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Physics-Based Modeling of Viscous Ground Effect for Rotorcraft Applications

机译:旋翼飞机应用中基于物理的粘性地面效应建模

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In this paper, a physics-based flow solver was used to address the challenging rotor wake and interference problems for rotorcraft operating in ground effect (IGE). The flow solver combines a state-of-the-art viscous vortex particle method (VPM) with a viscous ground model. VPM is based on the incompressible Navier-Stokes equations and adopts a grid-free Lagrangian formulation, which makes it well suited for aerodynamic interaction simulations to address complex rotor/ground interaction problems. The viscous ground model is applied to effectively enforce the no-slip unsteady boundary condition in VPM in a very efficient manner. With the enhancement for the viscous ground model, VPM accurately handles the physical no-slip boundary condition for both moving and static ground surfaces, which is missing in most image-based ground effect models. This paper discusses the detailed formulation and implementation of the viscous ground model in VPM. The flow solver thus developed was used to simulate various challenging aspects in the modeling of the rotor ground effect, which include the rotor tip vortex dynamics, the ground vortex structure, the rotor performance in hover and forward flight, the moving/static ground effect, and the rotor outwash and flow field. In addition, the impact of the interference between the main/tail rotors and the ground vortex on the tail rotor performance was also studied. Simulation results were compared with available measurements and excellent correlations were obtained from the current physics-based modeling technology.
机译:在本文中,基于物理的流量求解器用于解决在地面效应(IGE)下运行的旋翼航空器面临的挑战性旋翼唤醒和干扰问题。流动求解器将最新的粘性涡旋粒子方法(VPM)与粘性地面模型结合在一起。 VPM基于不可压缩的Navier-Stokes方程,并采用无网格的拉格朗日公式,这使其非常适合用于空气动力相互作用仿真,以解决复杂的转子/地面相互作用问题。应用粘性地面模型以非常有效的方式有效地在VPM中实施了非滑动非稳态边界条件。通过对粘性地面模型的增强,VPM可以准确处理移动地面和静态地面的物理防滑边界条件,这在大多数基于图像的地面效果模型中是不存在的。本文讨论了VPM中粘性地面模型的详细制定和实现。如此开发的流量求解器用于模拟转子地面效应建模中的各种挑战性方面,包括转子尖端涡旋动力学,地面涡旋结构,旋翼和前向飞行中的转子性能,动/静态地面效应,转子的冲刷和流场。此外,还研究了主/尾旋翼与地面涡流之间的干扰对尾旋翼性能的影响。仿真结果与可用的测量结果进行了比较,并从当前基于物理的建模技​​术中获得了极好的相关性。

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