COMPOSITION OF ADDITIVES FOR HYBRID VEHICLES
A lubricant additive composition with phenate and sulfonate detergents addresses corrosion issues in hybrid vehicles by enhancing lubricating compositions, improving corrosion resistance and reducing deposits, especially in plug-in hybrid engines.
Patent Information
- Application Number
- FR2024000721
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-01-25
- Publication Date
- 2025-08-01
AI Technical Summary
Conventional lubricating compositions for hybrid vehicles face challenges with corrosion due to lower operating temperatures and the formation of water-oil emulsions, leading to increased dilution and corrosion issues, which existing anti-corrosion additives are costly and ineffective.
A lubricant additive composition comprising a phenate detergent and one or more sulfonate detergents, with minimal dispersant content, optimized for hybrid engines to reduce corrosion by using overbased detergents with high Total Base Number (TBN) and optionally including anti-wear, antioxidant, and viscosity index improving additives.
The additive composition effectively reduces corrosion in hybrid engines by enhancing the performance of lubricating compositions, particularly in plug-in hybrid vehicles and those with range extenders, improving their operational reliability and reducing the formation of deposits.
Abstract
Description
Title of the invention: COMPOSITION OF ADDITIVES FOR HYBRID VEHICLES
[0001] The present invention relates to an additive composition, in particular for hybrid vehicles, as well as a lubricating composition comprising said additive composition and its use for lubricating in particular hybrid vehicle engines.
[0002] Hybrid vehicles comprise two engines, a thermal engine and an electric motor. In most hybrid vehicles, the thermal engine drives the wheels and is assisted by an electric motor. A battery provides the electricity needed to operate the electric motor; in the case of conventional hybrid vehicles, this battery is recharged during braking and deceleration phases by a kinetic energy recovery system (KERS) integrated into the vehicle.
[0003] There are different hybrid vehicle technologies. These hybrid technologies include:
[0004] - micro-hybrid vehicles (also called mild hybridization), these vehicles, equipped with the “stop&start” system, recover the energy generated by braking to charge a battery which can temporarily assist the thermal engine;
[0005] - mild-hybrid vehicles which include electric assistance during acceleration celebrations; and
[0006] - full-hybrid vehicles are vehicles with total hybridization. At low speed, when the battery is charged, the electric motor takes care of starting and locomotion. At high speed, or when the battery is discharged, the combustion engine takes over, when there is a need for increased power (for example acceleration) the two motors work together. It is thus possible to drive with the combustion engine switched off for a few kilometers.
[0007] Other complementary technologies have recently been developed: plug-in hybrid vehicles and hybrid vehicles including a range extender. Plug-in hybrid vehicles include a thermal engine and an electric motor, the battery can be recharged on the electricity network, these vehicles can thus drive in 100% electric mode over a distance of several tens of kilometers, for example 50 kilometers. In hybrid vehicles including a range extender, only the electric motor drives the wheels. This electric motor is powered by a battery for a few tens of kilometers. kilometers. When the battery reaches a certain charge threshold (for example, around 30%), the thermal engine starts and drives a current generator to produce the electricity needed to recharge the battery and keep the electric motor running.
[0008] In these two types of hybrid vehicles, the thermal engine is used less frequently and therefore operates at lower temperatures (around, or even below, 40°C) in particular than the engines of other types of hybrid vehicles. However, at low temperatures, conventional lubricating compositions are more viscous and the additives are not active as in a conventional application at higher temperatures. Current lubricants have been optimized to allow for fuel consumption savings when hot.
[0009] The operation of the thermal engine in a hybrid vehicle involves changes in the stresses that the lubricant endures. The temperature of the lubricant in hybrid engines is lower than that of conventional thermal vehicles, which results in greater dilution of the lubricant by the fuel as well as an accumulation of water. The presence of water and gasoline induces the formation of water-oil emulsions in the field and raises the question of its impact on the corrosion performance of the lubricant in operation.
[0010] To date, to reduce corrosion in the presence of water and gasoline, anti-corrosion additives are used, added to the lubricating composition. However, this solution has a number of drawbacks, particularly in terms of cost and effectiveness.
[0011] There is therefore a need to reduce corrosion in hybrid engines.
[0012] The present invention therefore aims to provide a composition exhibiting a reduction in corrosion in hybrid engines.
[0013] The present invention also aims to provide a lubricating composition improving corrosion performance for hybrid vehicles.
[0014] Thus, the present invention relates to a lubricant additive composition comprising a phenate detergent and one or more sulfonate detergent(s), and comprising less than 1% by weight of dispersant relative to the total weight of said additive composition.
[0015] Detergent additives are generally used to reduce the formation of deposits on the surface of metal parts by dissolving secondary oxidation and combustion products.
[0016] The present invention also relates to a lubricating composition comprising at least one base oil and the aforementioned additive composition.
[0017] According to one embodiment, the lubricating composition according to the invention comprises less than 5%, or even less than 1%, preferably less than 0.1%, and preferentially less than 0.01%, by weight of dispersant relative to the total weight of said lubricating composition.
[0018] According to the invention, the term "additive composition" means a composition before the addition of the base oil to form a lubricating composition.
[0019] The additive composition according to the invention is a binary mixture comprising a phenate detergent and a sulfonate detergent or an at least ternary mixture comprising a phenate detergent and several sulfonate detergents.
[0020] By "phenate detergent" is meant a phenate compound with an associated cation which may be a metal cation of an alkali or alkaline earth metal.
[0021] The phenates of the invention may be prepared by reacting an alkaline earth metal hydroxide or oxide (e.g., CaO, Ca(OH)2, MgO, or Mg(OH)2) with an alkyl phenol or a sulfur-containing alkyl phenol. Alkyl groups include straight or branched C1-C30 (especially C4-C20) alkyl groups, or mixtures thereof. Phenol groups include isobutylphenol, 2-ethylhexylphenol, nonylphenol, dodecyl phenol, and the like. It should be noted that the starting alkylphenols may contain more than one alkyl substituent, each independently being straight chain or branched chain. When an unsulfured alkylphenol is used, the sulfur-containing product may be obtained by methods well known in the art. These methods involve heating a mixture of alkylphenol and a sulfurizing agent (e.g., elemental sulfur, sulfur halides such as sulfur dichloride, etc.) then the reaction of the sulfurized phenol with an alkaline earth metal base.
[0022] By "sulfonate detergent" is meant a sulfonate compound with an associated cation which may be a metal cation of an alkali or alkaline earth metal.
[0023] The sulfonates according to the invention may be prepared from sulfonic acids which are typically obtained by sulfonation of alkyl-substituted aromatic hydrocarbons such as those obtained from petroleum fractionation or by alkylation of aromatic hydrocarbons. Examples include those obtained by alkylation of benzene, toluene, xylene, naphthalene, diphenyl or their halogenated derivatives. This alkylation may be carried out in the presence of a catalyst with alkylating agents having from 3 to more than 70 carbon atoms. Alkaryl sulfonates usually contain from 9 to 80 or more carbon atoms (e.g., from 16 to 60 carbon atoms) per alkyl-substituted aromatic residue.
[0024] The alkali and alkaline earth metals of the above-mentioned phenates and sulfonates are preferably calcium, magnesium, sodium or barium.
[0025] These metal salts generally comprise the metal in a stoichiometric quantity or in excess, therefore in a quantity greater than the stoichiometric quantity. These are then overbased detergent additives; the excess metal providing the overbased character to the detergent additive is then generally in the form of a metal salt insoluble in oil.
[0026] Among the detergent additives, mention may be made of overbased detergent additives, and in particular low overbased ("LOB" or "low overbased"), medium overbased ("MOB" or "medium overbased") or high overbased ("HOB" or "high overbased") detergent additives. These overbased detergent additives are notably defined by their total base number or TBN.
[0027] The term "total base number" (or TBN) refers to the amount of bases, equivalent to milligrams of KOH in one gram of a sample of said detergent. Thus, high TBN values correspond to more alkaline products, and therefore to greater alkalinity. The TBN value is determined according to ASTM D2896.
[0028] According to the invention, a LOB detergent generally has a TBN of less than 100 mg KOH / g and a HOB detergent generally has a TBN of greater than 200 mg KOH / g.
[0029] According to one embodiment, the additive composition according to the invention comprises a phenate detergent and two sulfonate detergents. According to one embodiment, the additive composition according to the invention comprises a HOB phenate detergent and two HOB sulfonate detergents.
[0030] According to one embodiment, in the additive composition according to the invention, the phenate detergent is chosen from alkali metal or alkaline earth metal salts of phenate, and is preferably calcium phenate.
[0031] According to one embodiment, the phenate detergent of the additive composition according to the invention is calcium phenate. Preferably, the phenate detergent of the additive composition according to the invention is HOB calcium phenate.
[0032] According to one embodiment, in the additive composition according to the invention, the sulfonate detergents are chosen from alkali metal or alkaline earth metal sulfonate salts, preferably calcium sulfonate, magnesium sulfonate or their mixture.
[0033] According to one embodiment, the sulfonate detergents of the additive composition according to the invention are a mixture of calcium sulfonate and magnesium sulfonate.
[0034] According to one embodiment, the phenate detergent has a total number of TBN bases strictly greater than 200 mg KOH / g, as measured according to the ASTM D-2896 standard, as indicated above.
[0035] Preferably, the phenate detergent of the additive composition according to the invention is calcium phenate having a total number of TBN bases strictly greater than 200 mg KOH / g, as measured according to standard ASTM D-2896.
[0036] According to one embodiment, the sulfonate detergent(s) have(s) a total number of TBN bases strictly greater than 200 mg KOH / g, as measured according to standard ASTM D-2896.
[0037] Preferably, the sulfonate detergents of the additive composition according to the invention are a mixture of calcium sulfonate and magnesium sulfonate having a total number of TBN bases strictly greater than 200 mg KOH / g, as measured according to standard ASTM D-2896.
[0038] According to a preferred embodiment, the additive composition according to the invention comprises calcium phenate, calcium sulfonate and magnesium sulfonate. Preferably, the additive composition according to the invention comprises calcium phenate with a TBN strictly greater than 200 mg KOH / g, calcium sulfonate TBN strictly greater than 200 mg KOH / g and magnesium sulfonate TBN strictly greater than 200 mg KOH / g, the TBNs being measured according to ASTM D-2896.
[0039] According to one embodiment, the additive composition according to the invention comprises from 0.1% to 10%, preferably from 2% to 8%, preferentially from 3% to 5%, by weight of phenate detergent, relative to the total weight of said additive composition.
[0040] According to one embodiment, the additive composition according to the invention comprises from 0.1% to 20%, preferably from 10% to 15%, by weight of sulfonate detergent(s), relative to the total weight of said additive composition.
[0041] According to one embodiment, the additive composition according to the invention comprises from 0.1% to 10%, preferably from 2% to 8%, preferentially from 3% to 5%, by weight of phenate detergent and from 0.1% to 20%, preferably from 10% to 15%, by weight of sulfonate detergent(s), relative to the total weight of said additive composition.
[0042] Preferably, the phenate and sulfonate(s) detergents are as defined above and have a TBN strictly greater than 200 mg KOH / g, the TBN being measured according to standard ASTM D-2896.
[0043] According to one embodiment, the additive composition according to the invention comprises from 0.1% to 10%, preferably from 2% to 8%, by weight of calcium phenate and from 0.1% to 20%, preferably from 10% to 15%, by weight of calcium sulfonate and magnesium sulfonate, relative to the total weight of said additive composition.
[0044] Preferably, the calcium phenate, calcium sulfonate and magnesium sulfonate detergents are as defined above and have a TBN strictly greater than 200 mg KOH / g, the TBN being measured according to the ASTM D-2896 standard.
[0045] According to one embodiment, the total content of phenate detergent and sulfonate detergent(s) in the additive composition according to the invention is from 0.2% to 30%, preferably from 5% to 20%, by weight relative to the total weight of said additive composition.
[0046] According to one embodiment, the total content of calcium phenate and calcium sulfonate and magnesium sulfonate in the additive composition according to the invention is from 0.2% to 30%, preferably from 5% to 20%, by weight relative to the total weight of said additive composition.
[0047] As indicated above, the additive composition according to the invention comprises less than 1% by weight of dispersant relative to the total weight of said additive composition. Preferably, the additive composition according to the invention comprises less than 0.5%, or even less than 0.1%, or even less than 0.01% by weight of dispersant relative to the total weight of said additive composition.
[0048] According to one embodiment, the additive composition according to the invention does not comprise a dispersant. Preferably, the additive composition according to the invention does not comprise a boron-containing dispersant.
[0049] The additive composition according to the invention may also comprise other usual additives, different from the aforementioned detergent additives.
[0050] According to one embodiment, the additive composition according to the invention further comprises one or more additional additive(s) chosen from the group consisting of anti-wear additives, antioxidant additives, viscosity index improving additives, pour point lowering additives and mixtures thereof.
[0051] Preferably, the additive composition according to the invention further comprises at least one anti-wear additive.
[0052] There is a wide variety of anti-wear additives. Preferably, for the lubricating compositions used according to the invention, the anti-wear additives are chosen from additives comprising phosphorus and sulfur such as alkylthiophosphate metals, in particular zinc alkylthiophosphate, and more precisely zinc dialkyldithiophosphate or ZnDTP. The preferred compounds are of formula Zn((SP(S)(OR)(OR'))2, in which R and R', identical or different, independently represent an alkyl group, preferably an alkyl group comprising from 1 to 18 carbon atoms.
[0053] Amine phosphates are also anti-wear additives that can be used in the additive compositions according to the invention. However, the phosphorus atoms provided by these additives can act as a poison for automobile catalytic systems since they generate ash. It is possible to minimize these effects by substituting a portion of the amine phosphates with additives that do not provide phosphorus, such as, for example, polysulfides, in particular sulfur-containing olefins.
[0054] Advantageously, the additive compositions according to the invention comprise from 0.1% to 20% by weight, preferably from 1% to 15% by weight, more preferably from 10% to 12% by weight of anti-wear additives (or anti-wear compound), in particular ZnDTP, relative to the total weight of additive composition according to the invention.
[0055] Advantageously, the additive compositions according to the invention comprise from 0.01% to 2% by weight, preferably from 0.05% to 1.5% by weight, more preferably from 0.1% to 1.2% by weight of anti-wear additives (or anti-wear compound), in particular ZnDTP, relative to the total weight of the lubricating composition.
[0056] Advantageously, the composition of additives according to the invention may comprise at least one antioxidant additive.
[0057] Antioxidant additives generally delay the degradation of the lubricating composition. This degradation is most often expressed by the formation of deposits, by the presence of sludge or by an increase in the viscosity of the lubricating composition.
[0058] Antioxidant additives generally act as radical inhibitors or hydroperoxide destructive inhibitors. Commonly used antioxidants include phenolic antioxidants, amine antioxidants, and sulfur- and phosphorus-containing antioxidants. Some of these antioxidants, for example those comprising sulfur and phosphorus, may generate ash. Phenolic antioxidant additives may be ash-free or in the form of neutral or basic metal salts. Antioxidant additives may include, but are not limited to, sterically hindered phenols, sterically hindered phenol esters, sterically hindered phenols comprising a thioether bridge, diphenylamines, diphenylamines substituted with at least one C1 to C12 alkyl group, N,N'-dialkylaryldiamines, and mixtures thereof.
[0059] Preferably according to the invention, the sterically hindered phenols are chosen from compounds comprising a phenol group for which at least one of the carbon atoms in the vicinity of the carbon atom carrying the alcohol function is substituted by at least one C1 to C10 alkyl group, preferably a C1 to C6 alkyl group, preferably a C4 alkyl group, preferably a tert-butyl group.
[0060] Amine compounds are another class of antioxidant additives that can be used, optionally in combination with phenolic antioxidant additives. Examples of amine compounds are aromatic amines, for example aromatic amines of formula NRaRbRc in which Ra represents an aliphatic group or an aromatic group, optionally substituted, Rb represents an aromatic group, optionally substituted, Rc represents a hydrogen atom, an alkyl group, an aryl group or a group of formula RdS(O)zRe in which Rd represents an alkylene or alkenylene group, Re represents an alkyl group, an alkenyl group or an aryl group and z represents 0, 1 or 2.
[0061] Sulphur-containing alkylphenols or their alkali or alkaline metal salts Earthy can also be used as antioxidant additives.
[0062] Other classes of antioxidant additives are compounds comprising copper, for example copper thio- or dithio-phosphate, copper salts of carboxylic acids, dithiocarbamates, sulfonates, phenates, copper acetylacetonates. Copper I and II salts, succinic acid or anhydride salts may also be used.
[0063] The additive compositions according to the invention may also comprise any type of antioxidant known to those skilled in the art.
[0064] Advantageously, the lubricating composition used according to the invention comprises at least one ash-free antioxidant additive.
[0065] Also advantageously, the additive composition according to the invention comprises from 1% to 20% by weight of at least one antioxidant additive, relative to the total weight of said additive composition.
[0066] Also advantageously, the lubricating composition according to the invention comprises from 0.1% to 2% by weight relative to the total weight of the composition, of at least one antioxidant additive.
[0067] The additive composition according to the invention may also comprise at least one viscosity index improving additive of the hydrogenated butylene and styrene polymer type, of the ethylene propylene copolymer type, or of the polymethacrylate polymer type, preferably a hydrogenated butylene and styrene polymer. The additive composition according to the invention may therefore also comprise at least one viscosity index improving additive chosen from the group consisting of hydrogenated butylene and styrene polymers, ethylene propylene copolymers and polymethacrylate polymers, said viscosity index improving additive preferably being a hydrogenated butylene and styrene polymer. The additive composition according to the invention may comprise from 20% to 60% by weight of viscosity index improving additive, relative to the total weight of said additive composition.
[0068] The lubricating composition according to the invention may comprise from 0.1% to 15% by weight of additive improving the viscosity index, relative to the total weight of lubricating composition.
[0069] Also advantageously, the lubricating composition used according to the invention may also comprise a pour point lowering additive.
[0070] By slowing down the formation of paraffin crystals, the pour point lowering additive generally improves the cold behavior of the lubricating composition according to the invention.
[0071] As examples of pour point lowering additives, mention may be made of alkyl polymethacrylates, polyacrylates, polyarylamides, polyalkylphenols, polyalkyl-naphthalenes, alkyl polystyrenes.
[0072] The present invention also relates to a lubricating composition comprising at least one base oil and an additive composition as defined above.
[0073] The base oils used in the lubricating compositions of the invention may be oils of mineral or synthetic origin belonging to groups I to V according to the classes defined by the API classification (or their equivalents according to the ATIEL classification (Table 1) or their mixtures.
[0074] [Tables 1] Saturated substance content Sulphur content Viscosity index (VI) Group I Mineral oils <90% > 0.03% 80 < VI < 120 Group II Hydrocracked oils >90% < 0.03% 80 < VI < 120 Group III Hydro-isomerized oils >90% < 0.03% > 120 Group IV Polyalphaolefins (PAO) Group V Esters and other bases not included in groups I to IV
[0075] The mineral base oils of the invention include any type of base oil obtained by atmospheric and vacuum distillation of crude oil, followed by refining operations such as solvent extraction, deasphalting, solvent dewaxing, hydrotreating, hydrocracking, hydroisomerization and hydrofinishing.
[0076] The base oils of the lubricating compositions according to the invention may also be chosen from synthetic oils, such as certain esters of carboxylic acids and alcohols, and polyalphaolefins. The polyalphaolefins used as base oil are for example obtained from monomers comprising from 4 to 32 carbon atoms, for example from octene or decene, and for which the viscosity at 100°C is between 1.5 and 15 mm2, s 1 according to standard ASTM D445.
[0077] As base oil, according to the present invention, mention may also be made of re-refined oils, or even oils of biological origin.
[0078] According to one embodiment, the lubricating composition according to the invention comprises a base oil content of from 80% to 95%, preferably from 85% to 92%, by weight relative to the weight of said lubricating composition.
[0079] According to one embodiment, the lubricating composition according to the invention comprises from 0.01% to 1%, preferably from 0.4% to 0.65%, by weight of phenate detergent and 0.02% to 2%, preferably 0.8% to 1.5%, by weight of sulfonate detergent(s), relative to the total weight of said lubricating composition.
[0080] According to one embodiment, in the lubricating composition according to the invention, the total content of phenate detergent and sulfonate detergent(s) is from 0.05% to 3%, preferably from 1.1% to 2%, by weight relative to the total weight of said lubricating composition.
[0081] The present invention also relates to a method for lubricating a plug-in hybrid vehicle engine or a hybrid vehicle engine comprising a range extender, comprising bringing at least one mechanical part of said engine into contact with a lubricating composition as defined above.
[0082] The present invention also relates to the use of the additive composition according to the invention in a lubricating composition for reducing corrosion in a plug-in hybrid vehicle engine or one comprising a range extender. EXAMPLES
[0083] Example 1: Preparation of lubricating compositions
[0084] The lubricating compositions are prepared by mixing the compounds described in Table 2 below.
[0085] The percentages indicated correspond to percentages by mass relative to the total mass of the composition.
[0086] [Tables2] Composition according to the invention CL1 Comparative composition CCI Comparative composition CC2 Comparative composition CC3 Comparative composition CC4 Calcium phenate (HOB) 0.42 0.42 0.42 - 1.58 Calcium sulfonate (HOB) 0.62 0.62 0.62 - - Magnesium sulfonate (HOB) 0.54 0.54 0.54 1.58 - Dispersant - 3.8 - 3.8 3.8 Boron dispersant - - 3.8 - - Additive package 7.26 7.26 7.26 7.26 7.26 Base oil Group III 91.16 87.36 87.36 87.36 87.36
[0087] The additive package includes in particular an antioxidant, two anti-wear agents, a viscosity index improver and a pour point lowering additive.
[0088] Example 2: Evaluation of lubricating compositions
[0089] The lubricating compositions are evaluated for their anti-corrosion performance in PEHV (“Plug-In Hybrid Electric Vehicle”) hybrid engines.
[0090] The evaluation method is adapted from ASTM D1748-22 and is intended to evaluate the anti-corrosive properties of a lubricating composition.
[0091] This method evaluates the anti-corrosion properties of metal protection products in high humidity conditions. The test consists of positioning steel plates previously immersed in oil in a humid cabinet at 49°C, with air circulation, for 72 hours (Humidity cabinet Linetronic LT / HC-250000M).
[0092] Material used
[0093] • Plates of dimension 102x51x3.2mm, steel according to ASTM A109
[0094] • Plates measuring 102x51x3mm in PMMA
[0095] •
[0096] • Solvents: heptane, ethanol
[0097] Preparation of the plates
[0098] a) Sandblasted face.
[0099] • Sandblast a batch of plates according to the following conditions: a pressure of 5 bars and the sandblaster nose positioned at a distance of 51 mm to 76 mm.
[0100] • For each sandblasting series, check the roughness obtained by profilometry.
[0101] b) Sanded face.
[0102] • Polish the plate using abrasive paper (240 grit (number of grains / unit of surface)) lengthwise and crosswise.
[0103] • Always keep the plate clean and dry.
[0104] • Respecting the usual precautions, polish the four rounded edges with strokes regular in the direction of each edge. Ream the two holes used for suspension and clean them using a tissue moistened with the selected solvent.
[0105] • Never move the plate while sanding. Continue to polish the plate until a uniform surface is obtained. Examine the plate and if there are any scratches or imperfections, continue polishing until they disappear.
[0106] • A profilometer can be used to check that the plate is well polished (Ra=0.25 at 0.51 pm).
[0107] c) Sanded and sanded plates
[0108] • Leave the plates to soak in heptane for approximately 30 min, empty the solvent and dry in the oven for about 30 minutes.
[0109] • Remove dirt from the plate using a tissue moistened with chosen solvent.
[0110] • Clean until there are no more black marks on the tissue.
[0111] • Use the prepared plates the same day.
[0112] Preparation of the enclosure
[0113] • Start the device, open the air inlet valve located at the top behind the device and allow the speaker to stabilize under the following operating conditions:
[0114] - Air temperature
[0115] ■ In the cabin: 48.9 ± 1.1°C
[0116] ■ Outside the cabin: 24.1 ± 5.5°C
[0117] ■ Cabin air ratio 0.878 ± 0.028 m3 / h
[0118] - Water in the cabin
[0119] ■ Level: 203 mm ± 6.4 mm
[0120] ' pH: 5.5 to 7.5
[0121] ■ Rotation speed: 0.33 r / min ± 0.03 r / min
[0122] Course of the test
[0123] • Place the plate in the oil at 23.3 ± 0.5°C (submerge the plate completely) and shake for 10 seconds and drain.
[0124] • Place the plate back in the oil for 1 minute with gentle stirring.
[0125] • Hang the plate on the support and let it drain at room temperature for 2 hours ± 20 min.
[0126] It is also possible to hang the plates on the appropriate support and soak them with oil by watering with a pipette, then let them drain.
[0127] • At the end of the draining period, hang the plates in the humidity cabin and open the cabin twice a day at 7 to 8 hour intervals between the two, for 15 minutes for the first inspection, and for 5 minutes for the second inspection.
[0128] • Remove the plates, rinse them with ethanol then with heptane and leave them to dry on the support.
[0129] Expression of results
[0130] • Visually assess the percentage of corrosion on each side of the plates.
[0131] • The oils (or lubricating compositions) are PASS or FAIL depending on the number and the size of visible corrosion spots on the plate surface.
[0132] • The result will be PASS: If the plate does not contain more than 3 rust spots, and whose size does not exceed 1 mm.
[0133] • The result will be FAIL: If the plate contains one or more rust spots of more than 1 mm or more than 3 points of any size.
[0134] The results obtained for the composition CL1 according to the invention and the comparative compositions CCI, CC2, CC3 and CC4 are indicated in table 3 below.
[0135] [Tables3] Composition according to the invention CL1 Comparative composition CCI Comparative composition CC2 Comparative composition CC3 Comparative composition CC4 Result PASS FAIL FAIL FAIL FAIL
[0136] In conclusion, it appears that the combination of additives according to the invention, comprising both a phenate detergent and two sulfonate detergents, makes it possible to obtain good anti-corrosion properties for the lubricating composition, in particular in comparison with an additive composition comprising either a phenate detergent alone or a sulfonate detergent alone.
[0137] Similarly, the combination of additives according to the invention, comprising both a phenate detergent and two sulfonate detergents, makes it possible to obtain good anti-corrosion properties for the lubricating composition in comparison with an additive composition comprising a phenate detergent and two sulfonate detergents but also a dispersant (boronated or not) in too high a content.
Claims
Claims
1. A lubricant additive composition comprising a phenate detergent and one or more sulfonate detergent(s), and comprising less than 1% by weight of dispersant relative to the total weight of said additive composition.
2. An additive composition according to claim 1, comprising a phenate detergent and two sulfonate detergents.
3. An additive composition according to claim 1 or 2, wherein the phenate detergent is selected from alkali metal or alkaline earth metal salts of phenate, and is preferably calcium phenate.
4. An additive composition according to any one of claims 1 to 3, wherein the sulfonate detergents are selected from alkali metal or alkaline earth metal sulfonate salts, preferably calcium sulfonate, magnesium sulfonate or a mixture thereof.
5. An additive composition according to any one of claims 1 to 4, wherein the phenate detergent has a total base number TBN strictly greater than 200 mg KOH / g, as measured according to ASTM D-2896.
6. An additive composition according to any one of claims 1 to 5, wherein the sulfonate detergent(s) has(have) a total base number TBN strictly greater than 200 mg KOH / g, as measured according to ASTM D-2896.
7. An additive composition according to any one of claims 1 to 6, comprising calcium phenate, calcium sulfonate and magnesium sulfonate.
8. An additive composition according to any one of claims 1 to 7, comprising from 0.1% to 10%, preferably from 2% to 8%, by weight of phenate detergent and from 0.1% to 20%, preferably from 10% to 15%, by weight of sulfonate detergent(s), relative to the total weight of said additive composition.
9. An additive composition according to any one of claims 1 to 8, wherein the total content of phenate detergent and sulfonate detergent(s) is from 0.2% to 30%, preferably from 5% to 20%, by weight relative to the total weight of said additive composition.
10. An additive composition according to any one of claims 1 to 9, further comprising one or more additional additive(s) selected from the group consisting of anti-wear additives, antioxidant additives, viscosity index improving additives, pour point depressant additives and mixtures thereof.
11. A lubricating composition comprising at least one base oil and an additive composition according to any one of claims 1 to 12.
12. IV. Lubricating composition according to claim 11, wherein the base oil content is from 80% to 95%, preferably from 85% to 92%, by weight relative to the weight of said lubricating composition.
13. A method of lubricating a plug-in hybrid vehicle engine or a hybrid vehicle engine comprising a range extender, comprising contacting at least one mechanical part of said engine with a lubricating composition according to any one of claims 11 or 12.
14. Use of the additive composition according to any one of claims 1 to 10 in a lubricating composition for reducing corrosion in a plug-in hybrid vehicle engine or one comprising a range extender.
Citation Information
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