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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >The application of exergy destruction minimization in convective heat transfer optimization
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The application of exergy destruction minimization in convective heat transfer optimization

机译:火用最小化在对流换热优化中的应用。

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An approach of heat transfer enhancement by reducing the irreversibility of process is discussed theoretically. The irreversibility of heat transfer process has been analysed with exergy. The irreversibility of heat transfer process can be expressed with exergy destruction. Other than entropy generation minimization and entransy dissipation minimization, a new approach called exergy destruction minimization is proposed to optimize heat transfer process based on the analysis. By setting exergy destruction rate as an optimization objective and fluid power consumption as a constraint condition, a momentum equation with an additional volume force is constructed through functional variation to numerically simulate convective heat transfer in coupling with energy equation. The approach of exergy destruction minimization is applied in the optimization of convective heat transfer and numerical calculation is carried out to validate this approach in circular tubes. The optimum velocity field with 380% increase in Nu number and 5% increase in flow resistance f is found by the numerical calculation on optimization equations. The results disclose that longitudinal swirl flow with multi-vortexes appears in the flow field, which leads to heat transfer enhancement. The more the vortexes are, the higher Nu number can be gotten. It is found that longitudinal swirl flow with multi-vortexes is a flow pattern with good heat transfer performance in circular tubes. The results of numerical calculation can be used to guide the design for tube inserts. (C) 2014 Elsevier Ltd. All rights reserved.
机译:从理论上讨论了通过减少过程的不可逆性来增强传热的方法。传热过程的不可逆性已经用火炬进行了分析。传热过程的不可逆性可以用火用破坏来表示。除了最小化熵产生和最小化瞬态耗散之外,在分析的基础上,提出了一种新的方法,即“火用破坏最小化”,以优化传热过程。通过将火用破坏率作为优化目标,并将流体动力消耗作为约束条件,通过函数变化构造具有附加体积力的动量方程,并结合能量方程数值模拟对流换热。在对流换热的优化中,采用了将火用破坏最小化的方法,并通过数值计算验证了这种方法在圆管中的有效性。通过对优化方程的数值计算,可以找到Nu数量增加380%和流阻f增加5%的最佳速度场。结果表明,在流场中出现了具有多个涡流的纵向涡流,这导致了传热的增强。涡旋越多,可获得的Nu值越高。发现具有多涡流的纵向旋流是圆形管中具有良好传热性能的流型。数值计算的结果可用于指导管件的设计。 (C)2014 Elsevier Ltd.保留所有权利。

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