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      Optimizing the structural topology of bifunctional invisible cloak manipulating heat flux and direct current

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      Applied Physics Letters
      AIP Publishing

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          Abstract

          We generate optimal topologies in the structural design of bifunctional cloaks manipulating heat flux and direct current, using topology optimization that incorporates both thermal conductivity and electrical direct current. The bifunctional cloak composed of bulk isotropic materials is designed to restrain thermal and electrical disturbances caused by an insulated obstacle by minimizing the difference between cloaked distributions and referenced distributions when no obstacle is present. Our results show that the presented optimizations provide bifunctional cloaks that reproduce undisturbed temperature and voltage distributions. We also demonstrate topology optimizations for bifunctional cloaks operating for multiangle flows and those for cloaks that are robust against variations in conductive properties.

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          Most cited references33

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          Controlling electromagnetic fields.

          Using the freedom of design that metamaterials provide, we show how electromagnetic fields can be redirected at will and propose a design strategy. The conserved fields-electric displacement field D, magnetic induction field B, and Poynting vector B-are all displaced in a consistent manner. A simple illustration is given of the cloaking of a proscribed volume of space to exclude completely all electromagnetic fields. Our work has relevance to exotic lens design and to the cloaking of objects from electromagnetic fields.
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            Generating optimal topologies in structural design using a homogenization method

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              One path to acoustic cloaking

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                Author and article information

                Contributors
                Journal
                Applied Physics Letters
                AIP Publishing
                0003-6951
                1077-3118
                October 21 2019
                October 21 2019
                October 21 2019
                October 21 2019
                October 21 2019
                : 115
                : 17
                Article
                10.1063/1.5123908
                5f8ce840-4aa9-45bb-b06e-67da80a0e018
                © 2019
                History

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