyl, and xylyl. Examples of suitable detergents include calcium phenate, calcium sulfur-containing phenate, calcium sulfonate, calcium calixalate, calcium salixalate, calcium salicylate, calcium carboxylic acid, calcium phosphorus acid, calcium mono- and / or di-thiophosphoric acid, calcium alkyl phenol, calcium sulfur-bound alkyl phenol compound, calcium methylene bridged phenol, magnesium phenate, magnesium sulfonate, magnesium calixalate, magnesium salixalate, magnesium salicylate, magnesium carboxylic acid, magnesium phosphorus acid, magnesium mono- and / or di-thiophosphoric acid, magnesium alkyl phenol, magnesium sulfur-bound alkyl phenol compound, magnesium methylene bridged phenol, sodium phenate, sodium sulfonate, sodium calixalate, sodium salixalate, sodium salicylate, sodium carboxylic acid, sodium phosphorus acid, sodium mono- and / or di-thiophosphoric acid acid), sodium alkylphenol, sodium sulfur-linked alkylphenol compound, or sodium methylene-bridged phenol.

[0103] Overbased detergent additives are well known in the art and can be alkali or alkaline earth metal overbased detergent additives. Such detergent additives can be prepared by reacting a metal oxide or metal hydroxide with a base material and carbon dioxide gas. The base material is typically an acid, such as an aliphatic-substituted sulfonic acid, aliphatic-substituted carboxylic acid, or aliphatic-substituted phenol.

[0104] The overbased detergent of the lubricating oil composition may have a total base number (TBN) of about 200 mg KOH / gram or greater, or, as a further example, about 250 mg KOH / gram or greater, or about 350 mg KOH / gram or greater, or about 375 mg KOH / gram or greater, or about 400 mg KOH / gram or greater.

[0105] Examples of suitable overbased detergents include overbased calcium phenate, overbased calcium sulfur-containing phenate, overbased calcium sulfonate, overbased calcium calixalate, overbased calcium salixalate, overbased calcium salicylate, overbased calcium carboxylic acid, overbased calcium phosphorus acid, overbased calcium mono- and / or di-thiophosphoric acid, overbased calcium alkylphenol, overbased calcium sulfur-bonded alkylphenol compound, overbased calcium methylene-bridged phenol, overbased magnesium phenate, overbased magnesium sulfur-containing phenate, overbased magnesium sulfonate, overbased magnesium calixalate, overbased magnesium salixalate, overbased magnesium salicylate, overbased magnesium carboxylic acid, overbased magnesium phosphorus acid, overbased magnesium mono- and / or di-thiophosphoric acid. acid), overbased magnesium alkylphenol, overbased magnesium sulfur-bonded alkylphenol compound, or overbased magnesium methylene-bridged phenol.

[0106] The overbased calcium phenate detergents have a total base number of at least about 150 mg KOH / g, at least about 225 mg KOH / g, at least about 225 mg KOH / g to about 400 mg KOH / g, at least about 225 mg KOH / g to about 350 mg KOH / g, or about 230 mg KOH / g to about 350 mg KOH / g, all measured by the method of ASTM D-2896. When such detergent compositions are formed in an inert diluent, such as a process oil, usually a mineral oil, the total base number reflects the basicity of the entire composition, including the diluent and any other materials (e.g., accelerators, etc.) that may be included in the detergent composition.

[0107] The overbased detergent may have a metal to substrate ratio of from 1.1:1, or from 2:1, or from 4:1, or from 5:1, or from 7:1, or from 10:1. In some embodiments, the detergent is effective in reducing or preventing rust in engines or other automotive components such as transmissions or gears. The detergent may be present in the lubricating composition from about 0 wt % to about 10 wt %, or from about 0.1 wt % to about 8 wt %, or from about 1 wt % to about 4 wt %, or from greater than about 4 wt % to about 8 wt %.

[0108] Extreme Pressure Agents: The lubricating oil compositions herein may also optionally contain one or more extreme pressure agents. Oil-soluble extreme pressure (EP) agents include sulfur and chlorosulfur-containing EP agents, chlorinated hydrocarbon EP agents, and phosphorus EP agents. Examples of such EP agents include organic sulfides and polysulfides such as chlorinated waxes, dibenzyl disulfide, bis(chlorobenzyl) disulfide, dibutyl tetrasulfide, sulfurized methyl ester of oleic acid, sulfurized alkylphenols, sulfurized dipentenes, sulfurized terpenes, and sulfurized Diels-Alder adducts; phosphorus sulfurized hydrocarbons such as the reaction products of phosphorus sulfide with turpentine or methyl oleate; dihydrocarbyl and trihydrocarbyl phosphites, for example, phosphate esters such as dibutyl phosphite, diheptyl phosphite, dicyclohexyl phosphite, pentyl phenyl phosphite; dipentyl phenyl phosphite, tridecyl phosphite, distearyl phosphite, and polypropylene-substituted phenyl phosphites; metal thiocarbamates such as zinc dioctyldithiocarbamate and barium heptylphenol diacid; amine salts of alkyl and dialkyl phosphates, including, for example, the amine salt of the reaction product of a dialkyl dithiophosphate with propylene oxide, and mixtures thereof.

[0109] Additional Friction Modifiers: The lubricating oil compositions herein may also optionally contain one or more additional friction modifiers. Suitable friction modifiers may include metal-containing and metal-free friction modifiers, and may include, but are not limited to, imidazolines, amides, amines, succinimides, alkoxylated amines, alkoxylated ether amines, amine oxides, amidoamines, nitriles, betaines, quaternary amines, imines, amine salts, aminoguanidines, alkanolamides, phosphonates, metal-containing compounds, glycerol esters, sulfurized fatty compounds and olefins, sunflower oil, other naturally occurring vegetable or animal oils, dicarboxylic acid esters, esters or partial esters of polyols with one or more aliphatic or aromatic carboxylic acids, and the like.

[0110] Suitable friction modifiers may contain hydrocarbyl groups selected from linear, branched, or aromatic hydrocarbyl groups, or mixtures thereof, and may be saturated or unsaturated. The hydrocarbyl groups may be composed of carbon and hydrogen or heteroatoms such as sulfur or oxygen. The hydrocarbyl groups may range from about 12 to about 25 carbon atoms. In some embodiments, the friction modifier may be a long-chain fatty acid ester. In other embodiments, the long-chain fatty acid ester may be a mono-ester, a di-ester, or a (tri)glyceride. The friction modifier may be a long-chain fatty amide, a long-chain fatty ester, a long-chain fatty epoxide derivative, or a long-chain imidazoline.

[0111] Other suitable friction modifiers may include organic, ashless (metal-free), nitrogen-free friction modifiers. Such friction modifiers include esters formed by reacting carboxylic acids and anhydrides with alkanols, and generally may contain polar end groups (e.g., carboxyl or hydroxyl) covalently bonded to an oleophilic hydrocarbon chain. An example of an organic ashless, nitrogen-free friction modifier is commonly known as glycerol monooleate (GMO), which may contain mono-, di-, and tri-esters of oleic acid. Other suitable friction modifiers are described in U.S. Patent No. 6,723,685, the entire contents of which are incorporated herein by reference.

[0112] Aminic friction modifiers may include amines or polyamines. Such compounds may have hydrocarbyl groups that are linear, saturated, unsaturated, or a mixture thereof, and may contain from about 12 to about 25 carbon atoms. Further examples of suitable friction modifiers include alkoxylated amines and alkoxylated ether amines. Such compounds may have hydrocarbyl groups that are linear, saturated, unsaturated, or a mixture thereof. They may contain from about 12 to about 25 carbon atoms. Examples include ethoxylated amines and ethoxylated ether amines.

[0113] The amines and amides may be used as such or in the form of adducts or reaction products with boron compounds such as boron oxide, boron halides, metaborates, boric acid, or mono-, di-, or tri-alkylborates. Other suitable friction modifiers are described in U.S. Patent No. 6,300,291, which is incorporated herein by reference in its entirety.

[0114] Additional friction modifiers may optionally be present in ranges such as from about 0% to about 10% by weight, or from about 0.01% to about 8% by weight, or from about 0.1% to about 4% by weight.

[0115] Molybdenum-Containing Component: The lubricating oil compositions herein may also optionally contain one or more molybdenum-containing compounds. The oil-soluble molybdenum compounds may have the functional properties of antiwear agents, antioxidants, friction modifiers, or mixtures thereof. The oil-soluble molybdenum compounds may include molybdenum dithiocarbamates, molybdenum dialkyldithiophosphates, molybdenum dithiophosphinates, amine salts of molybdenum compounds, molybdenum xanthates, molybdenum thioxanthates, molybdenum sulfides, molybdenum carboxylates, molybdenum alkoxides, trinuclear organo-molybdenum compounds, and / or mixtures thereof. Molybdenum sulfides include molybdenum disulfide. The molybdenum disulfide may be in the form of a stable dispersion. In one embodiment, the oil-soluble molybdenum compounds may be selected from the group consisting of molybdenum dithiocarbamates, molybdenum dialkyldithiophosphates, amine salts of molybdenum compounds, and mixtures thereof. In one embodiment, the oil-soluble molybdenum compound can be a molybdenum dithiocarbamate.

[0116] Suitable examples of molybdenum compounds that can be used include commercially available materials sold under trade names such as Molyvan 822™, Molyvan™ A, Molyvan 2000™, and Molyvan 855™ from R.T. Vanderbilt Co., Ltd., and Sakura-Lube™ S-165, S-200, S-300, S-310G, S-525, S-600, S-700, and S-710 available from Adeka Corporation, and mixtures thereof. Suitable molybdenum components are described in U.S. Pat. No. 5,650,381, U.S. Reissue Pat. No. 37,363 (E1), U.S. Reissue Pat. No. 38,929 (E1), and U.S. Reissue Pat. No. 40,595 (E1), the entire contents of which are incorporated herein by reference.

[0117] Additionally, the molybdenum compound can be an acidic molybdenum compound, including molybdic acid, ammonium molybdate, sodium molybdate, potassium molybdate, and other alkali metal molybdates, and other molybdenum salts such as sodium hydrogen molybdate, MoOCl, MoOBr, MoOCl, molybdenum trioxide, or similar acidic molybdenum compounds. Alternatively, the composition can provide the molybdenum via molybdenum / sulfur complexes of basic nitrogen compounds, as described, for example, in U.S. Pat. Nos. 4,263,152, 4,285,822, 4,283,295, 4,272,387, 4,265,773, 4,261,843, 4,259,195, and 4,259,194, and WO 94 / 06897, the foregoing patents being incorporated herein by reference in their entireties.

[0118] Another class of suitable organo-molybdenum compounds is trinuclear molybdenum compounds and mixtures thereof, such as compounds of the formula Mo3SkLnQz, where S represents sulfur, L represents an independently selected ligand whose organic group has a sufficient number of carbon atoms to render the compound soluble or dispersible in oil, n is 1 to 4, k varies from 4 to 7, Q is selected from the group of neutral electron donor compounds such as water, amines, alcohols, phosphines, and ethers, and z ranges from 0 to 5, including non-stoichiometric values. There may be at least 21 total carbon atoms among all of the ligand's organic groups, such as at least 25, at least 30, or at least 35 carbon atoms. Additional suitable molybdenum compounds are described in U.S. Pat. No. 6,723,685, the entire contents of which are incorporated herein by reference.

[0119] The oil-soluble molybdenum compound may be present in an amount sufficient to provide from about 0.5 ppm to about 2000 ppm, from about 1 ppm to about 700 ppm, from about 1 ppm to about 550 ppm, from about 5 ppm to about 300 ppm, or from about 20 ppm to about 250 ppm of molybdenum.

[0120] Transition Metal-Containing Compound: In another embodiment, the oil-soluble compound may be a transition metal-containing compound or metalloid. Transition metals may include, but are not limited to, titanium, vanadium, copper, zinc, zirconium, molybdenum, tantalum, tungsten, etc. Suitable metalloids include, but are not limited to, boron, silicon, antimony, tellurium, etc.

[0121] In some embodiments, the oil-soluble transition metal-containing compound may function as an anti-wear agent, a friction modifier, an antioxidant, a deposit control additive, or two or more of these functions. In some embodiments, the oil-soluble transition metal-containing compound may be an oil-soluble titanium compound, such as a titanium(IV) alkoxide. Among the titanium-containing compounds that may be used in or for preparing the oil-soluble materials of the disclosed technology are various Ti(IV) compounds, such as titanium(IV) oxide, titanium(IV) sulfide, titanium(IV) nitrate, titanium(IV) alkoxides, such as titanium methoxide, titanium ethoxide, titanium propoxide, titanium isopropoxide, titanium butoxide, titanium 2-ethylhexoxide, and other titanium compounds or complexes, including, but not limited to, titanium phenate, titanium carboxylates, such as titanium(IV) 2-ethyl-1,3-hexanedioate, titanium citrate, or titanium oleate, and titanium(IV) (triethanolaminato)isopropoxide. Other forms of titanium encompassed by the disclosed technology include titanium phosphates, such as titanium dithiophosphates (e.g., dialkyldithiophosphates) and titanium sulfonates (e.g., alkylbenzene sulfonates), or generally reaction products of titanium compounds with various acidic materials to form salts, such as oil-soluble salts. Thus, titanium compounds can be derived from organic acids, alcohols, and glycols, among others. Ti compounds can also exist in dimeric or oligomeric forms containing Ti-O-Ti structures. Such titanium materials are commercially available or can be readily prepared by suitable synthetic techniques apparent to those skilled in the art. They can exist at room temperature as solids or liquids, depending on the particular compound. They can also be provided in solution form in a suitable inert solvent.

[0122] In one embodiment, titanium can be provided as a Ti-modified dispersant, such as a succinimide dispersant. Such materials can be prepared by forming a titanium mixed anhydride between a titanium alkoxide and a hydrocarbyl-substituted succinic anhydride, such as an alkenyl-(or alkyl) succinic anhydride. The resulting titanate-succinate intermediate can be used directly or reacted with any of several materials, such as (a) polyamine-based succinimide / amide dispersants having free condensable —NH functional groups; (b) components of polyamine-based succinimide / amide dispersants, i.e., alkenyl-(or alkyl) succinic anhydrides and polyamines; and (c) hydroxy-containing polyester dispersants prepared by reacting a substituted succinic anhydride with a polyol, aminoalcohol, polyamine, or mixtures thereof. Alternatively, the titanate-succinate intermediate can be reacted with other agents, such as alcohols, amino alcohols, ether alcohols, polyether alcohols or polyols, or fatty acids, and the product can be used directly to impart Ti to lubricants or further reacted with a succinic dispersant as described above. As an example, one part (mole) of tetraisopropyl titanate can be reacted with about two parts (mole) of polyisobutene-substituted succinic anhydride at 140-150°C for 5-6 hours to provide a titanium-modified dispersant or intermediate. The resulting material (30 g) can be further reacted with a succinimide dispersant from a polyisobutene-substituted succinic anhydride and polyethylene polyamine mixture (127 grams + diluent oil) at 150°C for 1.5 hours to produce a titanium-modified succinimide dispersant.

[0123] Another titanium-containing compound is titanium alkoxide and C6-C 25 The reaction product may be a reaction product with a carboxylic acid. The reaction product may be represented by the formula:

[0124] [ka] wherein n is an integer selected from 2, 3, and 4, and R is a hydrocarbyl group containing from about 5 to about 24 carbon atoms, or may be represented by the formula:

[0125] [ka] wherein m+n=4, n ranging from 1 to 3, R4 is an alkyl moiety having from 1 to 8 carbon atoms, R1 is selected from a hydrocarbyl group containing from about 6 to 25 carbon atoms, and R2 and R3 are the same or different and selected from a hydrocarbyl group containing from 1 to 6 carbon atoms, or the titanium compound may be represented by the formula:

[0126] [ka] wherein x ranges from 0 to 3; R1 is selected from hydrocarbyl groups containing from about 6 to 25 carbon atoms; R2 and R3 are the same or different and are selected from hydrocarbyl groups containing from about 1 to 6 carbon atoms; and R4 is selected from H, C6 to C 25 The carboxylic acid moiety is selected from the group consisting of:

[0127] Suitable carboxylic acids may include, but are not limited to, caproic acid, caprylic acid, lauric acid, myristic acid, palmitic acid, stearic acid, arachic acid, oleic acid, erucic acid, linoleic acid, linolenic acid, cyclohexanecarboxylic acid, phenylacetic acid, benzoic acid, neodecanoic acid, and the like.

[0128] In one embodiment, the oil-soluble titanium compound may be present in the lubricating oil composition in an amount to provide from about 0 to about 3000 ppm by weight of titanium, or from 25 to about 1500 ppm by weight of titanium, or from about 35 to about 500 ppm by weight of titanium, or from about 50 to about 300 ppm by weight.

[0129] Viscosity index improvers: The lubricating oil compositions herein may also optionally contain one or more viscosity index improvers. Suitable viscosity index improvers may include polyolefins, olefin copolymers, ethylene / propylene copolymers, polyisobutene, hydrogenated styrene-isoprene polymers, styrene / maleic acid ester copolymers, hydrogenated styrene / butadiene copolymers, hydrogenated isoprene polymers, alpha-olefin maleic anhydride copolymers, polymethacrylates, polyacrylates, polyalkylstyrenes, hydrogenated alkenylaryl conjugated diene copolymers, or mixtures thereof. Viscosity index improvers may include star polymers, suitable examples of which are described in U.S. Publication No. 2012 / 0101017(A1).

[0130] The lubricating oil compositions herein may also optionally contain one or more dispersant viscosity index improvers in addition to or in place of a viscosity index improver. Suitable viscosity index improvers may include functionalized polyolefins, such as ethylene-propylene copolymers functionalized with the reaction product of an acylating agent (such as maleic anhydride) and an amine, amine-functionalized polymethacrylates, or esterified maleic anhydride-styrene copolymers reacted with amines.

[0131] The total amount of viscosity index improver and / or dispersant viscosity index improver can be from about 0% to about 20%, from about 0.1% to about 15%, from about 0.1% to about 12%, or from about 0.5% to about 10% by weight of the lubricating oil composition.

[0132] Other optional additives: Other additives may be selected to perform one or more functions required in a lubricating fluid. Furthermore, one or more of the aforementioned additives may be multifunctional and may provide functions in addition to or other than those described herein. Any lubricating oil composition according to the present disclosure may optionally include other performance additives. The other performance additives may be in addition to the specific additives of the present disclosure and / or may include one or more of metal deactivators, viscosity index improvers, detergents, ashless TBN boosters, friction modifiers, antiwear agents, corrosion inhibitors, rust inhibitors, dispersants, dispersant viscosity index improvers, extreme pressure agents, antioxidants, foam suppressants, demulsifiers, emulsifiers, pour point depressants, seal swell agents, and mixtures thereof. Typically, a fully formulated lubricating oil will contain one or more of these performance additives.

[0133] Suitable metal deactivators may include derivatives of benzotriazole (typically tolyltriazole), dimercaptothiadiazole derivatives, 1,2,4-triazole, benzimidazole, 2-alkyldithiobenzimidazole, or 2-alkyldithiobenzothiazole; foam suppressors including copolymers of ethyl acrylate, 2-ethylhexyl acrylate, and optionally vinyl acetate; demulsifiers including trialkyl phosphate, polyethylene glycol, polyethylene oxide, polypropylene oxide, and (ethylene oxide-propylene oxide) polymers; pour point depressants including esters of maleic anhydride-styrene, polymethacrylate, polyacrylate, or polyacrylamide.

[0134] Suitable suds suppressors include silicon-based compounds such as siloxanes.

[0135] Suitable pour point depressants may include polymethyl methacrylate or mixtures thereof. The pour point depressant may be present in an amount sufficient to provide from about 0 wt % to about 1 wt %, from about 0.01 wt % to about 0.5 wt %, or from about 0.02 wt % to about 0.04 wt %, based on the final weight of the lubricating oil composition.

[0136] Suitable rust inhibitors can be a single compound or a mixture of compounds that have the property of inhibiting corrosion of ferrous metal surfaces. Non-limiting examples of rust inhibitors useful herein include oil-soluble high molecular weight organic acids such as 2-ethylhexanoic acid, lauric acid, myristic acid, palmitic acid, oleic acid, linoleic acid, linolenic acid, behenic acid, and cerotic acid, as well as oil-soluble polycarboxylic acids, including dimer and trimer acids such as those produced from tall oil fatty acid, oleic acid, and linoleic acid. Other suitable corrosion inhibitors include long-chain alpha- and omega-dicarboxylic acids in the molecular weight range of about 600 to about 3000, and alkenyl succinic acids in which the alkenyl group contains about 10 or more carbon atoms, such as tetrapropenyl succinic acid, tetradecenyl succinic acid, and hexadecenyl succinic acid. Another useful type of acidic corrosion inhibitor is the half ester of an alkenyl succinic acid having about 8 to about 24 carbon atoms in the alkenyl group with an alcohol, such as a polyglycol. The corresponding half amides of such alkenyl succinic acids are also useful. Useful rust inhibitors are high molecular weight organic acids. When present, the rust inhibitor may be used in an amount sufficient to provide from about 0 wt. % to about 5 wt. %, from about 0.01 wt. % to about 3 wt. %, or from about 0.1 wt. % to about 2 wt. %, based on the final weight of the lubricating oil composition.

[0137] Generally speaking, the methods and lubricating oil compositions herein may contain additive components in the ranges listed in the table below.

[0138] [Table 2]

[0139] The percentages of each component above represent the weight percent of each component based on the weight of the final lubricating oil composition. The remainder of the lubricating oil composition consists of one or more base oils. The additives used in formulating the compositions described herein can be blended into the base oil individually or in various partial combinations. However, it may be preferred to blend all of the components simultaneously using an additive concentrate (i.e., additives plus a diluent such as a hydrocarbon solvent). Fully formulated lubricants conventionally contain an additive package, referred to herein as a dispersant / inhibitor package or DI package, that supplies the characteristics required in the formulation. [Example]

[0140] The following examples illustrate exemplary embodiments of the present disclosure. In these examples, as well as elsewhere in this application, all ratios, parts, and percentages are by weight unless otherwise indicated. It is intended that these examples are presented for illustrative purposes only and are not intended to limit the scope of the invention disclosed herein.

[0141] Comparative Example 1 Lubricants containing increasing amounts of glycerol monooleate friction modifier were evaluated for lead corrosion according to ASTM D6594. The evaluation measured the amount of lead concentration in the oil from 0 to 168 hours when heated to approximately 135°C. The amount of lead was measured via ICP using ASTM D5185 or an equivalent measurement. The evaluated lubricants contained similar amounts of base oil, viscosity index improver, succinimide dispersant, antiwear additive, detergent, and antifoam additive. Table 3 below and Figure 1 show that as the friction modifier treat rate increases, lead corrosion also increases.

[0142] [Table 3]

[0143] Example 1 Different types of boron-containing compounds were evaluated to passivate lead corrosion associated with the carboxylic acid and / or hydroxyl groups of a nitrogen-free mechanical friction modifier, in this case, glycerol monooleate, by either pre-reacting the friction modifier with the boron-containing compound or simply blending the boron-containing compound with the friction modifier in a lubricant at 70°C along with other lubricant additives. As in Comparative Example 1, the evaluated lubricants also contained equivalent amounts of base oil, viscosity index improver, succinimide dispersant, antiwear additive, detergent, and antifoam additive. As in Comparative Example 1, lead corrosion was measured according to ASTM D6594, and lead concentration was measured by ASTM D5185. In each case, the boron-containing compound and glycerol monooleate were present in equal molar percentages. Surprisingly, and as shown by comparing the results in Tables 4 and 5 and illustrated in Figure 2, lead corrosion was comparable and / or improved when the friction modifier was not pre-reacted with the boron-containing composition before blending with the other lubricant components.

[0144] [Table 4] * Boron per weight percent of GMO, for example, is calculated by dividing 174.9 ppm of boron by a treat rate of 0.56% GMO, providing a boron ratio of 312.3 ppm of boron for each weight percent of friction modifier. ** The lead corrosion (ΔPb) per each weight percent of GMO is calculated, for example, by dividing 70.0 ppm lead corrosion by the treat rate of 0.56 GMO, providing a lead corrosion ratio of 125.0 ppm for each weight percent of friction modifier.

[0145] [Table 5] * The lead corrosion (ΔPb) per each weight percent of GMO is calculated, for example, by dividing 150.3 ppm lead corrosion by the 0.6% GMO treat rate, providing a lead corrosion ratio of 250.4 ppm for each weight percent of friction modifier.

[0146] As shown in Table 4 and Figure 3, admixtures of friction modifiers with boron-containing compounds can even result in lubricants with lower lead corrosion than lubricants without friction modifiers. Furthermore, comparing the lead corrosion in Tables 4 and 5, admixtures of friction modifiers with boron-containing compounds can, in some cases, even result in lubricants with improved lead corrosion than lubricants containing friction modifiers pre-boronated with the same boron compound. Figure 4 also demonstrates that the method and admixture of the present invention form robust compositions whose lead corrosion is not significantly dependent on friction modifier treat rate. For example, Figure 4 shows that as the friction modifier treat rate of the present invention increased, the lubricants of the present invention maintained consistently low lead corrosion, whereas the lead corrosion of prior non-boronated friction modifiers tended to increase with increasing friction modifier treat rate.

[0147] It should be noted that, as used in this specification and the appended claims, the singular forms "a," "an," and "the" include plural referents unless expressly and unambiguously limited to one referent. Thus, for example, a reference to an "antioxidant" includes two or more different antioxidants. As used herein, the term "comprises" and grammatical variations thereof are intended to be open-ended such that the recitation of items in a list does not exclude other similar items that may be substituted for or added to the listed items.

[0148] For purposes of this specification and the appended claims, unless otherwise indicated, all numbers expressing quantities, percentages, or proportions, and other numerical values used in the specification and claims should be understood as being modified in all instances by the term "about." Accordingly, unless indicated to the contrary, the numerical parameters set forth in the following specification and appended claims are approximations that may vary depending upon the desired properties sought to be obtained by the present disclosure. At the very least, and not as an attempt to limit the application of the doctrine of equivalents to the scope of the claims, each numerical parameter should at least be construed in light of the number of reported significant digits and by applying ordinary rounding techniques.

[0149] It is understood that each component, compound, substituent, or parameter disclosed herein should be construed as disclosed for use alone or in combination with one or more of any and all other components, compounds, substituents, or parameters disclosed herein.

[0150] It is further understood that each range disclosed herein should be construed as a disclosure of each specific value within the disclosed range having the same number of significant digits. Thus, for example, a range of 1 to 4 should be construed as an explicit disclosure of not only the values 1, 2, 3, and 4, but also any range of such values.

[0151] It should be further understood that each lower limit of each range disclosed herein should be interpreted as being disclosed in combination with each upper limit of each range and each specific value within each range for the same component, compound, substituent, or parameter. Thus, the present disclosure should be interpreted as a disclosure of all ranges derived by combining each lower limit of each range with each upper limit of each range, or each specific value within each range, or by combining each upper limit of each range with each specific value within each range. In other words, it is also further understood that any range between the endpoints within a broad range is also contemplated herein. Thus, a range of 1 to 4 also means ranges of 1 to 3, 1 to 2, 2 to 4, 2 to 3, etc.

[0152] Furthermore, a specific amount / value of a component, compound, substituent, or parameter disclosed in the description or examples should be construed as a disclosure of either a lower or upper limit of a range and, therefore, can be combined with any other lower or upper limit of a range or specific amount / value for the same component, compound, substituent, or parameter disclosed elsewhere in this application to form a range for that component, compound, substituent, or parameter.

[0153] While particular embodiments have been described, alternatives, modifications, variations, improvements, and substantial equivalents may occur that are not presently anticipated or presently unforeseeable to Applicants or others skilled in the art. Accordingly, the appended claims as filed, and the appended claims as they may be amended, are intended to cover all such alternatives, modifications, variations, improvements, and substantial equivalents.

Claims

1. 1. A method for reducing lead corrosion in an internal combustion engine lubricated with a lubricating oil composition, comprising supplying to said internal combustion engine a lubricating oil composition comprising a hydrocarbyl-substituted succinimide dispersant derived from a hydrocarbyl-substituted acylating agent reacted with a nitrogen source, a nitrogen-free mechanical friction modifier having carboxylic acid and / or hydroxyl groups, and a major amount of a base oil or blend of base oils of lubricating viscosity, wherein said lubricating oil composition comprises a boron-containing compound selected from boric acid or boronic acid.

2. 2. The method of reducing lead corrosion in an internal combustion engine of claim 1, wherein said nitrogen-free mechanical friction modifier has pendant hydroxyl groups obtained from a fatty acid reacted with an alkanol, and / or said hydrocarbyl-substituted succinimide dispersant is boronated from a boron source separate from said boron-containing compound, and / or said boron-containing compound has the structure X-B-(OH)2, where X is a hydroxyl group, a linear or branched alkyl group, a cyclic hydrocarbyl group, one or more aromatic groups, a benzofuranyl group, a dibenzofuranyl group, or a combination thereof, and / or said nitrogen-free mechanical friction modifier comprises a blend of mono- and di-esters of fatty acids.

3. 3. The method of reducing lead corrosion in an internal combustion engine according to claim 2, wherein the lubricating oil composition comprises 250 ppm to 350 ppm of boron provided by the boron-containing compound per each 1 weight percent of the nitrogen-free mechanical friction modifier.

4. 4. The method of reducing lead corrosion in an internal combustion engine according to claim 3, wherein the lubricating oil composition exhibits 500 ppm or less lead corrosion per each weight percent of the nitrogen-free mechanical friction modifier as measured by ASTM D6594.

5. 3. The method of reducing lead corrosion in an internal combustion engine of claim 2, wherein the boron-containing compound is a boronic acid and X is a linear or branched C1-C10 group, one or more aromatic groups, a benzofuranyl group, a dibenzofuranyl group, or a combination thereof.

6. 3. The method for reducing lead corrosion in an internal combustion engine according to claim 2, wherein said nitrogen-free mechanical friction modifier comprises a blend of mono- and di-esters of oleic acid.

7. 7. The method of reducing lead corrosion in an internal combustion engine according to claim 6, wherein the nitrogen-free mechanical friction modifier comprises glycerol monooleate.

8. 2. The method of reducing lead corrosion in an internal combustion engine of claim 1, wherein the lubricating oil composition comprises 100 ppm to 300 ppm of boron provided by the boron-containing compound, up to 10 weight percent of the hydrocarbyl-substituted succinimide dispersant, and up to 1 weight percent of the nitrogen-free mechanical friction modifier.

9. 1. A lubricating oil composition for reducing lead corrosion in an internal combustion engine, comprising: a hydrocarbyl-substituted succinimide dispersant derived from a hydrocarbyl-substituted acylating agent reacted with a nitrogen source; a nitrogen-free organic friction modifier having a carboxylic acid and / or hydroxyl group, and a boron-containing compound selected from boric acid or boronic acid; a major amount of a base oil or blend of base oils of lubricating viscosity.

10. 10. The lubricating oil composition for reducing lead corrosion according to claim 9, wherein the nitrogen-free mechanical friction modifier has pendant hydroxyl groups derived from a fatty acid reacted with an alkanol.

11. 11. The lubricating oil composition for reducing lead corrosion of claim 10, wherein the lubricating oil composition comprises 250 ppm to 350 ppm of boron provided by the boron-containing compound per each 1 weight percent of the nitrogen-free mechanical friction modifier.

12. 12. The lubricating oil composition for reducing lead corrosion of claim 11, wherein the lubricating oil composition exhibits 500 ppm or less lead corrosion per each weight percent of the nitrogen-free mechanical friction modifier as measured by ASTM D6594.

13. 10. The lubricating oil composition for reducing lead corrosion of claim 9, wherein the hydrocarbyl-substituted succinimide dispersant is boronated from a boron source separate from the boron-containing compound, and / or the boron-containing compound has the structure X-B-(OH)2, where X is a hydroxyl group, a linear or branched alkyl group, a cyclic hydrocarbyl group, one or more aromatic groups, a benzofuranyl group, a dibenzofuranyl group, or a combination thereof, and / or the nitrogen-free mechanical friction modifier comprises a blend of mono- and di-esters of fatty acids.

14. 14. The lubricating oil composition for reducing lead corrosion according to claim 13, wherein the boron-containing compound is a boronic acid and X is a linear or branched C1-C10 group, one or more aromatic groups, a benzofuranyl group, a dibenzofuranyl group, or a combination thereof.

15. 10. The lubricating oil composition for reducing lead corrosion of claim 9, wherein the lubricating oil composition comprises 100 to 300 ppm of boron provided from the boron-containing compound, up to 10 weight percent of the hydrocarbyl-substituted succinimide dispersant, and up to 1 weight percent of the nitrogen-free mechanical friction modifier.

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