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Improving the Unsteady Aerodynamic Performance of Transonic Turbines using Neural Networks

机译:利用神经网络改善跨音速涡轮的非稳态气动性能

摘要

A recently developed neural net-based aerodynamic design procedure is used in the redesign of a transonic turbine stage to improve its unsteady aerodynamic performance. The redesign procedure used incorporates the advantages of both traditional response surface methodology and neural networks by employing a strategy called parameter-based partitioning of the design space. Starting from the reference design, a sequence of response surfaces based on both neural networks and polynomial fits are constructed to traverse the design space in search of an optimal solution that exhibits improved unsteady performance. The procedure combines the power of neural networks and the economy of low-order polynomials (in terms of number of simulations required and network training requirements). A time-accurate, two-dimensional, Navier-Stokes solver is used to evaluate the various intermediate designs and provide inputs to the optimization procedure. The procedure yielded a modified design that improves the aerodynamic performance through small changes to the reference design geometry. These results demonstrate the capabilities of the neural net-based design procedure, and also show the advantages of including high-fidelity unsteady simulations that capture the relevant flow physics in the design optimization process.
机译:在跨音速涡轮级的重新设计中使用了最近开发的基于神经网络的空气动力学设计程序,以改善其不稳定的空气动力学性能。通过采用一种称为设计空间的基于参数的分区的策略,所使用的重新设计过程结合了传统响应面方法和神经网络的优点。从参考设计开始,构建了基于神经网络和多项式拟合的响应表面序列,以遍历设计空间,以寻找表现出改进的非稳态性能的最佳解决方案。该过程结合了神经网络的功能和低阶多项式的经济性(根据所需的仿真次数和网络训练要求)。时间精确的二维Navier-Stokes求解器用于评估各种中间设计,并为优化过程提供输入。该程序产生了一种经过修改的设计,该设计通过对参考设计几何形状进行很小的更改来改善了空气动力学性能。这些结果证明了基于神经网络的设计程序的功能,还表明了在设计优化过程中包括捕获相关流物理学的高保真非稳态仿真的优势。

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