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Experimental investigation on aero-optical effects of a hypersonic optical dome under different exposure times

机译:不同曝光时间下超声波光学圆顶的航空光学效应的实验研究

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The aero-optical effects induced by the complex flow structure around a hypersonic optical dome is highly unsteady, which leads to significant differences in the imaging quality under different exposure times. It is of great significance to study the influence of exposure time on imaging quality for guiding the design of imaging guidance seekers and improving imaging guidance accuracy. Based on the hypersonic gun wind tunnel, an aerooptical effect measurement platform was built to measure the wavefront from transient exposure to long exposure. With the increase of exposure time, the accuracy of high-order optical path difference (OPD) reconstruction by low-order Zernike polynomials increased from 62.2% to 88.6%. The increase of exposure time was helpful to reduce the complexity of the wavefront spatial distribution structure. In principle, it could reduce the difficulty of wavefront adaptive correction systems. With the increase of exposure time, the OPDrms corresponding to OPDhigh-order increased gradually, the amplitude decreased gradually, and the difference of OPDrms decreased gradually at different times. Under different exposure times, the large-aperture approximation principle could achieve a better prediction of Strehl ratio values. With the increase of exposure time, the imaging integral resolution, R, decreased obviously, and it was stable at about 1.43 R-0. Compared with that, Rwas improved by about 30% when the exposure time was 6 ns. (C) 2020 Optical Society of America
机译:由高超声道光学圆顶周围的复杂流动结构引起的航空光学效应非常不稳定,这导致成像质量下的显着差异在不同的曝光时间下。研究曝光时间对成像质量的影响具有重要意义,以指导成像引导件的设计,提高成像指导精度。基于超音枪风洞,建立了一个气动效应测量平台,以测量瞬态暴露于长曝光的波前。随着曝光时间的增加,低阶Zernike多项式的高阶光路径(OPD)重建的准确性从62.2%增加到88.6%。曝光时间的增加有助于降低波前空间分布结构的复杂性。原则上,它可以减少波前自适应校正系统的难度。随着曝光时间的增加,对应于OPDHigh阶的OPDRM逐渐增加,幅度逐渐降低,并且OPDRMS的差异在不同的时间逐渐降低。在不同的曝光时间下,大孔径近似原理可以实现更好地预测Strehl比值。随着曝光时间的增加,成像积分分辨率r明显减少,其稳定在约1.43 r-0。与此相比,当暴露时间为6 ns时,rwas提高了约30%。 (c)2020美国光学学会

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    《Applied optics》 |2020年第13期|共9页
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