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NUMERICAL SIMULATION OF FULL OXY-FIRED OSCILLATING COMBUSTION

机译:全氧振荡燃烧的数值模拟

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摘要

Oscillating combustion represents a complex process, leading to significant improvements in high temperature industrial applications. Field demonstrations of the oscillating combustion technology have shown a significant reduction in NO_X emissions, increased efficiency and improved operation. To date, no modeling work has been able to quantify these impacts of the technology. This effort presents the results of a numerical simulation study of oscillating combustion in a 450 kW pilot furnace. The combustion process involves a pipe-in-pipe natural gas-fired burner using exclusively oxygen as oxidant. The fuel is introduced into the combustion chamber periodically, given a certain amplitude and a time period, while the oxidant is introduced continuously. The transient numerical simulation uses the Air Liquide proprietary computational fluid dynamic software ATHENA~(TM), analyzing the combustion process at incremental timesteps. The results reported here clearly explain the phenomena observed in the lab, as well as in field demonstrations. Detailed analysis of the mixing process between the fuel and oxidant, combustion of the reactants and heat transfer to the furnace walls is included. It is concluded that oscillating combustion represents a powerful solution to many industrial applications, and that modeling can play an important role in explaining the process, and in optimizing the system operation.
机译:振荡燃烧是一个复杂的过程,导致高温工业应用中的重大改进。振荡燃烧技术的现场演示表明,NO_X排放量显着减少,效率提高,运行得到改善。迄今为止,还没有建模工作能够量化技术的这些影响。这项工作为450 kW中试炉内振荡燃烧的数值模拟研究提供了结果。燃烧过程涉及仅使用氧气作为氧化剂的管道式天然气燃烧器。给定一定的振幅和时间周期,将燃料定期引入燃烧室,同时不断引入氧化剂。瞬态数值模拟使用Air Liquide专有的计算流体动力学软件ATHENA〜(TM),以递增的时间步长分析燃烧过程。此处报告的结果清楚地解释了在实验室以及现场演示中观察到的现象。详细分析了燃料和氧化剂之间的混合过程,反应物的燃烧以及热量向炉壁的传递。结论是,振荡燃烧是许多工业应用的有力解决方案,建模可以在解释过程和优化系统运行中发挥重要作用。

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