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Control of Flow Separation in a Rocket Nozzle Using Microjets

机译:使用微型喷嘴控制火箭喷嘴中的流分离

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iRecent advances in commercial space transportation emphasize rocket engine reusability, reduced number of stages, and its operation over a wide range of operating conditions. The rocket nozzles typically underperform at sea level where they operate at highly overexpanded pressures. This leads to flow separation inside the nozzle that lowers nozzle efficiency. In addition, asymmetric flow separation inside the nozzle will generate side loadings and large amplitude pressure fluctuations resulting in nozzle fatigue and a catastrophic mission failure. The main objective of this study is to characterize the performance of a scaled convergent–divergent supersonic rocket nozzle by identifying flow separation locations along the diverging section at various nozzle operating conditions. This information was then used to guide the implementation of active flow control technique using transverse secondary gas injection microjets near the separation line. Measurements include pressure distributions inside the nozzle with and without microjet control over a range of nozzle pressure ratios (NPRs) and velocity field measurements in the jet plume near the nozzle exit. Results show that the flow separation location is a function of the NPR for the baseline configuration. An increase in NPR results in a delay in the flow separation marked by a downstream movement of separation location. Microjet control appears to be very effective in delaying the flow separation, increase the jet diameter at the exit plane, and thereby improve the stability of the jet plume.
机译:商业太空运输的最新进展强调了火箭发动机的可重复使用性,减少的级数及其在各种运行条件下的运行。火箭喷嘴通常在海平面上表现不佳,在高压力下它们会工作。这导致喷嘴内部的流动分离,从而降低了喷嘴效率。另外,喷嘴内部的不对称流动分离将产生侧向载荷和大幅度的压力波动,从而导致喷嘴疲劳和灾难性的任务失败。这项研究的主要目的是通过确定在各种喷嘴工作条件下沿发散段的流动分离位置来表征缩放的会聚-发散超音速火箭喷嘴的性能。然后,此信息将用于指导在分离线附近使用横向二次气体喷射微喷的主动流控制技术的实施。测量包括在一定范围的喷嘴压力比(NPRs)范围内使用和不使用微射流控制时喷嘴内部的压力分布以及喷嘴出口附近射流羽流中的速度场测量。结果表明,对于基线配置,流分离位置是NPR的函数。 NPR的增加导致以分离位置的下游移动为标志的流分离延迟。微喷射控制似乎在延迟流分离,增加出口平面的射流直径,从而提高射流羽流的稳定性方面非常有效。

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