带中间通道间隙的涡轮机端壁上离散膜孔布置的优化

Weixin Zhang, Zhao Liu, Yu Song, Yixuan Lu, Zhenping Feng
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引用次数: 0

摘要

在现代燃气轮机的设计中,设计了中间通道间隙泄漏流、上游槽泄漏流和离散膜孔等冷却源来保护叶片。本研究包括中间通道间隙泄漏流和两种形状的薄膜孔(圆柱孔和扇形孔)。首先,在入口主流雷诺数为 340,000、吹气比 (M) 为 1.0、中间通道缝隙泄漏质量流量比为 0.5% 的条件下,进行了实验来验证湍流模型。然后,优化端壁离散膜孔的圆周位置,并通过拉丁超立方采样(LHS)方法生成 100 个样本,其中选择 80 个样本作为训练数据,选择 20 个样本作为径向基函数(RBF)神经网络的验证集。然后采用粒子群优化(PSO)算法进行优化。最后,分析了四种代用模型的流动结构、绝热膜冷却效果和空气动力损失,以实现端壁最有效的膜孔布置。结果表明,与基线模型和最佳样本模型相比,最有效情况下的端壁区域平均膜冷却效果分别提高了 188% 和 9.6%。内壁出口处沿叶片高度的面积平均气动损失分别减少了 1.7% 和 0.96%。此外,交错排列的薄膜孔有利于薄膜冷却性能的提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimization of Discrete Film Hole Arrangement On a Turbine Endwall with Middle Passage Gap
For the design of modern gas turbine, cooling sources such as middle passage gap leakage flow, upstream slot leakage flow and discrete film holes are designed to protect the blade. This research included middle passage gap leakage flow and two shapes of film holes (cylindrical holes and fan-shaped holes). Firstly, experiment was carried out to verify the turbulence model at an inlet mainstream Reynolds number of 340,000, blowing ratio (M) of 1.0, and middle passage gap leakage mass flow ratio of 0.5%. Then, the circumferential positions of the endwall discrete film holes were optimized, and 100 samples were generated through Latin hypercube sampling (LHS) method, among which 80 samples were selected as the training data and 20 samples were selected as the verification set of radial basis function (RBF) neural network. Then particle swarm optimization (PSO) algorithm was adopted for the optimization. Finally, the flow structure, adiabatic film cooling effectiveness and aerodynamic losses of four surrogate models were analyzed to achieve the most effective film hole arrangement on endwall. The results draw a conclusion that compared with the baseline and the best sample model, the area-averaged film cooling effectiveness of the endwall for most effective case increased by 188% and 9.6% respectively. The area-averaged aerodynamic loss along the blade height at the endwall outlet decreased by 1.7% and 0.96%. Besides, the staggered arrangement of film holes is conducive to film cooling performance.
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