A correction method for milling stability analysis based on local truncation error

被引:0
|
作者
Yi Wu
Youpeng You
Anmin Liu
Bin Deng
Tuo Ye
Weifang Chen
机构
[1] Nanjing University of Aeronautics and Astronautics,College of Mechanical and Electrical Engineering
[2] Hunan Institute of Technology,Research Institute of Automobile Parts Technology
关键词
Stability prediction; Chatter; Local truncation error; Linear multistep method; Milling processes;
D O I
暂无
中图分类号
学科分类号
摘要
The appearance of chatter vibration can severely affect the product quality and machining productivity. Hence, prediction of chatter stability is becoming increasingly significant to achieve stable milling operations. Based on local truncation error, this study develops a correction Milne-Simpson method (CMM) for chatter stability analysis by using two linear multistep methods. The dynamic model of milling operations embracing the self-excited vibration is represented by delay differential equations (DDEs). With the period of milling system being carved up into two different subintervals, two kinds of linear multistep methods are combined together by using local truncation error to estimate the state terms. Subsequently, two benchmark dynamic models and two typical discretization methods are employed to demonstrate the characteristics of CMM. The convergence rates and stability boundaries are analyzed in detail, and the contrastive results show that the CMM exhibits better prediction accuracy and provides more satisfactory calculation speed than the others under the same discrete parameters. Finally, for the purpose of verifying the validity and operability of CMM, modal impact experiment and actual cutting tests are performed on a CNC machine tool (EMV650). It is apparent that the predicted stability lobes show better coincidence with experimental results, which indicates that the CMM is of practicability and feasibility.
引用
收藏
页码:2873 / 2887
页数:14
相关论文
共 50 条
  • [1] A correction method for milling stability analysis based on local truncation error
    Wu, Yi
    You, Youpeng
    Liu, Anmin
    Deng, Bin
    Ye, Tuo
    Chen, Weifang
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2021, 115 (9-10): : 2873 - 2887
  • [2] Reliability modeling method based on state truncation and error bound analysis
    Peng Xiangyu
    Jiang Letian
    Xu Guozhi
    2006 INTERNATIONAL CONFERENCE ON COMMUNICATIONS, CIRCUITS AND SYSTEMS PROCEEDINGS, VOLS 1-4: VOL 1: SIGNAL PROCESSING, 2006, : 2791 - 2795
  • [3] Global stability of adaptive IIR filters based on the output error method and parameter truncation
    Radenkovic, M
    Bose, T
    CIRCUITS SYSTEMS AND SIGNAL PROCESSING, 2004, 23 (03) : 231 - 254
  • [4] Global Stability of Adaptive IIR Filters Based on the Output Error Method and Parameter Truncation
    Miloje Radenkovic
    Tamal Bose
    Circuits, Systems and Signal Processing, 2004, 23 : 231 - 254
  • [5] Stability analysis of TATWC based on UVA milling method
    Liu, Yuan
    Zhao, Li
    Sun, WenFang
    Wang, Qing
    ADVANCES IN MECHANICAL ENGINEERING, 2023, 15 (06)
  • [6] ON THE LOCAL ERROR AND THE LOCAL TRUNCATION ERROR OF LINEAR MULTISTEP METHODS
    LAMBERT, JD
    BIT, 1990, 30 (04): : 673 - 681
  • [7] A Legendre Polynomials Based Method for Stability Analysis of Milling Processes
    Ding, Ye
    Zhang, XiaoJian
    Ding, Han
    JOURNAL OF VIBRATION AND ACOUSTICS-TRANSACTIONS OF THE ASME, 2015, 137 (02):
  • [8] A spline-based method for stability analysis of milling processes
    Lu, Yaoan
    Ding, Ye
    Peng, Zhike
    Chen, Zezhong C.
    Zhu, Limin
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2017, 89 (9-12): : 2571 - 2586
  • [9] Stability Analysis in Milling Based on the Localized Differential Quadrature Method
    Mei, Yonggang
    He, Bingbing
    He, Shangwen
    Ren, Xin
    MICROMACHINES, 2024, 15 (01)
  • [10] A spline-based method for stability analysis of milling processes
    Yaoan Lu
    Ye Ding
    Zhike Peng
    Zezhong C. Chen
    Limin Zhu
    The International Journal of Advanced Manufacturing Technology, 2017, 89 : 2571 - 2586