首页> 外文会议>International Conference on Mechanical Engineering >Numerical investigation of drag reduction using moving surface boundary layer control (MSBC) on NACA 0012 airfoil
【24h】

Numerical investigation of drag reduction using moving surface boundary layer control (MSBC) on NACA 0012 airfoil

机译:使用移动表面边界层控制(MSBC)在Naca 0012翼型上的减阻的数值研究

获取原文

摘要

Flow separation occurs due to boundary layer formation over the airfoil surface. It has significant effects on aerial application. The wake formation, due to the separation of boundary layer, attenuates the pressure differential on airfoil-especially at high angle of attack. The application of momentum injection via moving surface in the flow field energizes the flow field and improves the adverse pressure gradient and attenuates the wake formation. This study focuses on the drag reduction by improving adverse pressure gradient and narrowing the wake zone of 2D NACA 0012 by moving surface through Numerical Analysis (CFD). Selection of the speed of moving surface for investigation purpose and to get aerodynamic advantage. So one slot with a width of 5% of the chord length is placed at suction surface for single moving surface starting from 0.05c to 0.1c and for double moving surface two slots of 5% of the chord length are placed, one at suction surface starting from 0.05c to 0.1c and the other at pressure side from 0.05c to 0.1c. Momentum injection into the flow field narrows the wake zone in the vicinity of trailing edge of the airfoil. By momentum injection through single moving surface, when the surface speed ratio (u/U) is 1, it is possible to reduce the drag coefficient on an average by 13% and for double moving surface it is possible to reduce the drag coefficient on an average by 14.22%.
机译:由于翼型表面上的边界层形成,发生流动分离。它对航空应用有显着影响。由于边界层的分离,唤醒形成,衰减翼型上的压差 - 特别是在高迎角。流动场中移动表面的动量喷射的应用激励流场并改善不利的压力梯度并衰减唤醒形成。本研究通过通过数值分析(CFD)改善了通过移动表面来改善不利的压力梯度并使2D NACA 0012的唤醒区变窄来减少阻力。选择移动表面的速度进行调查目的并获得空气动力学优势。因此,具有宽度为弦长的一个槽的槽放置在吸入表面上,用于从0.05℃至0.1℃开始的单个移动表面,并且对于弦长的双移动表面,放置5%的弦长,一个在吸入表面上放置一个。从0.05℃开始0.05℃,压力侧0.05℃至0.1℃。进入流场的动量注射在翼型的后缘附近变窄。通过动量通过单个移动表面注射,当表面速度比(U / U)为1时,可以平均降低拖动系数,并且对于双移动表面,可以减少拖动系数平均14.22%。

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