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TRANSIENT ANALYSIS OF AN INNOVATIVE CYCLE INTEGRATING A SOFC AND A TURBOGENERATOR FOR ELECTRIC PROPULSION

机译:集成了SOFC和透平发电机的创新循环的瞬态分析

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Gas turbine technology for aerospace applications is approaching limits in efficiency gains as efficiency gains today occur in very small increments. One limitation in conventional gas turbine technology is the combustion process, which destroys most of the exergy in the cycle. To address this limitation in a traditional Brayton power cycle, a hybrid system which is integrating a Solid Oxide Fuel Cell (SOFC) and gas turbine is developed. Hybrid systems involving fuel cells have better efficiencies than conventional power generation systems. The combination of a SOFC with a gas turbine has shown higher efficiencies than conventional gas turbine systems due to the reduction of exergy destruction in the heat addition process. A one-dimensional dynamic model of a SOFC is integrated in a SOFC-Combustor configuration with a gas turbine to develop efficient electrical power generation for aviation applications. The SOFC-Combustor configuration is an unique concept for reducing system weight, volume, complexity, and response time, which are important attributes for aerospace systems. SOFC-Combustor model was developed based on first principles with detailed modeling of the internal steam reformer, electrochemical and thermodynamics of the SOFC included. The overall purpose of this paper is to analyze the performance of the hybrid SOFC system for high altitude operation for both on-design and off-design operating conditions. Steady-state analysis for cruise condition performed to calculate the respective mission efficiencies. By determining the operating efficiencies of the system, gravimetric comparisons including fuel are performed for alternative power cycles for given flight durations. Transient analysis is performed to understand the behavior in the SOFC temperatures and hybrid system with sudden perturbations to the system (rapid throttle changes, environment changes).
机译:用于航空航天的燃气轮机技术正在接近效率增益的极限,因为当今效率增益以很小的增量出现。常规燃气轮机技术的局限性在于燃烧过程,该过程破坏了循环中的大多数火用。为了解决传统布雷顿动力循环中的这一局限性,开发了一种混合系统,该系统集成了固体氧化物燃料电池(SOFC)和燃气轮机。涉及燃料电池的混合动力系统比常规发电系统具有更高的效率。 SOFC与燃气轮机的组合已显示出比常规燃气轮机系统更高的效率,这是因为减少了热量添加过程中的火用破坏。 SOFC的一维动态模型与燃气轮机集成在SOFC-燃烧器配置中,可为航空应用开发高效的电力产生。 SOFC-Combustor配置是减少系统重量,体积,复杂性和响应时间的独特概念,而这是航空航天系统的重要属性。 SOFC-Combustor模型是根据第一原理开发的,其中包括内部蒸汽重整器的详细建模,SOFC的电化学和热力学。本文的总体目的是分析混合SOFC系统在设计上和设计外的运行条件下在高海拔运行中的性能。进行巡航状态的稳态分析,以计算相应的任务效率。通过确定系统的运行效率,对于给定的飞行持续时间,可替代功率循环执行包括燃料在内的重量比较。进行瞬态分析以了解SOFC温度和混合系统在系统突然受到干扰(快速节气门变化,环境变化)时的行为。

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