학술논문

Polycrystal thermo-elasticity revisited: theory and applications
Document Type
article
Source
Comptes Rendus. Mécanique, Vol 348, Iss 10-11, Pp 877-891 (2020)
Subject
Homogenization
Self-consistent methods
Thermo-elasticity
Polycrystals
Anisotropy
Metals
Materials of engineering and construction. Mechanics of materials
TA401-492
Language
English
French
ISSN
1873-7234
Abstract
The self-consistent (SC) theory is the most commonly used mean-field homogenization method to estimate the mechanical response behavior of polycrystals based on the knowledge of the properties and orientation distribution of constituent single-crystal grains. The original elastic SC method can be extended to thermo-elasticity by adding a stress-free strain to an elastic constitutive relation that expresses stress as a linear function of strain. With the addition of this independent term, the problem remains linear. Although the thermo-elastic self-consistent (TESC) model has important theoretical implications for the development of self-consistent homogenization of non-linear polycrystals, in this paper, we focus on TESC applications to actual thermo-elastic problems involving non-cubic (i.e. thermally anisotropic) materials. To achieve this aim, we provide a thorough description of the TESC theory, which is followed by illustrative examples involving cooling of polycrystalline non-cubic metals. The TESC model allows studying the effect of crystallographic texture and single-crystal elastic and thermal anisotropy on the effective thermo-elastic response of the aggregate and on the internal stresses that develop at the local level.