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Turbomachinery for the air management and energy recovery in fuel cell gas turbine hybrid systems

机译:涡轮机械,用于燃料电池-燃气轮机混合系统中的空气管理和能量回收

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摘要

High temperature fuel cells (MCFCs and SOFCs) can operate at atmospheric or pressurised conditions. In both cases, system performance can be significantly improved when the fuel cells are integrated with proper devices, which are designed to provide the necessary air inlet conditions and to recover the exhaust gas energy.rnThis paper presents a review of modelling and design issues for the integration of turbomachinery with the fuel cell system, because turbomachinery is the most promising technology for coping with the high temperature fuel cell requirements. Since the gas turbine expander performance is significantly influenced by exhausts compositions, analytical approach is undertaken for properly modelling composition influence on expander performance, and results are presented to demonstrate the quantitative influence of the system parameters on the performance. The analysis covers the three main aspects of performance evaluation: the on-design, the off-design and, as a final mention, the control of the fuel cell hybrid systems.
机译:高温燃料电池(MCFC和SOFC)可以在大气或加压条件下运行。在这两种情况下,当燃料电池与适当的设备集成在一起时,系统性能都可以得到显着改善,这些设备旨在提供必要的进气条件并回收废气能量。rn本文对燃料电池的建模和设计问题进行了综述。涡轮机械与燃料电池系统的集成,因为涡轮机械是应对高温燃料电池要求的最有前途的技术。由于燃气轮机膨胀机的性能受排气成分的显着影响,因此采用分析方法正确地模拟了成分对膨胀机性能的影响,并给出了结果以证明系统参数对性能的定量影响。该分析涵盖了性能评估的三个主要方面:设计上,设计外以及最后提到的燃料电池混合动力系统的控制。

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