AU2003214959A1 - Circulating oil compositions - Google Patents

Circulating oil compositions Download PDF

Info

Publication number
AU2003214959A1
AU2003214959A1 AU2003214959A AU2003214959A AU2003214959A1 AU 2003214959 A1 AU2003214959 A1 AU 2003214959A1 AU 2003214959 A AU2003214959 A AU 2003214959A AU 2003214959 A AU2003214959 A AU 2003214959A AU 2003214959 A1 AU2003214959 A1 AU 2003214959A1
Authority
AU
Australia
Prior art keywords
group
composition
succinic anhydride
effective amount
ashless
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
AU2003214959A
Other versions
AU2003214959B2 (en
Inventor
Kevin Jay Buzdygon
Angela Stefana Galiano-Roth
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
ExxonMobil Technology and Engineering Co
Original Assignee
ExxonMobil Research and Engineering Co
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by ExxonMobil Research and Engineering Co filed Critical ExxonMobil Research and Engineering Co
Priority claimed from PCT/US2003/002937 external-priority patent/WO2003066787A1/en
Publication of AU2003214959A1 publication Critical patent/AU2003214959A1/en
Application granted granted Critical
Publication of AU2003214959B2 publication Critical patent/AU2003214959B2/en
Anticipated expiration legal-status Critical
Expired - Fee Related legal-status Critical Current

Links

Landscapes

  • Lubricants (AREA)

Description

WO 03/066787 PCT/US03/02937 -1 CIRCULATING OIL COMPOSITIONS Field of Invention [0001] The present invention relates to lubricating compositions for industrial machinery and more specifically to circulating oil compositions. Background [00021 The art of formulating lubricating oil compositions for industrial equipment has become more complex as a result of increased government and user environmental standards and increased user performance requirements. For example, many end users seek lubricants that do not employ metallic detergents and dispersants that are typically used to keep deposit-forming precursors in an oil away from working surfaces. Ashless or non-metal containing dispersants and detergents, however, tend to be effective in emulsifying water in the oil. Industrial oils such as gear, hydraulic, and circulating oils typically are required to be capable of separating from water in order that any water contamination arising during use does not adversely impact equipment operation and durability. Thus, additives that may enhance one property of a lubricating composition may adversely effect another property. [0003] Another required property for industrial oils is rust inhibition. Again, some end users desire lubricant compositions that employ ashless rust inhibitors. Unfortunately, experience has shown that lubricants with ashless rust inhibitors are not as effective in inhibiting rust as lubricants using metallic sulfonate or metallic carbonate rust inhibitors. Thus use of an additive that may be environ mentally desirable may result in a lubricating composition that does not meet certain specific performance requirements.
WO 03/066787 PCT/US03/02937 -2 [0004] One object of the present invention is to provide an ashless industrial oil lubricating composition that has good water separability characteristics. [00051 Another object is to provide an ashless lubricating composition that has good rust inhibition. [0006] Yet another object is to provide an industrial oil composition that has good thermal and oxidative stability. Summary of Invention [00071 It has now been found that the combination of an ashless dispersant comprising the reaction product of a succinic anhydride and a polyamine and an ashless rust inhibitor comprising a mixture of a succinic anhydride and an aromatic oxime in a lubricant basestock along with a polyoxyalkylene alcohol demulsifier provides a composition having good demulsibility, deposit control and rust inhibition. Accordingly, in one embodiment, a lubricant composition is provided comprising: (a) a lubricating oil basestock; (b) an effective amount of an ashless dispersant comprising the reaction product of a polyalkenyl substituted succinic anhydride and a polyamine; (c) an effective amount of an ashless rust inhibitor comprising a mixture of a alkyl succinic anhydride and an aromatic oxime; and (d) an effective amount of a demulsifier comprising a polyoxyalkylene alcohol. [0008] Other embodiments of the invention will become apparent from the detailed description which follows.
WO 03/066787 PCT/US03/02937 -3 Detailed Description of the Invention [00091 The lubricating oil basestock comprises a major portion of the composition of the present invention and typically will be selected from any of the natural mineral oils of API Group I basestocks. Preferably, the basestock will comprise a mixture of Group I basestock of different viscosities which will be combined in proportions sufficient to meet a predetermined viscosity require ment. For example, a suitable basestock for a paper machine oil comprises a mixture of from about 20 to 80 wt%/o of a 2500 solvent neutral mineral oil and 600 solvent neutral mineral oil. The basestock can also comprise API Group II, Group III or Group IV basestocks or mixtures of any of Group I, Group II, Group III and Group IV basestocks. 100101 The lubricating oil compositions of the invention includes an effective amount of a succinimide comprising the reaction product of polyalkenyl substituted succinic anhydride and a polyamine. Typically, the polyalkenyl group of the succinic anhydride will be selected from ethylene, propylene, butylene, isobutylene and pentene and preferably is a polyisobutylene group of from about 500 to about 2500 Mn and more preferably from about 900 to about 1000 Mn. Thus, the preferred polyalkenyl succinic acid anhydride is polyisobutylene succinic anhydride (PIBSA). 100111 Among suitable polyamines used in forming the succinimide mention is made of ethylenediamine (EDA), diethylenetriaminime (DETA), triethylene tetramine (TETA) and tetraethylenepentamine (TEPA). Particularly preferred is TEPA. Thus, the preferred dispersant is PIBSA TEPA.
WO 03/066787 PCT/USO3/02937 -4 100121 The method for reacting a polyalkenyl succinic anhydride with a polyamnine is well known in the art. In general, the molar ratio of polyamine to polyalkenyl succinic anhydride is in the range of about 0.35:1 to about 1:1. [00131 Preferably the reaction product is subjected to a postcure with cyclic carbonate, boric acid or a boric acid derivative. Postcure techniques are known in the art. In this regard see, for example, USP 4,612,132 which is incorporated herein by reference. [0014] In general, the amount of dispersant will constitute from about 0.1 to about 5.0 wt%/o of the total weight of the composition and preferably from 0.2 to 2.0 wt%. [0015] The lubricating oil composition of the invention, also includes an effective amount of a mixture of an alkyl substituted succinic anhydride and an oxime substituted aromatic compound. The alkyl substituted succinic anhydride may be represented by the formula R 0 0 0 where R is a linear or branched alkyl group of from about 8 to about 20 carbon atoms. Preferably R is a branched alkyl group of from 12 to 14 carbon atoms. 100161 The oxime substituted aromatic compound may be represented by the formula WO 03/066787 PCT/USO3/02937 -5 H NOH R] H 2 where R is H or H , and R2 is an alkyl group of from 5 to 15 carbon atoms. 10017] Typically, molar ratio of alkyl substituted succinic anhydride to aromatic oxime will be in the range of about 1:1 to about 10:1 and preferably about 2:1 to about 4:1. 100181 The amount of the ashless rust inhibitor employed typically will be in the range of from about 0.1 to about 3.0 wt%, and preferably from 0.2 to 1.5 wt%/o based on the total weight of the composition. [00191 The lubricant composition of the invention also includes an effective amount of a polyoxyalkylene alcohol demulsifying agent. A particularly suitable polyoxyalkylene alcohol demulsifying agent is characterized by the formula (EO)x(PO)y(EO)x OH OH where EO is an ethylene oxide moiety, PO an propylene oxide moiety and x and y represent the relative amounts of each. A preferred demulsifying agent will have a Mn in the range of about 1700 to 3000 and an EO/PO ratio of from about 20:80 to about 1:99. Typically, the polyoxyalkylene alcohol demulsifying agent WO 03/066787 PCT/US03/02937 -6 is dissolved in a solvent such as tricresyl phosphate (TCP). Especially useful is a solution comprising from 75 to 99 wt%/o TCP. [0020] In general, the demulsifying agent will be used in an amount ranging from about 0.001 to about 0.1 wt% based on the total weight of the composition. [0021] Optionally, the composition may also include one of the various types of lubricant thickeners well known in the art. An example of one such thickener is polyisobutylene. Thus, in one embodiment the composition of the invention may include 0 wt% up to about 25 wt%/o of a thickener. [0022] Other conventional additives which may be used in the lubricants of this invention include oxidation inhibitors, antiwear agents, metal passivators, antifoam agents and the like. [0023] Examples of antiwear agents, that may be used, include alkylated dithiocarbamates, alkyl phosphates, aryl phosphates, thiophosphates, amine phosphates and dithiophosphates. [0024] The composition may include one or more metal passivators selected from alkylated benzotriazole, tolyltriatole, and dimercaptothiodiazole. 10025] One or more oxidation inhibitors also may be used in the lubricants of this invention including diphenyl amines, phenyl alpha naphthyl amines, and hindered phenolic type. [0026] . One or more antifoam agents may be used in the lubricants of this invention, including polydimethylsiloxane and polymethacrylate.
WO 03/066787 PCT/US03/02937 -7 10027] The above mentioned additional additives are used in amounts sufficient to provide their normal function. Typical amounts for individual components in a preferred lubricant composition is given in Table 1. TABLE 1 Broad Preferred Component Composition wt% wt% Base stock 2500 solvent neutral 1.0-99 20.0 - 60.0 600 solvent neutral 1.0-99 40.0 - 70.0 Ashless dispersant PIBSA-TEPA 0.1-5.0 0.2 - 2.0 Ashless rust Aromatic 0.1-3.0 0.2- 1.5 inhibitor oxime/alkylated succinic anhydride Demulsifier Ethylene oxide- 0.001-0.1 0.005 - 0.05 propylene oxide alcohol Anti-wear agent(s) miscellaneous 0.1-5.0 0.5 - 1.5 Metal passivator(s) miscellaneous 0.01-1.0 0.05 - 0.20 Thickener miscellaneous 0.0-25.0 1.0 - 5.0 Anti foam agent(s) miscellaneous 0.0001-0.1 0.001 -0.01 Examples 10028] The following examples are presented to further illustrate the invention. Test Procedures 100291 The lubricating compositions set forth in the Tables 2 to 5 were tested according to the following procedures: WO 03/066787 PCT/USO3/02937 -8 Deposit Control Bearing Ria Test (BRT) [00301 In the BRT test, the oil is circulated through steam heated spherical roller bearings. Water is added periodically to simulate moisture contamination in service. At test completion, the bearing rollers, cage and raceways are rated for deposits using the CRC varnish rating scale. Property Retention Test (PRT) [0031] In the PRT test, the oil is circulated with a gear pump at moderately high temperature and pressure for 2000 hours. In addition to the temperature and pressure, multimetal catalysts and periodic water contamination are used to simulate oil stress in service. The oil reservoir, the metal catalysts, and an in line screen mesh filter are observed periodically for deposits. The physical properties of the oil are also measured periodically. Antiwear SFZG scuffing test, DIN 51354 Rust and Corrosion Protection Rust test with synthetic sea water, ASTM D665B Copper strip corrosion test, ASTM D130 SKF Emcor Rust Test, IP 220 Thin Oil Film Inhibition Test, commonly known as the TOFI test. In the TOFI test, polished steel panels are immersed in test oil and exposed to 100% humidity at 140 0 F. The test continues until 5% of the steel panel surface is covered with rust. Many oils that pass ASTM D665B will show some rust formation in the TOFI test.
WO 03/066787 PCT/US03/02937 -9 Water Separability ASTM D1401 ASTM D2711 Filterability Pall Filtration AFNOR Filtration, wet and dry methods Oxidation Stability SRBOT, ASTM D2272 (now called RPVOT) STOST, ASTM D943 Comparative Example 1 [0032] These ashless oil compositions were formulated having the ingredients shown in Table 2. As can be seen, formulation I and 2, which include a dispersant, have poor demulsibility, whereas formulation 3, without dispersant has good demulsibility.
WO 03/066787 PCT/USO3/02937 -10 00 CL 0 E EP CL E - n C . C1 10 a C ,-r 0 CdCl2 +- CC. 2 0)C2 3 a 0) En WO 031066787 PCTIUSO3/02937 1" 0 -4_4 0 00 0) Oc-4rq 0 0 v~ ~v A AA 00 C- 0 0AA 0 a -0 E 0 00 oq o-2 o IU-o o 0 C ~- 00 kf f) V 0 ( ) V (U
E
WO 03/066787 PCT11S03102937 -12 0 E~ ~ 0 1 C>_ C) -C kn C cn n U, 0 0 )~2~0~ CLd c:,~ c C> 0 WO 03/066787 PCT/USO3/02937 -13 00 on c t C6 Cl 1 . l L 0(~
-
-a - - 0i o5 ) ~0 0~ CA L) CL Ci C 4-," o~~' C i .
0 >E V) C/ /)V 0 -~~ E WO 03/066787 PCT/USO3/02937 - 14 V AA A cn~~~ rlNC1 o 0 C-", 00 CO. 00 0 oil -~ 00 f.0 CI)Q 00>I 0 0
~~
0 " -' 0Z.0 - Cd4 ~ E z di( A in WO 03/066787 PCT/USO3/02937 -15 10033] As can be seen from Table 2, ashless circulating oil formulations that include a dispersant tend to have poor demulsibility characteristics. Example 1, Comparative Example 2 [0034] Five ashless circulating oil formulations were prepared having the ingredients and properties shown in Table 3. Formulations 1 to 4 are composi tions according to this invention while formulation 5 is a comparison (Comparative Example 2) of a composition not having a demulsifier. [0035] As can be seen, formulation 5, which does not contain a demulsifier, displays poor demulsibility characteristics. Also, compositions containing at least 0.3 wt%/o of the rust inhibitor display good performance in all the rust tests. Example 3 [0036] Multiple, similar ashless circulating oil compositions were prepared having formulations in accord with the invention. The formulation of Table 4 is representative of these formulations.
WO 03/066787 PCT/US03/02937 -16 TABLE 4 Component Function Component Description Amount, wt% Base stock 600 solvent neutral balance Base stock 2500 solvent neutral 39% Rust inhibitor oxime/alkylated 0.30% succinic anhydride mixture Dispersant PIBSA-TEPA 0.5% Demulsifier Ethylene oxide Propylene oxide 0.1% Alcohol in TCP Thickener polyisobutylene MW 1300 20% Antiwear amine phosphate 0.1% Antiwear dithiocarbamate 1.0% Antioxidant amine 0.15% Defoamant Dimethyl siloxane polymer 0.0002% Metal passivator benzotriazole 0.05% [0037] Typical properties for a composite of these multiple formulations is given in Table 5. Table 5 Test Method General Description Desired Value Results Chemical & Physical Properties ASTM D445 KV @ 40 0 C, cst 198 - 242 220 ASTM D445 KV @ 100-C, est 17 - 21 19.0 ASTM D1500 ASTM Color < 5 L3.5 ASTM D5185 Metals by ICP Ca, ppm < 10 <2 Zn, ppm < 10 <2 WO 03/066787 PCT/US03/02937 -17 Table 5 (continued) Test Method General Description Desired Value Results Filterability . Pall Dry Pall Pass Pass Filterability Volume Filtered (ml) > 2000 > 2000 AFNOR Filterability AFNOR NF Dry AFNOR 2 max 1.1 48690 AFNOR NF Wet AFNOR 2 max 1.1 48691 Oxidation Stability & Lube Life ASTM D943 TOST life, hours > 3000 3800 ASTM RBOT (minutes) > 300 420 D2272 Rust & Corrosion ASTM D665 ASTM Rust B Pass Pass ASTM DI30 Copper corrosion 24 hours/100'C 2 maximum IB TOFI (Thin Oil Film Inhibition) hours to 5% rust >200 200+ IP 220 SKF Emcor Rust Test Dist. Water, brg. Rating 1 maximum 0-0 Acid water, brg. Rating 1 maximum 0-1 Water Separability .. ASTMD 1401 Demulsibility @ 82 0 C . .. Mins to break 30 max 10 ASTM D2711 Demulsibility Total water, ml > 40 41.7 WO 03/066787 PCT/US03/02937 - 18 Table 5 (continued) Test Method General Description Desired Value Results Anti-Wear / Extreme Pressure ASTM D51354 FZG Fail Stage 12 minimum 13 Environmental Concerns Zinc-Free Yes Yes Ashless Yes Yes Rig Tests for Deposit Control and Lube Life Bearing Rig Test (BRT) proprietary Average rating (10 = clean) > 6 7.28 % change KV @ 40 < 8% 2.2% Sludge rating (10 = clean) > 9 9.61 Property Retention Test @ 70 0 C (PRT) proprietary Hours to filter 5 > 2000 2000 + Filter rating 2000 hours > 5 8.6

Claims (12)

1. A lubricant composition comprising: (a) a lubricating oil basestock; (b) an effective amount of an ashless dispersant comprising the reaction product of a polyalkenyl succinic anhydride and a polyamine; (c) an effective amount of an ashless rust inhibitor comprising a mixture of an alkyl succinic anhydride and an aromatic oxime; and (d) an effective amount of a demulsifier comprising a polyoxy alkylene alcohol.
2. The composition of claim 1 wherein the alkenyl group of the polyalkenyl succinic anhydride is selected from the group consisting of ethylene, propylene, butylene, isobutylene and pentene and wherein the polyamine is selected from the group consisting of ethylene diamine, diethylene triamine, triethylenetetramine and tetraethylenepentamine.
3. The composition of claim 1 wherein the alkyl succinic anhydride is represented by the formula R 0 -0 0 where R is an alkyl group of from about 5 to about 20 carbon atoms and wherein the aromatic oxime is represented by the formula WO 03/066787 PCT/US03/02937 - 20 H NOH R, H 2 OH H where R 1 is H or , and R 2 is an alkyl group of from about 5 to about 15 carbon atoms.
4. The composition of claim 1 wherein the polyoxyalkylene alcohol is represented by the formula (EOx(PO)y(EO)x OH where EO is an ethylene oxide moiety, PO an propylene oxide moiety and x and y represent the relative amounts of each.
5. The composition of claim 3 and 4 wherein the polyalkenyl succinic anhydride is a polyisobutylene succinic anhydride having a polyiso butylene group with a Mn offi-om about 500 to about 2500 and wherein the polyamine is tetraethylene pentamine.
6. The composition of claim 5 wherein the molar ratio of alkenyl succinic anhydride to aromatic oxime is in the range of about 1:1 to about 10:1.
7. The composition of claim 6 wherein the polyoxyalkene alcohol has a molecular weight in the range of about 1700 to 3000 Mn and an EO/PO ratio of about 20:80 to about 1:99. WO 03/066787 PCT/USO3/02937 -21
8. A lubricant composition comprising: (a) a lubricating oil basestock; (b) from about 0.1 to about 5.0 wt% of an ashless dispersant comprising the reaction product of a polyalkenyl succinic anhydride and a polyamine; (c) from about 0. 1 to about 3.0 wt% of an ashless rust inhibitor comprising a mixture of an alkylsuccinic anhydride and an aromatic oxime in the molar ratio of about 1:1 to about 10:1; and (d) about 0.001 to about 0.1 wt% of a demulsifier comprising a polyoxyalkylene alcohol the wt%/o of each component being based on the total weight of the composition.
9. A circulating oil composition comprising: (a) a basestock selected from API Group 1 basestocks and mixtures thereof; (b) an effective amount of an ashless dispersant comprising the boric acid post cured reaction product of polyisobutylene succinic anhydride and tetraethylene pentamine; (c) an effective amount of an ashless rust inhibitor comprising a mixture of an alkyl succinic anhydride wherein the alkyl group is a branched alkyl group of form 12 to 14 carbon atoms and an aromatic oxime represented by the formula WO 03/066787 PCT/US03/02937 - 22 H NOH R, H 2 H where R 1 is H or and R 2 is an alkyl group of 5 to 15 carbon atoms; and (d) an effective amount of a polyoxyalkene alcohol having the formula (EO)x(PO)y(EO)x OH where EO is an ethylene oxide moiety, PO is a propylene oxide moiety, x and y represent the relative amounts of each moiety.
10. The composition of claim 9 including an effective amount of at least one additive selected from the group consisting of antiwear agents, metal passivators, oxidation inhibitors and anti foam agents.
11. The composition of claim 9 wherein the basestock is selected from the group consisting of API Group I, Group II, Group III, Group IV basestocks and mixtures thereof.
12. The composition of claim 11 including an effective amount of at least one additive selected from the group consisting of antiwear agents, metal passivators, oxidation inhibitors and anti foam agents.
AU2003214959A 2002-02-05 2003-01-31 Circulating oil compositions Expired - Fee Related AU2003214959B2 (en)

Applications Claiming Priority (5)

Application Number Priority Date Filing Date Title
US35441702P 2002-02-05 2002-02-05
US60/354,417 2002-02-05
US30103A 2003-01-28 2003-01-28
USJAZ-0301 2003-01-28
PCT/US2003/002937 WO2003066787A1 (en) 2002-02-05 2003-01-31 Circulating oil compositions

Publications (2)

Publication Number Publication Date
AU2003214959A1 true AU2003214959A1 (en) 2003-09-02
AU2003214959B2 AU2003214959B2 (en) 2007-11-22

Family

ID=34067557

Family Applications (1)

Application Number Title Priority Date Filing Date
AU2003214959A Expired - Fee Related AU2003214959B2 (en) 2002-02-05 2003-01-31 Circulating oil compositions

Country Status (2)

Country Link
JP (1) JP2005517743A (en)
AU (1) AU2003214959B2 (en)

Families Citing this family (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2066771A2 (en) * 2006-09-01 2009-06-10 The Lubrizol Corporation Lubricating composition
US20090247436A1 (en) * 2008-03-31 2009-10-01 Exxonmobil Research And Engineering Company Lubricant composition with improved varnish deposit resistance

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE2925662C2 (en) * 1979-06-26 1982-09-09 Th. Goldschmidt Ag, 4300 Essen Lubricants and mold release agents for tire manufacture
GB9009625D0 (en) * 1990-04-30 1990-06-20 Ici Plc Composition
GB9108221D0 (en) * 1991-04-18 1991-06-05 Ici Plc Compound preparation and use
US6001780A (en) * 1998-06-30 1999-12-14 Chevron Chemical Company Llc Ashless lubricating oil formulation for natural gas engines
EP1048711A1 (en) * 1999-03-03 2000-11-02 Ethyl Petroleum Additives Limited Lubricant compositions exhibiting improved demulse performance

Also Published As

Publication number Publication date
AU2003214959B2 (en) 2007-11-22
JP2005517743A (en) 2005-06-16

Similar Documents

Publication Publication Date Title
US6649574B2 (en) Biodegradable non-toxic gear oil
US5275749A (en) N-acyl-N-hydrocarbonoxyalkyl aspartic acid esters as corrosion inhibitors
US6916766B2 (en) Circulating oil compositions
TWI493027B (en) Polyalkylene glycol lubricant composition
US20050096236A1 (en) Ashless additive formulations suitable for hydraulic oil applications
CA1280402C (en) Lubricants for reciprocating air compressors
CN111363608A (en) High-pressure anti-wear hydraulic oil
EP1092788A2 (en) Corrosion inhibiting compositions
JP2001303086A (en) Lubricating oil composition and additive composition
CA2202790C (en) Synergistic antioxidant systems
US11242893B2 (en) Composition of high performance bearing oil for steel plants
CN103210070A (en) Grease composition
US4705642A (en) Haze, oxidation, and corrosion resistant diesel engine lubricant
AU2003214959B2 (en) Circulating oil compositions
US6150309A (en) Lubricant formulations with dispersancy retention capability (law684)
US6534452B1 (en) Long-life lubricating oil with wear prevention capability
JPH09157681A (en) Lubricating oil
AU2002255714A1 (en) Long-life lubricating oil with wear prevention capability
JP2805207B2 (en) Hydraulic oil composition
JPH1135964A (en) Composition for lubricant
JPH06145680A (en) Lubricating oil composition

Legal Events

Date Code Title Description
MK25 Application lapsed reg. 22.2i(2) - failure to pay acceptance fee