Machinability and cutting force modeling of 7055 aluminum alloy with wide temperature range based on dry cutting

被引:0
|
作者
Ping Zhang
Xian Cao
Xiancheng Zhang
Youqiang Wang
机构
[1] East China University of Science and Technology,Key Laboratory of Pressure Systems and Safety, Ministry of Education
[2] Qingdao University of Technology,School of Mechanical Engineering
关键词
7055 aluminum; Wide temperature range; Machinability; Work hardening; Prediction model;
D O I
暂无
中图分类号
学科分类号
摘要
The machinability of 7055 aluminum alloy with wide temperature range is examined, with focus on the three cutting forces, surface quality and work hardening of the material under low, medium, and high temperatures. The results demonstrate that, under low temperature, the work hardening depth of 7055 aluminum alloy is almost insensitive to the cutting speed, whereas at a higher cutting speed, the work hardening degree of the material first decreases and then increases; both the work hardening degree and hardening depth are significantly positively correlative to the cutting depth: the work hardening degree is positively correlative, though not so significantly, to the feed rate, while the work hardening depth is insensitive to the feed rate and remains at 100 μm in all cases. Under high temperature, the work hardening degree of 7055 aluminum alloy is positively correlative to the cutting speed; at depths smaller than 80 μm below the machined surface, the work hardening degree is negatively correlative to the cutting depth; at depths larger than 80 μm below the cutting surface, the work hardening degree of the material becomes significantly positively correlative to the cutting depth. A mathematical model of three cutting forces in dry cutting with wide temperature range is established based on wide temperature-range dynamic impact experimental results and the orthogonal cutting model, and modified using the LMSE (least mean square error) principle. The errors between the predicted and experimental three cutting forces, after modification, are all smaller than 10%, which is within the permissible limit of error. This verifies that the modified three cutting force prediction model can predict cutting forces accurately.
引用
收藏
页码:2787 / 2808
页数:21
相关论文
共 50 条
  • [31] Simulation and Experimental Study on Temperature in Cryogenic Cutting of Titanium Aluminum Alloy
    Wang, Xiangyu
    Qiu, Wenhao
    Niu, Jintao
    Liu, Guoliang
    Fu, Xiuli
    Guo, Peiquan
    Qiao, Yang
    Jixie Gongcheng Xuebao/Journal of Mechanical Engineering, 2024, 60 (19): : 318 - 331
  • [32] Experiential formula of cutting force established in turning high temperature alloy
    Yu, Fengyun
    Wu, Lin
    Wang, He
    Fu, Yunliang
    International Journal of Control and Automation, 2015, 8 (10): : 287 - 294
  • [33] CUTTING TEMPERATURE AND FORCE WHEN MACHINING HEAT-RESISTING ALLOY
    DUBINSKI, SM
    KHOROSHK.VD
    RUSSIAN ENGINEERING JOURNAL-USSR, 1966, 46 (10): : 78 - +
  • [34] CUTTING FORCE OF LOW-ALLOY STEELS IN THE CUTTING SPEED RANGE IN WHICH A BUILT-UP EDGE FORMS
    YAMAMOTO, S
    NAKAJIMA, H
    MIYAJI, H
    TETSU TO HAGANE-JOURNAL OF THE IRON AND STEEL INSTITUTE OF JAPAN, 1994, 80 (06): : 469 - 474
  • [35] The study of the influence of tool wear on cutting temperature in diamond ultra-precision cutting of aluminum alloy mirror
    Zhang Y.
    Dong G.
    Zhou M.
    1600, Trans Tech Publications Ltd (693): : 982 - 989
  • [36] Turning Process Modeling and Cutting Force Investigation based on Finite Element Analysis and Cutting Experiments
    Cao, Yan
    Chen, Hue
    Zhao, Haixia
    ADVANCED MANUFACTURING TECHNOLOGY, PTS 1-3, 2011, 314-316 : 900 - 903
  • [37] New method and mechanism for quickly obtaining quenching sensitivity temperature range of 7055 aluminum alloy
    Sheng, Xiao-fei
    He, Cun-xia
    Cheng, Ya-juan
    Rao, Xiao-xiao
    He, Guo-ai
    TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2023, 33 (01) : 36 - 45
  • [38] Mean flank temperature measurement in high speed dry cutting of magnesium alloy
    Fang, FZ
    Lee, LC
    Liu, XD
    JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2005, 167 (01) : 119 - 123
  • [39] High-performance end milling of aluminum alloy: Influence of different serrated cutting edge tool shapes on the cutting force
    Burek, J.
    Plodzien, M.
    Zylka, C.
    Sulkowicz, P.
    ADVANCES IN PRODUCTION ENGINEERING & MANAGEMENT, 2019, 14 (04): : 494 - 506
  • [40] Modeling of friction force on the rake face under the influence of cutting temperature
    1600, Japan Society for Precision Engineering (79):