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Investigation of combustion and thermodynamic performance of a lean burn catalytic combustion gas turbine system

机译:稀燃催化燃烧燃气轮机系统的燃烧和热力学性能研究

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The goals of this research were to investigate the combustion and thermodynamic performance of a lean burn catalytic combustion gas turbine. The characteristics of lean burn catalytic combustion were investigated by utilising 1D heterogeneous plug flow model which was validated by experiments. The effects of operating parameters on catalytic combustion were numerically analysed. The system models were built in ASPEN Plus and three independent design variables, i.e. compressor pressure ratio (PR), regenerator effectiveness (RE) and turbine inlet temperature (TIT) were selected to analyse the thermodynamic performance of the thermal cycle. The main results show that: simulations from 1D heterogeneous plug flow model can capture the trend of catalytic combustion and describe the behavior of the catalytic monolith in detail. Inlet temperature is the most significant parameter that impacts operation of the catalytic combustor. When TIT and RE are constant, the increase of PR results in lowering the inlet temperature of the catalytic combustor, which results in decreasing methane conversion. The peak thermal efficiency and the optimal PR at a constant TIT increase with the increase of TIT; and at the constant PR, the thermal efficiency increases with the increase of TIT. However, with lower TIT conditions, the optimal PR and the peak efficiency at a constant TIT of the LBCCGT cycle are relative low to that of the conventional cycle. When TIT and PR are constant, the decrease of RE may result in lower methane conversion. The influences of RE on the methane conversion and the thermal efficiency are more significant at higher PRs. The higher thermal efficiency for the lower RE is achieved at lower PR.
机译:这项研究的目的是研究稀燃催化燃烧燃气轮机的燃烧和热力学性能。利用一维非均质塞流模型研究了稀薄燃烧催化燃烧的特性,并通过实验进行了验证。数值分析了运行参数对催化燃烧的影响。系统模型是在ASPEN Plus中构建的,并选择了三个独立的设计变量,即压缩机压力比(PR),再生器效率(RE)和涡轮机入口温度(TIT),以分析热循环的热力学性能。主要结果表明:一维非均质塞流模型的仿真可以捕捉催化燃烧的趋势并详细描述催化整体结构的行为。入口温度是影响催化燃烧器运行的最重要参数。当TIT和RE恒定时,PR的增加会导致催化燃烧器的入口温度降低,从而导致甲烷转化率降低。 TIT恒定时,峰值热效率和最佳PR随TIT的增加而增加;在恒定的PR下,热效率随TIT的增加而增加。但是,在较低的TIT条件下,LBCCGT循环的恒定TIT下的最佳PR和峰值效率相对于传统循环而言较低。当TIT和PR恒定时,RE的减少可能导致甲烷转化率降低。在较高的PR下,RE对甲烷转化率和热效率的影响更为显着。在较低的PR下可获得较低的RE较高的热效率。

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