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A Validated Numerical-Experimental Design Methodology for a Movable Supersonic Ejector Compressor for Waste-Heat Recovery

机译:一种用于废热回收的移动式超音速喷射压缩机的经过验证的数值实验设计方法

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The aim of this paper is to develop the technical knowledge, especially the optimum geometries, for the design and manufacturing of a supersonic gas-gas ejector for a waste-heat driven vehicle cooling system. Although several studies have been performed to investigate the effects of geometrical configurations of gas-gas ejectors, a progressive design methodology of an ejector compressor for application to a vehicle cooling system has not yet been described. First, an analytical model for calculation of the ejector optimum geometry for a wide range of operating conditions is developed, using R134a as the working fluid with a rated cooling capacity of 2.5 kW. The maximum values of entrainment ratio (ω) have been estimated by correlation of the main parameters in a nondimensional form. The optimum values of nozzle throat diameter (d_(nt)) and mixing chamber diameter (d_(mc)) thus obtained are used as a starting point for the computational fluid dynamics (CFD) optimization covering a wide range of geometrical configurations. To assess the effect of various dimensional quantities, an optimization technique has been proposed for calculation of the most efficient geometry of the target ejector for manufacturing. Using a vehicle cooling system as a test case, the final optimized dimensions are reported and discussed. An experimental validation confirms the CFD results and the ejector performance with a normalized deviation of 5% between observed and simulated results, demonstrating that the methodology is a valid ejector design tool for a wide range of applications.
机译:本文的目的是开发技术知识,尤其是最佳几何形状,以设计和制造用于废热驱动的车辆冷却系统的超音速气体喷射器。尽管已经进行了一些研究来研究气体-气体喷射器的几何构造的影响,但是尚未描述用于车辆冷却系统的喷射器压缩机的渐进式设计方法。首先,使用R134a作为额定冷却能力为2.5 kW的工作流体,建立了用于计算各种工作条件下喷射器最佳几何形状的分析模型。夹带率(ω)的最大值已经通过以无量纲形式的主要参数的相关性来估计。如此获得的喷嘴喉部直径(d_(nt))和混合室直径(d_(mc))的最佳值用作计算流体动力学(CFD)优化的起点,涵盖了广泛的几何构型。为了评估各种尺寸量的影响,提出了一种优化技术,用于计算制造用目标喷射器的最有效几何形状。使用车辆冷却系统作为测试案例,将报告并讨论最终的优化尺寸。实验验证证实了CFD结果和喷射器性能,观察到的结果与模拟结果之间的标准化偏差为5%,这表明该方法是适用于广泛应用的有效喷射器设计工具。

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