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Improving the Performance of a Plasma Actuator Model for DBD and Multi-Encapsulated Electrode Actuators

机译:改善用于DBD和多封装电极致动器的等离子致动器模型的性能

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Over the past dozen years, a substantial number of analytical, experimental, and computational research efforts have investigated the potential of plasma actuators in aerodynamics. Several phenomenological plasma actuator models have been successful at modeling certain aspects of flow in the vicinity of a DBD plasma actuator; however, achieving broad applicability of these models remains a challenge. In light of this, a numerical approach based on the Suzen-Huang (S-H) actuator model is being developed and applied over a range of DBD plasma actuators with different specifications, materials, and electrical inputs. Rather than testing the model at one particular set of circumstances, it is expected that simulating across a variety of conditions and a variety of outputs will better reveal the strengths and limitations of the modeling approach, and provide guideposts for improving the modeling techniques. While previous numerical simulations have shown that the magnitude and location of maximum induced horizontal velocities, as well as the temporal forcing can be captured with engineering accuracy, the vertical extent of the jet, as well as the vertical velocities are not well represented. An objective of this study is to more accurately model the vertical velocity distribution and the width of the jet within the S-H model for both traditional and multi encapsulated electrode (MEEDBD) plasma actuators.
机译:在过去的十二年中,大量的分析,实验和计算研究工作已经研究了等离子体致动器在空气动力学中的潜力。几种现象学等离子体致动器模型已经成功地对DBD等离子体致动器附近的某些方面进行了建模。然而,实现这些模型的广泛适用性仍然是一个挑战。鉴于此,正在开发基于Suzen-Huang(S-H)执行器模型的数值方法,并将其应用于一系列具有不同规格,材料和电输入的DBD等离子执行器。期望不是在一组特定的情况下测试模型,而是希望在各种条件和各种输出下进行仿真将更好地揭示建模方法的优势和局限性,并为改进建模技术提供指导。尽管先前的数值模拟表明可以以工程精度捕获最大感应水平速度的大小和位置以及时间强迫,但是并不能很好地表示出射流的垂直范围和垂直速度。这项研究的目的是在传统和多封装电极(MEEDBD)等离子体致动器的S-H模型中更准确地模拟垂直速度分布和射流宽度。

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