Machinability improvement of compacted graphite irons in milling process with supercritical CO2-based MQL

Journal of Manufacturing Processes - Tập 68 - Trang 154-168 - 2021
Luqiang Tu1, Jie Chen1, Qinglong An1, Weiwei Ming1, Jinyang Xu1, Ming Chen1, Liangliang Lin2, Zhenming Yang2
1State Key Laboratory of Mechanical System and Vibration, School of Mechanical Engineering, Shanghai Jiao Tong University, Shanghai, PR China
2Xiamen Golden Egret Special Alloy Co., LTD., Xiamen, PR China

Tài liệu tham khảo

De Sousa, 2018, A review on the machining of cast irons, Int J Adv Manuf Technol, 94, 4073, 10.1007/s00170-017-1140-1 Tu, 2020, Cutting performance of cubic boron nitride-coated tools in dry turning of hardened ductile iron, J Manuf Process, 56, 158, 10.1016/j.jmapro.2020.04.081 Tu, 2019, Temperature distribution of cubic boron nitride–coated cutting tools by finite element analysis, Int J Adv Manuf Technol, 105, 3197, 10.1007/s00170-019-04498-0 Dawson S. Compacted graphite iron: mechanical and physical properties for engine design, VDI-Ber. 1999; 1472:85–106. Nguyen, 2020, Formation mechanism of alumina layer in protecting cubic boron nitride inserts in turning cast irons, Int J Mach Tool Manuf, 153, 103539, 10.1016/j.ijmachtools.2020.103539 Nayyar, 2013, Machinability of compacted graphite iron (CGI) and flake graphite iron (FGI) with coated carbide, Int J Mach Mach Mater, 13, 67 Tasdelen, 2007, Machining of gray cast irons and compacted graphite iron, The Swedish Production Symposium, 1 Mocellin F, Melleras E, Guesser WL, Boehs L. Study of the machinability of compacted graphite iron for drilling process, J Braz Soc Mech Sci Eng 2004; 26 (1) :22–27. Heck, 2008, Analytical investigations concerning the wear behaviour of cutting tools used for the machining of compacted graphite iron and grey cast iron, Int J Refract Met Hard Mater, 26, 197, 10.1016/j.ijrmhm.2007.05.003 Guo, 2014, Milling forces of compacted graphite iron (CGI) and gray iron (GI), Mater Sci Forum, 800-801, 32, 10.4028/www.scientific.net/MSF.800-801.32 Da Silva LRR, Filho AF, Costa ES, Marcucci Pico DF, Sales WF, Guesser WL, et al. Cutting temperatures in end milling of compacted graphite irons. In: 46th SME North American Manufacturing Research Conference, NAMRC 2018. Elsevier B.V.; 2018. p 474–84. Berglund A, Nicolescu CM, Svensson H. The effect of interlamellar distance in pearlite on CGI machining. 2009. An, 2020, Cooling effects of cold mist jet with transient heat transfer on high-speed cutting of titanium alloy, Int J Precis Eng Manuf-Green Technol, 7, 271, 10.1007/s40684-019-00076-7 An, 2020, Tool wear and machined surface characteristics in side milling Ti6Al4V under dry and supercritical CO2 with MQL conditions, Tribol Int, 151, 106511, 10.1016/j.triboint.2020.106511 Yuan, 2018, Performance of supercritical carbon dioxide (scCO2) mixed with oil-on-water (OoW) cooling in high-speed milling of 316L stainless steel, Procedia CIRP, 77, 391, 10.1016/j.procir.2018.08.301 Rahman, 2002, Experimental evaluation on the effect of minimal quantities of lubricant in milling, Int J Mach Tool Manuf, 42, 539, 10.1016/S0890-6955(01)00160-2 Stephenson, 2014, Rough turning Inconel 750 with supercritical CO2-based minimum quantity lubrication, J Mater Process Technol, 214, 673, 10.1016/j.jmatprotec.2013.10.003 Da Silva, 2020, Critical assessment of compacted graphite cast iron machinability in the milling process, J Manuf Process, 56, 63, 10.1016/j.jmapro.2020.04.061 Clarens, 2006, Feasibility of metalworking fluids delivered in supercritical carbon dioxide, J Manuf Process, 8, 47, 10.1016/S1526-6125(06)70101-3 Dang, 2020, Surface modification of ultrahigh strength 300M steel under supercritical carbon dioxide (scCO2)-assisted grinding process, J Manuf Process, 61, 1, 10.1016/j.jmapro.2020.11.001 Cordes, 2014, Next generation high performance cutting by use of carbon dioxide as cryogenics, Procedia CIRP, 14, 401, 10.1016/j.procir.2014.03.091 Supekar, 2012, Performance of supercritical carbon dioxide sprays as coolants and lubricants in representative metalworking operations, J Mater Process Technol, 212, 2652, 10.1016/j.jmatprotec.2012.07.020 Zhang, 2011 Helsing J. Grimvall G. Thermal conductivity of cast iron: models and analysis of experiments. J Appl Phys 1991; 70:1198. Cai, 2020, Cooling/lubrication performance of dry and supercritical CO2-based minimum quantity lubrication in peripheral milling Ti-6Al-4V, Int J Precis Eng Manuf-Green Technol, 8, 405, 10.1007/s40684-020-00194-7 Ucun, 2011, Numerical simulation of orthogonal machining process using multilayer and single-layer coated tools, Int J Adv Manuf Technol, 54, 899, 10.1007/s00170-010-3012-9 Bates, 1996, Study examines influences on machinability of iron castings, Mod Cast, 86, 36 Shaw, 1984 Tooptong, 2018, A comparative investigation on flank wear when turning three cast irons, Tribol Int, 120, 127, 10.1016/j.triboint.2017.12.025 Ma, 2016, Prediction of surface residual stress after end milling based on cutting force and temperature, J Mater Process Technol, 235, 41, 10.1016/j.jmatprotec.2016.04.002 Ming, 2019, Dynamic mechanical properties and machinability characteristics of selective laser melted and forged Ti6Al4V, J Mater Process Technol, 271, 284, 10.1016/j.jmatprotec.2019.04.015 El-Khabeery, 1989, Residual stress distribution caused by milling, Int J Mach Tool Manuf, 29, 391, 10.1016/0890-6955(89)90008-4 Segawa, 2004, Development of a new tool to generate compressive residual stress within a machined surface, Int J Mach Tool Manuf, 44, 1215, 10.1016/j.ijmachtools.2004.03.010 Da Silva, 2019, Analysis of the coefficient of friction at the workpiece-tool interface in milling of high strength compacted graphite cast irons, Wear, 426-427, 1646, 10.1016/j.wear.2019.01.111