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Heat transfer improvement due to the imposition of non-uniform wall heating for in-tube laminar forced convection

机译:管内层流强制对流由于施加不均匀的壁加热而改善了传热

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This paper explores the bearing that a non-uniform distribution of heat flux used as a wall boundary condition exerts on the heat transfer improvement in a round pipe. Because the overall heat load is considered fixed, the heat transfer improvement is viewed through a reduction in the maximum temperature ('hot spot') by imposing optimal distribution of heat flux. Two cases are studied in detail 1) fully developed and 2) developing flow. Peak temperatures in the heated pipe wall are calculated via an analytical approach for the fully developed case, while a numerical simulation based on CFD is employed for the developing case. By relaxing the heat flux distribution on the pipe wall, the numerical results imply that the optimum distribution of heat flux, which minimizes the peak temperatures corresponds with the 'descending' distribution. Given that the foregoing approach is quite different from the 'ascending' heat flux distribution recommended in the literature by means of the entropy generation minimization (EGM) method, it is inferred that the optimization of heat transfer and fluid flow, in comparison with the thermodynamic optimization, may bring forth quite different guidelines for the designs of thermal systems under the same constraints and circumstances.
机译:本文探讨了作为壁边界条件的热通量的不均匀分布对圆管传热改善的影响。因为总的热负荷被认为是固定的,所以可以通过施加最佳的热通量分布来降低最高温度(“热点”),从而实现传热的改善。详细研究了两种情况:1)充分开发和2)开发流程。对于完全展开的情况,通过分析方法计算出加热管壁的峰值温度,而对于展开的情况则采用基于CFD的数值模拟。通过放宽管壁上的热通量分布,数值结果表明,使峰值温度最小的热通量的最佳分布与“下降”分布相对应。鉴于上述方法与文献中通过熵产生最小化(EGM)方法推荐的“上升”热通量分布完全不同,因此可以推断出与热力学相比,传热和流体流动的优化优化,可能会在相同的约束和环境下为热力系统的设计提出完全不同的指导原则。

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