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Review: CFD applications in the automotive industry

机译:评论:CFD在汽车行业的应用

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摘要

A general review of Computational Fluid Dynamics (CFD) applications in the automotive industry is presented. CFD has come a long way in influencing the design of automotive components due to continuing advances in computer hardware and software as well as advances in the numerical techniques to solve the equations of fluid flow. The automotive industry's interest in CFD applications stems from its ability to improve automotive design and to reduce product cost and cycle time. We are able to utilize CFD more and more in day-to-day automotive design, and we can expect better conditions for CFD applications in the coming years. CFD applications in the automotive industry are as numerous as are the codes available for the purpose. Applications rangefrom system level (e.g., exterior aerodynamics) to component level (e.g., disk brake cooling). The physics involved cover a wide range of flow regimes (i.e., incompressible, compressible, laminar, turbulent, unsteady, steady, subsonic and transonicflows). Most of the applications fall in the incompressible range and most are turbulent flows. Although most of the flows encountered are unsteady in nature, a majority of them can be approximated as steady cases. The challenge today is to be able tosimulate accurately some very complex thermo fluids phenomena, and to be able to get CFD results fast, in order to effectively apply them in the "dynamic" design environment of frequent design changes. The key is to utilize CFD in the early design phasesso that design changes and fix-ups later are minimized. Proper use of CFD ear/y', helps to significantly reduce prototyping needs and consequently, reduce cost and cycle time.
机译:本文对汽车工业中的计算流体动力学(CFD)应用进行了概述。由于计算机硬件和软件的不断进步以及解决流体流动方程的数值技术的进步,CFD在影响汽车零部件的设计方面已经走了很长一段路。汽车行业对CFD应用的兴趣源于其改进汽车设计,减少产品成本和缩短周期时间的能力。我们能够在日常的汽车设计中越来越多地使用CFD,并且我们预计在未来几年内将为CFD应用提供更好的条件。汽车行业中的CFD应用与为此目的可用的代码一样多。应用范围从系统级别(例如外部空气动力学)到组件级别(例如盘式制动器冷却)。涉及的物理学涵盖了广泛的流态(即不可压缩,可压缩,层流,湍流,不稳定,稳定,亚音速和跨音速流)。大多数应用属于不可压缩范围,并且大多数是湍流。尽管遇到的大多数流量本质上都是不稳定的,但可以将其中的大多数近似为稳定情况。当今的挑战是能够准确模拟一些非常复杂的热流体现象,并能够快速获得CFD结果,以便将其有效地应用于频繁更改设计的“动态”设计环境中。关键是在早期设计阶段利用CFD,以使以后的设计变更和修正最小化。正确使用CFD ear / y'有助于显着减少原型设计需求,从而减少成本和缩短周期。

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