为电力燃料电池涡轮增压器量身定制的离心涡轮机械

IF 0.9 Q4 ENGINEERING, MECHANICAL
D. Filsinger, G. Kuwata, N. Ikeya
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引用次数: 6

摘要

氢燃料电池技术被认为是实现高效车辆推进的一种选择,对无碳社会的环境影响最小。自20多年以来,IHI一直在为固定式燃料电池应用提供充电系统,自2004年以来,一直在为移动式燃料电池提供充电系统。如果系统被加压,则燃料电池的功率密度显著增加。然而,来自燃料电池系统部件的污染物,如结构材料、润滑剂、粘合剂、密封剂和软管,已被证明会影响燃料电池的性能和耐久性。因此,增加堆压力和功率密度的充电系统不可避免地需要无油。因此,气体轴承被应用于支撑燃料电池涡轮增压器的转子。它还包括涡轮机、压缩机,以及在同一轴上的电动机。涡轮机利用烟囱的排气能量来支撑压缩机,从而降低空气供应系统所需的电力。本文概述了燃料电池涡轮增压器技术。详细的性能研究表明,与带中冷器的两级压缩机系统相比,带涡轮的单级压缩机更高效。涡轮机可以提供所需压缩机功率的30%以上。因此,它大大提高了系统效率。还表明,固定几何形状的涡轮机设计适用于大多数应用。压缩机为低比转速型,带有无叶片扩散器。它针对燃料电池系统的操作条件进行了优化,燃料电池系统通常需要3.0范围内的压力比。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Tailored Centrifugal Turbomachinery for Electric Fuel Cell Turbocharger
Hydrogen fuel cell technology is identified as one option for allowing efficient vehicular propulsion with the least environmental impact on the path to a carbon-free society. Since more than 20 years, IHI is providing charging systems for stationary fuel cell applications and since 2004 for mobile fuel cell applications. The power density of fuel cells substantially increases if the system is pressurized. However, contaminants from fuel cell system components like structural materials, lubricants, adhesives, sealants, and hoses have been shown to affect the performance and durability of fuel cells. Therefore, the charging system that increases the pressure and the power density of the stacks inevitably needs to be oil-free. For this reason, gas bearings are applied to support the rotor of a fuel cell turbocharger. It furthermore comprises a turbine, a compressor, and, on the same shaft, an electric motor. The turbine utilizes the exhaust energy of the stack to support the compressor and hence lower the required electric power of the air supply system. The presented paper provides an overview of the fuel cell turbocharger technology. Detailed performance investigations show that a single-stage compressor with turbine is more efficient compared to a two-stage compressor system with intercooler. The turbine can provide more than 30% of the required compressor power. Hence, it substantially increases the system efficiency. It is also shown that a fixed geometry turbine design is appropriate for most applications. The compressor is of a low specific speed type with a vaneless diffuser. It is optimized for operating conditions of fuel cell systems, which typically require pressure ratios in the range of 3.0.
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来源期刊
CiteScore
2.40
自引率
0.00%
发文量
10
审稿时长
25 weeks
期刊介绍: This comprehensive journal provides the latest information on rotating machines and machine elements. This technology has become essential to many industrial processes, including gas-, steam-, water-, or wind-driven turbines at power generation systems, and in food processing, automobile and airplane engines, heating, refrigeration, air conditioning, and chemical or petroleum refining. In spite of the importance of rotating machinery and the huge financial resources involved in the industry, only a few publications distribute research and development information on the prime movers. This journal is the first source to combine the technology, as it applies to all of these specialties, previously scattered throughout literature.
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