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LARGE EDDY SIMULATIONS OF STAGGERED PARALLEL-PLATE FLOWS

机译:交错平行板流动的大涡模拟

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Heat transfer enhancement is a subject of major concern in numerous fields of industry and research. Having received undivided attention over the years, it is still studied worldwide. Given the exponential growth of computing power, large-scale numerical simulations are growing steadily more realistic, and it is now possible to obtain accurate time-dependent solutions with far fewer preliminary assumptions about the problems. As a result, an increasingly wide range of physics is now open for exploration. More specifically, it is time to take full advantage of large eddy simulation technique so as to describe heat transfer in staggered parallel-plate flows. In fact, from simple theory through experimental results, it has been demonstrated that surface interruption enhances heat transfer. Staggered parallel-plate geometries are of great potential interest, and yet many numerical works dedicated to them have been tarnished by excessively simple assumptions. That is to say, numerical simulations have generally hypothesized lengthwise periodicity, even though flows are not periodic; moreover, the LES technique has not been employed with sufficient frequency. Actually, our primary objective is to analyze turbulent influence with regard to heat transfers in staggered parallel-plate fin geometries. In order to do so, we have developed a LES code, and numerical results are compared with regard to several grid mesh resolutions. We have focused mainly upon identification of turbulent structures and their role in heat transfer enhancement. Another key point involves the distinct roles of boundary restart and the vortex shedding mechanism on heat transfer and friction factor.
机译:传热增强是工业和研究的许多领域中主要关注的主题。多年来,它受到了广泛的关注,至今仍在世界范围内进行研究。考虑到计算能力的指数级增长,大规模的数值模拟正逐渐地变得越来越现实,并且现在有可能以较少的有关问题的初步假设来获得准确的时间相关解决方案。结果,越来越多的物理学领域可供探索。更具体地说,是时候充分利用大型涡流模拟技术来描述交错平行板流中的热传递了。实际上,从简单的理论到实验结果,已经证明表面中断会增强传热。交错的平行板几何结构具有巨大的潜在意义,但是,过分简单的假设却使许多专门针对它们的数值研究失去了光泽。就是说,数值模拟通常假设了纵向周期性,即使流量不是周期性的。此外,还没有以足够的频率采用LES技术。实际上,我们的主要目标是分析交错平行板翅片几何形状中湍流对传热的影响。为此,我们开发了一个LES代码,并比较了几种网格网格分辨率的数值结果。我们主要关注湍流结构及其在传热增强中的作用。另一个关键点涉及边界重启和涡旋脱落机制对传热和摩擦因数的独特作用。

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