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タイトル: 流速分布コントロールと散逸エネルギー最小化を目的とした粘性流れ場の多目的形状最適化 (Topology optimization theory and applications toward wide fields of natural sciences)
その他のタイトル: Multi-Objective Shape Optimization of Viscous Flow Fields for Prescribing Flow Velocity Distribution and for Minimizing Dissipation Energy (Topology optimization theory and applications toward wide fields of natural sciences)
著者: 片峯, 英次  KAKEN_name
金井, 陵真  KAKEN_name
柿ヶ野, 巧  KAKEN_name
著者名の別形: Katamine, Eiji
Kanai, Ryoma
Kakigano, Takumi
発行日: Oct-2015
出版者: Research Institute for Mathematical Sciences, Kyoto University
誌名: 数理解析研究所講究録別冊
巻: B54
開始ページ: 15
終了ページ: 24
抄録: This paper presents a numerical solution to multi-objective shape optimization problem in steady-state viscous flow fields. In this study, a multi-objective shape optimization problem using normalized objective functional is formulated for the flow velocity distribution prescribed problem and the total dissipated energy minimization problem in the viscous flow fields. In addition, another multi-objective shape optimization problem is formulated for the flow velocity distribution prescribed problem, while the total dissipated energy is constrained to less than a desired value, in the viscous flow fields. Shape gradients of these multi-objective shape optimization problems are derived theoretically using the Lagrange multiplier method, adjoint variable method, and the formulae of the material derivative. Reshaping is carried out by the traction method proposed as an approach to solving shape optimization problems. The validity of proposed method is confirmed by results of 2mathrm{D} numerical analysis.
記述: "Topology optimization theory and applications toward wide fields of natural sciences". May 7~9, 2014. edited by Takashi Nakazawa. The papers presented in this volume of RIMS Kôkyûroku Bessatsu are in final form and refereed.
著作権等: © 2015 by the Research Institute for Mathematical Sciences, Kyoto University. All rights reserved.
URI: http://hdl.handle.net/2433/241297
出現コレクション:B54 Topology optimization theory and applications toward wide fields of natural sciences

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