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In-situ monitoring of Subaru Telescope's optical performance using a portable spectrophotometer

机译:使用便携式分光光度计对斯巴鲁望远镜光学性能的原位监测

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We report the reflectivity of the Subaru Telescope's mirrors and these time evolutions measured with the Subaru Portable Spectrophotometer (SPS). Thanks to the capability of SPS, the absolute, spectroscopic reflectivity has been measured in-situ on the telescope since October 2017, and it becomes possible to understand and forecast the time evolution of the reflectivity degradation. We established a simple two factor model for the reflectivity degradation of the primary mirror which has coated with aluminum in 2017. From a study of CO_2 cleaning with SPS, a part of dust on the mirror surface was found to be removed with CO_2 cleaning, on the other hand, the roughness of the surface was found to become larger than before cleaning. The time evolution of the reflectivity of the primary mirror is now able to be forecasted. In parallel, we have applied SPS measurement to the infrared secondary mirror of the Subaru Telescope (IR M2) and found a significant loss of reflectivity in the visible wavelength in November 2018. IR M2 had been coated with silver in 2008 and used for over ten years. Although the original reflectivity of silver mirror is ~98% at 589 nm, there was ~50% in November 2018. and it was ~30% at in November 2019. One of the causes of the significant loss could be due to volcanic gas from the explosion of Kilauea in May 2018; however, it was hard to explain the continuing degradation in reflectivity through the following year. The reflectivity could not be recovered by any quick cleanings. We carried out recoating of IR M2 in November 2019. A three-factor model to explain the reflectivity degradation of IR, M2 was considered. The model would help us to understand what happens on silver mirrors. On the other hand, unknown localized phenomenon such as a white spot was seen on the IR M2 mirror surface.
机译:我们报告的昴星望远镜的反射镜,并与斯巴鲁便携式分光光度计(SPS)测量这些时间演变的反射率。由于SPS的能力,绝对的,光谱反射率已经原位自2017年十月测量的望远镜,并且能够理解和预测的反射率下降的时间演化。我们建立了已经涂有铝在2017年从CO_2与SPS,的镜表面上的灰尘的一部分清洁研究主镜的反射率退化一个简单的两个因素模型被发现与CO_2清洗被除去,上另一方面,表面的粗糙度为变得比前清洗大。主反射镜的反射的时间演变是现在能够进行预测。同时,我们已应用SPS测量到昴星望远镜(IR M2)的红外副镜,发现反射率在可见光波长的显著损失在2018年十一月IR M2已经涂覆有银在2008年和用于十年。虽然银镜的原始反射率是〜98%在589nm,有在2018年十一月为〜50%,并且它在11月2019之一显著损失的原因是由于从火山气体为〜30%可能是基拉韦厄火山2018年5月的爆炸;然而,这是很难通过,次年解释反射率的持续下降。反射率不能由任何快速的清洗回收。我们进行了在2019年十一月的三因素模型IR M2的重涂来解释IR的反射率下降,M2进行了审议。模型将帮助我们理解在银镜会发生什么。在另一方面,未知局部现象,诸如白斑,看到的IR M2镜面上。

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