Strain Field Measurement in Orthogonal Machining of a Titanium Alloy

被引:5
|
作者
Calamaz, M. [1 ]
Coupard, D. [1 ]
Girot, F. [1 ]
机构
[1] Arts & Metiers ParisTech, MPI Dept I2M, Esplanade Arts & Metiers, F-33405 Talence, France
来源
ADVANCES IN MATERIALS PROCESSING TECHNOLOGIES | 2012年 / 498卷
关键词
Machining; high-speed camera; strain field measurement; images correlation;
D O I
10.4028/www.scientific.net/AMR.498.237
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Improving the cutting processes by optimizing operating parameters necessarily involves understanding the thermo-mechanical mechanisms generated during chip formation. For this, numerical simulations are used to obtain the strain, stress and thermal fields near the tool tip. Nowadays, the validation of numerical simulation models of cutting is based on macroscopic results such as chip geometry and cutting forces generated by the machining process. However, it is not appropriate to validate local fields by macroscopic results. So, it is important to validate numerical cutting simulations on the bases of measured local strain fields. This article aims to study the feasibility of strain field measurement in orthogonal machining of the titanium alloy Ti64. A high-speed camera was used to provide data for segmented chip formation analysis. A microscope was related to the camera to observe an area of about 0.7x0.7mm(2) around the tool tip. An optimum adjustment of camera settings, lighting, workpiece surface preparation and cutting conditions allowed to obtain an acceptable image quality for analyzing with Correli [1] software. At low cutting speed, Correli qualitatively identify the position of the primary shear band and its evolution over the time.
引用
收藏
页码:237 / 242
页数:6
相关论文
共 50 条
  • [21] Surface roughness analysis in machining of titanium alloy
    Ramesh, S.
    Karunamoorthy, L.
    Palanikumar, K.
    MATERIALS AND MANUFACTURING PROCESSES, 2008, 23 (02) : 175 - 182
  • [22] Theoretical Determination of Temperature Field in Orthogonal Machining
    Joshua, Ojolo S.
    Oluwarotimi, Ismail S.
    Tolu, Yusuf O.
    INTERNATIONAL JOURNAL OF ENGINEERING AND TECHNOLOGY INNOVATION, 2013, 3 (04) : 259 - 270
  • [23] Bibliometric analysis of machining of titanium alloy research
    Gaurav, Gaurav
    Sharma, Abhay
    Dangayach, G. S.
    Meena, M. L.
    MATERIALS TODAY-PROCEEDINGS, 2021, 44 : 4031 - 4038
  • [24] Air Jet Assisted Machining of Titanium Alloy
    Obikawa, Toshiyuki
    Funai, Kazuhiro
    Kamata, Yasuhiro
    JOURNAL OF ADVANCED MECHANICAL DESIGN SYSTEMS AND MANUFACTURING, 2011, 5 (02): : 139 - 149
  • [25] Numerical simulation of titanium alloy machining in electric discharge machining process
    Xie Bao-cheng
    Wang Yu-kui
    Wang Zhen-long
    Zhao Wang-sheng
    TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2011, 21 : S434 - S439
  • [26] Full-Field Strain and Failure Analysis of Titanium Alloy Diamond Lattice
    Distefano, Fabio
    Rizzo, Daniele
    Briguglio, Giovanni
    Crupi, Vincenzo
    Epasto, Gabriella
    METALS, 2024, 14 (07)
  • [27] Overflow-assisted laser machining of titanium alloy: surface characteristics and temperature field modeling
    Tangwarodomnukun, Viboon
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2017, 88 (1-4): : 147 - 158
  • [28] Overflow-assisted laser machining of titanium alloy: surface characteristics and temperature field modeling
    Viboon Tangwarodomnukun
    The International Journal of Advanced Manufacturing Technology, 2017, 88 : 147 - 158
  • [29] Finite element simulation of cutting forces in orthogonal machining of titanium alloy Ti-6Al-4V
    Kandráč, Ladislav
    Maňková, Ildikó
    Vrabeľ, Marek
    Beňo, Jozef
    Applied Mechanics and Materials, 2014, 474 : 192 - 199
  • [30] Large strain deformation field in machining
    Lee, Seongeyl
    Hwang, Jihong
    Shankar, M. Ravi
    Chandrasekar, Srinivasan
    Compton, W. Dale
    METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2006, 37A (05): : 1633 - 1643