Investigation into the performance of turbulence models for fluid flow and heat transfer phenomena in electronic applications

K. Dhinsa, C. Bailey, K. Pericleous
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引用次数: 21

Abstract

Computational Fluid Dynamics (CFD) is gradually becoming a powerful and almost essential tool for the design, development and optimization of engineering applications. However the mathematical modelling of the erratic turbulent motion remains the key issue when tackling such flow phenomena. The reliability of CFD analysis depends heavily on the turbulence model employed together with the wall functions implemented. In order to resolve the abrupt changes in the turbulent energy and other parameters situated at near wall regions a particularly fine mesh is necessary which inevitably increases the computer storage and run-time requirements. Turbulence modelling can be considered to be one of the three key elements in CFD. Precise mathematical theories have evolved for the other two key elements, grid generation and algorithm development. The principal objective of turbulence modelling is to enhance computational procedures of efficient accuracy to reproduce the main structures of three dimensional fluid flows. The flow within an electronic system can be characterized as being in a transitional state due to the low velocities and relatively small dimensions encountered. This paper presents simulated CFD results for an investigation into the predictive capability of turbulence models when considering both fluid flow and heat transfer phenomena. Also a new two-layer hybrid k/spl epsiv//kl turbulence model for electronic application areas will be presented which holds the advantages of being cheap in terms of the computational mesh required and is also economical with regards to run-time.
电子应用中流体流动和传热现象的湍流模型性能研究
计算流体动力学(CFD)正逐渐成为工程应用设计、开发和优化的一个强大的、几乎必不可少的工具。然而,不稳定湍流运动的数学建模仍然是处理这种流动现象的关键问题。CFD分析的可靠性在很大程度上取决于所采用的湍流模型和所实现的壁面函数。为了解决湍流能量和其他参数在近壁区域的突变,需要特别精细的网格,这不可避免地增加了计算机的存储和运行时间要求。湍流建模可以被认为是CFD的三个关键要素之一。精确的数学理论已经演变为另外两个关键要素,网格生成和算法开发。湍流建模的主要目的是提高计算程序的有效精度,以再现三维流体流动的主要结构。由于低速和相对较小的尺寸,电子系统内的流动可以被表征为处于过渡状态。本文给出了湍流模型在考虑流体流动和换热现象时的预测能力的CFD模拟结果。此外,还将提出一种新的电子应用领域的双层混合k/spl epsiv//kl湍流模型,该模型在所需的计算网格方面具有便宜的优点,并且在运行时间方面也经济。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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