Analytical prediction of shear angle and frictional behaviour in vibration-assisted cutting

被引:15
作者
Bai, Wei [1 ]
Roy, Anish [2 ]
Guo, Lingxi [3 ]
Xu, Jianfeng [1 ]
Silberschmidt, Vadim V. [2 ]
机构
[1] Huazhong Univ Sci & Technol, State Key Lab Digital Mfg Equipment & Technol, Wuhan 430074, Peoples R China
[2] Loughborough Univ, Wolfson Sch Mech Elect & Mfg Engn, Loughborough LE11 3TU, Leics, England
[3] Shanghai Aerosp Control Technol Inst, Shanghai 201109, Peoples R China
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
Vibration-assisted cutting; Shear angle; Tool-chip contact length; Non-equidistant shear zone; Tool-chip sliding-sticking zone; Analytical model;
D O I
10.1016/j.jmapro.2020.12.026
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Vibration-assisted cutting (VAC), a promising technique, proved to enhance the machinability of difficult-to-cut materials. Its significant superiority with regard to conventional cutting (CC) is considered to be closely related to variation of a shear angle in the primary shear zone and specific frictional behaviour at tool-chip interface. This paper analyses kinematics of VAC, focusing on critical stages of tool-workpiece interaction. Based on the evolution of kinematic parameters, a transient shear angle and a tool-chip contact length are investigated in a cycle according to these stages. To predict the transient parameters, an analytical model of the cutting process is proposed based on non-equidistant shear-zone and tool-chip sliding-sticking zone theories. This model for VAC can not only predict the dominant parameters of the cutting process (e.g., cutting force, friction coefficient), but also the secondary ones (e.g., shear strain). Experimental validation of the developed model is performed with orthogonal VAC of titanium alloy, and the shear angles are measured with optical microscopy of chip samples. For various process parameters, the effective shear angle in VAC is larger than that in CC. However, the average shear angle in VAC is smaller than the shear angle in CC. The proposed model can not only effectively predict the shear angle and frictional behaviour in VAC, but also other process parameters in a vibration cycle, enriching the theory of the VAC process.
引用
收藏
页码:37 / 46
页数:10
相关论文
共 23 条
  • [1] Effect of Ultrasonic Vibrations on Chip-Tool Contact Zone in Turning of AISI304
    Amini, S.
    Kazemiyoun, M.
    [J]. MATERIALS AND MANUFACTURING PROCESSES, 2014, 29 (05) : 627 - 633
  • [2] An Analytical Model for Determining the Shear Angle in 1D Vibration-Assisted Micro Machining
    Arefin S.
    Zhang X.Q.
    Anantharajan S.K.
    Liu K.
    Neo D.W.K.
    [J]. Nanomanufacturing and Metrology, 2019, 2 (04) : 199 - 214
  • [3] Hybrid modelling of sliding-sticking zones at the tool-chip interface under dry machining and tool wear analysis
    Bahi, S.
    Nouari, M.
    Moufki, A.
    El Mansori, M.
    Molinari, A.
    [J]. WEAR, 2012, 286 : 45 - 54
  • [4] Improved analytical prediction of chip formation in orthogonal cutting of titanium alloy Ti6Al4V
    Bai, Wei
    Sun, Ronglei
    Roy, Anish
    Silberschmidt, Vadim V.
    [J]. INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2017, 133 : 357 - 367
  • [5] Microstructural evolution of Ti6A14V in ultrasonically assisted cutting: Numerical modelling and experimental analysis
    Bai, Wei
    Sun, Ronglei
    Leopold, Jurgen
    Silberschmidt, Vadim V.
    [J]. ULTRASONICS, 2017, 78 : 70 - 82
  • [6] Analysis and modeling of force in orthogonal elliptical vibration cutting
    Bai, Wei
    Sun, Ronglei
    Gao, Yuan
    Leopold, Juergen
    [J]. INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2016, 83 (5-8) : 1025 - 1036
  • [7] Review of vibration-assisted machining
    Brehl, D. E.
    Dow, T. A.
    [J]. PRECISION ENGINEERING-JOURNAL OF THE INTERNATIONAL SOCIETIES FOR PRECISION ENGINEERING AND NANOTECHNOLOGY, 2008, 32 (03): : 153 - 172
  • [8] Childs T.H.C., 2000, METAL MACHINING THEO
  • [9] Friction modelling in metal cutting
    Childs, THC
    [J]. WEAR, 2006, 260 (03) : 310 - 318
  • [10] Hu Y, 1989, J GUANGXI U NAT SCI, V4, P24