Surface Modification by Friction Stir Processing of Low-Carbon Steel: Microstructure Investigation and Wear Performance

被引:0
作者
Behnoosh Sattari
Morteza Shamanian
Farshid Salimijazi
Mehdi Salehi
机构
[1] Isfahan University of Technology,Department of Materials Engineering
[2] Tennessee Technological University,Department of Mechanical Engineering
来源
Journal of Materials Engineering and Performance | 2018年 / 27卷
关键词
abrasive wear; adhesive wear; friction stir processing; micro-cutting; Widmänstatten ferrite;
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学科分类号
摘要
A low-carbon steel sheet with a thickness of 5 mm was subjected to friction stir processing (FSP) by one to four different passes. The microstructures of different regions were characterized using the optical microscopy and electron backscatter diffraction. The Vickers micro-harness was measured at the distance of 200 μm below the processed surfaces. The influence of pass numbers (PNs) on wear resistance was studied in terms of coefficients of friction (CoFs), weight losses and wear rates. SEM topographies of the worn surfaces were also studied to evaluate the wear mechanisms. Microstructure observations showed that Widmänstatten ferrite plates were formed in stir zones (SZs) and heat affected zones. As PN increased, these grains were widened due to the increment of the carbon diffusivity and lengthened because of the high heat input and microstructure anisotropy. Besides, increasing the PN causes increasing of the hardness and wear resistance, simultaneously. Specifically, the wear rate in the SZ was reduced from 2.8 × 10−2 mm3 m−1 in base metal to 0.3 × 10−2 mm3 m−1 in sample which was subjected to 4 FSP passes. However, variation in PN had no considerable effect on CoFs. Oxidative wear mechanism was observed on the worn surface of the steel and the FSPed samples while more debris was formed by increasing the PNs.
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页码:751 / 763
页数:12
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共 102 条
  • [1] Mishra RS(2005)Friction Stir Welding and Processing Mater. Sci. Eng. R Rep. 50 1-78
  • [2] Ma ZY(2016)Influence of Multi-pass Friction Stir Processing on Wear Behaviour and Machinability of an Al-Si Hypoeutectic A356 Alloy J. Mater. Process. Technol. 236 252-262
  • [3] Singh SK(2015)Surface Composites by Friction Stir Processing: A Review J. Mater. Process. Technol. 224 117-134
  • [4] Immanuel RJ(2015)Vipin, Fabrication of Al5083/B4C Surface Composite by Friction Stir Processing and Its Tribological Characterization J. Mater. Res. Technol. 4 398-410
  • [5] Babu S(2016)Effect of Friction Stir Processing Pass Sequence on Properties of Mg-ZrSiO4-Al2O3 Surface Hybrid Micro/Nano-composites Mater. Des. 108 1-7
  • [6] Panigrahi SK(2016)Microstructural Evolution and Wear Resistance of Friction Stir-Processed AISI 52100 Steel Metall. Mater. Trans. A 47 3564-3572
  • [7] Janaki Ram GD(2016)Friction Stir Processing of A-286 Stainless Steel: Microstructural Evolution During Wear Wear 356–357 94-100
  • [8] Sharma V(2014)Improving Erosion Resistance of Hydroturbine Steel Using Friction Stir Processing J. Tribol. 136 041102-1168
  • [9] Prakash U(2012)The Influence of Multi-pass Friction Stir Processing on the Microstructural and Mechanical Properties of Aluminum Alloy 6082 J. Mater. Process. Technol. 212 1157-504
  • [10] Kumar BVM(2016)Effects of Microstructure Banding on Hydrogen Assisted Fatigue Crack Growth in X65 Pipeline Steels Int. J. Fatigue 82 497-135