Rotor profile improvement by optimizing meshing curve for helical roots blowers in HFCV application

Dantong Li, Zhilong He, Kai Ma, Chongzhou Sun, Ziwen Xing
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Abstract

This paper introduced a novel design and optimization method of the Roots profile to enhance the performance of helical Roots blowers in Hydrogen Fuel Cell Vehicle applications. The proposed profile was generated based on defined meshing curves, and thus the shape of meshing curves can be explicitly optimized. First, the mathematical models for Roots profile generation based on meshing curves were presented. Next, the influence of the shape of meshing curves on the geometric performance of Roots rotors was investigated, and the meshing curve was further optimized using a genetic algorithm. Finally, the CFD method was employed to identify the specific performance enhancement brought by the optimized Roots profile. Results showed that the proposed profile design method could flexibly adjust the shape of meshing curves so as to intuitively control the spatial leakage channels formed by helical rotors. The optimized profile boosted the volumetric and adiabatic efficiency of the Roots blower up to 2.87%, and 1.89%, respectively, compared to the original one. The leakage analysis indicated that the performance improvement was attributed to the reduction of the leakage rate caused by the blow-hole and contact line. The conclusions obtained could effectively support the development of high-efficiency helical Roots blowers.
通过优化 HFCV 应用中螺旋罗茨鼓风机的啮合曲线改善转子轮廓
本文介绍了一种新颖的罗茨轮廓设计和优化方法,以提高螺旋罗茨鼓风机在氢燃料电池汽车应用中的性能。所提出的轮廓是根据定义的网格曲线生成的,因此网格曲线的形状可以明确优化。首先,介绍了基于啮合曲线生成罗茨轮廓的数学模型。接着,研究了啮合曲线形状对罗茨转子几何性能的影响,并使用遗传算法进一步优化了啮合曲线。最后,采用 CFD 方法确定了优化后的罗茨轮廓所带来的具体性能提升。结果表明,所提出的剖面设计方法可以灵活调整啮合曲线的形状,从而直观地控制螺旋转子形成的空间泄漏通道。与原始轮廓相比,优化后的轮廓使罗茨鼓风机的容积效率和绝热效率分别提高了 2.87% 和 1.89%。泄漏分析表明,性能的提高归因于吹气孔和接触线造成的泄漏率的降低。所得结论可有效支持高效螺旋罗茨鼓风机的开发。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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