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NO_X FORMATION IN A REACTING PREMIXED JET IN HOT CROSS FLOW

机译:快速交叉流动中反应过快射流中的NO_X形成

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The NO_x emissions of a premixed jet in hot cross flow configuration have been studied experimentally and with simple Can-tera models. Staged combustion is realized by a first reaction zone providing a flow of fully combusted products and a secondary combustion stage downstream which consists of a pre-mixed jet injected into the hot cross flow. The focus of the study lies on the overall NO_x emission reduction potential of this generic configuration with respect to single stage premixed combustion employed in the high load regime of most large gas turbines for power generation. Cantera benchmark calculations were made to address that question. The second stage reaction was modeled using two different configurations: The worst case scenario being the combustion of the mixture in the jet without any interaction with the hot cross flow, and the most favorable case being the jet and the cross flows perfectly mixed and then burned. All calculations were performed under atmospheric and high pressure conditions to illustrate the influence of pressure on the potential of staging on the reduction of NO_x emissions. In parallel to the modeling the NO_x formation was studied in an atmospheric test rig. For that purpose emission and temperature data were collected with single orifice probe traverses four jet diameters downstream. The thermocouple probe was calibrated against CO-equilibrium concentration data from thermodynamic modeling. Furthermore, a planar laser diagnostic technique using Mie scattering was applied for determining the mixing of jet and cross flow. The mixture field was statistically analyzed to detect differences in spatial and temporal mixing. Finally all data were used to study NO_x formation under atmospheric pressure and to transfer the results to gas turbine combustor conditions.
机译:已经通过简单的Can-tera模型实验研究了在热错流配置下的预混喷嘴的NO_x排放。分级燃烧是通过提供完全燃烧产物流的第一反应区和位于下游的二级燃烧级实现的,该二级燃烧级由注入热流中的预混合射流组成。研究的重点在于这种通用配置相对于在大多数大型燃气轮机的高负荷工况下采用的单级预混燃烧所产生的整体NO_x减排潜力。为了解决该问题,进行了Cantera基准计算。使用两种不同的配置对第二阶段反应进行建模:最坏的情况是射流中的混合物燃烧而与热的横流没有任何相互作用,最有利的情况是射流和横流完全混合然后燃烧。所有计算均在大气压和高压条件下进行,以说明压力对分级潜力对NO_x排放量减少的影响。与建模并行,在大气测试台架上研究了NO_x的形成。为此,使用单孔探针在下游横穿四个喷嘴直径来收集发射和温度数据。针对热力学建模中的CO平衡浓度数据对热电偶探针进行了校准。此外,使用米氏散射的平面激光诊断技术被应用于确定射流和横流的混合。对混合物场进行统计分析,以检测空间和时间混合的差异。最后,所有数据都用于研究大气压下的NO_x形成并将结果转移到燃气轮机燃烧室条件下。

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