压力对微混合氢燃烧影响的实验与数值研究

D. Kroniger, Atsushi Horikawa, H. Funke, Franziska Pfaeffle, Tsuyoshi Kishimoto, Koichi Okada
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引用次数: 0

摘要

微混合(MMX)燃烧概念是为高氢含量燃料设计的DLN燃气轮机燃烧技术。基于交叉流射流(JICF)的多个非预混微型火焰具有固有的抗闪回安全性,可确保在各种工况下稳定运行。本文的目的是研究压力对微混合火焰的影响,重点研究了火焰起爆点和NOx排放。采用基于稳定RANS方法的数值模型和包含GRI 3.0机理相关反应的复杂化学模型,对不同压力条件下的反应流和NOx排放进行了预测。对于湍流-化学相互作用,比较了层流火焰概念(LFC)和涡流耗散概念(EDC)。数值计算结果与在工业罐式燃气轮机燃烧室高压试验装置上获得的关于火焰起爆和NOx排放的实验结果进行了验证。数值方法足以预测火焰起爆点和NOx排放趋势。有趣的是,在上游压力增加的过程中,火焰的起爆点发生了变化,即火焰附着从锚定在位于下游的钝体后面转向直接锚定在氢射流处。LFC比EDC更准确地预测了这一变化和氮氧化物排放。由此产生的NOx与压力的相关性类似于非预混型燃烧配置。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental and Numerical Investigation on the Effect of Pressure On Micromix Hydrogen Combustion
The micromix (MMX) combustion concept is a DLN gas turbine combustion technology designed for high hydrogen content fuels. Multiple non-premixed miniaturized flames based on jet in cross-flow (JICF) are inherently safe against flashback and ensure a stable operation in various operative conditions. The objective of this paper is to investigate the influence of pressure on the micromix flame with focus on the flame initiation point and the NOx emissions. A numerical model based on a steady RANS approach and the Complex Chemistry model with relevant reactions of the GRI 3.0 mechanism is used to predict the reactive flow and NOx emissions at various pressure conditions. Regarding the turbulence-chemical interaction, the Laminar Flame Concept (LFC) and the Eddy Dissipation Concept (EDC) are compared. The numerical results are validated against experimental results that have been acquired at a high pressure test facility for industrial can-type gas turbine combustors with regard to flame initiation and NOx emissions. The numerical approach is adequate to predict the flame initiation point and NOx emission trends. Interestingly, the flame shifts its initiation point during the pressure increase in upstream direction, whereby the flame attachment shifts from anchoring behind a downstream located bluff body towards anchoring directly at the hydrogen jet. The LFC predicts this change and the NOx emissions more accurately than the EDC. The resulting NOx correlation regarding the pressure is similar to a non-premixed type combustion configuration.
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