[1] GRIMMERT A, PACHNEK F, WIEDERKEHR P. Temperature modeling of creep-feed grinding processes for nickel-based superalloys with variable heat flux distribution[J]. CIRP Journal of Manufacturing Science and Technology,2023,41:477-489. [2] 丁子珊,滕益康,郭淼现,等. 考虑微观影响的磨削残余应力解析模型研究[J]. 机械工程学报,2023,59(23):372-390. DING Zishan,TENG Yikang,GUO Miaoxian,et al. Research on analytical model of grinding residual stress considering the influence of microstructure[J]. Journal of Mechanical Engineering,2023,59(23):372-390. [3] 郭维诚,孙高翔,丁子珊,等. 考虑微观晶粒的磨削相变分析与工艺优化研究[J]. 机械工程学报,2022, 58(11):269-281. GUO Weicheng,SUN Gaoxiang,DING Zishan,et al. Research on phase transformation analysis and process optimization of grinding considering microscopic grains[J]. Journal of Mechanical Engineering,2022, 58(11):269-281. [4] ZHANG Jianqiu,SHANG Xunkun,HE Binbin,et al. Towards understanding the crack suppression mechanism in brittle materials with high grinding speed at different temperatures[J]. International Journal of Machine Tools and Manufacture,2023,193:104088. [5] GUO C,MALKIN S. Inverse heat transfer analysis of grinding,part 1:Methods[J]. Journal of Engineering for Industry,1996,118(1):137-142. [6] KIM H,KIM N,KWAK J. Heat flux distribution model by sequential algorithm of inverse heat transfer for determining workpiece temperature in creep feed grinding[J]. International Journal of Machine Tools and Manufacture,2006,46(15):2086-2093. [7] LAVISSE B,LEFEBVRE A,TORRANCE A,et al. The effects of the flow rate and speed of lubricoolant jets on heat transfer in the contact zone when grinding a nitrided steel[J]. Journal of Manufacturing Processes,2018,35:233-243. [8] ROWE W,BLACK S,MILLS B,et al. Analysis of grinding temperatures by energy partitioning[J]. Proceedings of the Institution of Mechanical Engineers Part B Journal of Engineering Manufacture,1996, 210(62):579-588. [9] 金滩,马鑫,胡浩,等. 镍基高温合金深切磨削接触区内流体对流换热系数分布反推方法研究[J]. 机械工程学报,2022,58(15):55-62. JIN Tan,MA Xin,HU Hao,et al. Inverse approach to derive the distribution of convection heat transfer coefficient of grinding fluid within grinding zone for deep grinding of nickel based super alloy[J]. Journal of Mechanical Engineering,2022,58(15):55-62. [10] 高航,郑焕文,宋振武. 立轴平面强力磨削温度的试验研究[J]. 东北工学院学报,1991,12(4):399-404. GAO Hang, ZHENG Huanwen, SONG Zhengwu. Experimental study of the temperature in vertical spindle surface heavy grinding[J]. Journal of Northeast University of Technology,1991,12(4):399-404. [11] STEPHENSON D,VESELOVAC D,MANLEY S,et al. Ultra-precision grinding of hard steels[J]. Precision Engineering,2001,25:336-345. [12] LI Xun,CHEN Zhitong,CHEN Wuyi. Suppression of surface burn in grinding of titanium alloy TC4 using a self-inhaling internal cooling wheel[J]. Chinese Journal of Aeronautics,2011,24(1):96-101. [13] PENG Ruitao,TONG Jiawei,TANG Xinzi,et a1. Application of a pressurized internal cooling method in grinding inconel 718:Modeling-simulation and testing-validation[J]. International Journal of Mechanical Sciences,2020,189:105985. [14] SOLHTALAB A,ADIBI H,ESMAEILZARE A,et al. Cup wheel grinding-induced subsurface damage in optical glass BK7:An experimental,theoretical and numerical investigation[J]. Precision Engineering, 2019, 57:162-175. [15] QU Meina,XIE Guizhi,JIN Tan,et al. Realization of high efficiency and low damage machining of anisotropic KDP crystal by grinding[J]. Precision Engineering,2019,55:464-473. [16] LIN B,YUAN Q,ZHANG H,et al. Theoretical analysis of surface grinding temperature field by cup wheel[J]. Key Engineering Materials,2004,258:254-258. [17] HUANG H, XU X. Interfacial interactions between diamond disk and granite during vertical spindle grinding[J]. Wear,2004,256:623-629. [18] 曲美娜. KDP晶体精密磨削理论与关键工艺研究[D]. 长沙:湖南大学,2019. QU Meina. Research on theory and key technology in precision grinding of KDP crystal[D]. Changsha:Hunan University,2019. [19] QU Meina,JIN Tan,XIE Guizhi,et al. Thermal damage control for dry grinding of MgO/CeO2 glass ceramic[J]. The International Journal of Advanced Manufacturing Technology,2019,105:3387-3396. [20] WANG Ruiqin,DAI Shijie,ZHANG Huibo,et al. The temperature field study on the annular heat source model in large surface grinding by cup wheel[J]. The International Journal of Advanced Manufacturing Technology,2017,93:3261-3273. [21] ZHANG Z,SHANG W,DING H,et al. Thermal model and temperature field in rail grinding process based on a moving heat source[J]. Applied Thermal Engineering, 2016,106:855-864. [22] BADGER J,DRAZUMERIC R,KRAJNIK P. Grinding of cermets with cup-wheels[J]. Materials Science Forum, 2016,874:115-123. [23] GAO Binhua,BAO Wencheng,JIN Tan,et al. Variation of wheel-work contact geometry and temperature responses:Thermal modeling of cup wheel grinding[J]. International Journal of Mechanical Sciences,2021,196:106305. [24] GAO Binhua,JIN Tan,QU Meina,et al. Force modeling of vertical surface grinding considering wheel-workpiece contact geometry[J]. International Journal of Mechanical Sciences,2024,269:108999. [25] JIN Tan,YI Jun,LI Ping. Temperature distributions in form grinding of involute gears[J]. International Journal of Advanced Manufacturing Technology,2017,88(9-12):1-12. [26] ZHANG Xiaofeng,LIN Bin,XI Hui. Validation of an analytical model for grinding temperatures in surface grinding by cup wheel with numerical and experimental results[J]. International Journal of Heat and Mass Transfer,2013,58:29-42. [27] JIN Tan,STEPHENSON D. Analysis of grinding chip temperature and energy partitioning in high-efficiency deep grinding[J]. Proceedings of the Institution of Mechanical Engineers. Part B:Engineering Manufacture. 2006,220:615-625. [28] 谢桂芝. 工程陶瓷高速深磨机理及热现象研究[D]. 长沙:湖南大学,2009. XIE Guizhi. The investigation of mechanism and thermal phenomenon in high speed deep grinding of advanced ceramics[D]. Changsha:Hunan University,2009. [29] JIN Tan,STEPHENSON D. Heat flux distributions and convective heat transfer in deep grinding[J]. International Journal of Machine Tools and Manufacture,2006,46:1862-1868. |