飞机研制中对火用分析和热力学优化的需求

Adrian Bejan , David L Siems
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引用次数: 99

摘要

本文概述了在现代飞机能源系统设计中依赖于火用分析和热力学优化的新兴工作。火用分析确立了理论性能极限。火能破坏的最小化使设计尽可能接近理论极限。系统架构源于这种约束优化原则。一个关键问题是从逐渐冷却并最终排放到环境中的热气体流中提取最大的能量。最佳配置包括一个传热表面,其温度在流动方向上呈指数衰减。这种配置可以在流量速率的最佳不平衡逆流热交换器中实现。同样的最佳配置出现当表面最小化受制于指定的火用萃取率。在更为复杂的电力和制冷系统中也存在类似的优化匹配组件和流的机会。它们值得追求,并且可以首先在概念层面上接近,基于火用分析和热力学优化。这些原则在飞机能源系统设计中的应用也揭示了“结构”设计原则,该原则产生了所有使用动力飞行的系统,工程和自然,如结构理论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The need for exergy analysis and thermodynamic optimization in aircraft development

This paper outlines a newly emerging body of work that relies on exergy analysis and thermodynamic optimization in the design of energy systems for modern aircraft. Exergy analysis establishes the theoretical performance limit. The minimization of exergy destruction brings the design as closely as permissible to the theoretical limit. The system architecture springs out of this constrained optimization principle. A key problem is the extraction of maximum exergy from a hot gaseous stream that is gradually cooled and eventually discharged into the ambient. The optimal configuration consists of a heat transfer surface with a temperature that decays exponentially in the flow direction. This configuration can be achieved in a counterflow heat exchanger with an optimal imbalance of flow capacity rates. The same optimal configuration emerges when the surface is minimized subject to specified exergy extraction rate. Similar opportunities for optimally matching components and streams exist in considerably more complex systems for power and refrigeration. They deserve to be pursued, and can be approached first at the conceptual level, based on exergy analysis and thermodynamic optimization. The application of such principles in aircraft energy system design also sheds light on the “constructal” design principle that generates all the systems that use powered flight, engineered and natural, cf. constructal theory.

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