Development of an analytical model to evaluate the effect of the ported shroud on centrifugal compressors

Carlo Cravero , Philippe Joe Leutcha , Davide Marsano
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Abstract

Extending the operational range of centrifugal compressors is strategically vital for turbocharging internal combustion engines, particularly in enhancing efficiency and expanding operational capabilities. This extension is crucial for reducing environmental impact by enabling engines to perform more efficiently under a wider range of conditions. In the transition from conventional thermal reciprocating engines, fuel cells, especially proton exchange membrane fuel cells (PEMFCs), are emerging as strong alternatives. In automotive applications, PEMFCs often require turbocharging to supply compressed air to the cathode system of the fuel cell stack. This integration is essential for utilizing the heat from the fuel cell's waste products, thereby improving overall system efficiency. Ongoing research and development in radial turbomachinery are critical for optimizing the performance of these propulsion systems. Specifically, adapting turbocharger designs to meet the unique requirements of fuel cell systems and extending their operational range are essential tasks. Using a simplified CFD model, the impact of a ported shroud on compressor performance and range extension has been investigated. Flow structure analysis identified that the primary role of the ported shroud is to modify the relative flow angle on the rotor at the highest span channel. Additionally, a simplified analytical model was developed to quantify the effectiveness of different ported shroud geometries on the compressor by examining changes in tangential velocity after mixing with the flow from the cavity.

Abstract Image

建立了对离心式压气机进气罩影响的分析模型
扩大离心压缩机的工作范围对涡轮增压内燃机具有重要的战略意义,特别是在提高效率和扩大运行能力方面。这种扩展对于减少环境影响至关重要,使发动机能够在更广泛的条件下更有效地运行。在从传统的热往复式发动机过渡的过程中,燃料电池,尤其是质子交换膜燃料电池(pemfc)正成为一种强有力的替代方案。在汽车应用中,pemfc通常需要涡轮增压来为燃料电池堆的阴极系统提供压缩空气。这种集成对于利用燃料电池废物产生的热量至关重要,从而提高整个系统的效率。正在进行的径向涡轮机械的研究和开发对于优化这些推进系统的性能至关重要。具体来说,调整涡轮增压器设计以满足燃料电池系统的独特要求并扩展其工作范围是必不可少的任务。利用简化的CFD模型,研究了进气道叶冠对压气机性能和续航里程的影响。流动结构分析表明,流道叶冠的主要作用是改变最大跨度流道处转子上的相对流动角。此外,研究人员还开发了一个简化的分析模型,通过检测与来自空腔的气流混合后切向速度的变化,量化不同端口叶冠几何形状对压气机的影响。
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CiteScore
6.40
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