Research Article

Experimental Investigation of Dry Environment Abrasive Wear Behavior of a Plain Bearing Material

Volume: 8 Number: 1 April 30, 2022
EN TR

Experimental Investigation of Dry Environment Abrasive Wear Behavior of a Plain Bearing Material

Abstract

In this study, using variables such as load and sliding speed, which are effective parameters on abrasive wear, the amount of wear on the bearing material, friction coefficients, and trace depth values according to the experimental conditions were determined. According to the results of the analysis of variance performed as a result of the experiments carried out in the ball-on-flat experimental setup, the most effective parameter for all outputs was the load value, and the effect ratio for mass loss was 66.26%, the effect ratio for the friction coefficient was 53.02% and the effect ratio for the trace depth was 85.69%. The R2 values obtained from the comparison of the experimental results with the regression results were found to be 0.9750, 0.9988, and 0.9759 for mass loss, friction coefficient, and trace depth, respectively. These results show that the regression model fit is good.

Keywords

Supporting Institution

Karabuk University Coordinatorship of Research Projects

Project Number

KBU BAP-21-ABP-062

Thanks

This study was supported by Karabuk University Coordinatorship of Research Projects with the project number of KBU BAP-21-ABP-062

References

  1. [1] E. De Robertis, E.H.H. Cosme, R.S. Neves, A.Y. Kuznetsov, A.P.C. Campos, S.M. Landi, “Application of the modulated temperature differential scanning calorimetry technique for the determination of the specific heat of copper nanofluids.” Applied Thermal Engineering, vol. 41, pp. 10–17, 2012. doi:10.1016/j.applthermaleng.2012.01.003.
  2. [2] S.M. S. Murshed, “Determination of effective specific heat of nanofluids.” Journal of Experimental Nanoscience, 6:5, pp. 539–546, 2011. doi:10.1080/17458080.2010.498838.
  3. [3] M.H. Cetin, S. Korkmaz, “Investigation of the concentration rate and aggregation behaviour of nano-silver added colloidal suspensions on wear behaviour of metallic materials by using ANOVA method” Tribology International, vol. 147, pp. 106273, 2020. https://doi.org/10.1016/j.triboint.2020.106273.
  4. [4] R.A. García-León, J. Martínez-Trinidad, R. Zepeda-Bautista, I. Campos-Silva, A. Guevara-Morales, J. Martínez-Londoño, J. Barbosa-Saldaña, “Dry sliding wear test on borided AISI 316L stainless steel under ball-on-flat configuration: A statistical analysis,” Tribology International, vol. 157, 2021, https://doi.org/10.1016/j.triboint.2021.106885.
  5. [5] A.N. Sudhakar, R. Markandeya, B. Srinivasa Rao, Ajoy Kumar Pandey, D. Kaushik, “Effect of alloying elements on the dry sliding wear behavior of high chromium white cast iron and Ni-hard iron,” Materials Today: Proceedings, 2021. https://doi.org/10.1016/j.matpr.2021.09.295.
  6. [6] B. Suresha, Siddaramaiah, Kishore, S. Seetharamu, P. Sampath Kumaran, “Investigations on the influence of graphite filler on dry sliding wear and abrasive wear behaviour of carbon fabric reinforced epoxy composites,” Wear, vol. 267, Issues 9–10, Pages 1405-1414, 2009. https://doi.org/10.1016/j.wear.2009.01.026.
  7. [7] L. Xu, Y. Zhang, D. Zhang, M. Leng, “Preparation and tribological properties of Ag nanoparticles/reduced graphene oxide nanocomposites,” Industrial Lubrication and Tribology, vol. 70, pp. 1684–1691, 2017. doi:10.1108/ILT-03-2017-0054.
  8. [8] G. Pitchayyapillai, P. Seenikannan, P. Balasundar, P. Narayanasamy, “Effect of nanosilver on microstructure, mechanical and tribological properties of cast 6061 aluminum alloy,” Transactions of Nonferrous Metals Society of China, vol. 27, pp. 2137–2145, 2017. doi:10.1016/S1003-6326(17)60239-5.

Details

Primary Language

English

Subjects

Mechanical Engineering

Journal Section

Research Article

Publication Date

April 30, 2022

Submission Date

November 29, 2021

Acceptance Date

March 9, 2022

Published in Issue

Year 2022 Volume: 8 Number: 1

APA
Demirsöz, R. (2022). Experimental Investigation of Dry Environment Abrasive Wear Behavior of a Plain Bearing Material. Gazi Journal of Engineering Sciences, 8(1), 89-102. https://izlik.org/JA48UE79AC
AMA
1.Demirsöz R. Experimental Investigation of Dry Environment Abrasive Wear Behavior of a Plain Bearing Material. GJES. 2022;8(1):89-102. https://izlik.org/JA48UE79AC
Chicago
Demirsöz, Recep. 2022. “Experimental Investigation of Dry Environment Abrasive Wear Behavior of a Plain Bearing Material”. Gazi Journal of Engineering Sciences 8 (1): 89-102. https://izlik.org/JA48UE79AC.
EndNote
Demirsöz R (April 1, 2022) Experimental Investigation of Dry Environment Abrasive Wear Behavior of a Plain Bearing Material. Gazi Journal of Engineering Sciences 8 1 89–102.
IEEE
[1]R. Demirsöz, “Experimental Investigation of Dry Environment Abrasive Wear Behavior of a Plain Bearing Material”, GJES, vol. 8, no. 1, pp. 89–102, Apr. 2022, [Online]. Available: https://izlik.org/JA48UE79AC
ISNAD
Demirsöz, Recep. “Experimental Investigation of Dry Environment Abrasive Wear Behavior of a Plain Bearing Material”. Gazi Journal of Engineering Sciences 8/1 (April 1, 2022): 89-102. https://izlik.org/JA48UE79AC.
JAMA
1.Demirsöz R. Experimental Investigation of Dry Environment Abrasive Wear Behavior of a Plain Bearing Material. GJES. 2022;8:89–102.
MLA
Demirsöz, Recep. “Experimental Investigation of Dry Environment Abrasive Wear Behavior of a Plain Bearing Material”. Gazi Journal of Engineering Sciences, vol. 8, no. 1, Apr. 2022, pp. 89-102, https://izlik.org/JA48UE79AC.
Vancouver
1.Recep Demirsöz. Experimental Investigation of Dry Environment Abrasive Wear Behavior of a Plain Bearing Material. GJES [Internet]. 2022 Apr. 1;8(1):89-102. Available from: https://izlik.org/JA48UE79AC

Gazi Journal of Engineering Sciences (GJES) publishes open access articles under a Creative Commons Attribution 4.0 International License (CC BY 4.0)  1366_2000-copia-2.jpg