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CFD SIMULATIONS OF FLOW AND HEAT TRANSFER THROUGH THE POROUS INTERFACE OF A METAL FOAM HEAT EXCHANGER

机译:金属泡沫换热器多孔界面中流动和传热的CFD模拟

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This paper offers numerical modelling of a waste heat recovery system. A thin layer of metal foam is attached to a cold plate to absorb heat from hot gases leaving the system. The heat transferred from the exhaust gas is then transferred to a cold liquid flowing in a secondary loop. Two different foam PPI (Pores Per Inch) values are examined over a range of fluid velocities. Numerical results are then compared to both experimental data and theoretical results available in the literature. Challenges in getting the simulation results to match those of the experiments are addressed and discussed in detail. In particular, interface boundary conditions specified between a porous layer and a fluid layer are investigated. While physically one expects much lower fluid velocity in the pores compared to that of free flow, capturing this sharp gradient at the interface can add to the difficulties of numerical simulation. The existing models in the literature are modified by considering the pressure gradient inside and outside the foam. Comparisons against the numerical modelling are presented. Finally, based on experimentally-validated numerical results, thermo-hydraulic performance of foam heat exchangers as waste heat recovery units is discussed with the main goal of reducing the excess pressure drop and maximising the amount of heat that can be recovered from the hot gas stream.
机译:本文提供了废热回收系统的数值模型。一薄层金属泡沫附着在冷板上,以吸收离开系统的热气体中的热量。然后,从废气中传递的热量被传递到在次级回路中流动的冷液体中。在流体速度范围内,检查了两个不同的泡沫PPI(每英寸孔数)值。然后将数值结果与文献中可获得的实验数据和理论结果进行比较。解决并详细讨论了使仿真结果与实验结果相匹配的挑战。特别地,研究了在多孔层和流体层之间规定的界面边界条件。尽管从物理上讲,人们希望孔中的流体速度比自由流动时要低得多,但在界面处捕获这种急剧的梯度会增加数值模拟的难度。文献中的现有模型通过考虑泡沫内部和外部的压力梯度进行了修改。提出了与数值模型的比较。最后,基于实验验证的数值结果,讨论了泡沫热交换器作为废热回收装置的热工性能,其主要目的是减少过大的压降并最大程度地提高可从热气流中回收的热量。

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