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Thermal-structural coupled analysis and improvement of the diaphragm compressor cylinder head for a hydrogen refueling station

机译:加氢站隔膜压缩机气缸盖的热-结构耦合分析及改进

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When applied in the hydrogen refueling station, the diaphragm compressor with super high pressure ratio will experience a high discharge temperature of over 200 degrees C, especially for that with large capacity and horsepower. Considering the thermal stress, the structural strength and deformation of the cylinder head are crucial to the reliability and efficiency of the diaphragm compressor. In this paper, a thermal-structural coupled analysis was proposed, based on which the deformation and stress of the diaphragm compressor cylinder head under high-temperature and high-pressure conditions were obtained. And the fatigue life of the studs on the cylinder head was also estimated based on the stress results obtained in the thermal-structural coupled analysis. The experimental method was conducted for verifying the numerical results. The results indicated that during the operation of the compressor, the temperature in the discharge holes was the highest, resulting in not only plastic deformation but also large stress concentration, and the high thermal stress could reach up to the strength limit of the material. A structural improvement was therefore proposed to decrease the stress in the region of the discharge holes by cutting a larger hole and attaching a new separate one for valve installation. Further stress analysis showed that the stress in the same region of the improved structure was significantly reduced, which guaranteed the safety of the compressor. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:当用于加氢站时,具有超高压比的隔膜压缩机将经历超过200摄氏度的高排气温度,特别是对于大容量和马力的压缩机。考虑到热应力,气缸盖的结构强度和变形对于隔膜压缩机的可靠性和效率至关重要。本文提出了一种热-结构耦合分析方法,在此基础上,获得了隔膜压缩机汽缸盖在高温高压条件下的变形和应力。并根据热-结构耦合分析获得的应力结果,估算了气缸盖上螺栓的疲劳寿命。进行了实验方法以验证数值结果。结果表明,在压缩机运行过程中,排气孔内的温度最高,不仅导致塑性变形,而且应力集中较大,而且高的热应力可以达到材料的强度极限。因此,提出了一种结构上的改进,以通过切出一个较大的孔并安装一个新的单独的阀孔来减小排放孔区域的应力。进一步的应力分析表明,改进结构的相同区域内的应力显着降低,从而保证了压缩机的安全性。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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