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Space-time computational analysis of MAV flapping-wing aerodynamics with wing clapping

机译:带翼拍手的MAV扑翼空气动力学的时空计算分析

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Computational analysis of flapping-wing aerodynamics with wing clapping was one of the classes of computations targeted in introducing the space-time (ST) interface-tracking method with topology change (ST-TC). The ST-TC method is a new version of the deforming-spatial-domain/stabilized ST (DSD/SST) method, enhanced with a master-slave system that maintains the connectivity of the "parent" fluid mechanics mesh when there is contact between the moving interfaces. With that enhancement and because of its ST nature, the ST-TC method can deal with an actual contact between solid surfaces in flow problems with moving interfaces. It accomplishes that while still possessing the desirable features of interface-tracking (moving-mesh) methods, such as better resolution of the boundary layers. Earlier versions of the DSD/SST method, with effective mesh update, were already able to handle moving-interface problems when the solid surfaces are in near contact or create near TC. Flapping-wing aerodynamics of an actual locust, with the forewings and hindwings crossing each other very close and creating near TC, is an example of successfully computed problems. Flapping-wing aerodynamics of a micro aerial vehicle (MAV) with the wings of an actual locust is another example. Here we show how the ST-TC method enables 3D computational analysis of flapping-wing aerodynamics of an MAV with wing clapping. In the analysis, the wings are brought into an actual contact when they clap. We present results for a model dragonfly MAV.
机译:带有拍翼声的襟翼空气动力学计算分析是针对引入具有拓扑变化的时空(ST)接口跟踪方法(ST-TC)的目标计算类别之一。 ST-TC方法是变形空间域/稳定ST(DSD / SST)方法的新版本,并通过主从系统进行了增强,该主从系统可在相互接触时保持“父”流体力学网格的连通性。移动界面。有了这种增强,并且由于其ST性质,ST-TC方法可以处理流动界面流动问题中的固体表面之间的实际接触。它实现了这一点,同时仍拥有界面跟踪(移动网格)方法的理想功能,例如边界层的更好分辨率。早期版本的DSD / SST方法具有有效的网格更新功能,当固体表面接近接触或产生接近TC时,已经能够处理移动界面问题。实际蝗虫的拍打翼空气动力学特性是,前翅和后翅彼此非常靠近并且产生接近TC的现象,这是成功计算出的问题的一个示例。带有实际蝗虫的机翼的微型飞行器(MAV)的襟翼空气动力学是另一个示例。在这里,我们展示了ST-TC方法如何使具有翼拍手的MAV的拍翼空气动力学进行3D计算分析。在分析中,机翼在拍手时会真正接触。我们为模型蜻蜓MAV提供结果。

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