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High-performance computing-based exploration of flow control with micro devices

机译:基于高性能计算的微设备流量控制探索

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摘要

The dielectric barrier discharge (DBD) plasma actuator that controls flow separation is one of the promising technologies to realize energy savings and noise reduction of fluid dynamic systems. However, the mechanism for controlling flow separation is not clearly defined, and this lack of knowledge prevents practical use of this technology. Therefore, large-scale computations for the study of the DBD plasma actuator have been conducted using the Japanese Petaflops supercomputer ‘K’ for three different Reynolds numbers. Numbers of new findings on the control of flow separation by the DBD plasma actuator have been obtained from the simulations, and some of them are presented in this study. Knowledge of suitable device parameters is also obtained. The DBD plasma actuator is clearly shown to be very effective for controlling flow separation at a Reynolds number of around 105, and several times larger lift-to-drag ratio can be achieved at higher angles of attack after stall. For higher Reynolds numbers, separated flow is partially controlled. Flow analysis shows key features towards better control. DBD plasma actuators are a promising technology, which could reduce fuel consumption and contribute to a green environment by achieving high aerodynamic performance. The knowledge described above can be obtained only with high-end computers such as the supercomputer ‘K’.
机译:控制流分离的介质阻挡放电(DBD)等离子体致动器是实现流体动力系统的节能和降噪的有前途的技术之一。但是,控制流分离的机制尚未明确定义,并且由于缺乏知识而无法实际使用该技术。因此,已经使用日本Petaflops超级计算机“ K”对三个不同的雷诺数进行了大规模的DBD等离子致动器研究。从模拟中获得了许多有关DBD等离子体致动器控制流动分离的新发现,并且在本研究中介绍了其中的一些发现。还可以获得合适的设备参数的知识。清楚地表明,DBD等离子体致动器在控制雷诺数约为10 5 时对于控制流分离非常有效,并且在更高的攻角之后,可以实现几倍大的升阻比摊位。对于更高的雷诺数,部分控制分离的流量。流量分析显示了实现更好控制的关键功能。 DBD等离子致动器是一项很有前途的技术,它可以通过实现高空气动力学性能来减少燃油消耗并为绿色环境做出贡献。只能通过高端计算机“ K”之类的高端计算机来获得上述知识。

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