Lubrication improver composition for fuel oil and its use

A dicarboxylic acid monoester and long-chain fatty acid or polyol ester composition addresses lubricity issues in low-sulfur diesel fuels, providing superior lubricity enhancement with reduced usage and cost, applicable to diesel, gasoline, and jet fuels.

JP7894397B2Active Publication Date: 2026-07-23CHINA PETROLEUM & CHEMICAL CORP +1
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Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
CHINA PETROLEUM & CHEMICAL CORP
Filing Date
2022-06-30
Publication Date
2026-07-23

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Abstract

A lubricity improver composition for fuel oils and its use is disclosed. The composition comprises a dicarboxylic acid monoester having structural formula (I) as component A and a dicarboxylic acid monoester having structural formula (I) as component B. 8-24 It contains a long-chain fatty acid, a polyol ester thereof, or a mixture thereof, wherein the total amount of Component A and Component B is 70 to 100 wt % of the total weight of the composition, and the mass ratio of Component A to Component B is 9:1 to 1:9. The lubricity improver for fuel oils can exert a good lubricity improving effect when used in a small amount.
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Description

Detailed description of the invention

[0001] [Mutual reference of related applications] This application claims priority to Chinese Patent Application No. 202110740397.8, filed on 30 June 2021, entitled "Lubricating Additive Composition for Diesel Fuel, Preparation thereof, and Diesel Fuel Composition," the full text of which is incorporated herein by reference.

[0002] [Technical Field] This application relates to the field of fuel oils, and more particularly to fuel oil lubricity improver compositions and their use.

[0003] [Background technology] As global concern for environmental issues grows, the production of high-quality clean energy has become the direction of development for the modern petroleum refining industry, and the production level of diesel fuel is also gradually improving. Clean diesel fuel is characterized by a low aromatic hydrocarbon content, a high cetane number, lightness, low sulfur content, and low nitrogen content. Since sulfur is the most harmful element that increases the concentration of pollutants in the atmosphere, it is necessary to strictly control the concentration of sulfur-containing compounds in diesel fuel. Clean diesel fuel currently produced is mainly manufactured by employing a hydrogenation process, which removes sulfur-containing compounds from diesel fuel and reduces the content of nitrogen-containing and oxygen-containing compounds. It is known that the lubricity of diesel fuel is mainly determined by the concentration of lubrication-improving impurities in the diesel fuel. Polycyclic aromatics, oxygen-containing impurities, and nitrogen-containing impurities are very effective lubrication-improving agents. When the content of nitrogen and oxygen compounds decreases, the lubrication performance of the diesel fuel itself decreases, leading to wear and failure of the fuel pump.

[0004] Because low-sulfur diesel fuels have poor lubricity, both low-sulfur and ultra-low-sulfur diesel fuels are often treated with lubricity enhancers (also known as lubrication additives or anti-wear additives) to improve their lubricity. This method has advantages such as low cost, flexible production, and low pollution, and is widely accepted in the industry.

[0005] Diesel lubrication modifiers are often derivatives of fatty acids, fatty acid esters, amides, or salts. EP773279 discloses a carboxylic acid ester prepared by reacting a dimer acid with an alcohol amine as a diesel lubrication modifier. EP798364 discloses a salt or amide prepared by reacting a fatty acid with a fatty amine as a diesel lubrication modifier. EP1209217 discloses a C 6-50 The report discloses reaction products of saturated fatty acids and dicarboxylic acids with short-chain oil-soluble primary, secondary, and tertiary amines. WO9915607 discloses reaction products of dimeric fatty acids with epoxy compounds as diesel lubricity modifiers. Many of these techniques involve the reaction of fatty acids or fatty acid dimers with alcoholamines, amines, and epoxy compounds, some of which use expensive reaction starting materials, exhibit ordinary lubricity-improving effects, and are added in large amounts to diesel fuel.

[0006] Conventional industrial low-sulfur diesel lubricity modifiers mainly consist of two types (i.e., acid-type lubricity modifiers and ester-type lubricity modifiers). The main components of acid-type lubricity modifiers are long-chain unsaturated fatty acids such as oleic acid, linoleic acid, and linolenic acid, and the typical product is refined tall oil fatty acid. Ester-type lubricity modifiers are the esterification reaction products of the above fatty acids and polyhydric alcohols. WO9417160A1 discloses the use of oleic acid monoglyceride as a diesel lubricity modifier.

[0007] While using fatty acid-type lubrication modifiers to solve the lubricity problems of diesel fuel is relatively inexpensive, the increased usage due to stricter diesel fuel emission standards and the resulting decrease in lubricity can lead to problems such as excessively high acid value in diesel fuel and increased risk of corrosion. Fatty acid ester-type lubrication modifiers can be used in small amounts, but they are expensive and pose a risk of emulsification and clouding of the modified diesel fuel when mixed with water.

[0008] CN109576021A discloses a lubricity modifier for low-sulfur diesel and its preparation. It involves mixing an unsaturated dicarboxylic acid ester (maleic acid diester) and a polymerization inhibitor at 150-180°C, gradually adding tung oil biodiesel, continuing the reaction at a temperature of 200-240°C for a certain period of time, and then distilling under reduced pressure to obtain the modifier product. This product requires tung oil biodiesel, the starting materials are rare and unstable, the reaction requires high temperatures, making preparation difficult, and most importantly, the lubricity modifier effect is very ordinary, requiring a modifier concentration of over 600 ppm.

[0009] CN106929112A discloses a method for improving the lubricity of low-sulfur diesel. This method improves the lubricity of diesel fuel using an esterification reaction product of alkenyl succinic anhydride and monohydric aliphatic alcohol. This product has high viscosity and has the usual effect of improving the lubricity of ultra-low-sulfur diesel (such as vehicle diesel that meets China's National VI emission standards).

[0010] A paper published in Tribology International (G. Anatopoulos, E. Lois. Influence of aceto acetic esters and di-carboxylic acid esters on diesel fuel lubricity [J]. Tribology International, 2001, 34 (11): 749-755) reports that adding dicarboxylic acid diesters such as dibutyl adipate, dioctyl adipate, diethyl azelaate, dibutyl azelaate, dioctyl azelaate, and diethyl sebacate to low-sulfur diesel fuel improves lubricity. However, the diester compounds have little lubricity-improving effect, requiring additions of 500 ppm or more than 1000 ppm.

[0011] [Summary of the Invention] The object of this application is to provide a fuel oil lubrication improver composition and its use, which overcomes the shortcomings of the prior art and can provide an ideal lubrication improvement effect with a smaller amount of use.

[0012] To achieve the above objective, in one embodiment, this application is: A fuel oil lubricity improver composition comprising component A and component B, The aforementioned component A is a dicarboxylic acid monoester represented by the following formula (I),

[0013] [ka]

[0014] In formula (I), R1 is C 1-10 It is a divalent hydrocarbyl group, R2 is C 1-20 A hydrocarbyl group, or a moiety having the structure -R3-C(=O)-O-R4, R3 is C 8-24 It is a divalent hydrocarbyl group, R4 is hydrogen or C 1-10It is a hydrocarbyl group, The aforementioned component B is C 8-24 Long-chain fatty acids, their polyol esters, or mixtures thereof, The total amount of component A and component B is 70 to 100% by weight of the total weight of the composition. The present invention provides a fuel oil lubricity improver composition in which the mass ratio of component A to component B is 9:1 to 1:9.

[0015] The inventors of this application, as a result of intensive research and numerous experiments, have found that a dicarboxylic acid monoester represented by formula (I) and C 8-24 When a composition is prepared with long-chain fatty acids or their polyol esters in a specific ratio, adding only a small amount of the composition significantly improves the lubricity of low-sulfur diesel fuel. The composition exhibits unexpected synergistic effects, and it was unexpectedly found that this composition is significantly superior to currently available and used fatty acid-type or fatty acid glyceride-type lubrication improvers, thereby allowing for a substantial reduction in the amount of lubrication improver used.

[0016] In another embodiment, the present application provides a method for improving the lubricity of a diesel fuel, comprising the step of adding the fuel oil lubricity improving agent composition of the present application to a low-sulfur diesel fuel, wherein the fuel oil lubricity improving agent composition is added in an amount preferably from 10 ppm to 400 ppm, based on the mass of the low-sulfur diesel fuel.

[0017] In a further embodiment, the present application provides a diesel fuel composition comprising a low-sulfur diesel fuel and the fuel oil lubricity improver composition of the present application, wherein the fuel oil lubricity improver composition is present in the diesel fuel composition in an amount preferably from 10 ppm to 400 ppm, based on the mass of the low-sulfur diesel fuel.

[0018] The fuel oil lubricity improver disclosed in this application is easy to produce from readily available starting materials, exhibits unexpectedly superior effects compared to conventional fatty acid type or fatty acid ester type lubricity improvers, and can significantly improve the lubricity of low-sulfur diesel fuel, thus allowing for a substantial reduction in the amount added and a substantial reduction in usage costs.

[0019] Furthermore, the fuel oil lubricity improver composition of this application also has the effect of improving the lubricity of gasoline and jet fuel.

[0020] Other features and advantages of this application will be described in detail in the following detailed description.

[0021] [Brief explanation of the drawing] The drawings, which constitute part of this specification, are provided to aid in understanding this application and should not be considered limiting. This application can be described in conjunction with the drawings in the following detailed description. In the drawings: [Figure 1] Figure 1 shows the infrared spectrum of the product obtained in Preparation Example 1; [Figure 2] Figure 2 shows a photograph of the wear marks on the diesel fuel A used in the example.

[0022] [Figure 3] Figure 3 shows a photograph of the wear marks on diesel fuel A to which the composition obtained in Example 1 was added at an amount of 100 mg / kg, with WS1.4 = 226 μm.

[0023] [Figure 4] Figure 4 shows a photograph of the wear marks on diesel fuel A to which the composition obtained in Example 1 was added at an amount of 70 mg / kg, with WS1.4 = 305 μm.

[0024] [Figure 5] Figure 5 shows a photograph of the wear marks on the diesel fuel B used in the example.

[0025] [Figure 6] Figure 6 shows a photograph of the wear marks on diesel fuel B to which the composition obtained in Example 1 was added at an amount of 100 mg / kg, with WS1.4 = 256 μm.

[0026] [Figure 7] Figure 7 shows a photograph of the wear marks on diesel fuel B to which the composition obtained in Example 1 was added at a concentration of 200 mg / kg, with WS1.4 = 189 μm.

[0027] [Detailed description of the invention] The present application will be described in further detail below with reference to the drawings and their specific embodiments. It should be noted that the specific embodiments described herein are provided for illustrative purposes only and are not intended to be limiting in any way.

[0028] Any specific numerical value (including the endpoints of a numerical range) disclosed in the context of this application should be interpreted as encompassing not only its exact value but also all values ​​close to the exact value (for example, all values ​​within 5% of the exact value). Furthermore, for any numerical range described herein, any combination may be made between the endpoints of the range, between each endpoint and any specific value within the range, or between any two specific values ​​within the range, providing one or more new numerical ranges. Such new numerical ranges should also be considered as specifically described herein.

[0029] Unless otherwise stated, terms used herein have the same meaning as commonly understood by those skilled in the art. If a term is defined herein and such definition differs from the common understanding in the art, the definition provided herein shall prevail.

[0030] In this application, the term "hydrocarbyl group" generally refers to various groups formed by removing one hydrogen atom from saturated or unsaturated organic compounds (such as various aliphatic compounds, alicyclic compounds, and aromatic compounds) consisting of carbon atoms and hydrogen atoms. Specific examples of hydrocarbyl groups include, but are not limited to, linear or branched alkyl groups (also called "alkyl groups"), linear or branched alkenyl groups (also called "alkenyl groups"), linear or branched alkynyl groups, cycloalkyl groups, alkylcycloalkyl groups, cycloalkylalkyl groups, alkenylcycloalkyl groups, cycloalkylalkenyl groups, cycloalkenyl groups, alkylcycloalkenyl groups, cycloalkenylalkyl groups, aryl groups, arylalkyl groups, and alkylaryl groups.

[0031] In this application, the term "divalent hydrocarbyl group (also called "alkylene group")" generally refers to various groups formed by removing two hydrogen atoms from saturated or unsaturated organic compounds (various aliphatic compounds, alicyclic compounds, and aromatic compounds, etc.) consisting of carbon atoms and hydrogen atoms. Specific examples of divalent hydrocarbyl groups include, but are not limited to, linear or branched alkylene groups (also called "divalent alkyl groups"), linear or branched alkenylene groups (also called "divalent alkenyl groups"), linear or branched alkylylene groups, cycloalkylene groups, -alkyl-cycloalkyl-, -cycloalkyl-alkyl-, -alkenyl-cycloalkyl-, -cycloalkyl-alkenyl-, cycloalkenylene groups, -alkyl-cycloalkenyl-, -cycloalkenyl-alkyl-, arylene groups (also called "divalent aryl groups"), -aryl-alkyl-, and -alkyl-aryl-. In this application, unless otherwise specified, the "hydrocarbyl group" and the "divalent hydrocarbyl group" may be substituted or unsubstituted, and preferably unsubstituted.

[0032] In the present application, the term "alkenyl group" refers to an aliphatic hydrocarbyl group (such as vinyl group, propenyl group, allyl group, etc.) that has at least one (e.g., 1 to 5, preferably 1 to 3) carbon-carbon double bonds that may be in the main chain or side chain of the alkenyl group and does not have a carbon-carbon triple bond in the carbon chain.

[0033] In the present application, the term "alkenylene group" refers to an aliphatic hydrocarbylene group (such as vinylene group, -(CH2=)C-CH2-, -(CH3)C=CH-, -(CH3)C=C(CH3)-, etc.) that has at least one (e.g., 1 to 5, preferably 1 to 3) carbon-carbon double bonds that may be in the main chain or side chain of the alkenylene group and does not have a carbon-carbon triple bond in the carbon chain.

[0034] In the present application, the expressions "optionally substituted" and "substituted or unsubstituted" can be used interchangeably to indicate that a group modified by such an expression can be an unsubstituted group or a group substituted with one or more substituents.

[0035] In the present application, unless otherwise specified, the term "substituted" means that a group modified by such an expression is 1-10 substituted by one or more (e.g., 1, 2 or 3) groups selected from a straight-chain or branched hydrocarbyl group of C 1-4 , a halogen group, a hydroxyl group, a carboxyl group, an ester group, an ether group, a nitro group and an amino group, preferably a straight-chain or branched hydrocarbyl group of C

[0036] In the context of this application, any matters or content not explicitly described are considered to be unchanged from those known in the art. Furthermore, any embodiment described herein may be freely combined with one or more other embodiments described herein. Any resulting technical idea or concept shall be considered part of the initial disclosure or description of this application and shall not be considered novel matter not disclosed or anticipated herein, unless such combination is obviously unreasonable to a person skilled in the art.

[0037] All patent and non-patent documents cited herein, including but not limited to textbooks and periodicals, are incorporated herein by reference in their entirety.

[0038] In the first embodiment, this application is, A fuel oil lubricity improver composition comprising component A and component B, The aforementioned component A is a dicarboxylic acid monoester represented by the following formula (I),

[0039] [ka]

[0040] In formula (I), R1 is C 1-10 It is a divalent hydrocarbyl group, R2 is C 1-20 A hydrocarbyl group, or a moiety having the structure -R3-C(=O)-O-R4, R3 is C 8-24 It is a divalent hydrocarbyl group, R4 is hydrogen or C 1-10 It is a hydrocarbyl group, The aforementioned component B is C 8-24 Long-chain fatty acids, their polyol esters, or mixtures thereof, The total amount of component A and component B is 70 to 100% by weight of the total weight of the composition. The present invention provides a fuel oil lubricity improver composition in which the mass ratio of component A to component B is 9:1 to 1:9.

[0041] Depending on the circumstances, the fuel oil lubricity improver composition of this application may contain small amounts of additional components in addition to components A and B, such as diesel fuel, organic solvents, unreacted starting materials (alcohols, phenols, etc.), and reaction by-products (dicarboxylic acid diester compounds, etc.). The total amount of these additional components is 20% by weight or less, preferably 10% by weight or less, more preferably 5% by weight or less, for example, 1% by weight or less, of the total weight of the fuel oil lubricity improver composition.

[0042] In a preferred embodiment, the total amount of component A and component B is 80 to 100% by weight, more preferably 90 to 100% by weight, of the total weight of the fuel oil lubricity improver composition, for example, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or 100% by weight.

[0043] In some preferred embodiments, in a fuel oil lubricant improver composition, component B is C 8-24 It is a long-chain fatty acid, and the mass ratio of component A to component B is from 8:2 to 2:8, preferably from 7:3 to 3:7, more preferably from 7:3 to 5:5, for example from 7:3 to 6:4.

[0044] In some preferred embodiments, in a fuel oil lubrication improver composition, component B is C 8-24 The long-chain fatty acid polyol ester is such that the mass ratio of component A to component B is from 8:2 to 1:9, preferably from 8:2 to 2:8, more preferably from 5:5 to 2:8, for example from 4:6 to 3:7.

[0045] In some particularly preferred embodiments, the fuel lubricity improver consists substantially of component A and component B, i.e., comprising only component A and component B, excluding unavoidable impurities (such as unreacted starting materials and reaction by-products), where component B is C 8-24The composition is a long-chain fatty acid, and based on the weight of the composition, it contains 20-80% by weight of component A, preferably 30-70% by weight, more preferably 50-70% by weight, for example 60-70% by weight, and 20-80% by weight of component B, preferably 30-70% by weight, more preferably 30-50% by weight, for example 30-40% by weight.

[0046] In some particularly preferred embodiments, the fuel lubricity improver consists substantially of component A and component B, i.e., comprising only component A and component B, excluding unavoidable impurities (such as unreacted starting materials and reaction by-products), wherein component B is C 8-24 The composition is a polyol ester of long-chain fatty acids, and based on the weight of the composition, it contains 10 to 80% by weight of component A, preferably 20 to 80% by weight, more preferably 20 to 50% by weight, for example 30 to 40% by weight, and 20 to 90% by weight of component B, preferably 20 to 80% by weight, more preferably 50 to 80% by weight, for example 60 to 70% by weight.

[0047] The lubricity improver of this application may be used alone to improve the lubricity of fuel oil (such as diesel fuel) as needed, or may be used in combination with one or more other fuel additives (such as phenolic antioxidants, polymeric amine ashless dispersants, fluidity improvers, cetane number improvers, metal deactivators, antistatic agents, corrosion inhibitors, rust inhibitors, deemulsifiers, etc.) to improve the lubricity of fuel oil and one or more other properties.

[0048] Components A and B of the composition of this application will be described in more detail below.

[0049] [Component A] According to this application, component A is a dicarboxylic acid monoester represented by the following formula (I),

[0050] [ka]

[0051] In formula (I), R1 is C 1-10 It is a divalent hydrocarbyl group, R2 is C 1-20 A hydrocarbyl group, or a moiety having the structure -R3-C(=O)-O-R4, R3 is C 8-24 It is a divalent hydrocarbyl group, R4 is hydrogen or C 1-10 It is a hydrocarbyl group.

[0052] In some preferred embodiments, in structural formula (I), R1 is C 1-10 The divalent alkyl group, C 2-10 A divalent alkenyl group or a portion having the -R5-R6-R7- structure, preferably C 1-8 The divalent alkyl group, C 2-6 A divalent alkenyl group or a portion having the -R5-R6-R7- structure, more preferably C 1-4 A divalent alkyl group of, or C 2-4 It is a divalent alkenyl group, R2 is C 3-20 It is a hydrocarbyl group, preferably C 3-20 A linear or branched hydrocarbyl group, C 4-20 Alicyclic hydrocarbyl group, C 7-20 Aryl-substituted hydrocarbyl group, or C 7-20 A hydrocarbyl-substituted aryl group, more preferably C 3-18 A linear or branched hydrocarbyl group, C 4-18 Alicyclic hydrocarbyl group, C 7-18 Aryl-substituted hydrocarbyl group, or C 7-18 It is a hydrocarbyl-substituted aryl group, R5 and R7 are each independently single bonds or C 1-3 The divalent hydrocarbyl group is preferably independently a single bond or a methylene group. R6 is C 3-10 The divalent alicyclic hydrocarbyl group, or C 6-10 A substituted or unsubstituted divalent aryl group, preferably C4-7 The divalent alicyclic hydrocarbyl group, or C 6-10 It is a substituted or unsubstituted divalent aryl group, and the total number of carbon atoms in the R5, R6, and R7 groups is 10 or less. Here, the term "substituted" refers to C 1-4 Linear or branched hydrocarbyl groups, halogens, hydroxyl groups, carboxyl groups, ester groups, ether groups, nitro groups, and amino groups, preferably C 1-4 This means that it is substituted with one or more groups selected from linear or branched hydrocarbyl groups.

[0053] In some preferred embodiments, in structural formula (I), R1 is C 2-20 A divalent hydrocarbyl group, preferably C 2-8 It is a divalent hydrocarbyl group, R2 is a region having the structure -R3-C(=O)-O-R4, R3 is a C with 0 to 5 carbon-carbon double bonds. 8-24 A divalent hydrocarbyl group, preferably having 0 to 3 carbon-carbon double bonds. 16-22 It is a divalent hydrocarbyl group, R4 is hydrogen or C 1-10 A hydrocarbyl group, preferably hydrogen or C 1-4 It is a hydrocarbyl group.

[0054] In some more preferred embodiments, the dicarboxylic acid monoester of component A is selected from dicarboxylic acid monoesters represented by formula (I-1), (I-2), or (I-3),

[0055] [ka]

[0056] In formula (I-1), n is an integer from 2 to 6. R is C 3-20 It is a hydrocarbyl group, preferably C4-18 It is a hydrocarbyl group,

[0057] [ka]

[0058] In formula (I-2), p is an integer from 1 to 8. R is C 3-20 It is a hydrocarbyl group, preferably C 4-18 It is a hydrocarbyl group,

[0059] [ka]

[0060] In formula (I-3), m is an integer between 0 and 1. Q is C 3-8 The divalent alicyclic hydrocarbyl group, or C 6-10 A substituted or unsubstituted divalent aryl group, R is C 3-20 It is a hydrocarbyl group, preferably C 4-18 It is a hydrocarbyl group.

[0061] According to this application, in structural formulas (I-1), (I-2), or (I-3), R may be an aliphatic hydrocarbyl group, an alicyclic hydrocarbyl group, or an aryl group. The aliphatic hydrocarbyl group may be linear or branched; it may be a saturated aliphatic hydrocarbyl group or an unsaturated aliphatic hydrocarbyl group; the unsaturated aliphatic hydrocarbyl group may be an aliphatic hydrocarbyl group having at least one carbon-carbon double bond (ethylene bond) or at least one carbon-carbon triple bond (acetylene bond). The alicyclic hydrocarbyl group may be a saturated alicyclic hydrocarbyl group (cycloalkyl group) or an unsaturated alicyclic hydrocarbyl group. The aryl group may be a monocyclic aryl group, a bicyclic aryl group, or a polycyclic aryl group. The alicyclic group and the aryl group may have various hydrocarbyl substituents on the carbon ring.

[0062] In a more preferred embodiment, in structural formulas (I-1), (I-2), and (I-3), R is C 3-20 Linear or branched aliphatic hydrocarbyl groups, C 4-20 Alicyclic hydrocarbyl group, C 7-20 Aryl-substituted hydrocarbyl group, or C 7-20 Selected from hydrocarbyl-substituted aryl groups, preferably C 4-18 It is a linear or branched alkyl group.

[0063] In this application, when R is a saturated linear or branched aliphatic hydrocarbyl group, R may be a normal alkyl group or an isomer of an alkyl group. When R is an n-alkyl group, it is preferably a methyl group, ethyl group, n-propyl group, n-butyl group, n-pentyl group, n-hexyl group, n-heptyl group, n-octyl group, n-nonyl group, n-decyl group, n-undecyl group, mono-n-dodecyl group (lauryl ester group), n-tetradecyl group, n-hexadecyl group, n-octadecyl group, etc., and more preferably an n-butyl group, n-hexyl group, n-octyl group, n-nonyl group, or n-decyl group. When R is an isomerized alkyl group, it is preferably an isopropyl group, isobutyl group, sec-butyl group, isopentyl group, isohexyl group, isoheptyl group, isooctyl group (especially 2-ethylhexyl group), isononyl group, isodecyl group, isoundecyl group, isotridecyl group, isopentadecyl group, isoheptadecyl group, etc., and more preferably sec-butyl group, isooctyl group (especially 2-ethylhexyl group), isononyl group, isodecyl group, isoundecyl group, and isotridecyl group.

[0064] In this application, when R is an unsaturated linear or branched aliphatic hydrocarbyl group, it is preferably an allyl group, a 2-butenyl group, a 3-butenyl group, an isopentenyl group, a 3-hexenyl group, a 2-octenyl group, a 3-nonenyl group, a 2-decenyl group, a 7-dodecenyl group, a 1,5-hexadienyl group, a 2,4-nonadienyl group, a 2,4-decadienyl group, a 9,11-dodecadienyl group, a 9-octadecenyl group, and more preferably a 3-hexenyl group, a 2-octenyl group, a 3-nonenyl group, an isopentenyl group, or a 9-octadecenyl group.

[0065] In this application, when R is an alicyclic hydrocarbyl group, it is preferably a cyclobutyl group, a cyclopentyl group, a cyclohexyl group, a 3-cyclohexenyl group, a 2-cyclohexenyl group, and more preferably a cyclopentyl group, a cyclohexyl group, a 3-cyclohexenyl group, or a 2-cyclohexenyl group.

[0066] In this application, when R is an unsubstituted aryl group, it is preferably a phenyl group; when R is a hydrocarbyl-substituted aryl group, it is preferably methylphenyl, p-nonylphenyl, p-dodecylphenyl, etc.; when R is an aryl-substituted hydrocarbyl group, it is preferably a benzyl (phenmethyl) group, a phenethyl group, a p-dodecylphenyl group, etc., and more preferably a benzyl (phenmethyl) group, a p-nonylphenyl group, or a p-dodecylphenyl group.

[0067] According to this application, the dicarboxylic acid monoester represented by formula (I-1) has one carbon-carbon unsaturated double bond. 4-8 It is an unsaturated dicarboxylic acid monoester obtained by esterifying one carboxyl group of a linear or branched dicarboxylic acid.

[0068] Specifically, when n is 2, the dicarboxylic acid monoester represented by formula (I-1) is maleic acid monoester (i.e., cis-butenioic acid monoester), fumaric acid monoester (i.e., trans-butenioic acid monoester); when n is 3, the dicarboxylic acid monoester represented by formula (I-1) is itaconic acid monoester, citraconic acid monoester (i.e., methyl maleic acid monoester), methyl fumaric acid monoester (i.e., methyl trans-butenioic acid monoester), glutaconic acid monoester, etc.; when n is 4, the dicarboxylic acid monoester represented by formula (I-1) is preferably 2,3-dimethyl maleic acid monoester, ethyl maleic acid monoester, hexenioic acid monoester, etc.

[0069] Preferably, the dicarboxylic acid monoester represented by formula (I-1) is selected from maleic acid monoester, fumaric acid monoester, itaconic acid monoester, citraconic acid monoester, methylfumaric acid monoester, 2,3-dimethylmaleic acid monoester, glutaconic acid monoester, and the like, and more preferably selected from maleic acid monoester and itaconic acid monoester.

[0070] More preferably, the dicarboxylic acid monoester represented by formula (I-1) is a maleic acid monoester represented by formula (I-1-1),

[0071] [ka]

[0072] Itaconic acid monoester represented by formula (I-1-2),

[0073] [ka]

[0074] Alternatively, it may be selected from the itaconic acid monoesters represented by formula (I-1-3),

[0075] [ka]

[0076] Here, R is as defined above.

[0077] Particularly preferred, when R is an n-alkyl group, the maleic acid monoester of formula (I-1-1) is monomethyl maleate, monoethyl maleate, mono-n-propyl maleate, mono-n-butyl maleate, mono-n-pentyl maleate, mono-n-hexyl maleate, mono-n-heptyl maleate, mono-n-octyl maleate, mono-n-nonyl maleate, mono-n-decyl maleate, mono-n-undecyl maleate, mono-n-dodecyl maleate (lauryl ester), mono-n-tetradecyl maleate, mono- It may be selected from no-n-hexadecyl, mono-n-octadecyl maleate, preferably monomethyl maleate, monoethyl maleate, mono-n-propyl maleate, mono-n-butyl maleate, mono-n-octyl maleate, mono-n-nonyl maleate, mono-n-decyl maleate, mono-n-dodecyl maleate, more preferably mono-n-butyl maleate, mono-n-pentyl maleate, mono-n-octyl maleate, mono-n-nonyl maleate, mono-n-decyl maleate, etc.; formula (I-1- 2) Itaconic acid monoesters represented by formula (I-1-3) include monomethyl itaconic acid, monoethyl itaconic acid, mono-n-propyl itaconic acid, mono-n-butyl itaconic acid, mono-n-pentyl itaconic acid, mono-n-hexyl itaconic acid, mono-n-heptyl itaconic acid, mono-n-octyl itaconic acid, mono-n-nonyl itaconic acid, mono-n-decyl itaconic acid, mono-n-undecyl itaconic acid, mono-n-dodecyl itaconic acid (lauryl itaconic acid), mono-n-tetradecyl itaconic acid, mono-n-hexadecyl itaconic acid, It can be selected from mono-n-octadecyl itaconate, preferably from monomethyl itaconate, monoethyl itaconate, mono-n-propyl itaconate, mono-n-butyl itaconate, mono-n-octyl itaconate, mono-n-decyl itaconate, mono-n-dodecyl itaconate (lauryl itaconate), mono-n-octadecyl itaconate, and more preferably from mono-n-butyl itaconate, mono-n-pentyl itaconate, mono-n-octyl itaconate, mono-n-nonyl itaconate, and mono-n-decyl itaconate.

[0078] Particularly preferred, when R is an isomer alkyl group, the maleic acid monoester represented by formula (I-1-1) is monoisopropyl maleate, monoisobutyl maleate, mono-sec-butyl maleate, mono-tert-butyl maleate, monoisoamyl maleate, monoisohexyl maleate, monoisooctyl maleate (mono-2-ethylhexyl maleate), monoisononyl maleate, monoisodecyl maleate, monoisoundecyl maleate, monoisododecyl maleate, monoisotridecyl maleate, monoisotetradecyl maleate, monoisopentadecyl maleate, monoisoheptadecyl maleate These may be selected from the following, preferably monoisopropyl maleate, monoisobutyl maleate, mono-sec-butyl maleate, monoisooctyl maleate, monoisononyl maleate, monoisodecyl maleate, monoisoundecyl maleate, monoisotridecyl maleate, monoisooctadecyl maleate, and more preferably mono-tert-butyl maleate, mono-sec-butyl maleate, monoisoamyl maleate, monoisooctyl maleate (mono-2-ethylhexyl maleate), monoisononyl maleate, monoisoundecyl maleate, and monoisotridecyl maleate;The itaconic acid monoester represented by formula (I-1-2) or formula (I-1-3) may be selected from monoisopropyl itaconic acid, monoisobutyl itaconic acid, mono-sec-butyl itaconic acid, mono-tert-butyl itaconic acid, monoisoamyl itaconic acid, monoisohexyl itaconic acid, monoisooctyl itaconic acid (mono-2-ethylhexyl itaconic acid), monoisononyl itaconic acid, monoisodecyl itaconic acid, monoisoundecyl itaconic acid, monoisotridecyl itaconic acid, and preferably mono itaconic acid mono It can be selected from isopropyl, monoisobutyl itaconate, monoisooctyl itaconate (mono-2-ethylhexyl itaconate), monoisononyl itaconate, monoisodecyl itaconate, monoisoundecyl itaconate, monoisostearyl itaconate, and more preferably from monotert-butyl itaconate, monoisoamyl itaconate, monoisohexyl itaconate, monoisooctyl itaconate (mono-2-ethylhexyl itaconate), monoisononyl itaconate, and monoisoundecyl itaconate.

[0079] Particularly preferred is when R is an unsaturated linear or branched aliphatic hydrocarbyl group, the maleic acid monoester of formula (I-1-1) is monoallyl maleate, mono-3-buten-1-ol maleate, monoisopropenyl maleate, mono-3-hexen-1-ol maleate, mono-1-hepten-3-ol maleate, monomethylheptenyl maleate, mono-2-octen-1-ol maleate, mono-3-nonen-1-ol maleate, mono-2-decen-1-ol maleate, mono-7-dodecen-1-ol maleate, mono-1,5-hexadienol maleate, mono-2,4-nonadien-1-ol maleate, mono-2,4-decadien It may be selected from -1-ol, mono-9,11-dodecadienol maleate, monooleyl maleate, etc., preferably monoallyl maleate, mono-3-buten-1-ol maleate, monoisopropenyl maleate, mono-3-hexen-1-ol maleate, mono-1-hepten-3-ol maleate, monomethylheptenyl maleate, mono-3-nonen-1-ol maleate, mono-2,4-decadien-1-ol maleate, monooleyl maleate, etc., more preferably selected from mono-2-octen-1-ol maleate, mono-3-nonen-1-ol maleate, mono-2-decen-1-ol maleate, monooleyl maleate, etc.Itaconic acid monoesters represented by formula (I-1-2) or formula (I-1-3) include monoallyl itaconic acid, mono-2-buten-1-ol itaconic acid, mono-3-buten-1-ol itaconic acid, monoisopropenyl itaconic acid, mono-3-hexen-1-ol itaconic acid, mono-1-hepten-3-ol itaconic acid, monomethylheptenyl itaconic acid, mono-2-octen-1-ol itaconic acid, mono-3-nonen-1-ol itaconic acid, mono-2-decen-1-ol itaconic acid, mono-7-dodecen-1-ol itaconic acid, mono-1,5-hexadienol itaconic acid, Itaconic acid mono-2,4-nonadien-1-ol, itaconic acid mono-2,4-decadienol, itaconic acid mono-9,11-dodecadienol, itaconic acid monooleyl, and the like may be selected, preferably from itaconic acid monoallyl, itaconic acid mono-3-buten-1-ol, itaconic acid monoisopropenyl, itaconic acid mono-3-hexen-1-ol, itaconic acid mono-3-nonen-1-ol, itaconic acid monooleyl, and the like, more preferably selected from itaconic acid mono-2-octen-1-ol, itaconic acid mono-3-nonen-1-ol, and itaconic acid monooleyl.

[0080] Particularly preferred, when R is an alicyclic hydrocarbyl group, the maleic acid monoester of formula (I-1-1) may be selected from monocyclobutyl maleate, monocyclopentyl maleate, monocyclohexyl maleate, mono-3-cyclohexen-1-methyl maleate, mono-2-cyclohexenyl maleate, and the like; the itaconic acid monoester represented by formula (I-1-2) or formula (I-1-3) may be selected from monocyclohexyl itaconic acid ester, mono-2-cyclohexenyl itaconic acid ester, and the like.

[0081] Particularly preferred, when R is a hydrocarbyl-substituted aryl group, the maleic acid monoester of formula (I-1-1) may be selected from mono-p-nonylphenyl maleate, mono-p-dodecylphenyl maleate, and the like; the itaconic acid monoester represented by formula (I-1-2) or formula (I-1-3) may be selected from mono-p-nonylphenyl itaconic acid, mono-p-dodecylphenyl itaconic acid.

[0082] Particularly preferred, when R is an aryl-substituted hydrocarbyl group, the maleic acid monoester of formula (I-1-1) may be selected from monobenzyl maleate, monophenylethyl maleate, and monophenylpropyl maleate; the itaconic acid monoester represented by formula (I-1-2) or formula (I-1-3) may be selected from monobenzyl itaconicate, monophenylethyl itaconicate, and monophenylpropyl itaconicate.

[0083] According to this application, the dicarboxylic acid monoester represented by formula (I-2) is C 3-10 It is a dicarboxylic acid monoester obtained by esterifying one carboxyl group of a saturated linear or branched dicarboxylic acid.

[0084] In a more preferred embodiment, the dicarboxylic acid monoester represented by formula (I-2) is a monoester of a saturated linear dicarboxylic acid, i.e., the dicarboxylic acid monoester in formula (I-2) in which the carbon chain between the two carbonyl groups is a saturated linear chain.

[0085] Particularly preferred, the dicarboxylic acid monoester represented by formula (I-2) is selected from malonic acid monoester, succinic acid monoester (i.e., succinic acid monoester), glutaric acid monoester, adipic acid monoester, pimelic acid monoester, suberic acid monoester, azelaic acid monoester, sebaciate monoester, undecanediic acid monoester, dodecanediic acid monoester, tridecanediic acid monoester, tetradecanediic acid monoester, hexadecanedioic acid monoester, octadecanediic acid monoester, and the like.

[0086] Particularly preferred, the dicarboxylic acid monoester represented by formula (I-2) is selected from malonic acid monoester, succinic acid monoester, glutaric acid monoester, adipic acid monoester, azelaic acid monoester, and sebaciic acid monoester.

[0087] Examples of malonic acid monoesters that are more preferred include monomethyl malonate, monoethyl malonate, monopropyl malonate, mono-n-butyl malonate, mono-n-hexyl malonate, mono-n-octyl malonate, mono-n-decyl malonate, mono-n-dodecyl malonate (lauryl ester), monoisobutyl malonate, mono-t-butyl malonate, monoisooctyl malonate, monoisononyl malonate, monoisodecyl malonate, monoisoundecyl malonate, monoisotridecyl malonate, monooleyl malonate (mono-9-octadecenyl malonate), monocyclohexyl malonate, mono-3-cyclohexen-1-methyl malonate, mono-p-nonylphenyl malonate, and monobenzyl malonate.

[0088] Examples of succinic acid monoesters that are more preferred include mono-n-butyl succinate, mono-sec-butyl succinate, mono-n-hexyl succinate, mono-n-octyl succinate, mono-n-decyl succinate, mono-n-dodecyl succinate (lauryl ester), monoisobutyl succinate, mono-tert-butyl succinate, monoisoamyl succinate, monoisohexyl succinate, monoisooctyl succinate, monoisononyl succinate, monoisodecyl succinate, monoisoundecyl succinate, monoisotridecyl succinate, monooleyl succinate (mono-9-octadecenyl succinate), monocyclohexyl succinate, mono-3-cyclohexen-1-methyl succinate, mono-p-nonylphenyl succinate, and monobenzyl succinate.

[0089] Examples of glutaric acid monoesters that are more preferred include monomethyl glutarate, monoethyl glutarate, monopropyl glutarate, mono-n-butyl glutarate, mono-n-hexyl glutarate, mono-n-octyl glutarate, mono-n-decyl glutarate, mono-n-dodecyl glutarate (lauryl ester), monoisobutyl glutarate, mono-t-butyl glutarate, monoisooctyl glutarate, monoisononyl glutarate, monoisodecyl glutarate, monoisoundecyl glutarate, monoisotridecyl glutarate, monooleyl glutarate (mono-9-octadecenyl glutarate), monocyclohexyl glutarate, mono-3-cyclohexen-1-methyl glutarate, mono-p-nonylphenyl glutarate, and monobenzyl glutarate.

[0090] Examples of adipic acid monoesters that are more preferred include monomethyl adipic acid, monoethyl adipic acid, mono-n-butyl adipic acid, mono-n-hexyl adipic acid, mono-n-octyl adipic acid, mono-n-decyl adipic acid, mono-n-dodecyl adipic acid (lauryl ester), monopropyl adipic acid, monoisobutyl adipic acid, monoisooctyl adipic acid, monoisononyl adipic acid, monoisodecyl adipic acid, monoisoundecyl adipic acid, monoisotridecyl adipic acid, monooleyl adipic acid (mono-9-octadecenyl adipic acid), monocyclohexyl adipic acid, mono-3-cyclohexen-1-methyl adipic acid, mono-p-nonylphenyl adipic acid, and monobenzyl adipic acid.

[0091] Examples of azelaic acid monoesters that are more preferred include monomethyl azelaic acid, monoethyl azelaic acid, monopropyl azelaic acid, mono-n-butyl azelaic acid, mono-n-hexyl azelaic acid, mono-n-octyl azelaic acid, mono-n-decyl azelaic acid, mono-n-dodecyl azelaic acid (lauryl ester), monoisobutyl azelaic acid, monoisooctyl azelaic acid, monoisononyl azelaic acid, monoisodecyl azelaic acid, monoisoundecyl azelaic acid, monoisotridecyl azelaic acid, monooleyl azelaic acid (mono-9-octadecenyl azelaic acid), monocyclohexyl azelaic acid, mono-3-cyclohexen-1-methyl azelaic acid, mono-p-nonylphenyl azelaic acid, and monobenzyl azelaic acid.

[0092] Examples of sebacate monoesters that are more preferred include monomethyl sebacate, monoethyl sebacate, monopropyl sebacate, mono-n-butyl sebacate, mono-n-hexyl sebacate, mono-n-octyl sebacate, mono-n-decyl sebacate, mono-n-dodecyl sebacate (lauryl ester), monoisobutyl sebacate, monoisooctyl sebacate, monoisononyl sebacate, monoisodecyl sebacate, monoisoundecyl sebacate, monoisotridecyl sebacate, monooleyl sebacate (mono-9-octadecenyl sebacate), monocyclohexyl sebacate, mono-3-cyclohexen-1-methyl sebacate, mono-p-nonylphenyl sebacate, and monobenzyl sebacate.

[0093] According to this application, the dicarboxylic acid monoester represented by formula (I-3) is a C2-10 carbon atom monoester whose main chain contains a saturated or unsaturated carbon ring structure with any substitutions. 5-12 This is a dicarboxylic acid monoester obtained by esterifying one carboxyl group of a dicarboxylic acid. Preferably, m is 0 and Q is a substituted or unsubstituted C 4-8 A divalent alicyclic hydrocarbyl group, or a substituted or unsubstituted divalent C 6-10 It is an aryl group, where R is C 4-12It is a hydrocarbyl group.

[0094] Particularly preferred are dicarboxylic acid monoesters represented by formula (I-3), such as 1,2-cyclohexanedicarboxylic acid monoester, tetrahydrophthalic acid monoester (i.e., 4-cyclohexene-1,2-dicarboxylic acid monoester), phthalic acid monoester, terephthalic acid monoester, 3-methylhexahydrophthalic acid monoester (i.e., 3-methyl-1,2-cyclohexanedicarboxylic acid monoester), 4-methylhexahydrophthalic acid monoester (i.e., 4-methyl-1,2-cyclohexanedicarboxylic acid monoester), methylhexahydrophthalic acid monoester, methyltetrahydrophthalic acid monoester, 4-methyl-4-cyclohexene-1,2-dicarboxylic acid monoester, and 3-methyl-4-cyclohexene-1,2-dicarboxylic acid monoester.

[0095] More preferably, the dicarboxylic acid monoester represented by formula (I-3) is selected from 1,2-cyclohexanedicarboxylic acid monoester, tetrahydrophthalic acid monoester, phthalic acid monoester, methylhexahydrophthalic acid monoester and methyltetrahydrophthalic acid monoester, for example, 1,2-cyclohexanedicarboxylic acid monobutyl ester, 1,2-cyclohexanedicarboxylic acid monooctyl ester, 1,2-cyclohexanedicarboxylic acid monoisooctyl ester, 1,2-cyclohexanedicarboxylic acid monoisononyl ester, tetrahydrophthalic acid monobutyl ester, tetrahydrophthalic acid monooctyl ester, tetrahydrophthalic acid monoisooctyl ester, tetrahydrophthalic acid Examples include monoisononyl esters, monobutyl phthalates, monooctyl phthalates, monoisooctyl phthalates, monoisononyl phthalates, monobutyl methylhexahydrophthalates, monooctyl methylhexahydrophthalates, monoisooctyl methylhexahydrophthalates, monoisononyl methylhexahydrophthalates, monolauryl methylhexahydrophthalates, monobutyl methyltetrahydrophthalates, monooctyl methyltetrahydrophthalates, monoisooctyl methyltetrahydrophthalates, monoisononyl methyltetrahydrophthalates, and monolauryl methyltetrahydrophthalates.

[0096] In some particularly preferred embodiments, the dicarboxylic acid monoester of formula (I-1), (I-2), or (I-3) is selected from monobutyl maleate, monoisooctyl maleate, monoisononyl maleate, monoisooctyl succinate, monohexyl phthalate, monoisooctyl phthalate, monoisooctyl methyltetrahydrophthalate, monoisooctyl citraconate, monoisooctyl itaconate, and mono-tert-butyl malonate. Most preferably, the dicarboxylic acid monoester is selected from monobutyl maleate, monoisooctyl maleate, monoisononyl maleate, monoisooctyl itaconate, monoisooctyl succinate, monohexyl phthalate, monoisooctyl phthalate, monoisooctyl methyltetrahydrophthalate, and mono-tert-butyl malonate.

[0097] According to this application, a dicarboxylic acid monoester represented by formula (I-1), (I-2), or (I-3) is a saturated dicarboxylic acid, an unsaturated dicarboxylic acid, a cyclic dicarboxylic acid, or a benzenedicarboxylic acid or an acid anhydride thereof, and C 3-20 It can be obtained by reacting it with an alcohol or phenol. Reaction conditions include: dicarboxylic acid or an anhydride and C 2-20 The alcohol or phenol is reacted with the reaction mixture in a molar ratio of 1:0.5 to 1:1.5 at 50 to 250°C for 0.1 to 10 hours, under atmospheric pressure or a constant pressure.

[0098] In some more preferred embodiments, the dicarboxylic acid monoester of component A is selected from dicarboxylic acid monoesters represented by formula (I-4):

[0099] [ka]

[0100] In equation (I-4), R8 is C 2-10 R is a divalent hydrocarbyl group; R9 is a hydrogen or a hydrocarbyl group having or not having a double bond, 10This is a divalent hydrocarbyl group having or not having a double bond, and R9 and R 10 The total number of carbon atoms is 15-21; R 11 is hydrogen or C 1-10 It is a hydrocarbyl group.

[0101] In a more preferred embodiment, R9 and R 10 The total number of carbon atoms is 15-21, and the total number of double bonds is 0-3, for example, R9 and R 10 Each of these may be independently selected from alkyl groups, alkenyl groups, dienyl groups, and the like.

[0102] In a more preferred embodiment, R 11 is hydrogen, or C 1-4 Alkyl and C 2-4 C containing an alkenyl group 1-4 The group is a hydrocarbyl group (such as a methyl group, ethyl group, n-propyl group, propenyl group, n-butyl group, isobutyl group, or butenyl group), and most preferably it is hydrogen, a methyl group, or an ethyl group.

[0103] In a more preferred embodiment, R8 may be an alkylene group, an alkenylene group, an alkyl-substituted alkylene group, an alkyl-substituted alkenylene group, an alkenyl-substituted alkylene group, an alkenyl-substituted alkenylene group, a cycloalkylene group, an alkyl-substituted cycloalkylene group, an alkenyl-substituted cycloalkylene group, a cycloalkenylene group, an alkyl-substituted cycloalkenylene group, an alkenyl-substituted cycloalkenylene group, an arylene group, an alkyl-substituted arylene group, or an alkenyl-substituted arylene group having 2 to 10 carbon atoms; the alkylene group may be a normal alkylene group or an isomer of an alkylene group, and the alkenylene group may be a normal alkenylene group or an isomer of an alkenylene group; more preferably, R8 is C 2-8 Alkylene group, C 2-8 Alkenylene group, C 2-8 an alkyl-substituted alkylene group or an alkenyl-substituted alkylene group, C 2-8an alkyl-substituted alkenylene group or an alkenyl-substituted alkenylene group, C 3-8 a cycloalkylene group, C 3-8 a cycloalkenylene group, C 6-8 an alkyl-substituted cycloalkylene group or an alkenyl-substituted cycloalkylene group, C 6-8 an alkyl-substituted cycloalkenylene group or an alkenyl-substituted cycloalkenylene group, C 6-10 arylene, C 7-10 an alkyl-substituted arylene or an alkenyl-substituted arylene, for example, ethylene, vinylene, methyleneethylene, methylethylene, butylene, methylbutylene, butenylene, phenylene, cyclohexylene, methylhexahydrophenylene, methyltetrahydrophenylene, etc.

[0104] In a more preferred embodiment, in structural formula (I-4), R8 is a C 2-8 divalent hydrocarbyl group, R9 is hydrogen or a hydrocarbyl group, R 10 is a divalent hydrocarbyl group, the total number of carbon atoms of R9 and R 10 is 15 to 21, the total number of carbon-carbon double bonds is 0 to 3, and R 11 is hydrogen or a C 1-4 hydrocarbyl group.

[0105] According to this application, dicarboxylic acid monoesters represented by formula (I-4) can be obtained by esterifying a hydroxy fatty acid and / or a hydroxy fatty acid ester (abbreviated as "hydroxy fatty acid (ester)") with a dicarboxylic acid and / or its acid anhydride. Esterification reaction conditions may include: a temperature in the range of 30 to 300°C, preferably 50 to 250°C, more preferably 70 to 180°C; and a reaction time of 0.5 to 30 hours, preferably 2 to 20 hours, more preferably 4 to 10 hours. The esterification reaction may be carried out in the presence of a solvent which may be toluene, xylene, ethylbenzene, petroleum ether, solvent oil, cyclohexane, n-octane, or mixtures thereof, and in the presence of a catalyst which may be an acid catalyst such as sulfuric acid, p-toluenesulfonic acid, phosphoric acid, or boric acid.

[0106] As an example, the hydroxy fatty acid may be selected from hydroxyoctadecanoic acid (hydroxystearic acid), hydroxyoctadecenoic acid (ricinoleic acid), hydroxyoctadecadienoic acid, hydroxydocosanoic acid, hydroxydocosenoic acid, hydroxytetracosanoic acid, hydroxytetracosenoic acid, and preferably selected from ricinoleic acid, hydroxystearic acid, and hydroxyoctadecadienoic acid.

[0107] As an example, the hydroxy fatty acid ester may be selected from methyl hydroxyoctadecanoate (methyl hydroxystearate), methyl hydroxyoctadecenoate (methyl ricinoleate), ethyl ricinoleate, methyl hydroxyoctadecadienoate, methyl hydroxydocosanoate, methyl hydroxydocosenoate, methyl hydroxytetracosanoate, methyl hydroxytetracosenoate, and preferably selected from methyl ricinoleate, methyl transricinoleate, ethyl ricinoleate, and methyl hydroxyoctadecadienoate.

[0108] For example, the dicarboxylic acid may be a saturated dicarboxylic acid, and may be one or more saturated dicarboxylic acids selected from, for example, succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, undecanediic acid, dodecanediic acid, etc. Preferably, it may be one or more selected from succinic acid, methylsuccinic acid, dimethylsuccinic acid, and octylsuccinic acid.

[0109] Alternatively, the dicarboxylic acid may be an unsaturated dicarboxylic acid, such as cis-butenioic acid (maleic acid), trans-butenioic acid (fumaric acid), cis-methylbutenioic acid (citraconic acid), trans-methylbutenioic acid (mesaconic acid), dimethylmaleic acid, itaconic acid (methylenesuccinic acid, methylenebutaneioic acid), glutaconic acid, trans-3-hexenioic acid, butynioic acid, 2-buten-1,4-dicarboxylic acid, hexadieneioic acid, heptenioic acid, octenioic acid, nonenioic acid, decenoic acid, sebacenoic acid, undecenoic acid, dodecenoic acid, etc. It may also be one or more selected from pentenyl succinic acid, hexadienyl succinic acid, heptenyl succinic acid, octenyl succinic acid, nonenylic acid, decenyl succinic acid, etc. Preferably, it may be one or more selected from cis-butenioic acid (maleic acid), trans-butenioic acid (fumaric acid), cis-methylbutenioic acid (citraconic acid), trans-methylbutenioic acid (mesaconic acid), dimethylmaleic acid, itaconic acid (methylene succinic acid, methylenebutaneioic acid), 2-buten-1,4-dicarboxylic acid, decenyl succinic acid, etc.

[0110] As an example, the acid anhydride of a saturated dicarboxylic acid may be selected from butanediic anhydride (succinic anhydride), glutaric anhydride, adipic anhydride, phthalic anhydride, hexahydrophthalic anhydride, tetrahydrophthalic anhydride, methylhexahydrophthalic anhydride, methyltetrahydrophthalic anhydride, etc.; also, methylglutaric anhydride, methylsuccinic anhydride, dimethylsuccinic anhydride, ethylsuccinic anhydride, propylsuccinic anhydride It may be one or more of the following: butylsuccinate anhydride, pentylsuccinate anhydride, hexylsuccinate anhydride, heptylsuccinate anhydride, octylsuccinate anhydride, nonylsuccinate anhydride, decylsuccinate anhydride, and preferably one or more selected from cis-butenidioanhydride (maleic anhydride), 2,3-dimethylmaleic anhydride, citraconic anhydride, itaconic anhydride, glutaconic anhydride, and the like.

[0111] For example, the anhydride of the unsaturated dicarboxylic acid may be one or more selected from (2-methyl-2-propenyl) succinic anhydride, vinyl succinic anhydride, propenyl succinic anhydride, butenyl succinic anhydride, triisobutenyl succinic anhydride, pentenyl succinic anhydride, 3-methyl-hexenyl succinic anhydride, heptenyl succinic anhydride, octenyl succinic anhydride, nonenylic acid anhydride, decenyl succinic anhydride, etc.

[0112] Particularly preferred is one or more dicarboxylic acid anhydrides selected from maleic anhydride, citraconic anhydride, itaconic anhydride, succinic anhydride, glutaric anhydride, phthalic anhydride, hexahydrophthalic anhydride, tetrahydrophthalic anhydride, methylhexahydrophthalic anhydride, methyltetrahydrophthalic anhydride, methylsuccinic anhydride, dimethylsuccinic anhydride, nonylsuccinic anhydride, decylsuccinic anhydride, nonenylsuccinic anhydride, decenylsuccinic anhydride, and the like.

[0113] In particularly preferred embodiments, the dicarboxylic acid monoester compound represented by formula (I-4) is selected from the group consisting of mono-maleic acid substituted methyl ricinoleate, mono-maleic acid substituted ricinoleate, mono-succinate methyl ricinoleate, mono-succinate methyl 12-hydroxystearate, mono-maleic acid substituted methyl 12-hydroxystearate, mono-phthalate substituted methyl ricinoleate, mono-methylhexahydrophthalate substituted methyl ricinoleate, mono-methyltetrahydrophthalate substituted methyl ricinoleate, and combinations thereof.

[0114] [Component B] According to this application, component B is C 8-24 Long-chain fatty acids, C 8-24 These are polyol esters of long-chain fatty acids, or mixtures thereof.

[0115] For example, C 8-24 Long-chain fatty acids may be selected from caprylic acid, capric acid, lauric acid (dodecanoic acid), myristic acid (tetradecanoic acid), palmitic acid (hexadecanoic acid), palmitoleic acid (hexadecenoic acid), stearic acid (octadecanoic acid), oleic acid (octadecenoic acid), linoleic acid (octadecadienoic acid), linolenic acid (octadecatrienoic acid), ricinoleic acid (hydroxyoctadecenoic acid), hydroxystearic acid, arachidic acid (eicosanoic acid), arachidonic acid (eicosenoic acid), behenic acid (docosanoic acid), erucic acid (docosenoic acid), and mixtures thereof.

[0116] In a preferred embodiment, component B is C 12-20 unsaturated fatty acids, C 12-20 Selected from polyol esters of unsaturated fatty acids, or mixtures thereof.

[0117] For example, C 12-20The unsaturated fatty acid is preferably selected from oleic acid, linoleic acid, linolenic acid, ricinoleic acid, or a combination thereof, or from a fatty acid mixture mainly consisting of oleic acid, linoleic acid, linolenic acid, and ricinoleic acid.

[0118] Various fatty acid mixtures can be produced by hydrolyzing natural oils or waste oils, and unsaturated fatty acid-based products can be obtained by distillation, urea encapsulation, or low-temperature cryocrystallization. Biodiesel can also produce unsaturated fatty acids by hydrolysis after distillation, urea encapsulation, or low-temperature cryocrystallization. Tall oil fatty acids derived from the paper industry are rich in unsaturated fatty acids. All of these products are preferred component B. Unsaturated fatty acid mixtures obtained by hydrolysis and purification of tall oil, cottonseed oil, acidified cottonseed oil, soybean oil, acidified soybean oil, etc., as starting materials are also preferred component B, and examples include the unsaturated fatty acid JC2006S from Jiangsu Innovation Petrochemical Co., Ltd., the unsaturated fatty acid KMJ-031 from Xinjiang Dayen Chemical Co., Ltd., and the unsaturated fatty acid R90 from Jiangxi Xilinke Co., Ltd.

[0119] According to this application, polyol esters of long-chain fatty acids refer to various esterification products, such as monoesters, diesters, and triesters, as well as mixtures thereof, obtained by esterification of long-chain saturated fatty acids or long-chain unsaturated fatty acids with polyols.

[0120] As an example, polyols may include, but are not limited to, ethylene glycol, glycerol (glycerin), 1,2-propanediol, 1,3-propanediol, sorbitan, pentaerythritol, trimethylolpropane, etc., but glycerol is preferred.

[0121] In preferred embodiments, the polyol ester is a glycerol ester, preferably selected from monoglycerides and diglycerides, more preferably a monoglyceride of an unsaturated fatty acid, most preferably selected from monoglycerol oleate, monoglycerol linoleate, monoglycerol linolenic acid, and monoglycerol ricinoleate. It is preferable to use a glyceride obtained by esterifying an unsaturated fatty acid with glycerol (such as JC-2017Z from Jiangsu Innovation Petrochemical Co., Ltd.) as component B.

[0122] In a second embodiment, a method is provided for preparing the fuel oil lubricity improver composition of the present application, comprising uniformly mixing component A and component B in a mass ratio of 9:1 to 1:9, preferably 7:3 to 3:7, and more preferably 6:4 to 4:6.

[0123] In a third embodiment, the present application provides a method for improving the lubricity of a diesel fuel, comprising adding the fuel oil lubricity improver composition of the present application to a low-sulfur diesel fuel, wherein the fuel oil lubricity improver composition is added in an amount preferably from 10 ppm to 400 ppm, more preferably from 50 ppm to 200 ppm, based on the mass of the low-sulfur diesel fuel.

[0124] In a fourth embodiment, the present application provides a diesel fuel composition comprising a low-sulfur diesel fuel and the fuel oil lubricity improver composition of the present application, wherein the fuel oil lubricity improver composition is present in the diesel fuel composition in an amount preferably from 10 ppm to 400 ppm, more preferably from 50 ppm to 200 ppm, based on the mass of the low-sulfur diesel fuel.

[0125] Low-sulfur diesel fuels suitable for use with the lubricity improver of this application include a variety of low-sulfur diesel fuels. For example, the diesel fuel may be a fuel for a compression-ignition internal combustion engine that meets the Chinese national standard GB / T19147 for automotive diesel fuels, prepared by producing fractions having a distillation range between 160°C and 380°C from crude oil (petroleum) through various refining processes at a petroleum refinery, such as atmospheric distillation, vacuum distillation, catalytic cracking, catalytic reforming, coking, hydrorefining, and hydrocracking, and then blending them.

[0126] Low-sulfur diesel may also be second-generation biodiesel. Second-generation biodiesel is derived from renewable resources such as vegetable oils and animal fats and is typically obtained by hydrogenating vegetable oils to produce isomerized or non-isomerized long-chain hydrocarbons using hydrogenation processes commonly used in refineries. Second-generation biodiesel may be similar in properties and quality to petroleum-based fuel oils.

[0127] Low-sulfur diesel may also be third-generation biodiesel. Third-generation biodiesel is prepared by treating high-cellulose-content non-oily biomass, such as sawdust, crop straw, and solid waste, with microbial oil using gasification and Fischer-Tropsch technology.

[0128] Low-sulfur diesel may also be coal-liquefied diesel (CTL). Coal-liquefied diesel refers to diesel fuel obtained by the Fischer-Tropsch synthesis of coal, or by the direct liquefaction of coal. Coal-liquefied diesel may also be a blended diesel fuel obtained by adding oxygen-containing diesel fuel components to petroleum-based diesel fuel. Oxygen-containing diesel fuel components refer to oxygen-containing compounds or mixtures of oxygen-containing compounds that can be blended into various diesel fuels to meet specific specification requirements, and are typically alcohols and ethers such as ethanol and polyoxymethylene dimethyl ether (abbreviated as PODEN, DMMn, or OME) or mixtures thereof.

[0129] The diesel fuel composition of this application may optionally further contain one or more other additives such as phenolic antioxidants, polymeric amine-type ashless dispersants, fluidity improvers, cetane number improvers, metal deactivators, antistatic agents, corrosion inhibitors, rust inhibitors, and deemulsifiers.

[0130] [Examples] The present application will be further described below with reference to examples, but is not constructed to be limited thereto.

[0131] In the following examples and comparative examples, the reagents and starting materials used are of the reagent purity of commercially available materials unless otherwise specified.

[0132] In the following examples and comparative examples, the infrared spectra of the obtained products were measured using a Thermo Fisher Scientific Nicolet iS50 Fourier transform infrared spectrometer.

[0133] In the following examples and comparative examples, the compositional analysis of the obtained products was performed using an Agilent 7890A-5975C GC-MS, with chromatography conditions including an initial temperature of 50°C, a heating rate of 5°C / min, a column temperature of 300°C, quantification using area normalization with a flame ionization detector (FID), and an HP-5 chromatography column.

[0134] In the following examples and comparative examples, photographs of the wear marks on diesel fuel before and after the addition of the lubrication-improving composition were obtained by measuring the wear mark diameter (WSD) at 60°C using a high-frequency reciprocating rig (HFRR, PCS Instruments, UK) according to the SH / T 0765 method.

[0135] [Preparation of dicarboxylic acid monoesters] [Preparation Example 1: Monoisononyl Maleate] 490 g of maleic anhydride (cis-butenodioanhydride, 99.5% by mass, available from Zibo Qixiang Tengda Chemical Co. Ltd.) and 720 g of the isomer nonanol (Exxal® 9s, 99.5% by mass, available from Exxon-Mobil Co. Ltd.) were added to a 2000 mL reactor equipped with an electric stirrer and thermometer, with a molar ratio of maleic anhydride to isomer nonanol of approximately 1:1. The mixture was heated to 85°C under stirring and reacted for 5 hours. After that, the temperature was raised to 150°C, and unreacted isomer nonanol and maleic anhydride were removed by vacuum distillation to obtain 1006 g of product. The infrared spectrum of the obtained product is shown in Figure 1. Analysis by GC-MS revealed that the content of monoisononyl maleate was approximately 90.5%, and the content of diisononyl maleate was approximately 8.6%.

[0136] [Preparation Example 2: Monoisooctyl succinate] 490 g of succinic anhydride (butanedioxide anhydride, 99% by mass, available from Shanghai Shenren Fine Chemical Co. Ltd.) and 700 g of isooctanolic acid (2-ethylhexanol, 99.9% by mass, available from Sinopec Qilu Petrochemical Company) were added to a 2000 mL reactor equipped with an electric stirrer, thermometer, and reflux condenser, with a molar ratio of succinic anhydride to isooctanolic acid of approximately 1:1.1. The mixture was heated to 110°C under stirring and reacted for 4 hours, then the temperature was raised to 160°C, and unreacted isooctanolic acid was removed by vacuum distillation to obtain 1109 g of product. Analysis by GC-MS revealed that the content of monoisooctyl succinate was approximately 86.7%.

[0137] [Preparation Example 3: Monoisooctyl Methyltetrahydrophthalate] 166 g of methyltetrahydrophthalic anhydride (98% by mass, available from Shandong Yousheng Chemical Co. Ltd.) and 143 g of isooctanolic acid (99.5% by mass, available from Sinopec Qilu Petrochemical Company) were added to a 500 mL reactor equipped with an electric stirrer and thermometer, with a molar ratio of approximately 1:1.1 between methyltetrahydrophthalic anhydride and isooctanolic acid. The mixture was heated to 110°C under stirring and reacted for 3.5 hours. After that, the temperature was raised to 165°C, and unreacted starting materials were removed by vacuum distillation to obtain 243 g of product. Analysis by GC-MS revealed that the content of monoisooctyl methyltetrahydrophthalate was approximately 85%.

[0138] [Preparation Example 4: Monoisooctyl citraconate] 112 g of methyl maleate anhydride (citraconic acid anhydride, analytical purity, available from Shanghai Aladdin Biochemical Technology Co. Ltd.) and 143 g of isooctanoyl (2-ethylhexanol, 99.9% by mass, available from Sinopec Qilu Petrochemical Company) were added to a 500 mL reactor equipped with an electric stirrer, thermometer, and reflux condenser, with a molar ratio of methyl maleate anhydride to isooctanoyl approximately 1:1.1. The mixture was heated to 90°C under stirring and reacted for 4 hours, then the temperature was raised to 140°C, and unreacted isooctanoyl was removed by vacuum distillation to obtain 245 g of a product mainly composed of monoisooctyl citraconate.

[0139] [Preparation Example 5: Monoisooctyl dodecenylsuccinate] 200 g of dodecenyl succinic anhydride (analytical purity, available from Beijing Yinokai Technology Co. Ltd.) and 117 g of isooctanoyl (2-ethylhexanol, 99.9% by mass, available from Sinopec Qilu Petrochemical Company) were added to a 500 mL reactor equipped with an electric stirrer, thermometer, and reflux condenser, with a molar ratio of dodecenyl succinic anhydride to isooctanoyl at approximately 1:1.2. The mixture was heated to 100°C under stirring and reacted for 3 hours. After that, the temperature was raised to 150°C, and unreacted isooctanoyl was removed by vacuum distillation to obtain 303 g of a product mainly composed of monoisooctyl dodecenyl succinate.

[0140] [Preparation Example 6: Methyl ricinoleate substituted with mono-maleic acid] 350.5 g of methyl ricinoleate (75% by mass, available from Shanghai Aladdin Biochemical Technology Co. Ltd.) and 100 g of maleic anhydride (cis-butenidioic anhydride, 99% by mass, available from Shanghai Aladdin Biochemical Technology Co. Ltd.) were added to a 500 mL reactor equipped with an electric stirrer, thermometer, and reflux condenser, with a molar ratio of methyl ricinoleate to maleic anhydride of approximately 1.1:1. The mixture was heated to 100°C under stirring and reacted for 3 hours to obtain 442.7 g of a product mainly composed of maleic acid monoester-substituted methyl ricinoleate. Analysis by GC-MS revealed that the content of maleic acid monoester-substituted methyl ricinoleate was approximately 88%.

[0141] The reaction mechanism is shown in Equation 1 below.

[0142] [ka]

[0143] [Preparation Example 7: Monoisooctyl Itaconate] 200 g of methylene succinic anhydride (itaconic anhydride, analytical purity, available from Beijing Yinokai Technology Co. Ltd.) and 240.3 g of isooctanoyl (2-ethylhexanol, 99.9% by mass, available from Sinopec Qilu Petrochemical Company) were added to a 500 mL reactor equipped with an electric stirrer, thermometer, and reflux condenser. The molar ratio of methylene succinic anhydride to isooctanoyl was approximately 1:1.2. The mixture was heated to 100°C under stirring and reacted for 3 hours. After that, the temperature was raised to 140°C, and unreacted starting materials were removed by vacuum distillation to obtain 429.7 g of a product mainly composed of monoisooctyl itaconic acid. Analysis by GC-MS revealed that the content of monoisooctyl itaconic acid was approximately 84%.

[0144] [Preparation Example 8: Monobenzyl Maleate] 150 g of maleic anhydride (cis-butenidiohydride, analytical purity, available from Beijing Yinokai Technology Co. Ltd.) and 198.5 g of benzyl alcohol (99% by mass, available from Beijing Yinokai Technology Co. Ltd.) were added to a 500 mL reactor equipped with an electric stirrer, thermometer, and reflux condenser, with a molar ratio of maleic anhydride to benzyl alcohol of approximately 1:1.2. The mixture was heated to 80°C under stirring and reacted for 5 hours. After that, the temperature was raised to 150°C, and unreacted starting materials were removed by vacuum distillation to obtain 343.6 g of a product mainly composed of monobenzyl maleate. Analysis by GC-MS revealed that the content of monobenzyl maleate was approximately 88%.

[0145] [Preparation Example 9: Methyltetrahydrophthalate monoester-substituted methyl ricinoleate] 248 g of methyl ricinoleate (75% by mass, available from Shanghai Aladdin Biochemical Technology Co. Ltd.) and 100 g of methyltetrahydrophthalic anhydride (99% by mass, available from Beijing Yinokai Technology Co. Ltd.) were added to a 500 mL reactor equipped with an electric stirrer, thermometer, and reflux condenser, with a molar ratio of methyl ricinoleate to methyltetrahydrophthalic anhydride of approximately 1.1. The mixture was heated to 140°C under stirring and reacted for 3 hours to obtain 329.1 g of a product mainly composed of methyltetrahydrophthalic acid monoester-substituted methyl ricinoleate. Analysis by GC-MS revealed that the content of methyltetrahydrophthalic acid monoester-substituted methyl ricinoleate was approximately 77%.

[0146] [Examples of lubricity improving agent compositions] The lubricity improving agent compositions of Examples 1 to 32 and Comparative Examples 1 to 5 were prepared by uniformly mixing component A and component B according to the compositions and mass ratios shown in Tables 1-1 to 1-3.

[0147] [Table 1]

[0148] In Table 1-1, Examples 1-2 and Comparative Examples 1-3 illustrate the performance improvement of the lubricity improving agent composition of this application compared to lubricity improving agent compositions other than those of this application. Examples 3-5 illustrate the effect of the selection of component A on the performance of the lubricity improving agent composition of this application when component B used is a polyol ester of a long-chain fatty acid. Examples 5-8 illustrate the effect of the selection of the mass ratio of component A / B on the performance of the lubricity improving agent composition of this application when component B used is a polyol ester of a long-chain fatty acid.

[0149] [Table 2]

[0150] In Table 1-2, Examples 9-14 illustrate the effect of the selection of component A on the performance of the lubricity improving agent composition of this application when component B used is a long-chain fatty acid, while Examples 14-21 and Comparative Examples 4-5 illustrate the effect of the selection of the mass ratio of component A / B on the performance of the lubricity improving agent composition when component B used is a long-chain fatty acid.

[0151] [Table 3] JPEG0007894397000015.jpg72169

[0152] Tables 1-3 illustrate the performance of other lubricity-improving compositions of this application obtained by mixing component A and component B.

[0153] Detailed information on the commercially available component A used in Examples 1-32 is as follows: Monoisooctyl maleate: Available from TCI Shanghai Chemical Industry Development Co., Ltd., 95% purity; Diisooctyl maleate: Available from Beijing Yinokai Technology Co. Ltd., 95% purity; Mono-tert-butyl malonate: Available from Ark Pharm Corporation, purity 97% or higher; Mono-n-butyl maleate: Available from Hubei Jusheng Technology Co. Ltd., 99% purity; and Monohexyl phthalate: Available from Shanghai Aladdin Biochemical Technology Co. Ltd., 98% purity.

[0154] Among the components A used in Examples 1 to 32, examples of compounds having formula (I-1) include mono-n-butyl maleate (e.g., Example 30), monoisononyl maleate (e.g., Example 27), and monoisooctyl citraconate (e.g., Example 22); examples of compounds having formula (I-2) include mono-tert-butyl malonate (e.g., Example 29); examples of compounds having formula (I-3) include monohexyl phthalate (e.g., Example 32) and monoisooctyl methyltetrahydrophthalate (e.g., Example 24); and examples of compounds having formula (I-4) include monoester-substituted methyl ricinoleate (e.g., Example 13).

[0155] Detailed information on the commercially available component B used in Examples 1-32 is as follows: Linoleic acid: Available from Shanghai Aladdin Biochemical Technology Co. Ltd., 95% purity; Oleic acid: Available from Shanghai Aladdin Biochemical Technology Co. Ltd., analytical purity; Tall Oil Fatty Acid 2LT: A fatty acid mixture obtained by refining tall oil, mainly composed of unsaturated fatty acids such as linoleic acid and oleic acid; available from Arizona Corporation in the United States. Unsaturated fatty acids KMJ-031, JC-2006S, and R90: mainly composed of linoleic acid and oleic acid; detailed information is shown in Table 2. Unsaturated fatty acid glyceride JC-2017Z: This product mainly consists of monoglycerides and diglycerides obtained by esterifying linoleic acid and oleic acid with glycerol. Detailed information is shown in Table 2.

[0156] [Table 4] JPEG0007894397000017.jpg32169

[0157] [Measurement example] The lubricity improving compositions of Examples 1-32 and Comparative Examples 1-5 were each mixed with diesel fuel, and their effects in diesel fuel were tested. The low-sulfur diesel fuel A used was available from Sinopec Yanshan Petrochemical Company, and the ultra-low-sulfur diesel fuel B was available from Sinopec Shanghai Gaoqiao Petrochemical Co. Ltd. The physicochemical properties of diesel fuel A and diesel fuel B are shown in Table 3.

[0158] [Table 5] JPEG0007894397000019.jpg9169

[0159] The lubricity of diesel fuel was evaluated by measuring the wear mark diameter (WSD) at 60°C using a high-frequency reciprocating rig (HFRR, PCS Instruments, UK) according to the SH / T 0765 method. After correcting for the effects of temperature and humidity, a reported wear mark diameter WS1.4 was obtained.

[0160] Tables 4-1, 4-2, 5-1, 5-2, 5-3, and 5-4 show the wear mark diameter (WS1.4) of diesel fuel before and after the addition of the lubricity-improving composition. The smaller the wear mark diameter, the better the lubricity of the diesel fuel. Currently, most diesel fuel standards worldwide, including the European standard EN 590, the Chinese national standard GB 19147 for automotive diesel fuel, and the Beijing local standard DB 11 / 239 for automotive diesel fuel, use a wear mark diameter of less than 460 μm (at 60°C) as the acceptable standard for the lubricity of diesel fuel.

[0161] [Table 6]

[0162] As can be seen from the results described in Table 4-1, the initial diesel fuel A had an abrasion mark diameter WS1.4 of 564 μm (see Figure 2 for a photograph of the abrasion mark), which did not meet the performance requirements for automotive diesel fuel. The abrasion mark diameter WS1.4 of diesel fuel A could be reduced from 564 μm to 324 μm by using 100 mg / kg of monoisooctyl maleate alone, from 564 μm to 458 μm by using 100 mg / kg of linoleic acid alone, and surprisingly, by using 100 mg / kg of the composition obtained by mixing monoisooctyl maleate and linoleic acid in a mass ratio of 7:3 in Example 1, it could be reduced from 564 μm to 226 μm (see Figure 3 for a photograph of the abrasion mark). Furthermore, even when the amount of the composition obtained in Example 1 was reduced to 70 mg / kg, the abrasion mark diameter WS1.4 of diesel fuel A could be reduced from 564 μm to 305 μm (see Figure 4 for a photograph of the abrasion mark). From the above results, it is clear that the lubricity improving agent composition of this application exhibits a remarkable synergistic effect between component A and component B, resulting in a significantly superior lubricity improving effect compared to when components A and B are used individually, and therefore the amount of lubricity improving agent used can be greatly reduced. In contrast, the composition of Comparative Example 1, obtained by mixing diisooctyl maleate and linoleic acid in the same mass ratio, showed poor lubricity improving effect and no synergistic effect.

[0163] [Table 7]

[0164] As can be seen from the results shown in Table 4-2, the wear mark diameter WS1.4 of the initial diesel fuel A was 564 μm, and the reformed diesel fuel after adding 100 mg / kg of diisooctyl maleate alone showed a WS1.4 value of 561 μm, indicating no improvement in lubricity. The reformed diesel fuel after adding 100 mg / kg of monoisooctyl maleate alone showed a WS1.4 value of 324 μm (shown in Table 4-1). On the other hand, the reformed diesel fuel after adding 100 mg / kg of unsaturated fatty acid glyceride JC-2017Z alone showed a WS1.4 value of 469 μm, failing to meet the performance requirements. However, the composition obtained in Example 2 by mixing monoisooctyl maleate and unsaturated fatty acid glyceride JC-2017Z in a mass ratio of 5:5 showed a remarkable lubricity improvement effect, reducing the WS1.4 value of the reformed diesel fuel to 212 μm when added at a rate of 100 mg / kg, and reducing the WS1.4 value of the reformed diesel fuel to 415 μm when added at a rate of 50 mg / kg, thus meeting the performance requirements. In contrast, the lubricity improvement effect of the composition obtained in Comparative Example 2 using diisooctyl maleate and the composition obtained in Comparative Example 3 using monoisooctyl dodecenylsuccinate was significantly lower than that of the composition in Example 2.

[0165] [Table 8]

[0166] As can be seen from the results described in Table 5-1, the wear mark diameter WS1.4 of the initial diesel fuel B was 651 μm (see Figure 5 for a photograph of the wear mark), which does not meet the performance requirements for automotive diesel fuel. The WS1.4 value of the reformed diesel fuel after adding 100 mg / kg of monoisooctyl maleate alone was 466 μm, which still does not meet the performance requirements. The WS1.4 value of the reformed diesel fuel after adding 100 mg / kg of linoleic acid alone was 513 μm. When the composition obtained in Example 1 of this application was added to the diesel fuel at an amount of 100 mg / kg, the WS1.4 value of the reformed diesel fuel decreased to 256 μm (see Figure 6 for a photograph of the wear mark), and when the composition was added to the diesel fuel at an amount of 200 mg / kg, the WS1.4 value of the reformed diesel fuel decreased to 189 μm (see Figure 7 for a photograph of the wear mark), clearly improving the lubricity of the reformed diesel fuel. This effect is remarkable, indicating a significant synergistic effect between monoisooctyl maleate and linoleic acid in the composition obtained in Example 1. In contrast, the composition obtained by mixing diisooctyl maleate and linoleic acid in equal mass ratios in Comparative Example 1 showed poor lubricity improvement and no synergistic effect.

[0167] [Table 9]

[0168] As can be seen from the results in Table 5-2: 1) When 100 mg / kg of monoisooctyl maleate alone was added to diesel fuel B, the WS1.4 value of the reformed diesel fuel was 412 μm. When 100 mg / kg of unsaturated fatty acid glyceride JC-2017Z alone was added to diesel fuel B, the WS1.4 value of the reformed diesel fuel was 459 μm. On the other hand, when 100 mg / kg of the composition of Example 2 was added to diesel fuel B, the wear mark diameter WS1.4 of diesel fuel B was surprisingly reduced to 305 μm, indicating a significant synergistic effect between monoisooctyl maleate and unsaturated fatty acid glyceride JC-2017Z in the composition of Example 2. In contrast, the composition obtained in Comparative Example 2 using diisooctyl maleate and the composition obtained in Comparative Example 3 using monoisooctyldodecenyl succinate showed significantly inferior lubricity improvement effects compared to the composition of Example 2, and were inferior to the case of component B alone, indicating that there was no synergistic effect between the components in the compositions of Comparative Examples 2 and 3. 2) Within the range of the mass ratio of component A / B described in this specification, all the compositions of the examples exhibit excellent lubricity improvement effects; 3) When component B is a polyol ester of a long-chain fatty acid, under conditions using the same amount, the same component B, and the same mass ratio of component A / B, the composition of Example 5 using monoisooctyl maleate provides a better lubricity improvement effect than the composition of Example 3 using monoisooctyl itaconic acid and the composition of Example 4 using monoester-substituted methyl ricinoleate; and 4) Under the same conditions as component A, component B, and the same amount used, the composition of Example 6, in which the mass ratio of component A / B is 4:6, provides a significantly better lubricity improvement effect than the compositions of Example 5 and Example 8, in which the mass ratio of component A / B is larger, and the composition of Example 7, in which the mass ratio of component A / B is smaller.

[0169] [Table 10] JPEG0007894397000025.jpg112169

[0170] As can be seen from the results in Table 5-3: 1) When component B is a long-chain fatty acid, under conditions using the same amount, the same component B, and the same mass ratio of component A / B, the composition of Example 9 using monoisooctyl succinate provides a better lubricity improvement effect than the composition of Example 11 using monobenzyl maleate; the composition obtained in Example 17 using monoisooctyl maleate provides a better lubricity improvement effect than the composition of Example 10 using mono-tert-butyl malonate; the composition of Example 14 using monoisooctyl maleate provides a better lubricity improvement effect than the composition of Example 13 using monoester-substituted methyl ricinoleate; and it provides an even better lubricity improvement effect than the composition of Example 12 using monoester-substituted methyltetrahydrophthalate; 2) Within the range of mass ratios of component A / B described in this specification, all the compositions of the examples showed excellent lubricity improvement effects. The composition of Comparative Example 4, with a mass ratio of component A / B of 9.5:0.5, and the composition of Comparative Example 5, with a mass ratio of component A / B of 0.5:9.5, showed significantly inferior lubricity improvement effects compared to the compositions of Examples 9-21, and were inferior to the case of component A alone. It was also shown that there were no synergistic effects between the components in the compositions of Comparative Examples 4-6. 3) When component B is a long-chain fatty acid, under conditions using the same components A and B, adding a composition with a mass ratio of component A / B of 1:9 (e.g., Example 15) in a total amount of 120 mg / kg (including 12 mg / kg of component A) can reduce the abrasion mark diameter of diesel fuel to 398 μm. On the other hand, adding 12 mg / kg of component A alone showed almost no anti-abrasion effect (643 μm). Adding a composition with a mass ratio of component A / B of 2:8 (e.g., Example 16) in a total amount of 120 mg / kg (including 24 mg / kg of component A) can reduce the abrasion mark diameter of diesel fuel to 367 μm. On the other hand, adding 24 mg / kg of component A alone showed little anti-abrasion effect (601 μm), and adding 120 mg / kg of component B alone also showed little anti-abrasion effect (497 μm), indicating that component A and component B have a synergistic effect. With the same amount of use, the composition of Example 20, in which the mass ratio of component A / B is 7:3, provides a better lubricity improvement effect than the composition of Example 21, in which the mass ratio of component A / B is larger, and also than the compositions of Examples 18 and 14, in which the mass ratio of component A / B is smaller. The composition of Example 19, in which the mass ratio of component A / B is 6:4, provides a better lubricity improvement effect than the composition of Example 17, in which the mass ratio of component A / B is 4:6.

[0171] [Table 11] JPEG0007894397000027.jpg215169

[0172] As can be seen from the results in Table 5-4, all of the lubricity improving agent compositions of this application, which contain various components A and B, show significantly superior lubricity improving effects compared to lubricity improving agent compositions containing only components A or B, and can greatly improve the lubricity of diesel fuel with extremely small amounts.

[0173] In conclusion, the test results show that in the lubricity improving agent composition of this application, components A and B, after being mixed in a specific ratio, exhibit a clear synergistic effect, showing a significantly better improvement in the lubricity of diesel fuel compared to when components A and B are used individually. As a result, the amount of lubricity improving agent of this application can be significantly reduced, thereby lowering the cost of additives necessary to meet the performance requirements for the lubricity of diesel fuel, and also reducing the risk of side effects caused by the addition of additives.

[0174] While this application has been described in detail above with reference to preferred embodiments, it is not intended to be limited to these embodiments. Various modifications can be made in accordance with the inventive concept of this application, and such modifications shall remain within the scope of this application.

[0175] The various technical features described in the embodiments above can be combined in any suitable manner as long as they do not contradict each other. While various possible combinations are not described in this application to avoid unnecessary repetition, it should be noted that such combinations are also within the scope of this application.

[0176] Furthermore, the various embodiments of this application can be combined in any way, as long as the combination does not deviate from the spirit of this application, and such combined embodiments should be considered as disclosures of this application. [Brief explanation of the drawing]

[0177] [Figure 1] Figure 1 shows the infrared spectrum of the product obtained in Preparation Example 1; [Figure 2] Figure 2 shows a photograph of the wear marks on the diesel fuel A used in the example. [Figure 3] Figure 3 shows a photograph of the wear marks on diesel fuel A to which the composition obtained in Example 1 was added at an amount of 100 mg / kg, with WS1.4 = 226 μm. [Figure 4]Figure 4 shows a photograph of the wear marks on diesel fuel A to which the composition obtained in Example 1 was added at a concentration of 70 mg / kg, with WS1.4 = 305 μm. [Figure 5] Figure 5 shows a photograph of the wear marks on the diesel fuel B used in the example. [Figure 6] Figure 6 shows a photograph of the wear marks on diesel fuel B to which the composition obtained in Example 1 was added at an amount of 100 mg / kg, with WS1.4 = 256 μm. [Figure 7] Figure 7 shows a photograph of the wear marks on diesel fuel B to which the composition obtained in Example 1 was added at an amount of 200 mg / kg, with WS1.4 = 189 μm.

Claims

1. A fuel oil lubricity improver composition comprising component A and component B, The aforementioned component A is a dicarboxylic acid monoester selected from the dicarboxylic acid monoester represented by the following formula (I-1), the dicarboxylic acid monoester represented by the following formula (I-2), and the dicarboxylic acid monoester represented by the following formula (I-4). 【Chemistry 1】 In formula (I-1), n is an integer between 2 and 6. R is C 3-20 It is a hydrocarbyl group, The dicarboxylic acid monoester represented by formula (I-1) above is selected from maleic acid monoester, fumaric acid monoester, citraconic acid monoester, methylfumaric acid monoester, 2,3-dimethylmaleic acid monoester, glutaconic acid monoester, or a combination thereof. 【Chemistry 2】 In formula (I-2), p is an integer from 1 to 8. R is C 3-20 It is a hydrocarbyl group. The dicarboxylic acid monoester represented by formula (I-2) above is selected from malonic acid monoester, succinic acid monoester, glutaric acid monoester, adipic acid monoester, azelaic acid monoester, sebaciate monoester, or a combination thereof. 【Transformation 3】 In formula (I-4), R 8 is C 2-10 It is a divalent hydrocarbyl group, R 9 is hydrogen or a hydrocarbyl group, R 10 It is a divalent hydrocarbyl group, R 9 and R 10 The total number of carbon atoms is 15 to 21. The total number of carbon-carbon double bonds is between 0 and 3. R 11 is hydrogen or a C 1-10 hydrocarbyl group, and The aforementioned component B is C 8-24 Long-chain fatty acids, their polyol esters, or mixtures thereof, The total amount of component A and component B is 70% to 100% by weight, based on the total weight of the composition. A fuel oil lubricity improver composition wherein the mass ratio of component A to component B is 9:1 to 1:

9.

2. The aforementioned component B is C 8-24 It is a long-chain fatty acid, The composition according to claim 1, wherein the mass ratio of component A to component B is between 8:2 and 2:

8.

3. The aforementioned component B is C 8-24 It is a polyol ester of long-chain fatty acids, The composition according to claim 1, wherein the mass ratio of component A to component B is between 8:2 and 1:

9.

4. The aforementioned component B is C 8-24 It is a long-chain fatty acid, The composition according to claim 1, wherein the composition contains 20 to 80% by weight of component A and 20 to 80% by weight of component B, based on the weight of the composition.

5. The aforementioned component B is C 8-24 It is a polyol ester of long-chain fatty acids, The composition according to claim 1, wherein the composition contains 10 to 80% by weight of component A and 20 to 90% by weight of component B, based on the weight of the composition.

6. The composition according to claim 1, wherein the dicarboxylic acid monoester having formula (I-1) is a maleic acid monoester.

7. The composition according to claim 1, wherein the dicarboxylic acid monoester having formula (I-2) is selected from malonic acid monoester, succinic acid monoester, adipic acid monoester, or a combination thereof.

8. In formula (I-1), R is a C4-18 hydrocarbyl group, In the above formula (I-2), R is a C4-18 hydrocarbyl group, In the above formula (I-4), R 11 is hydrogen or C 1-4 The composition according to claim 1, wherein the group is a hydrocarbyl group.

9. In the above formula (I-4), R 8 R is selected from ethylene, vinylene, methyleneethylene, methylethylene, butylene, methylbutylene, butenylene, phenyl, cyclohexyl, methylhexahydrophenyl, and methyltetrahydrophenyl, 11 The composition according to claim 8, wherein is selected from hydrogen, methyl, and ethyl.

10. The composition according to claim 9, wherein the dicarboxylic acid monoester having formula (I-4) is selected from maleic acid monoester-substituted methyl ricinoleate, maleic acid monoester-substituted ricinoleic acid, succinic acid monoester-substituted methyl ricinoleate, succinic acid monoester-substituted ricinoleic acid, phthalic acid monoester-substituted methyl ricinoleate, methylhexahydrophthalic acid monoester-substituted methyl ricinoleate, methyltetrahydrophthalic acid monoester-substituted methyl ricinoleate, or a combination thereof.

11. The composition according to claim 1, wherein the dicarboxylic acid monoester of component A is selected from monobutyl maleate, monoisooctyl maleate, monoisononyl maleate, monoisooctyl citraconate, methyl succinate monoester-substituted ricinoleate, ricinoleic acid succinate monoester-substituted, methyl maleate monoester-substituted ricinoleate, methyl maleate monoester-substituted ricinoleic acid, methyl tetrahydrophthalate monoester-substituted ricinoleate, or a combination thereof.

12. If component B is a C8-24 long-chain fatty acid, the mass ratio of component A to component B is from 7:3 to 5:5, or When component B is a polyol ester of C8-24 long-chain fatty acids, the mass ratio of component A to component B is between 5:5 and 2:

8. The composition according to claim 1.

13. The unsaturated fatty acid of component B is C 12-20 Selected from unsaturated fatty acids or combinations thereof, The composition according to claim 1, wherein the polyol is selected from ethylene glycol, glycerol, 1,2-propylene glycol, 1,3-propylene glycol, sorbitan, pentaerythritol, trimethylolpropane, or a combination thereof.

14. The composition according to claim 13, wherein the unsaturated fatty acid in component B is selected from oleic acid, linoleic acid, linolenic acid, ricinoleic acid, or a combination thereof, or is selected from a mixture of fatty acids mainly composed of oleic acid, linoleic acid, linolenic acid, and ricinoleic acid, and the polyol is glycerol.

15. The process includes adding the fuel oil lubricity improver composition described in claim 1 to low-sulfur diesel fuel, A method for improving the lubricity of diesel fuel, wherein the fuel oil lubricity improving agent composition is added in an amount of 10 to 400 ppm based on the mass of the low-sulfur diesel fuel.

16. A diesel fuel composition comprising low-sulfur diesel fuel and the fuel oil lubricity improver composition described in claim 1, The fuel oil lubricity improving agent composition is present in the diesel fuel composition in an amount of 10 to 400 ppm, based on the mass of the low-sulfur diesel fuel.