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首页> 外文期刊>International Journal of Heat and Mass Transfer >Optimization strategies of heat transfer systems with consideration of heat transfer and flow resistance
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Optimization strategies of heat transfer systems with consideration of heat transfer and flow resistance

机译:考虑传热和流阻的传热系统优化策略

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Performance optimization of heat transfer systems with consideration of both heat transfer and flow resistances is critical for energy conservation. This paper compares two different optimization strategies to trade off heat transfer enhancement and flow resistance reduction. One is to convert multiple objectives to a single one by some individual optimization criteria, such as minimization of entropy generation and other dimensionless entropy generation-based numbers, and the other is to select the maximum heat transfer rate or the minimum flow resistance as the objective directly and adapt the others as constraints by Pareto Optimality. After optimizing a practical multi-loop heat exchanger network (HXN), the optimized results by the former strategy with individual optimization criteria are probably unsuitable for practical operations. Nevertheless, it needs the energy conservation and heat transfer equations of all heat exchangers as the constraints, which makes the optimization more complex. Oppositely, the latter strategy provides a series of maximum heat transfer rates with different flow resistances, i.e. Pareto front, which can be applied according to different practical requirements. The equivalent thermal circuit diagram offers the systematical constraint without involving any intermediate fluid temperatures. The systematic constraint shows advantages and convenience to optimize HXN with consideration of heat transfer and flow resistance, which is pivotal and general for the synergy of heat transfer enhancement and flow resistance reduction in heat transfer system optimization.
机译:同时考虑传热和流阻的传热系统性能优化对于节能至关重要。本文比较了两种不同的优化策略来权衡传热的增强和流阻的降低。一种是通过一些单独的优化标准将多个目标转换为一个目标,例如最小化熵生成和其他基于无量纲的基于熵生成的数,另一种是选择最大传热率或最小流阻作为目标直接并通过帕累托最优将其他条件作为约束条件进行调整。在对实际的多回路换热器网络(HXN)进行优化之后,采用单独优化标准的前一种策略的优化结果可能不适合实际操作。然而,它需要所有热交换器的能量守恒和传热方程作为约束,这使得优化更加复杂。相反,后一种策略提供了一系列具有不同流动阻力的最大传热速率,即帕累托前沿,可以根据不同的实际要求进行应用。等效热回路图提供了系统的约束,而没有涉及任何中间流体温度。系统约束显示了在考虑传热和流阻的情况下优化HXN的优势和便利,这对于传热系统优化中传热增强和流阻降低的协同作用至关重要。

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