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THERMO-FLUID DYNAMIC DESIGN EXPLORATION OF A DOUBLE PIPE HEAT EXCHANGER

机译:双管换热器的热流体动力设计探索

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Toward a practical application of the additive manufacturing (AM), this study proposes a shape optimization approach for the cross-sectional shape of the inner pipe of a counter-flow double pipe heat exchanger. The cross-sectional shape of the inner pipe is expressed by an algebraic expression with a small number of parameters, and their heat transfer performance is evaluated by a commercial Computational Fluid Dynamics (CFD) solver. The optimization is conducted by the Non-Dominated Sorting Genetic Algorithm Ⅱ (NSGA-Ⅱ) assisted by the Kriging surrogate model, and the NSGA-Ⅱ finds the optimal cross-sectional shape with many protrusions around the perimeter of the inner channel to improve the heat transfer performance. In this study, heat transfer performance is evaluated from the temperature drop at the outlet of the high-temperature fluid. Through the comparison of two cross-sectional shapes with the same heat transfer surface area -average temperature at the outlet of the optimal high-temperature channel is 324.58 K while average temperature at the outlet of a circular high-temperature channel with the same area as the optimal channel is 331.93 K, it is revealed that the number of protrusions plays important roles which contribute not only to increase heat transfer area but also to improve heat transfer performance.
机译:针对增材制造(AM)的实际应用,本研究针对逆流双管热交换器的内管横截面形状提出了一种形状优化方法。内管的横截面形状由带有少量参数的代数表达式表示,其传热性能由商用计算流体动力学(CFD)求解器评估。优化是通过Kriging替代模型辅助的非支配排序遗传算法Ⅱ(NSGA-Ⅱ)进行的,而NSGA-Ⅱ则找到了最佳的横截面形状,在内通道周围有许多突起,从而提高了质量。传热性能。在这项研究中,根据高温流体出口处的温度下降来评估传热性能。通过比较两个具有相同传热表面积的横截面形状,最佳高温通道出口处的平均温度为324.58 K,而圆形高温通道出口处具有相同面积的平均温度为324.58K。最佳通道为331.93 K,可知突起的数量起着重要的作用,不仅增加了传热面积,而且改善了传热性能。

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