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Investigation of Mixed Element Hybrid Grid-Based CFD Methods for Rotorcraft Flow Analysis

机译:基于混合元混合网格的CFD旋翼机流动分析方法研究

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Accurate first-principles flow prediction is essential to the design and development of rotorcraft, and while current numerical analysis tools can, in theory, model the complete flow field, in practice the accuracy of these tools is limited by various inherent numerical deficiencies. An approach that combines the first-principles physical modeling capability of CFD schemes with the vortex preservation capabilities of Lagrangian vortex methods has been developed recently that controls the numerical diffusion of the rotor wake in a grid-based solver by employing a vorticity-velocity, rather than primitive variable, formulation. Coupling strategies, including variable exchange protocols are evaluated using several unstructured, structured, and Cartesian-grid Reynolds Averaged Navier-Stokes (RANS)/Euler CFD solvers. Results obtained with the hybrid grid-based solvers illustrate the capability of this hybrid method to resolve vortex-dominated flow fields with lower cell counts than pure RANS/Euler methods.
机译:准确的第一性原理流量预测对于旋翼飞机的设计和开发至关重要,尽管目前的数值分析工具可以在理论上为整个流场建模,但实际上,这些工具的准确性受到各种固有数值缺陷的限制。最近开发了一种将CFD原理的第一原理物理建模能力与拉格朗日涡旋方法的涡旋保持能力相结合的方法,该方法通过采用涡旋速度来控制基于网格的求解器中转子尾流的数值扩散。而不是原始变量,公式。耦合策略(包括变量交换协议)使用多个非结构化,结构化和笛卡尔网格雷诺平均Navier-Stokes(RANS)/ Euler CFD求解器进行评估。使用基于网格的混合求解器获得的结果说明了这种混合方法能够以比纯RANS / Euler方法更少的单元数来解析涡旋主导的流场。

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