涡流环的机理分析及其对轴向下降转子的影响

Lifang Zeng, Zeming Gao, Tianyu Xu, Liangquan Wang
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引用次数: 0

摘要

涡流环是一种涉及复杂环状涡流系统的流动现象。当转子在下降飞行时,可能会进入涡环状态(VRS),从而影响转子的气动特性,甚至危及转子。为了阐明涡环对轴向下降转子产生影响的气动机理,本文提出了一种集成了结构化移动超集网格的转子非稳态数值模拟方法,并利用实验数据进行了验证。然后应用这种数值模拟方法分析了下降飞行中转子的气动特性。通过分析滑流中空气动力的变化和流动特性,阐明了转子处于 VRS 时空气动力负载、流场和涡流之间关系的物理机制。VRS 的影响导致平均气动力急剧下降,直接影响旋翼飞机的安全性和可靠性。在下降旋翼的滑流中,会形成一个明显的涡环,并随着下降速度的增加而向上移动。最严重的 VRS 发生在非维度下降速度为 1.13 时,此时高度不稳定涡环的中心正好位于叶片尖端,这可以作为 VRS 的一个指标。VRS 发挥作用的物理机制可归因于强涡流引起的低压。VRS 降低了叶片下表面的压力,增加了上表面的压力,从而降低了空气动力载荷。与悬停状态相比,VRS 产生的涡流强度更大,涡流结构也不同。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanism analysis of the vortex ring and its effects on an axial descending rotor
A vortex ring is a flow phenomenon involving a complex toroidal vortex system. When a rotor is in descending flight, it may enter the vortex ring state (VRS), which will affect the rotor’s aerodynamic characteristics and even endanger it. In this paper, to clarify the aerodynamic mechanism by which the vortex ring exerts its effects on an axial descending rotor, an unsteady numerical simulation method for the rotor integrated with structured moving overset grids is proposed and validated using experimental data. This numerical simulation method is then applied to analyze the aerodynamic characteristics of the rotor in descending flight. The variations of the aerodynamic forces and the flow characteristics in the slipstream are analyzed to elucidate the physical mechanisms responsible for the relationships between the aerodynamic loads, flow field, and vortices when the rotor is in the VRS. The effects of the VRS cause a sharp drop in the average aerodynamic forces, which directly affects the safety and reliability of a rotor aircraft. In the slipstream of the descending rotor, a distinct vortex ring forms and moves upward as the velocity of descent increases. The most severe VRS occurs at a nondimensional velocity of descent of 1.13 when the center of the highly unsteady vortex ring is right at the blade tip, and this can be used as an indicator of the VRS. The physical mechanism by which the VRS exerts its effects can be attributed to the low pressure induced by strong vortices. The VRS decreases the pressure on the lower surface of the blade and increases the pressure on the upper surface, resulting in a reduction in the aerodynamic loads. In comparison with the hovering state, the VRS results in a much larger vortex strength and possesses a different vortex structure.
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