Research Article
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Year 2023, Volume: 7 Issue: 1, 70 - 77, 01.04.2023
https://doi.org/10.30939/ijastech..1194177

Abstract

Supporting Institution

Tübitak

Project Number

3180200

References

  • [1] Khonsari MM, Booser, ER. Applied tribology: bearing design and lubrication. John Wiley & Sons. 2017.
  • [2] Rizvi SQ. Lubricant chemistry, technology, selection, and de-sign. ASTM International, Conshohocken. 2009.
  • [3] Li J, Xu X, Wang Y, Ren T. Tribological studies on a novel borate ester containing benzothiazol-2-yl and disulfide groups as multifunctional additive. Tribology Int. 2010;43(5-6):1048-1053.
  • [4] Yang G, Zhang Z, Li G, Zhang J, Yu L, Zhang P. Synthesis and tribological properties of S-and P-free borate esters with differ-ent chain lengths. Journal of tribology. 2011;133(2):21801-21807.
  • [5] Silva LR, Corrêa EC, Brandao JR, de Avila RF. Environmental-ly friendly manufacturing: Behavior analysis of minimum quantity of lubricant-MQL in grinding process. Journal of Cleaner Production. 2020; 256:103287.
  • [6] Yao JB, Wang QL, Chen SQ, Sun J Z, Dong JX. Borate esters used as lubricant additives. Lubrication Science. 2002;14(4):415-423. [7] Khawaja MA, Aban MM. Characteristics of used lubricating oils, their environmental impact and survey of disposal meth-ods. Environmental Management and Health. 1996;7(1):23-32.
  • [8] Lovell MR, Kabir MA, Menezes PL, Higgs III CF. Influence of boric acid additive size on green lubricant performance. Philo-sophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences. 2010;368(1929):4851-4868.
  • [9] Li W, Wu Y, Wang X, Liu W. Tribological study of boron-containing soybean lecithin as environmentally friendly lubri-cant additive in synthetic base fluids. Tribology Letters. 2012;47(3):381-388.
  • [10] Shah FU, Glavatskih S, Antzutkin ON. Boron in tribolo-gy: from borates to ionic liquids. Tribology letters. 2013;51(3):281-301.
  • [11] Li J, Li Z, Ren T, Zeng X, van der Heide E. Hydrolytic stability and tribological properties of N-containing heterocyclic borate esters as lubricant additives in rapeseed oil. Tribology International. 2014;73: 101-107.
  • [12] Li J, Fan B, Ren T, Zhao Y. Tribological study and mechanism of B–N and B–S–N triazine borate esters as lubri-cant additives in mineral oil. Tribology International. 2015;88: 1-7.
  • [13] Levine JA, Wu S.U.S. Patent No. 7,291,581. Washington, DC: U.S. Patent and Trademark Office. 2007.
  • [14] Doğan S, Akdağ A. Studies on synthesis of boron and carborane cage derivatives. Bor Dergisi, 2020;5(1):1-11.
  • [15] Chopra NG, Luyken RJ, Cherrey K, Crespi VH, Cohen ML, Louie SG, Zettl A. Boron nitride nanotubes. Science. 1995;269(5226): 966-967.
  • [16] Guangbin Y, Zhao J, Cui L, Song S, Zhang S, Yu L, Zhang P. Tribological characteristic and mechanism analysis of borate ester as a lubricant additive in different base oils. Rsc Advances. 2017;7(13): 7944-7953.
  • [17] Jianchang L, Fan B, Ren T, Zhao Y. Tribological study and mechanism of B–N and B–S–N triazine borate esters as lubricant additives in mineral oil. Tribology International. 2015;88:1-7.
  • [18] Wang S, Yue W, Fu Z, Wang C, Li X, Liu J. Study on the tribological properties of plasma nitrided bearing steel under lubrication with borate ester additive. Tribology international. 2013;66:259-264.
  • [19] Choudhary RB, Pande PP. Lubrication potential of boron compounds: an overview. Lubrication Science. 2002;14(2),:211-222.
  • [20] Yan J, Zeng X, van der Heide E, Ren T. The tribological performance and tribochemical analysis of novel borate esters as lubricant additives in rapeseed oil. Tribology International. 2014;71:149-157.
  • [21] Uyar B, Meydan İ. Performance of commercial antioxi-dants in white mineral oils. Industrial Lubrication and Tribology. 2023;75:221-229.
  • [22] García-Antón J, Monzó J, Guiñón JL. Effect of Ele-mental Sulfur and Mercaptans on Copper Strip Corrosion and Use of the ASTM D 130 Test Method. Corrosion, 1995;51(7):558–566.
  • [23] Tabassum T, Cho HTT. Application of ASTM Test Methods to Analyze the Oxidation Properties of Automotive Gasoline in Various Test Conditions. Journal of Undergraduate Chemical Engineering Research. 2018.
  • [24] GJ. Hunt, MP. Gahagan, MA. Peplow. The influence of model organosulfur extreme pressure additives and analogues on the corrosion of copper as measured by a wire corrosion test method. 2023;35:155-162.
  • [25] S. Kumar, R. Kumar. Tribological characteristics of syn-thesized hybrid nanofluid composed of CuO and TiO2 nano-particle additives. 2023;518-519:204623.
  • [26] M. Şimşek, N. Salman, H. Kaleli, R.F. Tunay, E. Durak. Experimental Analysis of Effect to Friction of Commercial Oil Additive Used in Automobiles. 2023;1:1.

Synthesis of Oil Soluble Boron Esters and Obtaining Lubricant Additive Packages with Anti-wear and Extreme Pressure Properties

Year 2023, Volume: 7 Issue: 1, 70 - 77, 01.04.2023
https://doi.org/10.30939/ijastech..1194177

Abstract

The purpose of this work is synthesis and characterization of pryridin-yl-borate esters and investigation of tribological performance as additive. The syn-thesis of dialkyl-(2-(pyridin-2-yl) ethyl) borate esters both in the literature and the novel synthesis of dialkyl 2-(methyl (pyridin-2-yl) borate esters and dialkyl 2- (5-ethylpyridin-2-yl) ethyl borate esters were carried out. The boron esters to be obtained were characterized by using IR, 1H NMR,13C NMR spectroscopic methods as well as physical methods such as TAN and corrosion tests. The fric-tion-reducing and anti-wear properties of the synthesized lubricant additives were measured with a four-ball friction and wear tester. As a result of these stud-ies, it has been shown that the friction coefficient is reduced by about 30-40 % compared to the base oil and the wear is also reduced. In the tribological analysis performed using synthesized four molecules within the scope of the study, it was found that resistance to oxidation is increased when the synthesized molecules were added to group I base oil at 0.5 % and 1% w/w concentration. The novel synthesis of dialkyl 2-(methyl (pyridin-2-yl) borate esters and dialkyl 2- (5-ethylpyridin-2-yl) ethyl borate esters were carried out and tribological perfor-mances in base oil were analysed first time.

Project Number

3180200

References

  • [1] Khonsari MM, Booser, ER. Applied tribology: bearing design and lubrication. John Wiley & Sons. 2017.
  • [2] Rizvi SQ. Lubricant chemistry, technology, selection, and de-sign. ASTM International, Conshohocken. 2009.
  • [3] Li J, Xu X, Wang Y, Ren T. Tribological studies on a novel borate ester containing benzothiazol-2-yl and disulfide groups as multifunctional additive. Tribology Int. 2010;43(5-6):1048-1053.
  • [4] Yang G, Zhang Z, Li G, Zhang J, Yu L, Zhang P. Synthesis and tribological properties of S-and P-free borate esters with differ-ent chain lengths. Journal of tribology. 2011;133(2):21801-21807.
  • [5] Silva LR, Corrêa EC, Brandao JR, de Avila RF. Environmental-ly friendly manufacturing: Behavior analysis of minimum quantity of lubricant-MQL in grinding process. Journal of Cleaner Production. 2020; 256:103287.
  • [6] Yao JB, Wang QL, Chen SQ, Sun J Z, Dong JX. Borate esters used as lubricant additives. Lubrication Science. 2002;14(4):415-423. [7] Khawaja MA, Aban MM. Characteristics of used lubricating oils, their environmental impact and survey of disposal meth-ods. Environmental Management and Health. 1996;7(1):23-32.
  • [8] Lovell MR, Kabir MA, Menezes PL, Higgs III CF. Influence of boric acid additive size on green lubricant performance. Philo-sophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences. 2010;368(1929):4851-4868.
  • [9] Li W, Wu Y, Wang X, Liu W. Tribological study of boron-containing soybean lecithin as environmentally friendly lubri-cant additive in synthetic base fluids. Tribology Letters. 2012;47(3):381-388.
  • [10] Shah FU, Glavatskih S, Antzutkin ON. Boron in tribolo-gy: from borates to ionic liquids. Tribology letters. 2013;51(3):281-301.
  • [11] Li J, Li Z, Ren T, Zeng X, van der Heide E. Hydrolytic stability and tribological properties of N-containing heterocyclic borate esters as lubricant additives in rapeseed oil. Tribology International. 2014;73: 101-107.
  • [12] Li J, Fan B, Ren T, Zhao Y. Tribological study and mechanism of B–N and B–S–N triazine borate esters as lubri-cant additives in mineral oil. Tribology International. 2015;88: 1-7.
  • [13] Levine JA, Wu S.U.S. Patent No. 7,291,581. Washington, DC: U.S. Patent and Trademark Office. 2007.
  • [14] Doğan S, Akdağ A. Studies on synthesis of boron and carborane cage derivatives. Bor Dergisi, 2020;5(1):1-11.
  • [15] Chopra NG, Luyken RJ, Cherrey K, Crespi VH, Cohen ML, Louie SG, Zettl A. Boron nitride nanotubes. Science. 1995;269(5226): 966-967.
  • [16] Guangbin Y, Zhao J, Cui L, Song S, Zhang S, Yu L, Zhang P. Tribological characteristic and mechanism analysis of borate ester as a lubricant additive in different base oils. Rsc Advances. 2017;7(13): 7944-7953.
  • [17] Jianchang L, Fan B, Ren T, Zhao Y. Tribological study and mechanism of B–N and B–S–N triazine borate esters as lubricant additives in mineral oil. Tribology International. 2015;88:1-7.
  • [18] Wang S, Yue W, Fu Z, Wang C, Li X, Liu J. Study on the tribological properties of plasma nitrided bearing steel under lubrication with borate ester additive. Tribology international. 2013;66:259-264.
  • [19] Choudhary RB, Pande PP. Lubrication potential of boron compounds: an overview. Lubrication Science. 2002;14(2),:211-222.
  • [20] Yan J, Zeng X, van der Heide E, Ren T. The tribological performance and tribochemical analysis of novel borate esters as lubricant additives in rapeseed oil. Tribology International. 2014;71:149-157.
  • [21] Uyar B, Meydan İ. Performance of commercial antioxi-dants in white mineral oils. Industrial Lubrication and Tribology. 2023;75:221-229.
  • [22] García-Antón J, Monzó J, Guiñón JL. Effect of Ele-mental Sulfur and Mercaptans on Copper Strip Corrosion and Use of the ASTM D 130 Test Method. Corrosion, 1995;51(7):558–566.
  • [23] Tabassum T, Cho HTT. Application of ASTM Test Methods to Analyze the Oxidation Properties of Automotive Gasoline in Various Test Conditions. Journal of Undergraduate Chemical Engineering Research. 2018.
  • [24] GJ. Hunt, MP. Gahagan, MA. Peplow. The influence of model organosulfur extreme pressure additives and analogues on the corrosion of copper as measured by a wire corrosion test method. 2023;35:155-162.
  • [25] S. Kumar, R. Kumar. Tribological characteristics of syn-thesized hybrid nanofluid composed of CuO and TiO2 nano-particle additives. 2023;518-519:204623.
  • [26] M. Şimşek, N. Salman, H. Kaleli, R.F. Tunay, E. Durak. Experimental Analysis of Effect to Friction of Commercial Oil Additive Used in Automobiles. 2023;1:1.
There are 25 citations in total.

Details

Primary Language English
Subjects Chemical Engineering
Journal Section Research Articles
Authors

Mustafa Akın 0000-0003-4268-6891

Mehmet Can Durmuş 0000-0002-7765-3945

İmren Meydan 0000-0001-7623-870X

Emel Atılal 0000-0002-3240-0127

Project Number 3180200
Publication Date April 1, 2023
Submission Date October 25, 2022
Acceptance Date March 16, 2023
Published in Issue Year 2023 Volume: 7 Issue: 1

Cite

APA Akın, M., Durmuş, M. C., Meydan, İ., Atılal, E. (2023). Synthesis of Oil Soluble Boron Esters and Obtaining Lubricant Additive Packages with Anti-wear and Extreme Pressure Properties. International Journal of Automotive Science And Technology, 7(1), 70-77. https://doi.org/10.30939/ijastech..1194177
AMA Akın M, Durmuş MC, Meydan İ, Atılal E. Synthesis of Oil Soluble Boron Esters and Obtaining Lubricant Additive Packages with Anti-wear and Extreme Pressure Properties. ijastech. April 2023;7(1):70-77. doi:10.30939/ijastech.1194177
Chicago Akın, Mustafa, Mehmet Can Durmuş, İmren Meydan, and Emel Atılal. “Synthesis of Oil Soluble Boron Esters and Obtaining Lubricant Additive Packages With Anti-Wear and Extreme Pressure Properties”. International Journal of Automotive Science And Technology 7, no. 1 (April 2023): 70-77. https://doi.org/10.30939/ijastech. 1194177.
EndNote Akın M, Durmuş MC, Meydan İ, Atılal E (April 1, 2023) Synthesis of Oil Soluble Boron Esters and Obtaining Lubricant Additive Packages with Anti-wear and Extreme Pressure Properties. International Journal of Automotive Science And Technology 7 1 70–77.
IEEE M. Akın, M. C. Durmuş, İ. Meydan, and E. Atılal, “Synthesis of Oil Soluble Boron Esters and Obtaining Lubricant Additive Packages with Anti-wear and Extreme Pressure Properties”, ijastech, vol. 7, no. 1, pp. 70–77, 2023, doi: 10.30939/ijastech..1194177.
ISNAD Akın, Mustafa et al. “Synthesis of Oil Soluble Boron Esters and Obtaining Lubricant Additive Packages With Anti-Wear and Extreme Pressure Properties”. International Journal of Automotive Science And Technology 7/1 (April 2023), 70-77. https://doi.org/10.30939/ijastech. 1194177.
JAMA Akın M, Durmuş MC, Meydan İ, Atılal E. Synthesis of Oil Soluble Boron Esters and Obtaining Lubricant Additive Packages with Anti-wear and Extreme Pressure Properties. ijastech. 2023;7:70–77.
MLA Akın, Mustafa et al. “Synthesis of Oil Soluble Boron Esters and Obtaining Lubricant Additive Packages With Anti-Wear and Extreme Pressure Properties”. International Journal of Automotive Science And Technology, vol. 7, no. 1, 2023, pp. 70-77, doi:10.30939/ijastech. 1194177.
Vancouver Akın M, Durmuş MC, Meydan İ, Atılal E. Synthesis of Oil Soluble Boron Esters and Obtaining Lubricant Additive Packages with Anti-wear and Extreme Pressure Properties. ijastech. 2023;7(1):70-7.


International Journal of Automotive Science and Technology (IJASTECH) is published by Society of Automotive Engineers Turkey

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