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Tree-network Structure Generation For Heat Conduction By Cellular Automaton

机译:元胞自动机热传导的树状网络结构生成

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This study proposes a cellular automaton approach to deal with the typical "area-to-point" problem of how to effectively cool a heat generating surface by arranging the configuration of high conductivity material links which discharge the generated heat to a heat sink. To demonstrate the principle and the procedure of the cellular automaton approach, a simple case of square surface with single heat sink is treated: the approach starts with an initial shape of a certain quantity of high conductivity material. By shaping the initial conductive drain through the equipartition of thermal gradients, the high conductivity material evolves step-by-step and forms at convergence a final configuration, which turns out to be a multi-scale tree-like network. The effects of the conductivity ratio k, the fraction of high conductivity material φ_0 as well as the influence of the initial shape are discussed. The cellular automaton approach, which allows increasing the effective overall thermal conductance of an area, is fast, easy to apply and nearly constraint-free. Finally, the present limitations of the cellular automaton are also exposed.
机译:这项研究提出了一种细胞自动机方法,以解决典型的“点对点”问题,该问题是如何通过安排高传导性材料链的配置来有效地冷却生热表面,该链接将所产生的热量排放到散热器。为了演示元胞自动机方法的原理和过程,研究了一个带有单个散热器的正方形表面的简单情况:该方法以一定数量的高电导率材料的初始形状开始。通过使热梯度均匀分布来塑造初始的导电漏极,高导率材料会逐步演化并最终形成最终的构型,最终形成多尺度的树状网络。讨论了电导率比k,高电导率材料φ_0的比例以及初始形状的影响。蜂窝自动机方法可以提高区域的有效总导热率,它快速,易于应用且几乎不受约束。最后,还揭示了细胞自动机的当前局限性。

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