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Steady and Unsteady Excitation of Separated Flow over the NASA Hump Model

机译:NASA驼峰模型上分离流的稳态和非稳态激发

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Separated flow and its control over the NASA hump model were investigated at subsonic speeds. Three-dimensional, unsteady fluid dynamic simulations were supplemented by wind tunnel measurements. Flow control was implemented by means of spatially distributed discrete jets operating in steady and unsteady modes. The effects of excitation amplitude and frequency were studied numerically and experimentally. Several integral parameters were explored as quality metrics. In addition to the existing ones, two new integral parameters, which are slightly modified versions of the normal force and moment coefficients, were introduced. These two parameters together with pressure drag coefficient were found to be well correlated with the flow control and used in the performance evaluation of different flow control methods including, zero net mass flux actuators, steady suction, sweeping jet actuators, and the currently studied steady and unsteady excitations. For the cases tested, it was found that the unsteady excitation is superior to the steady excitation and slightly better than the sweeping jet actuators whereas the steady suction was found to be the most effective. Although the numerical simulations overpredict the separation bubble, these simulations capture the salient features of flow separation control and hence help us to understand the effect of steady/unsteady excitation on the separated flow.
机译:在亚音速下研究了分离流及其对NASA驼峰模型的控制。三维非定常流体动力学模拟通过风洞测量得到补充。流量控制是通过以稳态和非稳态模式运行的空间分布的离散射流实现的。数值和实验研究了激励幅度和频率的影响。探索了几个不可或缺的参数作为质量指标。除了现有参数外,还引入了两个新的积分参数,它们是法向力和力矩系数的略微修改版本。发现这两个参数与压力阻力系数一起与流量控制密切相关,并用于评估不同流量控制方法的性能,这些方法包括零净质量磁通执行机构,稳定吸力,清扫式执行机构以及当前研究的稳态和静态。不稳定的激励。对于所测试的情况,发现非恒定励磁优于稳定励磁,并且比清扫喷射执行器略好,而稳定吸力被认为是最有效的。尽管数值模拟高估了分离气泡,但这些模拟捕获了流分离控制的显着特征,因此有助于我们了解稳定/不稳定激发对分离流的影响。

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