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Focusing-schlieren Visualization in Direct-connect Dual-mode Scramjet

机译:直接连接双模Scramjet中的重点 - Schlieren可视化

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Schlieren imaging has high sensitivity for density gradient in a flow field, and easily captures not only shock and expansion waves but also turbulent structures in the flow field. The conventional schlieren imaging, however, cannot capture clearly them in direct-connect supersonic combustor tests with long duration, because the severe temperature condition in the combustor locally changes the refractive index of the window glasses for optical access. The conventional schlieren technique is essentially sensitive to the entire region of the light path including the glasses. On the other hand, focusing-schlieren technique has narrow depth of focus. Therefore, the imaging is expected to avoid the thermal distortion of the glasses. In this work, we applied focusing-schlieren imaging to the supersonic combustion tests, and tried to clearly capture the flow features inside a dual-mode scramjet. The present system had about ± 5 mm depth of focus, and successfully visualized the flow field in the combustor, though the system sensitivity declined with the tunnel heating up. Combustion drastically changed the flow field inside the combustor, and induced volumetric expansion of fuel jet, resulting in pressure rise. Combustion-generated pressure rise pushed up the shock train up to the trilling edge of the ramp fuel injector. The system recorded two image pairs by using PIV system. These image pairs yielded the convection velocity of turbulent structures in the combustor.
机译:Schlieren成像在流场中具有高灵敏度的密度梯度,并且不仅可以捕获冲击和膨胀波,而且易于捕获流场中的湍流结构。然而,传统的Schlieren成像不能在长期持续时间的直接连接超声波燃烧器测试中清楚地捕获它们,因为燃烧器中的严重温度条件局部地改变窗玻璃的折射率进行光学接入。传统的Schlieren技术对包括玻璃的光路的整个区域基本上敏感。另一方面,聚焦 - Schlieren技术具有狭窄的焦点。因此,预期该成像将避免玻璃的热变形。在这项工作中,我们将聚焦 - Schlieren成像应用于超音速燃烧测试,并试图清楚地捕获双模剪刀内的流量功能。本系统的焦点约为±5毫米,并成功地在燃烧器中可视化了流场,尽管系统灵敏度随着隧道加热而下降。燃烧大大改变了燃烧器内的流场,并引起了燃料射流的体积膨胀,导致压力升高。燃烧产生的压力上升将冲击训训列推到斜坡燃料喷射器的叉边。使用PIV系统,系统记录了两种图像对。这些图像对产生了燃烧器中的湍流结构的对流速度。

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