Assessment of sustainable dry and MQL-assisted hard machining using MTCVD multilayered coated carbide (TiN/TiCN/Al2O3) insert
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[1] Mustafa Özdemir,et al. Analysis and optimisation of the cutting parameters based on machinability factors in turning AISI 4140 steel , 2022, Canadian Metallurgical Quarterly.
[2] A. T. Abbas,et al. A Closer Look at Precision Hard Turning of AISI4340: Multi-Objective Optimization for Simultaneous Low Surface Roughness and High Productivity , 2022, Materials.
[3] M. Özdemir. Effect of cutting parameters on the machinability of X37CrMoV5-1 hot work tool steel , 2022, Materials Testing.
[4] D. Pimenov,et al. The Effects of MQL and Dry Environments on Tool Wear, Cutting Temperature, and Power Consumption during End Milling of AISI 1040 Steel , 2021, Metals.
[5] A. Ekşi,et al. Real 3D turning simulation of materials with cylindrical shapes using ABAQUS/Explicit , 2021, Journal of the Brazilian Society of Mechanical Sciences and Engineering.
[6] A. Ekşi,et al. Experimental and numerical investigation of cutting forces during turning of cylindrical AISI 4340 steel specimens , 2021 .
[7] Tadeusz Mikolajczyk,et al. A Review of Indirect Tool Condition Monitoring Systems and Decision-Making Methods in Turning: Critical Analysis and Trends , 2020, Sensors.
[8] T. Beno,et al. A detailed investigation of residual stresses after milling Inconel 718 using typical production parameters for assessment of affected depth , 2020 .
[9] Tadeusz Mikolajczyk,et al. Optimization and Analysis of Surface Roughness, Flank Wear and 5 Different Sensorial Data via Tool Condition Monitoring System in Turning of AISI 5140 , 2020, Sensors.
[10] Abdullah Aslan,et al. Optimization and analysis of process parameters for flank wear, cutting forces and vibration in turning of AISI 5140: A comprehensive study , 2020, Measurement.
[11] Sudhansu Ranjan Das,et al. Sustainability Assessment and Machinability Investigation of Austenitic Stainless Steel in Finish Turning with Advanced Ultra-Hard SiAlON Ceramic Tool under Different Cutting Environments , 2020, Silicon.
[12] D. Bachrathy,et al. Experimental investigation of dynamic chip formation in orthogonal cutting , 2019, International Journal of Machine Tools and Manufacture.
[13] D. Raju,et al. Performance analysis of cryogenically treated plus tempered carbide inserts in turning of Inconel 718 using cryogenic minimum quantity lubrication cooling technique , 2019, Proceedings of the Institution of Mechanical Engineers, Part J: Journal of Engineering Tribology.
[14] L. Poovazhagan,et al. A decision making trial and evaluation laboratory approach to analyse the challenges to environmentally sustainable manufacturing in Indian automobile industry , 2018, Sustainable Production and Consumption.
[15] B. Davoodi,et al. Environmental-friendly turning of A286 superalloy , 2018 .
[16] Debabrata Dhupal,et al. Hard turning of AISI 4340 steel using coated carbide insert: Surface roughness, tool wear, chip morphology and cost estimation , 2018 .
[17] A. Sahoo,et al. Comparative machinability performance of heat treated 4340 Steel under dry and minimum quantity lubrication surroundings , 2018 .
[18] A. Sahoo,et al. ANN Modeling of Cutting Performances in Spray Cooling Assisted Hard Turning , 2018 .
[19] Mozammel Mia,et al. Response surface and neural network based predictive models of cutting temperature in hard turning , 2016, Journal of advanced research.
[20] Stephen C. Veldhuis,et al. Cutting temperature effect on PCBN and CVD coated carbide tools in hard turning of D2 tool steel , 2015 .
[21] Liangshan Xiong,et al. The formation mechanism and the influence factor of residual stress in machining , 2014 .
[22] Rajesh Sharma,et al. Experimental estimation and optimization of process parameters under minimum quantity lubrication and dry turning of AISI-4340 with different carbide inserts , 2014 .
[23] P Vamsi Krishna,et al. Experimental investigations on influence of mist cooling using nanofluids on machining parameters in turning AISI 1040 steel , 2013 .
[24] Sounak Kumar Choudhury,et al. Investigations on machinability aspects of hardened AISI 4340 steel at different levels of hardness using coated carbide tools , 2013 .
[25] A. Varadarajan,et al. Effect of magneto rheological damper on tool vibration during hard turning , 2012 .
[26] R. Suresh,et al. Some studies on hard turning of AISI 4340 steel using multilayer coated carbide tool , 2012 .
[27] V. N. Gaitonde,et al. Machinability investigations on hardened AISI 4340 steel using coated carbide insert , 2012 .
[28] S. K. Choudhury,et al. State of the art in hard turning , 2012 .
[29] P. Dahlman,et al. The influence of rake angle, cutting feed and cutting depth on residual stresses in hard turning , 2004 .
[30] A. Moisan,et al. Hard Turning: Chip Formation Mechanisms and Metallurgical Aspects , 1999, Manufacturing Science and Engineering.
[31] T. Watkins,et al. Surface residual stresses in machined austenitic stainless steel , 1996 .