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Wind tunnel testing of a generic telescope enclosure

机译:通用望远镜外壳的风洞测试

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摘要

The design of future large optical telescopes must take into account the wind-induced buffeting of the telescope structure caused by large-scale flow structures and turbulence inside the dome. However, estimating the resulting degradation in image quality is difficult due to our relatively poor understanding of the flow inside the dome. Data has been collected in a scaled wind-tunnel test of a telescope enclosure to understand the flow-field around the region near the dome opening where the secondary mirror and supporting structure would be subjected to wind loads. Digital particle image velocimetry (DPIV) data was collected in a vertical plane near the dome opening to obtain mean velocity and fluctuation kinetic energy. In addition, hotwire data was collected along the telescope axis to obtain temporal spectra of the velocity, and flow visualization was used to determine the general flow patterns. In addition to its direct use in telescope modeling and design, this data is of particular value in validation of computational fluid dynamic (CFD) analyses, so that CFD can be used with confidence in future design work.
机译:未来的大型光学望远镜的设计必须考虑到风镜结构的风振性,这是由于大型流动结构和圆顶内部的湍流引起的。但是,由于我们对圆顶内部的流动的了解相对较差,因此很难估计由此导致的图像质量下降。在望远镜外壳的风洞测试中已收集了数据,以了解圆顶孔附近区域的流场,在该区域中次镜和支撑结构将承受风荷载。在圆顶开口附近的垂直平面中收集数字粒子图像测速(DPIV)数据,以获得平均速度和波动动能。此外,沿望远镜轴收集热线数据以获得速度的时间谱,并使用流动可视化确定总体流动模式。除了直接用于望远镜建模和设计之外,该数据在验证计算流体力学(CFD)分析中也具有特殊价值,因此CFD可以放心地用于未来的设计工作。

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