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The exoplanet hunter HARPS: unequalled accuracy and perspectives toward 1 cm s~(-1) precision

机译:EXOPLANET HUNTER HARPS:对1cm S〜(-1)精确度的无比的准确性和观点

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We present results from the first two years of operations of the HARPS spectrograph installed on the ESO 3.6m telescope at La Silla Observatory, Chile. This instrument, primarily built to detect extrasolar planetary systems, was designed to achieve the highest radial velocity precision ever thanks to high mechanical and environmental stability, stable illumination, accurate wavelength calibration and tracking of instrumental drifts. HARPS has demonstrated a long-term accuracy at the 1 m s~(-1) level and below, exploring a new regime in RV precision. We present recent improvements in the wavelength calibration process, including the creation of a new ThAr reference atlas and the use of a much larger number of lines to fit the wavelength solution. We have also investigated the intrinsic stability of ThAr calibration lamps and show that they are able to provide a long-term wavelength reference at or below the 1 m s~(-1) level. Other instrumental error sources such as guiding accuracy and photon noise are discussed and a global error budget is presented. These efforts to further improve the RV precision are also part of a broader study to build a ultra-high accuracy spectro-velocimeter for the ESO OWL telescope, the CODEX project. The aim of this instrument is to reach an accuracy of 1 cm s~(-1) over timescales of at least ten years. This requires to push down the limits of present-day calibration techniques and to explore new technologies able to provide ultra-precise Doppler measurements.
机译:我们呈现出在智利的ESO 3.6M望远镜上安装在ESO 3.6M望远镜上的竖琴谱仪的前两年的结果。该仪器主要用于检测郊区线路系统,旨在实现最高的径向速度精度,既由于高机械和环境稳定,稳定的照明,精确波长校准和仪器漂移跟踪。 Harps在1 M S〜(-1)水平和下方的长期精度展示,探索了RV精度的新制度。我们在最近的波长校准过程中提高了改进,包括创建新的THAR参考标签,并使用更大数量的线来适应波长解决方案。我们还研究了THAR校准灯的内在稳定性,并表明它们能够在1M S〜(-1)水平或低于或低于1M S〜(-1)水平的长期波长参考。讨论了其他乐器误差源,例如引导精度和光子噪声,并呈现全局错误预算。这些努力进一步提高RV精度,也是为eSo猫头鹰望远镜构建超高精度光谱 - 速度计的更广泛的研究的一部分,是Codex项目。该仪器的目的是在至少十年的时间内达到1cm S〜(-1)的准确性。这需要推下本日校准技术的限制,并探索能够提供超精确多普勒测量的新技术。

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