用等离子体作动器修正三维后向阶跃流动结构

A. J. Torres, R. Bardera-Mora, Mario Sánchez García, M. Calero
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引用次数: 2

摘要

后向台阶(BFS)形状是在许多工程应用中发现的常见配置。BFS尾部的紊流结构会导致危险情况的发生。因此,流量控制是实现安全条件的有效技术。近年来,等离子体器件因其无运动部件、时间响应快、能耗低等特点,在流体控制中具有重要的应用价值。本文通过风洞试验,研究了一组介质阻挡放电(DBD)等离子体致动器放置在BFS圆角边缘的实验结果及其控制流动的能力。与其他研究相反,研究了等离子体致动器在BFS上存在三维流动时的行为。首先,利用粒子图像测速技术(PIV)对自由流速度为6 m/s的DBD等离子体作动器进行了参数化研究,分析了电参数的位置和影响。结果表明,采用-45°壁面射流的执行器在30 kVpp和2.5 kHz时提供了最高的流量控制,在等离子体关闭情况下,再连接长度减少了65.6%。对该配置进行了优化,并与更高速度(10 m/s)的双驱动器进行了比较。由于双致动器的制造复杂性,建议使用简单的致动器,因为它们具有相似的结果,在大约10米/秒的速度下,再附着点减少30%。无论如何,结果证实了等离子体作动器在改变BFS后流动结构方面的权威。
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3D Backward-Facing Step Flow Structure Modification with Plasma Actuators
Backward-Facing Step (BFS) shape is a common configuration found in several engineering applications. The turbulent flow structure in the backside of a BFS leads to risky situations. Then, flow control is a useful technique to achieve safe conditions. In recent years, plasma devices have become an interesting technology with high importance for flow control because of non-moving parts, fast time response and low energy consumption. This paper presents the experimental investigation of a set of Dielectric Barrier Discharge (DBD) plasma actuators placed on the rounded edge of a BFS and its capability for flow control by wind tunnel testing. In contrast to the other studies, the behaviour of the plasma actuators in presence of 3D flow over a BFS was investigated. Firstly, a parametric study by analysing the location and the influence of the electrical parameters of the DBD plasma actuator was performed at a freestream velocity of 6 m/s using Particle Image Velocimetry (PIV). It was seen that actuator with -45° wall jet provides the highest flow control at 30 kVpp and 2.5 kHz with a reattachment length reduction of 65.6% referred to plasma off case. This configuration was optimized and compared with a double actuator for a higher velocity (10 m/s). The manufacturing complexity of the double actuator recommends the use of a simple actuator due to the fact that they have similar results, with a 30% of reattachment point reduction approximately at 10 m/s. Anyhow, the results confirm the authority of plasma actuators to modify the flow structure behind a BFS.
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