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High-Fidelity Multidisciplinary Design Optimization Methodology with Application to Rotor Blades

机译:高保真多学科设计优化方法,应用于转子叶片

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A multidisciplinary design optimization procedure has been developed and applied to rotorcraft simulations involving tightly-coupled, high-fidelity computational fluid dynamics and comprehensive analysis. A discretely-consistent, adjoint-based sensitivity analysis available in the fluid dynamics solver provides sensitivities arising from unsteady turbulent flows on unstructured, dynamic, overset meshes, while a complex-variable approach is used to compute structural sensitivities with respect to aerodynamic loads. The multidisciplinary sensitivity analysis is conducted through integrating the sensitivity components from each discipline of the coupled system. Accuracy of the coupled system for high-fidelity rotorcraft analysis is verified; simulation results exhibit good agreement with established solutions. A constrained gradient-based design optimization for a HART-II rotorcraft configuration is demonstrated. The computational cost for individual components of the multidisciplinary sensitivity analysis is assessed and improved.
机译:已经开发了一种多学科设计优化程序,并应用于携带紧密耦合,高保真计算流体动力学和综合分析的旋翼飞行器模拟。流体动力学求解器可提供的离散相一致的基于伴随的敏感性分析,提供了在非结构化,动态,推销网上的不稳定湍流流动产生的敏感性,而复杂可变方法用于计算相对于空气动力学负载的结构敏感性。通过将来自耦合系统的每个学科的灵敏度分量集成来进行多学科灵敏度分析。验证了高保真旋翼分析的耦合系统的准确性;仿真结果与已建立的解决方案表现出良好的协议。对HART-II旋翼配置进行了受约束的基于梯度的设计优化。评估和改进了多学科敏感性分析的各个组件的计算成本。

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