Deformation error compensation in 5-Axis milling operations of turbine blades

被引:14
|
作者
Soori, Mohsen [1 ]
机构
[1] Univ Kyrenia, Dept Aeronaut Engn, Via Mersin 10, Kyrenia, North Cyprus, Turkiye
关键词
Deformation error; 5-Axis CNC machine tools; Modified Johnson-Cook model; Cutting forces; Cutting temperature; Virtual machining; TOOL DEFLECTION; ON-MACHINE; JOHNSON-COOK; FORCE MODEL; THIN; SIMULATION; PREDICTION; STRESS; PARTS;
D O I
10.1007/s40430-023-04230-w
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The precision and performance of machined flexible parts are under influence of deformation errors during end milling operations. Thus, prediction and compensation of deformation errors during milling operations of flexible parts can provide a key tool in accuracy enhancement of part production. In this study, an improved virtual machining system is proposed in order to assess and compensate deformation errors caused by cutting temperature and forces in 5-axis milling operations of flexible parts. The improved Johnson-Cook model is utilized to investigate the cumulative impact of strain rate and deformation temperatures on flow stress during milling operations of turbine blade. To estimate deformation errors caused by cutting forces and temperature on the workpiece and cutting tool, the finite element analysis is then applied. As a result, volumetric vectors of deformation error at each cutting location along the machining pathways are then generated in order to be compensated within new compensated machining tool paths. Thus, the deformation error created by cutting forces and temperature on the workpiece and cutting tool are compensated in order to enhance accuracy during 5-axis milling operation of flexible turbine blades. Experiments are carried out using a 5-axis CNC machine tool and errors are quantified using a CMM to verify the developed strategy in the study. As a consequence, precision of machining operations on flexible turbine blades can be enhanced by employing the developed virtual machining system in the study.
引用
收藏
页数:16
相关论文
共 50 条
  • [31] Deformation Control and Chatter Suppression in 5-axis Milling of Thin-walled Blade
    Wu, B. H.
    Luo, M.
    Zhang, D. H.
    Zhou, X.
    HIGH SPEED MACHINING, 2011, 188 : 314 - 318
  • [32] Automated thermal main spindle & B-axis error compensation of 5-axis machine tools
    Mayr, Josef
    Mueller, Michael
    Weikert, Sascha
    CIRP ANNALS-MANUFACTURING TECHNOLOGY, 2016, 65 (01) : 479 - 482
  • [33] Milling Force Modeling of Thin-walled Parts with 5-Axis Flank Milling Considering Workpiece Deformation
    Wei X.
    Zhao M.
    Yang Q.
    Cao Z.
    Mao J.
    Jixie Gongcheng Xuebao/Journal of Mechanical Engineering, 2022, 58 (07): : 317 - 324
  • [34] General tool setting error compensation method for 5-axis control ultraprecision machining
    Sono, Makoto
    Ishida, Tohru
    Teramoto, Koji
    Enomoto, Toshiyuki
    Takeuchi, Yoshimi
    Seimitsu Kogaku Kaishi/Journal of the Japan Society for Precision Engineering, 2007, 73 (10): : 1154 - 1158
  • [35] A practical system for 5-axis volumetric compensation
    Postlethwaite, SR
    Ford, DG
    LASER METROLOGY AND MACHINE PERFORMANCE IV, 1999, : 379 - 388
  • [36] Structural Kinematics and Error law Research of 5-Axis Turning-Milling Complex Centers
    Xie, Chun
    Zhang, Weimin
    MANUFACTURING PROCESSES AND SYSTEMS, PTS 1-2, 2011, 148-149 : 649 - 652
  • [37] CNC system of the 5-axis hybrid robot for milling
    Petko, Maciej
    Gac, Konrad
    Gora, Grzegorz
    Karpiel, Grzegorz
    Ochonski, Janusz
    Kobus, Konrad
    MECHATRONICS, 2016, 37 : 89 - 99
  • [38] Direct Interpolation of Tool Orientation in 5-axis Milling
    Shen Bin
    Qi Dangjin
    Fan Liuqun
    Zhu Zhihao
    MACHINERY, MATERIALS SCIENCE AND ENGINEERING APPLICATIONS, PTS 1 AND 2, 2011, 228-229 : 402 - +
  • [39] A STUDY ON THE 5-AXIS END MILLING FOR SCULPTURED SURFACES
    CHO, HD
    YANG, MY
    KSME JOURNAL, 1995, 9 (04): : 428 - 437
  • [40] Design and manufacture of complex surfaces with 5-axis milling
    Awan, K.A.
    Besant, C.B.
    International Conference on Computer-Aided Production Engineering, 1991,