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2D Viscous Aerodynamic Shape Design Optimization for Turbine Blades Based on Adjoint Method

机译:基于伴随法的汽轮机叶片二维粘性气动外形优化设计

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This paper presents an adjoint optimization technique and its application to the design of a transonic turbine cascade. Capable of a quick and exact sensitivity analysis and using little computational resources, the adjoint method has been a focus of research in aerodynamic shape design optimization. The goal of this work is to extend the adjoint method into turbomachinery design applications for viscous and compressible flow, and to further improve the aerodynamic performance. In the work, the minimization of the entropy generation rate with the mass flow rate constraint was considered as the cost function of the optimization, and was applied in the direct design process. The adjoint boundary conditions of the corresponding cost function were derived in detail, using the nonslip boundary condition on the blade wall, while the flow viscous effect on the cascade inlet and outlet was neglected. Numerical techniques used in Computational Fluid Dynamics (CFD) were employed to solve the adjoint linear partial difference equations. With the solved adjoint variables, the final expression of the cost function gradient with respect to the design variables was formulated. Combined with quasi-Newton algorithm, an aerodynamic design approach based on the adjoint method for turbine blades was presented, which was independent of the Navier-Stokes solver being used. Finally, to validate the present optimization algorithm, the aerodynamic design cases of a transonic turbine blade with and without mass flow rate restriction were performed and analyzed.
机译:本文提出了一种伴随优化技术及其在跨音速涡轮叶栅设计中的应用。伴随方法能够快速而精确地进行灵敏度分析,并且使用很少的计算资源,因此一直是空气动力学形状设计优化研究的重点。这项工作的目的是将伴随方法扩展到用于粘性和可压缩流的涡轮机械设计应用中,并进一步改善空气动力学性能。在工作中,将具有质量流约束的熵产生率的最小化视为优化的成本函数,并将其应用于直接设计过程中。使用叶片壁上的防滑边界条件,详细推导了相应成本函数的伴随边界条件,而忽略了对叶栅入口和出口的流动粘性影响。计算流体力学(CFD)中使用的数值技术被用来求解伴随的线性偏分方程。利用求解的伴随变量,制定了相对于设计变量的成本函数梯度的最终表达式。结合准牛顿算法,提出了一种基于伴随法的涡轮叶片气动设计方法,该方法独立于所使用的Navier-Stokes求解器。最后,为验证当前的优化算法,对具有和不具有质量流量限制的跨音速涡轮叶片的空气动力学设计案例进行了分析。

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  • 来源
    《Journal of turbomachinery》 |2011年第3期|p.031014.1-031014.8|共8页
  • 作者单位

    Institute of Turbomachinery,Xi'an Jiaotong University,Xi'an 710049, P.R.China;

    Institute of Turbomachinery,Xi'an Jiaotong University,Xi'an 710049, P.R.China;

    Institute of Turbomachinery,Xi'an Jiaotong University,Xi'an 710049, P.R.China;

    Institute of Turbomachinery,Xi'an Jiaotong University,Xi'an 710049, P.R.China;

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