首页> 外文期刊>Mechanical Engineering Journal >Shock wave modulation due to discharged plasma using a shock tube
【24h】

Shock wave modulation due to discharged plasma using a shock tube

机译:使用激波管放电等离子体引起的激波调制

获取原文
           

摘要

The interaction phenomenon between shock waves and the DC-discharged plasma was experimentally investigated to aid future supersonic aerodynamic performance improvements. A shock tube was used to generate the shock wave. For the discharged plasma generation, a wedge type test model with electrodes (anode and cathode) connected to the power supply system was installed into the shock tube measurement section. The nominal shock wave Mach number in the experiment was 2.0. The plasma input power range was from 0 W to 35.7 W, where 0 W corresponded to the no discharge case. Schlieren photography was used for visualization, and the pressure histories were measured. From the visualization, due to the interaction with the discharged plasma, shock wave modulation with curvature was observed. However, from the pressure measurement, pressure histories in a plane parallel to the shock wave were nearly identical between the side-wall and the top-wall, despite the shock wave modulation. From these results―obtained from visualization and pressure measurement, the shock wave modulation observed in this study had a three-dimensional (3D) structure. In order to comprehend this phenomenon, a 3D simulation with a simple modulated temperature field was conducted. The simulation results also indicated 3D shock wave modulation. Therefore, experiment and simulation both support the 3D structure of the modulated shock wave due to the interaction with the discharged plasma.
机译:实验研究了冲击波与直流放电等离子体之间的相互作用现象,以帮助改进未来的超声空气动力学性能。使用冲击管产生冲击波。为了产生放电的等离子体,在冲击管测量部分中安装了楔形测试模型,其中电极(阳极和阴极)连接到电源系统。实验中的标称冲击波马赫数为2.0。等离子体输入功率范围为0 W至35.7 W,其中0 W对应于无放电情况。使用Schlieren摄影进行可视化,并测量压力历史记录。通过可视化,由于与放电等离子体的相互作用,观察到了曲率的冲击波调制。然而,从压力测量来看,尽管有冲击波调制,但在平行于冲击波的平面中,侧壁和顶壁之间的压力历史几乎相同。从可视化和压力测量获得的这些结果来看,本研究中观察到的冲击波调制具有三维(3D)结构。为了理解该现象,进行了具有简单调制温度场的3D模拟。仿真结果还表明了3D冲击波调制。因此,由于与放电等离子体的相互作用,实验和仿真均支持调制冲击波的3D结构。

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