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Parameter estimation of a space radiator using differential evolution algorithm

机译:基于差分进化算法的空间辐射器参数估计

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In this article, different combinations of geometrical dimensions of a rectangular space radiator have been estimated using an inverse method. The solution procedure is based on the real-coded differential evolution (DE) optimization algorithm. Electronic equipments and aircraft power plants such as gas turbines need to be consistently cooled for safe operation and due to absence of air medium in space, the heat transfer occurs mainly by surface radiation. The required rate of heat to be dissipated is directly dependent upon the prevailing temperature distribution. Therefore, in this work, the estimation of parameters has been done for satisfying a predefined and simulated surface temperature profile on a space radiator. The temperature distribution used in the present inverse simulation study has been calculated and updated using the fourth order Runge-Kutta method and DE algorithm, respectively. Results have been validated against the existing literature. The present work reveals many possible combinations of the space radiator to attain a given temperature distribution. This offers the opportunity and flexibility to select a space radiator to achieve the required heat transfer rate for cooling various electronic equipments and power generating units typically for space applications.
机译:在本文中,已经使用逆方法估计了矩形空间散热器的几何尺寸的不同组合。求解过程基于实码差分演化(DE)优化算法。电子设备和飞机发电厂(例如燃气轮机)需要始终如一地冷却以确保安全运行,并且由于空间中没有空气介质,因此热传递主要通过表面辐射发生。所需的散热速率直接取决于主要的温度分布。因此,在这项工作中,为了满足空间散热器上的预定义和模拟的表面温度轮廓,已经进行了参数估计。本逆仿真研究中使用的温度分布已分别使用四阶Runge-Kutta方法和DE算法进行了计算和更新。结果已根据现有文献进行了验证。本工作揭示了空间辐射器的许多可能组合,以获得给定的温度分布。这为选择空间散热器提供了机会和灵活性,以实现所需的传热速率,以冷却通常用于空间应用的各种电子设备和发电装置。

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