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Controlling the secondary flows near endwall boundary layer fences in a 90° turning duct using approximate optimization method

机译:使用近似优化方法控制90°转弯管道中端壁边界层围栏附近的二次流

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This paper presents the optimization of an endwall boundary layer fence which improves the aerothermal characteristics of a gas turbine passage. The fence in a gas turbine passage effectively reduces secondary flow loss, which is generated in the cascade of the turbine. The turbine passage was simulated by a 90° turning duct (Re_D=360,000). The main purpose of the present investigation was to focus on finding a boundary layer fence with minimum total pressure loss in the passage and heat transfer coefficient on the endwall of the duct. An approximate optimization method was used for the investigation to secure the computational efficiency. Design variables were the fence shape factors (fence thickness, fence height, and fence width) as well as the radial position on the passage endwall. Results indicated that a significant improvement in aerodynamic performance can be achieved through the application of an optimized boundary layer fence. The optimized design reduced the mass-weighted average total pressure loss in the duct by 8.6% relative to the duct without the fence. The area-weighted average maximum Nusselt number on the endwall of the optimized design was decreased by 2.5% in comparison with the duct without the fence.
机译:本文介绍了端壁边界层围栏的优化,该围栏改善了燃气轮机通道的空气热特性。燃气涡轮机通道中的围栏有效地减少了在涡轮机叶栅中产生的二次流损失。涡轮机通道是通过90°转弯管道(Re_D = 360,000)模拟的。本研究的主要目的是着眼于找到边界层围栏,该边界层围栏的通道中总压力损失最小,并且管道端壁的传热系数最小。为了确保计算效率,使用了近似优化方法进行研究。设计变量是围栏形状因子(围栏厚度,围栏高度和围栏宽度)以及通道端壁上的径向位置。结果表明,通过应用优化的边界层围栏,可以实现空气动力学性能的显着改善。相对于没有围栏的管道,优化设计使管道中的质量加权平均总压力损失降低了8.6%。与没有围栏的风道相比,优化设计的端壁上的区域加权平均最大Nusselt数减少了2.5%。

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