首页> 外文期刊>Applied Mathematical Modelling >Computational fluid dynamics simulation of aerodynamic performance and flow separation by single element and slatted airfoils under rainfall conditions
【24h】

Computational fluid dynamics simulation of aerodynamic performance and flow separation by single element and slatted airfoils under rainfall conditions

机译:在降雨条件下单元素流动性能和流动分离的计算流体动力学模拟

获取原文
获取原文并翻译 | 示例
       

摘要

This study investigated the effects of rainfall on flow separation and the aerodynamic performance of single element and slatted NACA 0012 airfoils by using a mathematical model developed with the commercial computational fluid dynamics solver ANSYS FLUENT 18.2. A two-way momentum coupled Eulerian-Lagrangian multiphase approach was used to simulate the formation of the water film layer on the airfoil's surface. According to the results, very low values of the lift-to-drag ratio at low angles of attack reflected severe degradation of the aerodynamic performance of the airfoil in the presence of water accumulated on its surface. The impact of rain droplets on the leading-edge slat surface led to less water accumulating on the main section of the airfoil. In particular, the maximum water film mass concentrated on the airfoil surface decreased from 15 g to 1 g compared with the single element airfoil. Hence, the thickness of the water film layer was not sufficiently large to significantly affect the aerodynamic coefficients of the slatted airfoil, especially the maximum lift coefficient, compared with the thicker water film layer on the single element airfoil. In addition, the use of slats clearly enhanced the aerodynamic coefficients and increased the stall angle from 13° to 22° in dry conditions, and from 16° to 24° in rainy conditions. Slats also significantly decreased the boundary layer thickness and delayed the separation at higher angles of attack.
机译:本研究调查了降雨对流动分离的影响和单个元素的流动分离和空气动力学性能,通过使用与商业计算流体动力学求解器ANSYS FLUENT 18.2开发的数学模型进行了单一元素和狭窄的NACA 0012翼型的空气动力学性能。使用双向动量耦合欧拉拉拉格氏多相方法来模拟翼型表面上的水膜层的形成。根据结果​​,在低角度的升力比率下非常低的值,在低角度下反映了翼型在其表面积聚的水中的空气动力学性能的严重降解。雨滴在前缘板条表面上的影响导致翼型的主要部分积聚在较少的水中。特别地,与单个元素翼型相比,浓缩在翼型表面上的最大水膜质量从15g到1g降低。因此,与单个元件翼型上的较厚的水膜层相比,水膜层的厚度不足以显着影响衬垫翼型的空气动力学系数,尤其是最大提升系数。此外,使用板条清楚地增强了空气动力学系数,并在干燥条件下从13°到22°和雨季条件下的16°至24°增加了失速角。板条也显着降低了边界层厚度,并在较高的迎角处延迟分离。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号