Advanced Search+
ZHENG Borui (郑博睿), GAO Chao(高超), LI Yibin(李一滨), LIU Feng(刘峰), LUO Shijun(罗时钧. Flow Control over a Conical Forebody by Duty-Cycle Actuations[J]. Plasma Science and Technology, 2012, 14(1): 58-63. DOI: 10.1088/1009-0630/14/1/13
Citation: ZHENG Borui (郑博睿), GAO Chao(高超), LI Yibin(李一滨), LIU Feng(刘峰), LUO Shijun(罗时钧. Flow Control over a Conical Forebody by Duty-Cycle Actuations[J]. Plasma Science and Technology, 2012, 14(1): 58-63. DOI: 10.1088/1009-0630/14/1/13

Flow Control over a Conical Forebody by Duty-Cycle Actuations

Funds: supported by the Specialized Research Fund for Doctoral Program of Higher Education, SPFDP-200806990003, and the Foundation for Fundamental Research of the Northwestern Polytechnical University, NPU-FFR-W018102.
More Information
  • Received Date: August 05, 2011
  • Duty-cycle modulation alternately blowing from two opposite-facing plasma actuators on the leeward surface near the apex of a cone with a 10° semi-apex angle is adopted to control mean lateral force and moment, and the flow control mechanisms are presented. Pressure distributions over the forebody of the cone are measured by steady and unsteady pressure tappings. The experiments are performed in a 3.0 × 1.6 m open-circuit wind tunnel at a wind speed of 20 m/s, a 45º angle of attack and a Reynolds number of 2 × 105, based on the diameter of the base of the cone. Almost linear proportional control of the lateral forces and moments over a slender conical forebody at a high angle of attack has been demonstrated by employing a pair of single dielectric barrier discharge plasma actuators near the apex of the cone, combined with a duty-cycle technique. The pressure distribution measurements indicate that the bi-stable vortex pattern appears to be shifted in the opposite direction when the port or starboard actuator is activated, while the other is kept off during the test. It is shown that the reduced pulse-repetition frequency based on the local diameter at the plasma actuator equal to one yields the highest effectiveness among the cases considered.
  • Related Articles

    [1]Sunggeun LEE, Hankwon LIM. Landau damping of twisted waves in Cairns distribution with anisotropic temperature[J]. Plasma Science and Technology, 2021, 23(8): 85001-085001. DOI: 10.1088/2058-6272/ac01be
    [2]Jutao YANG (杨巨涛), Jianguo WANG (王建国), Qingliang LI (李清亮), Haiqin CHE (车海琴), Shuji HAO (郝书吉). Optimized analysis of ionospheric amplitude modulated heating parameters for excitation of very/extremely low frequency radiations[J]. Plasma Science and Technology, 2019, 21(7): 75301-075301. DOI: 10.1088/2058-6272/ab0bcd
    [3]Wei WANG (王玮), Zhengxiong WANG (王正汹), Jiquan LI (李继全), Yasuaki KISHIMOTO, Jiaqi DONG (董家齐), Shu ZHENG (郑殊). Magnetic-island-induced ion temperature gradient mode: Landau damping, equilibrium magnetic shear and pressure flattening effects[J]. Plasma Science and Technology, 2018, 20(7): 75101-075101. DOI: 10.1088/2058-6272/aab48f
    [4]Imran Ali KHAN, G MURTAZA. Effect of kappa distribution on the damping rate of the obliquely propagating magnetosonic mode[J]. Plasma Science and Technology, 2018, 20(3): 35302-035302. DOI: 10.1088/2058-6272/aaa457
    [5]ZHANG Jingyang (张镜洋), HAN Le (韩乐), CHANG Haiping (常海萍), LIU Nan (刘楠), XU Tiejun (许铁军). The Corrected Simulation Method of Critical Heat Flux Prediction for Water-Cooled Divertor Based on Euler Homogeneous Model[J]. Plasma Science and Technology, 2016, 18(2): 190-196. DOI: 10.1088/1009-0630/18/2/16
    [6]REN Yanqiu (仁艳秋), LI Gun (李滚), DUAN Wenshan (段文山). Damping Solitary Wave in a Three-Dimensional Rectangular Geometry Plasma[J]. Plasma Science and Technology, 2016, 18(2): 108-113. DOI: 10.1088/1009-0630/18/2/02
    [7]T. S. HAHM. Ion Heating from Nonlinear Landau Damping of High Mode Number Toroidal Alfvén Eigenmodes[J]. Plasma Science and Technology, 2015, 17(7): 534-538. DOI: 10.1088/1009-0630/17/7/02
    [8]ZHANG Shuangxi(张双喜), GAO Zhe(高喆), WU Wentao(武文韬), QIU Zhiyong(仇志勇). Damping of Geodesic Acoustic Mode by Trapped Electrons[J]. Plasma Science and Technology, 2014, 16(7): 650-656. DOI: 10.1088/1009-0630/16/7/04
    [9]CHEN Shuangtao (陈双涛), ZHAO Hongli (赵红利), MA Bin (马斌), HOU Yu (侯予). Calculation of the Critical Speed and Stability Analysis of Cryogenic Turboexpanders with Different Structures[J]. Plasma Science and Technology, 2012, 14(10): 919-926. DOI: 10.1088/1009-0630/14/10/12
    [10]XIU Shixin (修士新), YE Zhaoping (叶兆平), LI Quan (李泉). Influce of Initial Opening Speed on Characteristics of a Drawn Vacuum Arc[J]. Plasma Science and Technology, 2011, 13(3): 376-380.

Catalog

    Article views (766) PDF downloads (1480) Cited by()

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return