Araştırma Makalesi
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Yıl 2024, Cilt: 7 Sayı: 2, 64 - 71

Öz

Kaynakça

  • Mehic, S.H., Additives İn Lubricant: Types and Chemical Composition of Lubricant Additives, Chemicals office of the Republic of Slovenia. 2017
  • Jackson, R.P., Engineering Tribology, PDH Online, 2012
  • Khasbage, S., Patil, V., and Dhande, D., Performance of Jatropha Biolubricant for Hydrodynamic Journal Bearing Lubrication. International Research Journal of Engineering and Technology, 2016, 03(07): 627 – 632
  • Gulzar, M., Tribological Study of Nanoparticles Enriched Bio-Based Lubricants for Engine Piston Ring–Cylinder İnteraction, Unpublished Phd Thesis, Faculty of Engineering, University of Malaya, Kuala Lumpur, 2017
  • Shahnazar, S., Bagheri, S., and Abd Hamid, S.B., Enhancing Lubricant Properties by Nanoparticle Additives. International Journal of Hydrogen Energy, 2016, 41: 3153 – 3170
  • Chandan, S., Ganipantapalli, S.S., Harish, B.K., Srinivas, M.S., and Smitha, B.S., Experimental Study on the Use of Neem Oil as Lubricant in IC Engine, International Research Journal of Engineering and Technology, 2017, 04(08): 1087 – 1092
  • Naik, A.U. and Galhe, D.S., Review on Vegetable Oil as Bio-Lubricant, Int. Journal for Scientific Research and Development, 2016, 5(10):587 – 589
  • Hassan, M., Ani, F.N., and Syahrullail, S., Tribological Performance of Refined, Bleached and Deodorised Palm Olein Blends Bio-Lubricants, Journal of Oil Palm Research, 2016, 28(4): 510 – 519
  • Patil, S.J., Patil, D.P., Shrotri, A.P., and Patil, V.P., A Review on Effect of Addition of Nanoparticles on Tribological Properties of Lubricants, International Journal of Mechanical Engineering and Technology (IJMET), 2014, 5(11): 120 – 129
  • Ali, M.K.A., Xianjun, H., Mai, L., Bicheng, C., Turkson, R.F and Qingping, C., Reducing Frictional Power Losses and İmproving the Scuffing Resistance in Automotive Engines Using Hybrid Nanomaterials as Nano-Lubricant Additives, Wear, 2016, 364-365: 270 – 281
  • Ali, M.K.A. and Xianjun, H., Improving the Tribological Behaviour of internal Combustion Engines Via the Addition of Nanoparticles to Engine Oils, Nanotechnology Rev, 2015, 4(4): 347 – 358
  • Alves, S.M., Barros, B.S., Trajano, M.F., Ribeiro, K.S.B. and Moura, E., Tribological Behaviour of Vegetable Oil-Based Lubricants with Nanoparticles of Oxides in Boundary Lubrication Conditions, Tribology International, 2013, 65: 28 – 36
  • Laad, M. and Jatti, V.K.S., Titanium Oxide Nanoparticles as Additives İn Engine Oil, Journal of King Saud University – Engineering Sciences, 2018, 30: 116 – 112
  • Le, V.N. and Lin, J., Tribological Properties of Aluminum Nanoparticles as Additives in an Aqueous Glycerol Solution, Applied Sciences, 2017, 7(80): 1 – 15
  • Battez, A.H., and Rodriguez, R.G., Tribological Properties of the Lubricant Containing Titanium Dioxide Nanoparticles as an Additive, Lubricants, 2016, 4(2): 1–17
  • Afzal, A., Kumar, M., and Ramis, M.K., Investigation of Physicochemical and Tribological Properties of TiO2 Nano-Lubricant Oil of Different Concentrations. TRIBOLOGIA – Finnish Journal of Tribology, 2017, 35(3):6 – 15
  • Binu, K.G., Shenoy, B.S., Rao, D.S. and Pai, R., A Variable Viscosity Approach for the Evaluation of Load Carrying Capacity of Oil Lubricated Journal Bearing with TiO2 Nanoparticles as Lubricant Additives, Proceedings of 3rd International Conference on Materials Processing and Characterisation (ICMPC), 2014, 6(2014):1051– 1067
  • Akintunde, S.B., Obayopo, S.O., Adekunle, A.S., Combustion and emission study of sandbox seed oil biodiesel performance in a compression ignition (CI) engine, Energy Reports, 2021, 7: 3869–3876
  • Birleanu, C., Pustan, M., Cioaza, M., Molea, A., Papa, F., Effect of TiO2 nanoparticle on the tribological properties of lubricating oil: an experimental investigation, Scientfic Reports, 2022, 12: 5201
  • Samidin, S, Salih, N., and Salimon, J., Synthesis and Characterization of Trimethylolpropane Based Esters as Green Biolubricant Basestock, Biointerface research in applied chemistry, 2021, 11(5): 13638 – 13651
  • Mohamed, M., Ndyaye, S., Talla, K., Mbow, C., and Beye, A., Enhanced Oil Recovery by Injecting Oleic Acid as a Surfactant into the Porous Medium, Open Journal of Fluid Dynamics, 2020, 10: 82-94
  • Jimoh, A. A., Otori, A. A., Azeez, S. O., Adebayo, Z. F., Abdulsalam, Z. A., and Mathew, J.T., Optımızatıon of bıodıesel productıon from parinarium macrophylum seed oıl usıng potassıum hydroxıde loaded on calcıum oxıde catalyst, Lapai Journal of Science and Technology, 2022, 8(1): 56-74
  • ISO 5509., Animal and Vegetable Fats and Oils in: Preparation of Methyl Esters of Fatty Acids. 2nd Ed., International Organization for Standardization, Geneva, Switzerland, 2000
  • Bilal, S., Mohammed-Dabo, I.A., Nuhu, M., Kasim, S.A., Almustapha, I.H. and Yamusa, Y.A., Production of Biolubricant from Jatropha Curcas Seed Oil, Journal of Chemical Engineering and Materials Science, 2013, 4(6): 72 – 79
  • Abere, J.O., Improved Performance of Bio-Lubricant by Nanoparticles Additives, Unpublished Phd Thesis, Department of Mechanical Engineering, University of Sheffield, 2017
  • Thottackkad, M.V., Rajendrakumar, P.K., and Prabhakaran, N.K., Tribological Analysis of Surfactant Modified Nanolubricants Containing CeO2 Nanoparticles, Tribology, 2014, 8(3):125 – 130
  • Umaru, M., Aris, M.I., Munnir, S.M., Aliyu, A.M., Aberuagba, F., and Isaac, A.J., Statistical Optimization of Biolubricant Production from Jatropha Curcas Oil Using Trimethylolpropane ss a Polyol, Proceedings of the World Congress on Engineering and Computer Science, October 19 – 21, 2016
  • Jabal, M.H., Ani, F.N., and Syahrullail, S., The Tribological Characteristic of the Blends of RBD Palm Olein with Mineral Oil Using Four-Ball Tribotester, Jurnal Tecknologi, 2014, 69(6): 11 – 14
  • Thottackkad, M.V., Perikinalil, R.K., and Kumarapillai, P.N., Experimental Evaluation on the Tribological Properties of Coconut Oil by the Addition of CuO Nanoparticles. International Journal of Precision Engineering, and Manufacturing, 2012, 13(1):111 – 116
  • Ghaednia, H., Jackson, R.L., and Khodadadi, J.M., Experimental Analysis of Stable CuO Nanoparticle Enhanced Lubricants, Journal of Experimental Nanoscience, 2015, 10(1): 1–18
  • Zulkifli, N.W.M., Kalam, M.A., Masjuki, H.H. and Yunus, R., Experimental Analysis of Tribological Properties of Biolubricant with Nanoparticle Additive, Procedia Engineering, 2013, 68: 152 – 157
  • Bahari, A., Investigation İnto Tribological Performance of Vegetable Oils as Biolubricants at Severe Contact Conditions. Unpublished Phd Thesis, Department of Mechanical Engineering, University of Sheffield, 2017
  • Mohan, N., Sharma, M., Singh, R., and Kumar, N., Tribological Properties of Automotive SAE 20W-40 Conaining Nano-Al2O3 Particles. SAE International, SAE Technical Paper, 2014, 01-2781
  • Tao, C., Wang, B., Barber, G., Schall, J., Zou, Q., and Wang, J., Tribological Mechanism of Friction and Wear Reduction Using Oil-Based ZnO Nanofluid Applied on Brass, European Scientific Journal, 2019, 15(3): 223 – 238
  • Syahrullail, S., Wira, J.Y., Wan Nik, W.B., and Fawwaz, W.N., Friction Characteristics of RBD Palm Olein Using Four-Ball Tribotester, Applied Mechanics and Materials, 2013, 315: 936 – 940
  • Singh, Y., Tribological Behaviour as Lubricant Additive and Physiochemical Characterization of Jatropha Oil Blends, Friction, 2015, 3(4): 320 – 332

OPTIMIZATION OF TITANIUM OXIDE NANOPARTICLE ENRICHMENT ON THE TRIBOLOGICAL PROPERTIES OF SANDBOX BIO-LUBRICANT

Yıl 2024, Cilt: 7 Sayı: 2, 64 - 71

Öz

Improvement of Lubricant properties is encouraged in production industries for enhanced performance. In order to achieve this, many methods and materials have been employed with room for further studies. This study investigated the effect of titanium oxide nanoparticle additive on the tribological properties of sandbox bio-lubricant. Titanium oxide nanoparticle-enriched sandbox bio-lubricant was developed by adding varying concentrations of the nanoparticle to sandbox lubricant. Central composite design was employed for the experimental design and optimization. The lubricant was enriched with nanoparticle concentration of 0 wt%, 0.75 wt%, and 1.50 wt %. The parameters values used for the evaluation were: load (2 N, 5 N, 8 N) and speed (150 rpm, 200 rpm, 250 rpm). Effects of these values on wear rate, friction coefficient and flash temperature parameter were evaluated. The lowest values of coefficient of friction and wear rate were obtained at a speed of 200 rpm and concentration of 0.75 wt% with 2 N load, while the highest value of flash temperature parameter was obtained at a speed of 200 rpm, concentration of 0.75 wt% and 8 N load. The optimal parameters combinations for minimum coefficient of friction and wear rate as well as maximum flash temperature were: 8.0N load, 199.4949 rpm speed and 0.7121wt% concentration. The overall results revealed that titanium oxide nanoparticle added to sandbox lubricant improved the tribological properties of the lubricant by increasing the anti-friction and anti-wear capacity of the lubricant. This showed the potential of titanium oxide nanoparticle as additive for bio-lubricant production.

Kaynakça

  • Mehic, S.H., Additives İn Lubricant: Types and Chemical Composition of Lubricant Additives, Chemicals office of the Republic of Slovenia. 2017
  • Jackson, R.P., Engineering Tribology, PDH Online, 2012
  • Khasbage, S., Patil, V., and Dhande, D., Performance of Jatropha Biolubricant for Hydrodynamic Journal Bearing Lubrication. International Research Journal of Engineering and Technology, 2016, 03(07): 627 – 632
  • Gulzar, M., Tribological Study of Nanoparticles Enriched Bio-Based Lubricants for Engine Piston Ring–Cylinder İnteraction, Unpublished Phd Thesis, Faculty of Engineering, University of Malaya, Kuala Lumpur, 2017
  • Shahnazar, S., Bagheri, S., and Abd Hamid, S.B., Enhancing Lubricant Properties by Nanoparticle Additives. International Journal of Hydrogen Energy, 2016, 41: 3153 – 3170
  • Chandan, S., Ganipantapalli, S.S., Harish, B.K., Srinivas, M.S., and Smitha, B.S., Experimental Study on the Use of Neem Oil as Lubricant in IC Engine, International Research Journal of Engineering and Technology, 2017, 04(08): 1087 – 1092
  • Naik, A.U. and Galhe, D.S., Review on Vegetable Oil as Bio-Lubricant, Int. Journal for Scientific Research and Development, 2016, 5(10):587 – 589
  • Hassan, M., Ani, F.N., and Syahrullail, S., Tribological Performance of Refined, Bleached and Deodorised Palm Olein Blends Bio-Lubricants, Journal of Oil Palm Research, 2016, 28(4): 510 – 519
  • Patil, S.J., Patil, D.P., Shrotri, A.P., and Patil, V.P., A Review on Effect of Addition of Nanoparticles on Tribological Properties of Lubricants, International Journal of Mechanical Engineering and Technology (IJMET), 2014, 5(11): 120 – 129
  • Ali, M.K.A., Xianjun, H., Mai, L., Bicheng, C., Turkson, R.F and Qingping, C., Reducing Frictional Power Losses and İmproving the Scuffing Resistance in Automotive Engines Using Hybrid Nanomaterials as Nano-Lubricant Additives, Wear, 2016, 364-365: 270 – 281
  • Ali, M.K.A. and Xianjun, H., Improving the Tribological Behaviour of internal Combustion Engines Via the Addition of Nanoparticles to Engine Oils, Nanotechnology Rev, 2015, 4(4): 347 – 358
  • Alves, S.M., Barros, B.S., Trajano, M.F., Ribeiro, K.S.B. and Moura, E., Tribological Behaviour of Vegetable Oil-Based Lubricants with Nanoparticles of Oxides in Boundary Lubrication Conditions, Tribology International, 2013, 65: 28 – 36
  • Laad, M. and Jatti, V.K.S., Titanium Oxide Nanoparticles as Additives İn Engine Oil, Journal of King Saud University – Engineering Sciences, 2018, 30: 116 – 112
  • Le, V.N. and Lin, J., Tribological Properties of Aluminum Nanoparticles as Additives in an Aqueous Glycerol Solution, Applied Sciences, 2017, 7(80): 1 – 15
  • Battez, A.H., and Rodriguez, R.G., Tribological Properties of the Lubricant Containing Titanium Dioxide Nanoparticles as an Additive, Lubricants, 2016, 4(2): 1–17
  • Afzal, A., Kumar, M., and Ramis, M.K., Investigation of Physicochemical and Tribological Properties of TiO2 Nano-Lubricant Oil of Different Concentrations. TRIBOLOGIA – Finnish Journal of Tribology, 2017, 35(3):6 – 15
  • Binu, K.G., Shenoy, B.S., Rao, D.S. and Pai, R., A Variable Viscosity Approach for the Evaluation of Load Carrying Capacity of Oil Lubricated Journal Bearing with TiO2 Nanoparticles as Lubricant Additives, Proceedings of 3rd International Conference on Materials Processing and Characterisation (ICMPC), 2014, 6(2014):1051– 1067
  • Akintunde, S.B., Obayopo, S.O., Adekunle, A.S., Combustion and emission study of sandbox seed oil biodiesel performance in a compression ignition (CI) engine, Energy Reports, 2021, 7: 3869–3876
  • Birleanu, C., Pustan, M., Cioaza, M., Molea, A., Papa, F., Effect of TiO2 nanoparticle on the tribological properties of lubricating oil: an experimental investigation, Scientfic Reports, 2022, 12: 5201
  • Samidin, S, Salih, N., and Salimon, J., Synthesis and Characterization of Trimethylolpropane Based Esters as Green Biolubricant Basestock, Biointerface research in applied chemistry, 2021, 11(5): 13638 – 13651
  • Mohamed, M., Ndyaye, S., Talla, K., Mbow, C., and Beye, A., Enhanced Oil Recovery by Injecting Oleic Acid as a Surfactant into the Porous Medium, Open Journal of Fluid Dynamics, 2020, 10: 82-94
  • Jimoh, A. A., Otori, A. A., Azeez, S. O., Adebayo, Z. F., Abdulsalam, Z. A., and Mathew, J.T., Optımızatıon of bıodıesel productıon from parinarium macrophylum seed oıl usıng potassıum hydroxıde loaded on calcıum oxıde catalyst, Lapai Journal of Science and Technology, 2022, 8(1): 56-74
  • ISO 5509., Animal and Vegetable Fats and Oils in: Preparation of Methyl Esters of Fatty Acids. 2nd Ed., International Organization for Standardization, Geneva, Switzerland, 2000
  • Bilal, S., Mohammed-Dabo, I.A., Nuhu, M., Kasim, S.A., Almustapha, I.H. and Yamusa, Y.A., Production of Biolubricant from Jatropha Curcas Seed Oil, Journal of Chemical Engineering and Materials Science, 2013, 4(6): 72 – 79
  • Abere, J.O., Improved Performance of Bio-Lubricant by Nanoparticles Additives, Unpublished Phd Thesis, Department of Mechanical Engineering, University of Sheffield, 2017
  • Thottackkad, M.V., Rajendrakumar, P.K., and Prabhakaran, N.K., Tribological Analysis of Surfactant Modified Nanolubricants Containing CeO2 Nanoparticles, Tribology, 2014, 8(3):125 – 130
  • Umaru, M., Aris, M.I., Munnir, S.M., Aliyu, A.M., Aberuagba, F., and Isaac, A.J., Statistical Optimization of Biolubricant Production from Jatropha Curcas Oil Using Trimethylolpropane ss a Polyol, Proceedings of the World Congress on Engineering and Computer Science, October 19 – 21, 2016
  • Jabal, M.H., Ani, F.N., and Syahrullail, S., The Tribological Characteristic of the Blends of RBD Palm Olein with Mineral Oil Using Four-Ball Tribotester, Jurnal Tecknologi, 2014, 69(6): 11 – 14
  • Thottackkad, M.V., Perikinalil, R.K., and Kumarapillai, P.N., Experimental Evaluation on the Tribological Properties of Coconut Oil by the Addition of CuO Nanoparticles. International Journal of Precision Engineering, and Manufacturing, 2012, 13(1):111 – 116
  • Ghaednia, H., Jackson, R.L., and Khodadadi, J.M., Experimental Analysis of Stable CuO Nanoparticle Enhanced Lubricants, Journal of Experimental Nanoscience, 2015, 10(1): 1–18
  • Zulkifli, N.W.M., Kalam, M.A., Masjuki, H.H. and Yunus, R., Experimental Analysis of Tribological Properties of Biolubricant with Nanoparticle Additive, Procedia Engineering, 2013, 68: 152 – 157
  • Bahari, A., Investigation İnto Tribological Performance of Vegetable Oils as Biolubricants at Severe Contact Conditions. Unpublished Phd Thesis, Department of Mechanical Engineering, University of Sheffield, 2017
  • Mohan, N., Sharma, M., Singh, R., and Kumar, N., Tribological Properties of Automotive SAE 20W-40 Conaining Nano-Al2O3 Particles. SAE International, SAE Technical Paper, 2014, 01-2781
  • Tao, C., Wang, B., Barber, G., Schall, J., Zou, Q., and Wang, J., Tribological Mechanism of Friction and Wear Reduction Using Oil-Based ZnO Nanofluid Applied on Brass, European Scientific Journal, 2019, 15(3): 223 – 238
  • Syahrullail, S., Wira, J.Y., Wan Nik, W.B., and Fawwaz, W.N., Friction Characteristics of RBD Palm Olein Using Four-Ball Tribotester, Applied Mechanics and Materials, 2013, 315: 936 – 940
  • Singh, Y., Tribological Behaviour as Lubricant Additive and Physiochemical Characterization of Jatropha Oil Blends, Friction, 2015, 3(4): 320 – 332
Toplam 36 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Triboloji, Malzeme Karekterizasyonu, Malzeme Üretim Teknolojileri
Bölüm Articles
Yazarlar

Caleb Abiodun Popoola Bu kişi benim 0000-0001-7428-5916

Okwuchi Onyekwere 0000-0003-1907-3616

Erken Görünüm Tarihi 25 Ekim 2024
Yayımlanma Tarihi
Gönderilme Tarihi 10 Mayıs 2024
Kabul Tarihi 29 Eylül 2024
Yayımlandığı Sayı Yıl 2024 Cilt: 7 Sayı: 2

Kaynak Göster

APA Popoola, C. A., & Onyekwere, O. (2024). OPTIMIZATION OF TITANIUM OXIDE NANOPARTICLE ENRICHMENT ON THE TRIBOLOGICAL PROPERTIES OF SANDBOX BIO-LUBRICANT. The International Journal of Materials and Engineering Technology, 7(2), 64-71.