基于数值输入的电子系统热优化实验设计

T. Stewart, D. W. Stiver
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引用次数: 10

摘要

由于时间的限制,现实电子系统的设计优化在今天的市场中经常被发现是令人望而却步的。技术,如一次一个变量(OFAT),被证明对简单的设计很有用,但在实际应用中往往失败。本文描述了一种实验设计(DoE)方法,该方法与计算流体动力学(CFD)程序的数值输入相结合,以证明一种有效的优化方法。作为一个例子,该技术被用于优化下一代网络服务器的热性能的多个方面。结果是,经验原型周期从4个减少到2个,分析实验周期大大减少,同时产生了更成熟和可行的冷却解决方案。DoE完成后,对设计的唯一改动是对分析模型与实际物理性能偏离的一些小调整和设置。这些都很快完成了最初的物理原型,再次使用DoE技术,最终完成了外壳冷却架构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermal optimization of electronic systems using Design of Experiments based on numerical inputs
Design optimization of realistic electronic systems is often found to be prohibitive in today's marketplace because of time constraints. Techniques, such as one-variable at a time (OFAT), that prove useful for simple designs, often fail for real-world applications. This paper describes a Design of Experiments (DoE) methodology used in conjunction with numerical inputs from a computational fluid dynamics (CFD) program to demonstrate an efficient method of optimization. As an example, the technique is used to optimize multiple aspects of the thermal performance of a next-generation network server. The outcome was that empirical prototype cycles were reduced from four to two and analytical experimentation cycles were dramatically reduced while producing a far more mature and viable cooling solution. Upon completion of the DoE, the only alterations to the design were the few minor adjustments and settings where the analytical models diverged from actual physical performance. These were rapidly finalized with the initial physical prototype, again using DoE techniques, and the final enclosure cooling architecture was completed.
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