Separation Flow Control of a Generic Ground Vehicle Using an SDBD Plasma Actuator
Quiescent flow and wind tunnel tests were performed to gain additional physical insights into flow control for automotive aerodynamics using surface dielectric barrier discharge plasma actuators. First, the aerodynamic characteristics of ionic wind were studied, and a maximum induced velocity of 3.3...
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doaj-b4a32654d887444ea286ce0d6bd7087b2020-11-25T02:29:58ZengMDPI AGEnergies1996-10732019-10-011220380510.3390/en12203805en12203805Separation Flow Control of a Generic Ground Vehicle Using an SDBD Plasma ActuatorZheng Hui0Xingjun Hu1Peng Guo2Zewei Wang3Jingyu Wang4State Key Laboratory of Automotive Simulation and Control, Jilin University, Changchun 130025, ChinaState Key Laboratory of Automotive Simulation and Control, Jilin University, Changchun 130025, ChinaState Key Laboratory of Automotive Simulation and Control, Jilin University, Changchun 130025, ChinaState Key Laboratory of Automotive Simulation and Control, Jilin University, Changchun 130025, ChinaState Key Laboratory of Automotive Simulation and Control, Jilin University, Changchun 130025, ChinaQuiescent flow and wind tunnel tests were performed to gain additional physical insights into flow control for automotive aerodynamics using surface dielectric barrier discharge plasma actuators. First, the aerodynamic characteristics of ionic wind were studied, and a maximum induced velocity of 3.3 m/s was achieved at an excitation voltage of 17 kV. Then, the optimal installation position of the actuator and the influence of the excitation voltage on flow control at different wind speeds were studied. The conclusions drawn are as follows. The effect of flow control is better when the upper electrode of the actuator is placed at the end of the top surface, increasing the likelihood of the plasma generation region approaching the natural separation location. The pressure on top of the slanted surface is primarily affected by airflow acceleration at a low excitation voltage and by the decrease of the separation zone at a high excitation voltage. The maximum drag reduction can be realized when the maximum velocity of ionic wind reaches 1.71 m/s at a wind speed of 10 m/s and 2.54 m/s at a wind speed of 15 m/s. Moreover, effective drag reduction can be achieved only by continuing to optimize the actuator to generate considerable thrust at a high wind speed.https://www.mdpi.com/1996-1073/12/20/3805vehicle aerodynamicsactive drag reductionsurface dielectric barrier dischargeplasma actuatorenergy conservation and emission reduction |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Zheng Hui Xingjun Hu Peng Guo Zewei Wang Jingyu Wang |
spellingShingle |
Zheng Hui Xingjun Hu Peng Guo Zewei Wang Jingyu Wang Separation Flow Control of a Generic Ground Vehicle Using an SDBD Plasma Actuator Energies vehicle aerodynamics active drag reduction surface dielectric barrier discharge plasma actuator energy conservation and emission reduction |
author_facet |
Zheng Hui Xingjun Hu Peng Guo Zewei Wang Jingyu Wang |
author_sort |
Zheng Hui |
title |
Separation Flow Control of a Generic Ground Vehicle Using an SDBD Plasma Actuator |
title_short |
Separation Flow Control of a Generic Ground Vehicle Using an SDBD Plasma Actuator |
title_full |
Separation Flow Control of a Generic Ground Vehicle Using an SDBD Plasma Actuator |
title_fullStr |
Separation Flow Control of a Generic Ground Vehicle Using an SDBD Plasma Actuator |
title_full_unstemmed |
Separation Flow Control of a Generic Ground Vehicle Using an SDBD Plasma Actuator |
title_sort |
separation flow control of a generic ground vehicle using an sdbd plasma actuator |
publisher |
MDPI AG |
series |
Energies |
issn |
1996-1073 |
publishDate |
2019-10-01 |
description |
Quiescent flow and wind tunnel tests were performed to gain additional physical insights into flow control for automotive aerodynamics using surface dielectric barrier discharge plasma actuators. First, the aerodynamic characteristics of ionic wind were studied, and a maximum induced velocity of 3.3 m/s was achieved at an excitation voltage of 17 kV. Then, the optimal installation position of the actuator and the influence of the excitation voltage on flow control at different wind speeds were studied. The conclusions drawn are as follows. The effect of flow control is better when the upper electrode of the actuator is placed at the end of the top surface, increasing the likelihood of the plasma generation region approaching the natural separation location. The pressure on top of the slanted surface is primarily affected by airflow acceleration at a low excitation voltage and by the decrease of the separation zone at a high excitation voltage. The maximum drag reduction can be realized when the maximum velocity of ionic wind reaches 1.71 m/s at a wind speed of 10 m/s and 2.54 m/s at a wind speed of 15 m/s. Moreover, effective drag reduction can be achieved only by continuing to optimize the actuator to generate considerable thrust at a high wind speed. |
topic |
vehicle aerodynamics active drag reduction surface dielectric barrier discharge plasma actuator energy conservation and emission reduction |
url |
https://www.mdpi.com/1996-1073/12/20/3805 |
work_keys_str_mv |
AT zhenghui separationflowcontrolofagenericgroundvehicleusingansdbdplasmaactuator AT xingjunhu separationflowcontrolofagenericgroundvehicleusingansdbdplasmaactuator AT pengguo separationflowcontrolofagenericgroundvehicleusingansdbdplasmaactuator AT zeweiwang separationflowcontrolofagenericgroundvehicleusingansdbdplasmaactuator AT jingyuwang separationflowcontrolofagenericgroundvehicleusingansdbdplasmaactuator |
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1724830549098364928 |