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Optimization of Orifice Geometry for Cross-Flow Mixing in a Cylindrical Duct

机译:圆柱管内横流混合的节流孔几何形状的优化

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摘要

Mixing of gaseous jets in a cross-flow has significant applications in engineering, one example of which is the dilution zone of a gas turbine combustor. Despite years of study, the design of the jet injection in combustors is largely based on practical experience. The emergence of NO(x) regulations for stationary gas turbines and the anticipation of aero-engine regulations requires an improved understanding of jet mixing as new combustor concepts are introduced. For example, the success of the staged combustor to reduce the emission of NO(x) is almost entirely dependent upon the rapid and complete dilution of the rich zone products within the mixing section. It is these mixing challenges to which the present study is directed. A series of experiments was undertaken to delineate the optimal mixer orifice geometry. A cross-flow to core-flow momentum-flux ratio of 40 and a mass flow ratio of 2.5 were selected as representative of a conventional design. An experimental test matrix was designed around three variables: the number of orifices, the orifice length-to- width ratio, and the orifice angle. A regression analysis was performed on the data to arrive at an interpolating equation that predicted the mixing performance of orifice geometry combinations within the range of the test matrix parameters. Results indicate that the best mixing orifice geometry tested involves eight orifices with a long-to-short side aspect ratio of 3.5 at a twenty-three degree inclination from the center-line of the mixing section.
机译:横流中气体射流的混合在工程中具有重要的应用,其中一个例子是燃气轮机燃烧室的稀释区。尽管进行了多年的研究,但燃烧室中喷射喷射的设计很大程度上是基于实践经验。随着固定式燃气轮机NO(x)法规的出现以及航空发动机法规的出台,在引入新的燃烧室概念时,需要对射流混合有更深入的了解。例如,分级燃烧器减少NO(x)排放的成功几乎完全取决于混合区中富油区产物的快速和完全稀释。本研究正是针对这些混合挑战。进行了一系列实验以描绘出最佳的混合器节流孔几何形状。选择横流对核心流的动量通量比为40,质量流比为2.5,以代表传统设计。针对三个变量设计了一个实验测试矩阵:孔的数量,孔的长宽比和孔的角度。对数据进行了回归分析,得出了一个插值方程,该方程预测了孔口几何形状组合在测试矩阵参数范围内的混合性能。结果表明,所测试的最佳混合孔口几何形状涉及八个孔口,长边与短边的长宽比为3.5,与混合部分的中心线成23度倾斜。

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