Experimental investigation and mathematical modelling of dry sliding wear of nitinol reinforced aluminium matrix composite using machine learning

被引:0
作者
Mishra, Shivam [1 ]
Kumar, Mukesh [1 ]
Patnaik, Amar [1 ]
机构
[1] Malaviya Natl Inst Technol Jaipur, Mech Engn Dept, Jaipur, Rajasthan, India
关键词
Dry sliding wear; machine learning; Al5083; metal matrix composite; shape memory alloy; mathematical modelling; PIN-ON-DISC; MECHANICAL-PROPERTIES; ADHESIVE WEAR; BEHAVIOR; ALLOY; FRICTION; HUMIDITY; PERFORMANCE; TEMPERATURE; FABRICATION;
D O I
10.1177/13506501241302254
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Dry sliding wear is a complex phenomenon, an understanding of which needs careful experimentation and observation of the wear event. The present study focuses on the dry sliding wear analysis of the nitinol particulate-reinforced Al5083 matrix composite fabricated using a vacuum-assisted stir casting route. Nitinol alloys have excellent mechanical, thermo-mechanic and tribological performance along with the unique feature of shape recovery and superelasticity in the austenitic phase. The effect of varying wear control parameters, load (5-20 N), sliding distance (0-3000), sliding speed (150-600 RPM), humidity (20% - 80%) and temperature (25-100 degrees C) on the wear resistance of the fabricated composites were exhaustively examined. Steady-state, as well as Taguchi-based experimentation, were performed to investigate the wear phenomenon in the fabricated composite using a pin-on-disc tribometer. Modified Archard equation with power exponent was utilized to develop four new wear equations, which were both trained and tested using a machine learning algorithm. The results depict that among all four models, the DSW Model-4 has provided the best fit between the actual and the predicted wear volume with a coefficient of determination value of 0.9722. An infrared thermal imager was used to observe temperature variation during the wear test. Scanning electron microscopy (SEM) and a profilometer were used to carefully examine the worn surface.
引用
收藏
页码:898 / 921
页数:24
相关论文
共 78 条
[21]   Temperature effects on adhesive wear in dry sliding contacts [J].
Gaard, A. ;
Hallback, N. ;
Krakhmalev, P. ;
Bergstrom, J. .
WEAR, 2010, 268 (7-8) :968-975
[22]   Wear as a product failure mechanism - Overview and case studies [J].
Gagg, Colin R. ;
Lewis, Peter R. .
ENGINEERING FAILURE ANALYSIS, 2007, 14 (08) :1618-1640
[23]   THE EFFECTIVENESS OF OXIDES IN REDUCING SLIDING WEAR OF ALLOYS [J].
GLASCOTT, J ;
STOTT, FH ;
WOOD, GC .
OXIDATION OF METALS, 1985, 24 (3-4) :99-114
[24]  
Harish T. M., 2023, Materials Today: Proceedings, P3149, DOI 10.1016/j.matpr.2022.10.167
[25]   Analysis of the friction and wear of graphene reinforced aluminum metal matrix composites using machine learning models [J].
Hasan, Md Syam ;
Wong, Tien ;
Rohatgi, Pradeep K. ;
Nosonovsky, Michael .
TRIBOLOGY INTERNATIONAL, 2022, 170
[26]   Breakdown of Archard law due to transition of wear mechanism from plasticity to fracture [J].
Hu, Jianqiao ;
Song, Hengxu ;
Sandfeld, Stefan ;
Liu, Xiaoming ;
Wei, Yueguang .
TRIBOLOGY INTERNATIONAL, 2022, 173
[27]   Microstructure and mechanical properties of fine-grained aluminum matrix composite reinforced with nitinol shape memory alloy particulates produced by underwater friction stir processing [J].
Huang, G. Q. ;
Yan, Y. F. ;
Wu, J. ;
Shen, Y. F. ;
Gerlich, A. P. .
JOURNAL OF ALLOYS AND COMPOUNDS, 2019, 786 :257-271
[28]   Analyses of the sliding wear behavior of NiTi shape memory alloys fabricated by laser powder bed fusion based on orthogonal experiments [J].
Huang, Xianghui ;
Kang, Nan ;
Coddet, Pierre ;
El Mansori, Mohamed .
WEAR, 2023, 534
[29]   Dry sliding wear characteristics of aluminium metal matrix composites: a brief overview [J].
Idusuyi, Nosa ;
Olayinka, John, I .
JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2019, 8 (03) :3338-3346
[30]   The effects of various reinforcements on dry sliding wear behaviour of AA 6061 nanocomposites [J].
Jeyasimman, D. ;
Narayanasamy, R. ;
Ponalagusamy, R. ;
Anandakrishnan, V. ;
Kamaraj, M. .
MATERIALS & DESIGN, 2014, 64 :783-793