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FIRST AND SECOND LAW ANALYSIS OF RADICAL INTERCOOLING CONCEPTS

机译:径向冷却概念的第一和第二定律分析

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An exergy framework was developed taking into consideration a detailed analysis of the heat exchanger (intercooler) component irreversibilities. Moreover, it was further extended to include an adequate formulation for closed systems, e.g. a secondary cycle, moving with the aircraft. Afterwards the proposed framework was employed to study two radical intercooling concepts. The first proposed concept uses already available wetted surfaces, i.e. nacelle surfaces, to reject the core heat and contribute to an overall drag reduction. The second concept uses the rejected core heat to power a secondary organic Rankine cycle and produces useful power to the aircraft-engine system. Both radical concepts are integrated into a high bypass ratio turbofan engine, with technology levels assumed to be available by year 2025. A reference intercooled cycle incorporating a heat exchanger in the bypass duct is established for comparison. Results indicate that the radical intercooling concepts studied in this paper show similar performance levels to the reference cycle. This is mainly due to higher irreversibility rates created during the heat exchange process. A detailed assessment of the irreversibility contributors, including the considered heat exchangers and the secondary cycle major components is made. A striking strength of the present analysis is the assessment of the component irreversibility rate and its contribution to the overall aero-engine losses.
机译:开发了一个无法进行的框架,考虑到热交换器(中间冷却器)分量不义的详细分析。此外,还延伸以包括封闭系统的足够配方,例如,与飞机一起移动的次要循环。之后,拟议的框架被用来研究两个激进的间接概念。第一个提出的概念使用已经可用的湿润表面,即机舱表面,拒绝核心热量并有助于整体阻力。第二个概念使用拒绝的芯热来为二次有机朗肯循环供电,并为飞机发动机系统产生有用的电力。这两种激进概念都集成到高旁路比率涡轮机发动机中,具有可提供的技术水平,以便在2025年中提供。建立参考中间冷却循环在旁路管道中的热交换器进行比较。结果表明,本文中研究的自由基中冷概念显示出与参考周期类似的性能水平。这主要是由于在热交换过程中产生的更高的不可逆性率。对不可逆贡献者的详细评估,包括所考虑的热交换器和二次循环主要组分。目前分析的引人注目的强度是评估组件不可逆率及其对整体航空发动机损失的贡献。

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