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Stall/surge dynamics of a multi-stage air compressor in response to a load transient of a hybrid solid oxide fuel cell-gas turbine system

机译:响应混合固体氧化物燃料电池-燃气轮机系统的负载瞬变的多级空气压缩机失速/喘振动力学

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摘要

A better understanding of turbulent unsteady flows in gas turbine systems is necessary to design and control compressors for hybrid fuel cell-gas turbine systems. Compressor stall/surge analysis for a 4 MW hybrid solid oxide fuel cell-gas turbine system for locomotive applications is performed based upon a 1.7 MW multi-stage air compressor. Control strategies are applied to prevent operation of the hybrid SOFC-GT beyond the stall/surge lines of the compressor. Computational fluid dynamics tools are used to simulate the flow distribution and instabilities near the stall/surge line. The results show that a 1.7 MW system compressor like that of a Kawasaki gas turbine is an appropriate choice among the industrial compressors to be used in a 4 MW locomotive SOFC-GT with topping cycle design. The multi-stage radial design of the compressor enhances the ability of the compressor to maintain air flow rate during transient step-load changes. These transient step-load changes are exhibited in many potential applications for SOFC/GT systems. The compressor provides sustained air flow rate during the mild stall/surge event that occurs due to the transient step-load change that is applied, indicating that this type of compressor is well-suited for this hybrid application. (C) 2017 Elsevier B.V. All rights reserved.
机译:为了设计和控制混合燃料电池-燃气轮机系统的压缩机,必须更好地了解燃气轮机系统中的湍流非恒定流。基于1.7 MW多级空气压缩机,对用于机车的4 MW混合固体氧化物燃料电池-燃气轮机系统进行了压缩机失速/喘振分析。应用控制策略来防止混合式SOFC-GT在压缩机的失速/喘振线之外运行。计算流体动力学工具用于模拟失速/喘振线附近的流量分布和不稳定性。结果表明,像川崎燃气轮机那样的1.7兆瓦系统压缩机是在顶部循环设计的4兆瓦机车SOFC-GT中使用的工业压缩机中的合适选择。压缩机的多级径向设计提高了压缩机在瞬态阶跃负载变化期间保持空气流速的能力。这些瞬态阶跃负载变化在SOFC / GT系统的许多潜在应用中都有体现。压缩机在轻微的失速/喘振事件期间提供稳定的空气流速,该事件是由于所施加的瞬时阶跃负载变化而引起的,这表明这种类型的压缩机非常适合这种混合应用。 (C)2017 Elsevier B.V.保留所有权利。

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