EXPERIMENTAL ASSESSMENT AND TOPSIS OPTIMIZATION OF CUTTING FORCE, SURFACE ROUGHNESS, AND SOUND INTENSITY IN HARD TURNING OF AISI 52100 STEEL

Author:

RAFIGHI MOHAMMAD1,ÖZDEMIR MUSTAFA2,ŞAHINOĞLU ABIDIN3,KUMAR RAMANUJ4,DAS SUDHANSU RANJAN5

Affiliation:

1. Department of Aeronautical Engineering, Sivas University of Science and Technology, Sivas, Turkey

2. Department of Machine and Metal Technology, Yozgat Bozok University, Yozgat, Turkey

3. Department of Machine and Metal Technology, Manisa Celal Bayar University, Manisa, Turkey

4. School of Mechanical Engineering, Kalinga Institute of Industrial Technology, Bhubaneswar, Odisha, India

5. Department of Production Engineering, Veer Surendra Sai University of Technology, Burla, India

Abstract

In this work, initially, the raw AISI 52100 bearing steel was heat-treated to obtain 40 HRC and 45 HRC workpiece hardness. Further, dry hard turning tests were carried out to study the impact of workpiece hardness ([Formula: see text]), cutting speed ([Formula: see text]), feed ([Formula: see text]), and depth of cut ([Formula: see text]) on cutting force (Fy), surface roughness (Ra), and sound intensity (SI). An economically viable PVD-coated carbide turning tool was implemented for the experiments. The Taguchi L[Formula: see text] (2–3 mixed level) design of experiments was employed to establish the experimental plan in order to save the experimental time, energy, and cost of manufacturing. The results disclosed that the feed has the prevailing consequence on surface roughness with a 96.3% contribution, while it also significantly affects the cutting force with a contribution of 13.8%. The contribution of cutting speed and workpiece hardness on the cutting force was reported as 48.3% and 35.1%, respectively. Higher workpiece hardness required more energy for plastic deformation as a result the cutting force increases with leading hardness. The sound intensity was dominantly influenced by depth of cut (53.3%) and cutting speed (40%). Finally, the Technique for Order Preference by Similarity to Ideal Solution (TOPSIS) was performed to determine the optimum machining parameters. According to the TOPSIS, the optimum level of cutting parameters was predicted as 40 HRC hardness ([Formula: see text]), 150[Formula: see text]m/min cutting speed ([Formula: see text]), 0.15[Formula: see text]mm/rev feed ([Formula: see text]), and 0.1[Formula: see text]mm depth of cut ([Formula: see text]) while the optimal result of Fy, SI, and Ra were noted as 27.66[Formula: see text]N, 70.7[Formula: see text]dB, and 0.86[Formula: see text][Formula: see text]m individually.

Publisher

World Scientific Pub Co Pte Ltd

Subject

Materials Chemistry,Surfaces, Coatings and Films,Surfaces and Interfaces,Condensed Matter Physics

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