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高氢燃料预混燃烧稳定极限的计算与实验研究
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作者 田颖 徐钢 +1 位作者 崔玉峰 房爱兵 《燃气轮机技术》 2005年第3期31-39,49,共10页
合成气(主要成分为氢气和一氧化碳)易于回火的特性阻碍了贫燃料预混燃烧的顺利实现。为了深入了解此类燃料的燃烧特性,本文用V型火焰研究了不同含氢量对合成气的回火和吹熄极限的影响,得到几何相似的燃烧器的稳定极限。通过分析得到无... 合成气(主要成分为氢气和一氧化碳)易于回火的特性阻碍了贫燃料预混燃烧的顺利实现。为了深入了解此类燃料的燃烧特性,本文用V型火焰研究了不同含氢量对合成气的回火和吹熄极限的影响,得到几何相似的燃烧器的稳定极限。通过分析得到无量纲数表示的稳定极限,可用于预测此种类别燃烧器的稳定极限。为下一步设计旋流预混器打下基础,具有较强的工程应用价值。由于测试条件的限制,回火时的流场特征无法通过实验得到,借助CFD工具实现对回火的详细流场模拟。 展开更多
关键词 高氢燃料 回火极限 预混燃烧 实验 数值模拟
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Process Flow Model of Combined High Temperature Fuel Cell Operated with Mixture of Methane and Hydrogen
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作者 F. Zabihian A.S. Fung M. Koksal 《Journal of Energy and Power Engineering》 2010年第11期1-13,共13页
One of the main challenges of biogas and syngas use as fuel in hybrid solid oxide fuel cell (SOFC) cycles is the variable nature of their composition, which may cause significant changes in plant performance. On the... One of the main challenges of biogas and syngas use as fuel in hybrid solid oxide fuel cell (SOFC) cycles is the variable nature of their composition, which may cause significant changes in plant performance. On the other hand, hydrogen is one of the main components in some types of gasified biomass and syngas. Therefore, it is vital to investigate the influences of hydrogen fraction in inlet fuel on the cycle performance. In this work, a steady-state simulation of a hybrid tubular SOFC-gas turbine (GT) cycle is first presented with two configurations: system with and without anode exhaust recirculation. Then, the results of the model when fueled by syngas, biofuel, and gasified biomass are analyzed, and significant dependency of system operational parameters on the inlet fuel composition are investigated. The analysis of impacts of hydrogen concentration in the inlet fuel on the performance of a hybrid tubular SOFC and gas turbine cycle was carried out. The simulation results were considered when the system was fueled by pure methane as a reference case. Then, the performance of the hybrid SOFC-GT system when methane was partially replaced by H2 from a concentration of 0% to 95% with an increment of 5% at each step was investigated. The system performance was monitored by investigating parameters like temperature and flow rate of streams in different locations of the cycle; SOFC and system thermal efficiency; SOFC, GT, and cycle net and specific work; air to fuel ratio; as well as air and fuel mass flow rate. The results of the sensitivity analysis demonstrate that hydrogen concentration has significant effects on the system operational parameters, such as efficiency and specific work. 展开更多
关键词 Solid oxide fuel cell (SOFC) gas turbine (GT) hybrid cycle fuel composition hydrogen methane.
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