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3D transient CFD modelling of a scroll-type hydrogen pump used in FCVs

机译:燃料电池汽车中使用的涡旋式氢泵的3D瞬态CFD建模

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The scroll pump has a great potential to recirculate hydrogen in a fuel-cell vehicle (FCV) because of its high efficiency, low noise and vibration, reliable operation, and a wide range of adjustable flow. This paper presents three-dimensional transient computational fluid dynamics (CFD) modelling of a scroll-type hydrogen pump used in FCVs, including leakage flow through both the radial clearance (RC) and axial clearance (AC). A dynamic mesh was generated for the moving orbiting scroll, and high-quality hexahedral structured grids with sufficient grid-density were applied to the clearances to solve the multi-scale problem. The pressure and velocity fields were obtained at different rotating angles to reveal the dynamic characteristics in the compression chambers. The simulation results showed that the radial leakage through AC has more significant influence on the volumetric efficiency than the tangential leakage through RC, especially on scroll-type hydrogen pumps. The presented modelling and simulation methods were validated experimentally by operating a scroll air compressor at different speeds and pressure ratios. The volumetric efficiency of the scroll pump was 85.39% with 0.02 mm AC and 0.02 mm RC, 81.43% with 0.02 mm AC and 0.04 mm RC, and 70.17% with 0.04 mm AC and 0.02 mm RC. Further, it was found that the performance of scroll-type hydrogen pumps is more sensitive to rotating speed than air scroll pumps under the same conditions. With hydrogen, the volumetric efficiency increased by 30.68% when the rotating speed was increased from 3000 r.min(-1) to 6000 r.min(-1); with air, the volumetric efficiency increased by 12.81%. Therefore, it is necessary to consider both AC and RC in the CFD modelling of scroll machines, particularly in the case of hydrogen scroll pumps. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:涡旋泵具有高效率,低噪音和低振动,可靠的操作以及宽范围的可调流量,因此在燃料电池汽车(FCV)中具有很大的再循环氢气的潜力。本文介绍了用于FCV的涡旋式氢泵的三维瞬态计算流体动力学(CFD)建模,包括通过径向间隙(RC)和轴向间隙(AC)的泄漏流。为动涡旋盘生成了动态网格,并将具有足够网格密度的高质量六面体结构网格应用于间隙以解决多尺度问题。在不同的旋转角度下获得了压力和速度场,以揭示压缩室内的动态特性。仿真结果表明,交流电引起的径向泄漏对容积效率的影响比RC引起的切向泄漏影响更大,尤其是在涡旋式氢泵上。通过以不同的速度和压力比操作涡旋空气压缩机,对所提出的建模和仿真方法进行了实验验证。涡旋泵的容积效率在0.02 mm AC和0.02 mm RC下为85.39%,在0.02 mm AC和0.04 mm RC下为81.43%,在0.04 mm AC和0.02 mm RC下为70.17%。此外,发现在相同条件下,涡旋式氢泵的性能比空气涡旋泵的转速更敏感。使用氢气,当转速从3000 r.min(-1)增加到6000 r.min(-1)时,体积效率提高了30.68%。与空气相比,容积效率提高了12.81%。因此,在涡旋机的CFD模型中必须同时考虑AC和RC,特别是在氢涡旋泵的情况下。 (C)2018氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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