Evaluation of the High-Speed Drilling Technique for the Incremental Hole-Drilling Method

被引:0
|
作者
A. Nau
B. Scholtes
机构
[1] Institute of Materials Engineering - Metallic Materials,
[2] Kassel University,undefined
来源
Experimental Mechanics | 2013年 / 53卷
关键词
Incremental hole-drilling method; High-speed drilling; Drilling technique; Orbital; Differential method;
D O I
暂无
中图分类号
学科分类号
摘要
The incremental hole-drilling method is frequently used for residual stress depth distribution analyses, due to its fast and economical experimental execution. Depending on the planned use of the component, the drilled hole that is made to measure the residual stress can often be repaired or ignored if it does not affect the intended use of the part. Nevertheless an important experimental issue and assumption is the introduction of an ideal cylindrical hole into the component without additional plastic deformation. Although high-speed drilling is well established the consequences of the resulting hole geometries compared to ideal assumptions are not well known. Therefore, a detailed comparison between different bits and drilling techniques was carried out and is discussed in this paper in order to detect the best experimental conditions and to find out reasons especially for the lack of accuracy of the hole-drilling method for the first increments close to the specimens surface. It comes out that the orbital drilling with common used six-blade bits results in the best compromise of an ideal cylindrical hole and centricity to the center of the strain gage rosette. In the case of conventional drilling the hole geometry differs from the ideal one if six-blade bits were used due to the influence of chamfers at the cutting edges and a non 180° plane end face and also in the case of a two-blade bit due to a non 180° plane end face and the tendency to more eccentric holes. Diamond bits cannot be recommended under all tested conditions due to their geometrical undefined shape.
引用
收藏
页码:531 / 542
页数:11
相关论文
共 50 条
  • [41] A Windows-Based Software Package to Evaluate Residual Stresses by the Incremental Hole-Drilling Technique
    Nobre, J. P.
    Dias, A. M.
    Domingos, A. J.
    Morais, R.
    Reis, M. J. C. S.
    [J]. COMPUTER APPLICATIONS IN ENGINEERING EDUCATION, 2009, 17 (03) : 351 - 362
  • [42] A FINITE-ELEMENT TECHNIQUE TO ANALYZE THE DATA MEASURED BY THE HOLE-DRILLING METHOD
    SHAW, D
    CHEN, HY
    [J]. EXPERIMENTAL MECHANICS, 1990, 30 (02) : 120 - 123
  • [43] Probabilistic Evaluation of Residual Stresses for Hole-Drilling Tests
    Frydrysek, Karel
    Pecenka, Lubos
    [J]. PROCEEDINGS OF 2014 INTERNATIONAL CONFERENCE ON MECHANICS AND MECHANICAL ENGINEERING, 2014, 684 : 400 - 406
  • [44] Plastic deformation during application of the hole-drilling method
    Gibmeier, J
    Kornmeier, M
    Scholtes, B
    [J]. ECRS 5: PROCEEDINGS OF THE FIFTH EUROPEAN CONFERENCE ON RESIDUAL STRESSES, 2000, 347-3 : 131 - 136
  • [45] SIMPLIFICATION OF HOLE-DRILLING METHOD OF RESIDUAL STRESS MEASUREMENT
    BUSH, AJ
    KROMER, FJ
    [J]. ISA TRANSACTIONS, 1973, 12 (03) : 249 - 259
  • [46] The accuracy of residual stress measurement by the hole-drilling method
    Sasaki, K
    Kishida, M
    Itoh, T
    [J]. EXPERIMENTAL MECHANICS, 1997, 37 (03) : 250 - 257
  • [47] Improvement and validation of residual stress measurement in composite laminates using the incremental hole-drilling method
    Liu, Xiaodong
    Wang, Xiaodong
    Guan, Zhidong
    Jiang, Ting
    Geng, Kunhao
    Li, Zengshan
    [J]. MECHANICS OF MATERIALS, 2021, 154
  • [48] Quantification of residual stresses in the weld by the hole-drilling method
    Trebuna, F.
    Simcak, F.
    Bocko, J.
    Sarga, P.
    Trebuna, P.
    Pastor, M.
    Mihok, J.
    [J]. METALURGIJA, 2008, 47 (02): : 133 - 137
  • [49] The accuracy of residual stress measurement by the hole-drilling method
    K. Sasaki
    M. Kishida
    T. Itoh
    [J]. Experimental Mechanics, 1997, 37 : 250 - 257
  • [50] Increasing of hole-drilling speed by using of packs of laser pulses
    Gorny, SG
    Grigoriev, AM
    Lopota, VA
    Turichin, GA
    [J]. COMPUTER-CONTROLLED MICROSHAPING, 1999, 3822 : 163 - 169