TY - JOUR
T1 - Two-scale topology optimization for transient heat analysis in porous material considering the size effect of microstructure
AU - Sukulthanasorn, Naruethep
AU - Hoshiba, Hiroya
AU - Nishiguchi, Koji
AU - Kurumatani, Mao
AU - Fleischhauer, Robert
AU - Ushijima, Kuniharu
AU - Kaliske, Michael
AU - Terada, Kenjiro
AU - Kato, Junji
N1 - Funding Information:
This work was supported by MEXT KAKENHI Grant Numbers 19H00781, 16KK0141 and by “Knowledge Hub Aichi”, a Priority Research Project of Aichi Prefectural Government. These supports are gratefully acknowledged
Publisher Copyright:
© 2022, The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.
PY - 2022/7
Y1 - 2022/7
N2 - This paper presents a two-scale topology optimization framework for determining the optimal microstructure in porous material under transient heat conduction and transfer. The new optimization model, which can consider the surface area directly from microstructure topology as the size-dependent term, is introduced to enhance the heat transfer performance. In more detail, a homogenization method capable of considering the size-dependent microscopic heat transfer effect is adopted to express the microscopic material responses. A well-known material interpolation, referred to as the SIMP approach, and the design-dependent linear function are used for interpolating intermediate material properties. The minimal transient heat compliance is chosen as an objective function in this optimization problem. For the sensitivity analysis, a coupled-adjoint variable method is adopted to derive transient sensitivity formulation. The analysis shows that the proposed topology optimization model captures not only the transient heat but also the size effect of the microstructure in a transient heat analysis in porous material.
AB - This paper presents a two-scale topology optimization framework for determining the optimal microstructure in porous material under transient heat conduction and transfer. The new optimization model, which can consider the surface area directly from microstructure topology as the size-dependent term, is introduced to enhance the heat transfer performance. In more detail, a homogenization method capable of considering the size-dependent microscopic heat transfer effect is adopted to express the microscopic material responses. A well-known material interpolation, referred to as the SIMP approach, and the design-dependent linear function are used for interpolating intermediate material properties. The minimal transient heat compliance is chosen as an objective function in this optimization problem. For the sensitivity analysis, a coupled-adjoint variable method is adopted to derive transient sensitivity formulation. The analysis shows that the proposed topology optimization model captures not only the transient heat but also the size effect of the microstructure in a transient heat analysis in porous material.
KW - Homogenization
KW - Microstructure
KW - Size-dependent
KW - Topology optimization
KW - Transient heat analysis
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U2 - 10.1007/s00158-022-03257-2
DO - 10.1007/s00158-022-03257-2
M3 - Article
AN - SCOPUS:85132102994
SN - 1615-147X
VL - 65
JO - Structural Optimization
JF - Structural Optimization
IS - 7
M1 - 186
ER -