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Coupled Thermomechanical Modeling of Small Volume FCC Metals

Authors
Faghihi, DanialVoyiadjis, George Z.Park, Taehyo
Issue Date
Apr-2013
Publisher
ASME
Keywords
size and rate effects; interfacial energy; gradient plasticity; generalized heat equation
Citation
JOURNAL OF ENGINEERING MATERIALS AND TECHNOLOGY-TRANSACTIONS OF THE ASME, v.135, no.2, pp.1 - 17
Indexed
SCIE
SCOPUS
Journal Title
JOURNAL OF ENGINEERING MATERIALS AND TECHNOLOGY-TRANSACTIONS OF THE ASME
Volume
135
Number
2
Start Page
1
End Page
17
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/163112
DOI
10.1115/1.4023771
ISSN
0094-4289
Abstract
The mechanical and thermal behavior of small volume metallic compounds on the fast transient time are addressed in this work through developing a thermodynamically consistent nonlocal framework. In this regard, an enhanced gradient plasticity theory is coupled with the application of the micromorphic approach to the temperature variable. The yield function of the VA-FCC (Voyiadjis Abed Face Centered Cubic) model based on the concept of thermal activation energy and the dislocations interaction mechanisms including nonlinear hardening is taken into consideration in the derivation. The effect of the material microstructural interface between two materials is also incorporated in the formulation with both temperature and rate effects. In order to accurately address the strengthening and hardening mechanisms, the theory is developed based on the decomposition of the mechanical state variables into energetic and dissipative counterparts which provided the constitutive equations to have both energetic and dissipative gradient length scales for the bulk material and the interface. Moreover, the nonlocal evolution of temperature is addressed by incorporating the microstructural interaction effect in the fast transient process using two time scales in the microscopic heat equation.
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Park, Tae hyo
서울 공과대학 (서울 건설환경공학과)
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