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Three-dimensional viscous-inviscid coupling method for wind turbine computations

机译:三维粘性-无粘力耦合方法在风机计算中的应用

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In this paper, a computational model for predicting the aerodynamic behavior of wind turbine wakes and blades subjected to unsteady motions and viscous effects is presented. The model is based on a three-dimensional panel method using a surface distribution of quadrilateral sources and doublets, which is coupled to a viscous boundary layer solver. Unlike Navier-Stokes codes that need to solve the entire flow domain, the panel method solves the flow around a complex geometry by distributing singularity elements on the body surface, obtaining a faster solution and making this type of codes suitable for the design of wind turbines. A free-wake model has been employed to simulate the wake behind a wind turbine by using vortex filaments that carry the vorticity shed by the trailing edge of the blades. Viscous and rotational effects inside the boundary layer are taken into account via the transpiration velocity concept, applied using strip theory with the cross sectional angle of attack as coupling parameter. The transpiration velocity is obtained from the solution of the integral boundary layer equations with extension for rotational effects. It is found that viscosity plays a very important role in the predictions of blade aerodynamics and wake dynamics, especially at high angles of attack just before and after boundary layer separation takes place. The present code is validated in detail against the well-known MEXICO experiment and a set of non-rotating cases. Copyright (C) 2014 John Wiley & Sons, Ltd.
机译:本文提出了一种计算模型,用于预测风力机尾流和叶片在非定常运动和粘性作用下的空气动力学行为。该模型基于使用四边形源和双峰的表面分布的三维面板方法,该方法耦合到粘性边界层求解器。与需要解决整个流域的Navier-Stokes代码不同,面板方法通过在体表上分布奇异元素来求解复杂几何形状的流,从而获得更快的解决方案并使此类代码适合于风力涡轮机的设计。 。通过使用带有通过叶片后缘散发的涡度的涡流细丝,采用了自由尾流模型来模拟风力涡轮机后的尾流。通过蒸发速度的概念考虑了边界层内部的粘性和旋转效应,该蒸发速度的概念是使用带状理论以横截面攻角作为耦合参数来应用的。蒸腾速度是从积分边界层方程的解中获得的,扩展了旋转效应。发现粘度在叶片空气动力学和尾流动力学的预测中起着非常重要的作用,特别是在边界层分离前后,在大迎角下。本代码已针对著名的MEXICO实验和一组非旋转案例进行了详细验证。版权所有(C)2014 John Wiley&Sons,Ltd.

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