A Thermodynamical theory of plastic spin and internal stress with dislocation density tensor

K. Shizawa, H. M. Zbib

研究成果: Article査読

20 被引用数 (Scopus)

抄録

A thermodynamical theory of elastoplasticity including kinematic hardening and dislocation density tensor is developed. The theory is self-consistent and is based on two fundamental principles of thermodynamics, i.e., the principle of increase of entropy and maximal entropy production rate. The thermodynamically consistent governing equations of plastic spin and back stress are rigorously derived. An expression for the plastic spin tensor is obtained from the constitutive equation of dislocation drift rate tensor and an expression for the back stress tensor is given as a balance equation expressing an equilibrium between internal stress and microstress conjugate to the dislocation density tensor. Moreover, it is shown that, in order to obtain a thermodynamically consistent theory for kinematic hardening, the free energy density should have the dislocation density tensor as one of its arguments.

本文言語English
ページ(範囲)247-253
ページ数7
ジャーナルJournal of Engineering Materials and Technology, Transactions of the ASME
121
2
DOI
出版ステータスPublished - 1999 4月

ASJC Scopus subject areas

  • 材料科学(全般)
  • 凝縮系物理学
  • 材料力学
  • 機械工学

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