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首页> 外文期刊>SIAM Journal on Applied Mathematics >ASYMPTOTIC ANALYSIS OF THE TRANSIENT CONJUGATE HEAT TRANSFER PROCESS BETWEEN TWO FORCED COUNTERFLOWING STREAMS
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ASYMPTOTIC ANALYSIS OF THE TRANSIENT CONJUGATE HEAT TRANSFER PROCESS BETWEEN TWO FORCED COUNTERFLOWING STREAMS

机译:两种强迫逆流之间瞬态共轭传热过程的渐近分析

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In this paper we analyze the transient conjugate heat transfer process between two counterflowing forced streams separated by a wall with finite thermal conductivity. The influence of the longitudinal heat conduction through the wall on the overall heat transfer fates is very important and has been analytically deduced. We present a classification of the solutions of the problem in terms of two main parameters: epsilon, the ratio of thickness to the height of the wall, which is small in our analysis, and alpha, measuring the ratio of the thermal resistance of one of the boundary layers to the thermal resistance of the wall. Conditions under which longitudinal conduction and transversal temperature variations are important in the solid are clarified. In the asymptotic limit alpha --> infinity and using the Lighthill approximation, it can be shown that the balance equations reduce to a single integrodifferential equation with only the parameters alpha, beta, where beta relates the boundary layer thicknesses. This limit is analyzed using regular perturbation techniques. On the other hand, for alpha --> 0, the governing equations can be solved using asymptotic techniques. The evolution in time and space of the temperature of the plate has been obtained in closed form and compared with the numerical solution for different values of the parametric set. In general, close to the studied limits, a very good agreement is achieved. [References: 13]
机译:在本文中,我们分析了由有限导热系数的壁隔开的两个逆流强制流之间的瞬态共轭传热过程。通过壁的纵向热传导对整体传热命运的影响非常重要,并已通过分析得出。我们根据以下两个主要参数对问题的解决方案进行了分类:epsilon(壁厚与壁高之比,在我们的分析中较小),以及alpha,用于测量其中一个的热阻比边界层对壁的热阻。明确了纵向传导和横向温度变化在固体中重要的条件。在渐近极限α->无穷大并使用Lighthill逼近,可以证明平衡方程简化为只有参数α,β的单个积分微分方程,其中β与边界层的厚度有关。使用常规摄动技术分析此限制。另一方面,对于alpha-> ​​0,可以使用渐近技术求解控制方程。板的温度在时间和空间上的变化已经以封闭形式获得,并与参数集不同值的数值解进行了比较。通常,接近研究极限,可以达到很好的一致性。 [参考:13]

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