Effect of ball end mills errors on cutting forces

被引:1
|
作者
Belguith, Rami [1 ,3 ]
Baili, Maher [2 ]
Sai, Lotfi [1 ,4 ]
Dessein, Gilles [2 ]
Bouzid, Wassila [1 ]
机构
[1] Univ Sfax, Unite Genie Prod Mecan & Mat, ENIS, Sfax, Tunisia
[2] ENIT, Lab Genie Prod, F-65000 Tarbes, France
[3] Univ Artois, LGCgE, Technoparc Futura, F-62400 Bethune, France
[4] Univ Carthage, IPEIN, Campus Mrezguaa, Nabeul 8000, Tunisia
关键词
Equivalent radius; Cutter workpiece engagement region; Thermomechanical; Cutting forces; Machining errors; MODEL; COEFFICIENTS; ECCENTRICITY; VIBRATIONS;
D O I
10.1007/s40430-023-04274-y
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The size of the removed chip area in 3-axis high speed ball end milling is affected by cutting Parameters, and changes throughout the point of contact between the cutter and the workpiece. This change is primarily caused by bending, runout, and vibrations resulting from the cutting forces. A new method has been created to calculate the equivalent radius of the tool, based on these machining defects, which is then used to determine the new cutting geometry parameters such as the limitations of the cutter workpiece engagement (CWE) region, uncut chip thickness, and cutting width. The CWE region is divided into three zones according to the path's nature and intersections for the elementary cutting edges. To establish a milling force predictive model for three-axis ball end milling, the thermomechanical approach is used, including these machining errors. To validate the model, tests were performed on AISI 4142 steel with a coated carbide ball end tool. The instantaneous values of cutting forces were measured, and the simulated and measured values showed good agreement, with a difference not exceeding around 8, 61% for the X component, 10% for the Y component, and 1% for the Z component in terms of maximal value.
引用
收藏
页数:18
相关论文
共 50 条
  • [31] Effective prediction of cutting forces and static form errors in flexible end milling
    Wan, M
    Zhang, WH
    PROGRESS OF MACHINING TECHNOLOGY, 2004, : 792 - 797
  • [32] Measurement of impact forces in ball mills: a reanalysis
    Austin, LG
    MINERALS & METALLURGICAL PROCESSING, 2001, 18 (04) : 228 - 230
  • [33] Measurement of impact forces in ball mills: a reanalysis
    L. G. Austin
    Mining, Metallurgy & Exploration, 2001, 18 : 228 - 230
  • [34] Measurement of impact forces in ball mills: A reanalysis
    Austin, L.G.
    Minerals and Metallurgical Processing, 2001, 18 (04): : 228 - 230
  • [35] THE EFFECT OF RUNOUT ON CUTTING GEOMETRY AND FORCES IN END MILLING
    KLINE, WA
    DEVOR, RE
    INTERNATIONAL JOURNAL OF MACHINE TOOLS & MANUFACTURE, 1983, 23 (2-3): : 123 - 140
  • [36] Parametric modeling of ball end mills
    Ryabov E.A.
    Yurasov S.Y.
    Yurasova O.I.
    Russian Engineering Research, 2016, 36 (9) : 784 - 785
  • [37] Estimation and experimental validation of cutting forces in ball-end milling of sculptured surfaces
    Sun, Yuwen
    Ren, Fei
    Guo, Dongming
    Jia, Zhenyuan
    INTERNATIONAL JOURNAL OF MACHINE TOOLS & MANUFACTURE, 2009, 49 (15): : 1238 - 1244
  • [38] Cutting Forces Calculation and Experimental Measurement for 5-axis Ball End Milling
    Bolsunovsky, S.
    Vermel, V.
    Gubanov, G.
    14TH CIRP CONFERENCE ON MODELING OF MACHINING OPERATIONS (CIRP CMMO), 2013, 8 : 235 - 239
  • [39] Analysis of Cutting Forces in Helical Ball-end Milling Based on Coordinate Conversion
    Wu, Weiguo
    Wang, Guicheng
    Shen, Chungen
    MANUFACTURING ENGINEERING AND AUTOMATION I, PTS 1-3, 2011, 139-141 : 917 - +
  • [40] Cutting characteristics of carbide end mills
    Kitaura, Seiichiro
    Yamasaki, Hirofumi
    Machida, Masahiro
    Yoshida, Tsutomu
    Wakihira, Kouichiro
    KOBELCO Technology Review, 1994, (17): : 16 - 19