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Prediction of temperature variation in a rotating spacecraft in space environment

机译:太空环境中旋转航天器温度变化的预测

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This paper presents a closed-form prediction model for the temperature distribution of a thick-walled cylindrical space vehicle subjected to solar heating in deep space. The model is based on the coupling between dynamics and solar radiation. Since solar radiation is, in general, incident from a fixed direction, one side of the space vehicle will be shone bright, and the other side dark. Thus the space astronauts, instruments, and cryogenic-fuel tanks are gaining heat on the bright side and losing heat from the dark side. This radiative heat gain and loss become equally significant as the conductive heat transfer through the interior of the space vehicle. Thermal analysis is carried out to predict the effect of the spinning speed and angular position on the temperature variation and gradients attained by speed vehicles outside the Earth's atmosphere. This analysis is based on the non-linearity of the radiative heat dissipation, the significant conductive heat transfer role, and combined boundary conditions that involve the temperature and angular position of the vehicle. An exact analytical solution is obtained inspite of the non-linearity and non-homogeneity in the boundary conditions. The results indicate that the temperature distribution on the outer surface of the space vehicle is nearly independent of the angular position; at sub-cylindrical surface, this independence is achieved at low angular velocity. (c) 2005 Elsevier Ltd. All rights reserved.
机译:本文提出了一种厚壁圆柱航天器在深空中受到太阳加热的温度分布的封闭形式预测模型。该模型基于动力学与太阳辐射之间的耦合。通常,由于太阳辐射是从固定方向入射的,因此航天器的一侧将变亮,而另一侧变暗。因此,太空宇航员,仪器和低温燃料箱在光亮的一面吸收热量,而从黑暗的一面吸收热量。辐射热的得失与传导热在航天器内部的传递同样重要。进行热分析以预测旋转速度和角位置对地球大气以外的高速飞行器所达到的温度变化和梯度的影响。该分析基于辐射散热的非线性,重要的传导热传递作用以及涉及车辆温度和角位置的组合边界条件。尽管边界条件中存在非线性和非均匀性,但仍可以获得精确的解析解。结果表明,航天器外表面的温度分布几乎与角位置无关。在亚圆柱表面上,这种独立性是在低角速度下实现的。 (c)2005 Elsevier Ltd.保留所有权利。

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