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Thermalizing a telescope in Antarctica: Analysis of ASTEP observations

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arxiv 1506.06009 v1 pith:PGNRVMPQ submitted 2015-06-19 astro-ph.IM astro-ph.EPastro-ph.SR

Thermalizing a telescope in Antarctica: Analysis of ASTEP observations

classification astro-ph.IM astro-ph.EPastro-ph.SR
keywords telescopeobservationsseeingtemperatureantarcticaarcsecastepdegrees
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The installation and operation of a telescope in Antarctica represent particular challenges, in particular the requirement to operate at extremely cold temperatures, to cope with rapid temperature fluctuations and to prevent frosting. Heating of electronic subsystems is a necessity, but solutions must be found to avoid the turbulence induced by temperature fluctua- tions on the optical paths. ASTEP 400 is a 40 cm Newton telescope installed at the Concordia station, Dome C since 2010 for photometric observations of fields of stars and their exoplanets. While the telescope is designed to spread star light on several pixels to maximize photometric stability, we show that it is nonetheless sensitive to the extreme variations of the seeing at the ground level (between about 0.1 and 5 arcsec) and to temperature fluctuations between --30 degrees C and --80 degrees C. We analyze both day-time and night-time observations and obtain the magnitude of the seeing caused by the mirrors, dome and camera. The most important effect arises from the heating of the primary mirror which gives rise to a mirror seeing of 0.23 arcsec K--1 . We propose solutions to mitigate these effects.

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Cited by 3 Pith papers

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