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A continuous adjoint approach to design optimization in cavitating flow using a barotropic model

机译:使用正压模型的空化流设计连续优化方法

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A continuous adjoint method is developed for design optimization in multiphase flow based on a homogeneous multiphase mixture model. The mixture model consists of variable-density mass and momentum equations and uses a barotropic equation of state for the density that depends on only the local static pressure and the vapor pressure of the liquid. In that case, the primary equations are homogeneous, and a conventional hybrid multistage explicit method based on central differencing and second- and fourth-order scalar artificial dissipation can be applied to solve both the primary and adjoint systems. Results are presented for both surface- and volume-based vapor minimization cost functions for a two-dimensional cavitating hydrofoil in which the geometry is parameterized using B-splines. The cost function gradients computed using the adjoint method are shown to compare well with gradients computed using the complex-step method.
机译:提出了一种基于均匀多相混合模型的连续伴随方法,用于多相流设计优化。混合模型由可变密度的质量和动量方程组成,并使用正压状态方程表示密度,该方程仅取决于液体的局部静压力和蒸气压。在这种情况下,初级方程是齐次的,可以将基于中心差分以及二阶和四阶标量人工耗散的常规混合多级显式方法应用于求解初等系统和伴随系统。给出了二维空化水翼的基于表面和基于体积的蒸汽最小化成本函数的结果,其中使用B样条曲线对几何参数进行了参数化。显示了使用伴随方法计算的成本函数梯度与使用复杂步骤方法计算的梯度进行了很好的比较。

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