Does plastic anisotropy affect the thermo-mechanical coupling in steel?

被引:6
|
作者
Goviazin, G. G. [1 ]
Shirizly, A. [1 ,2 ]
Rittel, D. [1 ]
机构
[1] Technion Israel Inst Technol, Fac Mech Engn, IL-32000 Haifa, Israel
[2] Rafael, POB 2250 774, IL-3102102 Haifa, Israel
关键词
Taylor-Quinney coefficient; Anisotropy; Wire and arc additive manufacturing (WAAM); 316L stainless steel; Thermo-mechanical coupling; STRAIN RATE DEFORMATION; MECHANICAL-PROPERTIES; STORED ENERGY; SHEAR BANDS; WORK; HEAT; CONVERSION; MICROSTRUCTURE; MG;
D O I
10.1016/j.ijengsci.2023.103852
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The Taylor-Quinney coefficient (TQC) quantifies the ratio of thermal to plastic work in a (dynamically) deforming specimen. Its importance lies in the determination of the material self -heating under shock which might influence the properties of the materials. Most work to date is based on isotropically deforming specimens, so that the determined global quantities exhibit no spatial variation or anisotropy. Even the few existing works on anisotropic material were carried out using an average stress-strain relation, eliminating spatial dependency.This study presents experimental and numerical results for Wire and Arc Additive Manufacturing (WAAM) 316 L stainless specimens that deform from a standard initial cylindrical shape into well-defined ellipsoids upon impact as in the case of an anisotropic material. The measured thermal evolutions across the major and the minor axes of the ellipsoid are quite different, which might suggest that each direction possesses its own TQC when average plastic work is used. Numerical modeling allows for determining the local stress and strains on the el-lipsoid's surface. Using this data, our measurements show that the TQC is not affected by the orientation of the measurements. In other words, and in contrast to previous works, despite plastic anisotropy, the TQC remains isotropic.
引用
收藏
页数:16
相关论文
共 50 条
  • [1] Thermo-mechanical coupling strategies in elastic–plastic problems
    M. Vaz
    M. R. Lange
    Continuum Mechanics and Thermodynamics, 2017, 29 : 373 - 383
  • [2] Thermo-mechanical coupling strategies in elastic-plastic problems
    Vaz, M., Jr.
    Lange, M. R.
    CONTINUUM MECHANICS AND THERMODYNAMICS, 2017, 29 (02) : 373 - 383
  • [3] Grain size-induced thermo-mechanical coupling in zirconium thin films
    Wang, Baoming
    Pulavarthy, Raghu
    Haque, M. A.
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2016, 123 (02) : 1197 - 1204
  • [4] Research of inverse problem of thermo-mechanical coupling
    Xue Q.
    Zhang X.
    Jixie Gongcheng Xuebao/Journal of Mechanical Engineering, 2010, 46 (18): : 157 - 161+168
  • [5] Formation Mechanism in Alloy Steel Rolling Process Using Thermo-mechanical Coupling Method
    杨理诚
    JournalofWuhanUniversityofTechnology(MaterialsScienceEdition), 2012, 27 (03) : 422 - 426
  • [6] Formation mechanism in alloy steel rolling process using thermo-mechanical coupling method
    Licheng Yang
    Jinchen Ji
    Jinxiang Hu
    Journal of Wuhan University of Technology-Mater. Sci. Ed., 2012, 27 : 422 - 426
  • [7] Formation mechanism in alloy steel rolling process using thermo-mechanical coupling method
    Yang Licheng
    Ji Jinchen
    Hu Jinxiang
    JOURNAL OF WUHAN UNIVERSITY OF TECHNOLOGY-MATERIALS SCIENCE EDITION, 2012, 27 (03): : 422 - 426
  • [8] Thermo-mechanical coupling in cylindrical bending of sandwich plates
    Pilipchuk, V. N.
    Berdichevsky, V. L.
    Ibrahim, R. A.
    COMPOSITE STRUCTURES, 2010, 92 (11) : 2632 - 2640
  • [9] A Study of the Friction Characteristics of Rubber Thermo-Mechanical Coupling
    Liu, Junyu
    Wang, Meng
    Yin, Haishan
    POLYMERS, 2024, 16 (05)
  • [10] Thermo-mechanical coupling in constitutive modeling of dissipative materials
    Egner, Wladyslaw
    Egner, Halina
    INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2016, 91 : 78 - 88