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A coupled flow and chemical reactor network model for predicting gas turbine combustor performance

机译:一种用于预测燃气轮机燃烧器性能的耦合流量和化学反应器网络模型

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Gas turbine combustor performance was explored by utilizing a 1-D flow network model. To obtain the preliminary performance of combustion chamber, three different flow network solvers were coupled with a chemical reactor network scheme. These flow solvers were developed via simplified, segregated and direct solutions of the nodal equations. Flow models were utilized to predict the flow field, pressure, density and temperature distribution inside the chamber network. The network model followed a segregated flow and chemical network scheme, and could supply information about the pressure drop, nodal pressure, average temperature, species distribution, and flow split. For the verification of the model’s results, analyses were performed using CFD on a seven-stage annular test combustor from TUSAS Engine Industries, and the results were then compared with actual performance tests of the combustor. The results showed that the preliminary performance predictor code accurately estimated the flow distribution. Pressure distribution was also consistent with the CFD results, but with varying levels of conformity. The same was true for the average temperature predictions of the inner combustor at the dilution and exit zones. However, the reactor network predicted higher elemental temperatures at the entry zones.
机译:通过利用1-D流量网络模型探索燃气轮机燃烧器性能。为了获得燃烧室的初步性能,三种不同的流量网络溶剂与化学反应器网络方案耦合。这些流动溶剂通过节点方程的简化,分离和直接溶液开发。流动模型用于预测腔室内内部的流场,压力,密度和温度分布。网络模型遵循隔离流动和化学网方案,可以提供有关压降,节点压力,平均温度,物种分布和流量分配的信息。为了验证模型的结果,使用CFD在七级环形试验燃烧器上进行分析,然后从Tusas发动机行业进行,然后将结果与燃烧器的实际性能测试进行比较。结果表明,初步性能预测码准确地估计了流量分布。压力分布也与CFD结果一致,但具有不同的符合性水平。对于稀释和出口区的内燃烧器的平均温度预测是相同的。然而,反应器网络在入口区预测了更高的元素温度。

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