Finite element analysis of orthogonal cutting of cellular metals: influence of cutting conditions on chip formation and surface damage

被引:0
|
作者
Rafael Guerra-Silva
Uwe Teicher
Steffen Ihlenfeldt
Arístides González-Zamora
机构
[1] Pontificia Universidad Católica de Valparaíso,School of Mechanical Engineering
[2] Fraunhofer Institute for Machine Tools and Forming Technology IWU,Technische Universität Dresden
[3] Institute of Manufacturing Technology,School of Mechanical Engineering
[4] Universidad Central de Venezuela,undefined
关键词
Cellular materials; Finite element method; Orthogonal cutting; Machining;
D O I
暂无
中图分类号
学科分类号
摘要
Cellular metals are highly porous materials with very distinctive properties. Although it is possible to manufacture near-net-shape parts of these materials with some manufacturing processes, additional machining operations are usually required. However, as conventional machining causes surface damage and poor precision, finishing operations are often performed using alternative, cost-intensive methods. In the present work, a mesoscopic finite element model was used to analyze the influence of cutting conditions and tool geometry in the orthogonal cutting process of cellular metals. The study considered the variability of the mesostructure, as the behavior of multiple cell arrangements under cutting conditions was evaluated. The influence of cutting speed, depth of cut, and tool rake angle on chip formation and surface damage was explored. Chip formation at higher cutting speed was different, as chip fragmentation was visible. Tools with a positive rake angle and a higher cutting speed led to a decrease in subsurface damage. Nevertheless, surface quality is markedly dependent on the stochastic nature of the mesostructure, as material separation is defined by the response of the cell array. Hence, a set of cutting parameters for optimal surface quality could not be identified.
引用
收藏
页码:1267 / 1280
页数:13
相关论文
共 50 条
  • [21] Finite element analysis of adiabatic shear band formation during orthogonal metal cutting
    Rhim, Sung-Han
    Park, Hyung-Wook
    Oh, Soo-Ik
    MECHANICAL BEHAVIOR OF MATERIALS X, PTS 1AND 2, 2007, 345-346 : 885 - +
  • [22] A finite-element-analysis of orthogonal metal cutting processes
    Oh, JD
    Aurich, JC
    MATERIALS PROCESSING AND DESIGN: MODELING, SIMULATION AND APPLICATIONS, PTS 1 AND 2, 2004, 712 : 1390 - 1395
  • [23] Finite element simulation for burr formation near the exit of orthogonal cutting
    W. J. Deng
    W. Xia
    Y. Tang
    The International Journal of Advanced Manufacturing Technology, 2009, 43 : 1035 - 1045
  • [24] Finite element simulation for burr formation near the exit of orthogonal cutting
    Deng, W. J.
    Xia, W.
    Tang, Y.
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2009, 43 (9-10): : 1035 - 1045
  • [25] MECHANICS OF CONTINUOUS CHIP FORMATION IN ORTHOGONAL CUTTING
    CONNOLLY, R
    RUBENSTE.C
    INTERNATIONAL JOURNAL OF MACHINE TOOL DESIGN AND RESEARCH, 1968, 8 (03): : 159 - &
  • [26] On chip formation mechanism in orthogonal cutting of bone
    Liao, Zhirong
    Axinte, Dragos A.
    INTERNATIONAL JOURNAL OF MACHINE TOOLS & MANUFACTURE, 2016, 102 : 41 - 55
  • [27] Chip formation in orthogonal cutting of hardened steel
    Nakano, T
    Matsuo, T
    PROGRESS OF MACHINING TECHNOLOGY: WITH SOME TOPICS IN ADVANCED MANUFACTURING TECHNOLOGY, 2002, : 766 - 771
  • [28] Finite element simulation of orthogonal metal cutting
    Carrino, L
    Giuliano, G
    Napolitano, G
    COMPUTATIONAL METHODS IN CONTACT MECHANICS VI, 2003, 8 : 105 - 114
  • [29] Finite element modeling of orthogonal metal cutting
    Komvopoulos, K.
    Erpenbeck, S.A.
    Journal of engineering for industry, 1991, 113 (03): : 253 - 267
  • [30] Finite element simulation of orthogonal metal cutting
    Shih, A.J.
    Journal of engineering for industry, 1995, 117 (01): : 84 - 93