The NEID precision radial velocity spectrometer: project overview and status update (Conference Presentation)

C. Bender, R. Akeson, Lori Allen, Tyler B. Anderson, Fabienne A. Bastien, Cullen H. Blake, Scott Blakeslee, Abhijit G. Chakraborty, S. Diddams, Qian Gong, S. Halverson, F. Hearty, E. Hunting, K. P. Jaehnig, S. Kanodia, Kyle F. Kaplan, Eric I. Levi, Dan Li, J. Luhn, S. Logsdon, S. Mahadevan, M. McElwain, Andrew J. Monson, J. Ninan, Jeffery W. Percival, J. Rajagopal, L. Ramsey, Paul Robertson, Arpita Roy, C. Schwab, Michael P. Smith, G. Stefansson, R. Terrien, M. Wolf, Jason T. Wright
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引用次数: 1

Abstract

NEID is an ultra-stabilized, high-resolution, fiber-fed, spectrometer being built by a multi-institutional team for the 3.5 m WIYN telescope at Kitt Peak National Observatory, with a delivery date in 2019. The instrument is supported by the NN-EXPLORE program, a joint endeavor between NASA and the NSF to provide the exoplanet community with extreme ground-based Doppler radial velocity (RV) measurement capability. NEID's primary science objective is the discovery and characterization of terrestrial mass exoplanets, including follow-up of planets discovered by TESS and other spacecraft missions. Achieving these goals requires a multi-faceted approach that combines a state of the art Doppler instrument with a RV precision goal of 30 cm/s, a significantly improved understanding of the stellar radial velocity signal and intrinsic stellar variability, and large numbers of observations distributed optimally in time following guidelines refined over the past 25 years of RV exoplanet discovery. NEID uses a single-arm white pupil echelle optical design to produce R~100,000 spectra covering the complete wavelength range from 0.38 - 0.92 microns on a single 9k x 9k CCD. The optical bench and optics are stabilized with a state of the art temperature control system that achieves sub-mK stability, and are surrounded by a vacuum chamber that maintains 10^-7 Torr pressure or better. This extreme stability minimizes drift in the optics and optomechanical systems. Light is transfered from the telescope to the spectrometer using fiber-optic feeds that combine circular and octagonal fibers with a ball-lens double scrambler to provide high amounts of radial and azmuthal scrambling that minimize variations in the input illumination. These fibers interface with the WIYN telescope through a sophisticated new instrument port, which will provide atmospheric-dispersion correction and active tip-tilt to ensure precise and repeatable target positioning on the fiber. A three tiered calibration system utilizes a Laser Frequency Comb as the primary wavelength calibrator, while providing a stabilized etalon and ThAr and UNe Hollow-Cathode Lamps as high-reliability backup sources. An integrated exposure meter in the form of a low-resolution spectrometer measures precise chromatic exposure time centroids. A sophisticated data reduction pipeline that builds upon algorithms developed over decades of precision RV spectroscopy will automatically transform raw images and telemetry into RVs and other high-level data products, which will be served to users and the community through a NExScI portal. In this paper, we will provide an overview of the NEID project, including a progress update on the instrument integration and testing. We will also describe the WIYN operations plan, which is built around queue scheduled observations, and detail notional science programs that can be carried out with NEID, including the instrument team's GTO program. Finally, we will briefly discuss the impacts of stellar variability, which currently limit RV measurement precision well shy of the fundamental instrument limit, and which we and others are actively working to better understand and mitigate. Additional papers in this conference will describe the instrument subsystems in more detail.
NEID精密径向速度谱仪:项目概述和现状更新(会议报告)
NEID是一个超稳定、高分辨率、光纤馈电的光谱仪,由一个多机构团队为基特峰国家天文台的3.5米WIYN望远镜建造,交付日期为2019年。该仪器由NN-EXPLORE计划提供支持,该计划是NASA和NSF之间的一项联合努力,旨在为系外行星社区提供极端的地面多普勒径向速度(RV)测量能力。NEID的主要科学目标是发现和表征类地质量系外行星,包括对TESS和其他航天器任务发现的行星进行后续研究。实现这些目标需要多方面的方法,将最先进的多普勒仪器与RV精度目标30厘米/秒相结合,显著提高对恒星径向速度信号和恒星固有变变性的理解,以及根据过去25年RV系外行星发现的指导方针及时优化分布的大量观测结果。NEID采用单臂白瞳孔梯队光学设计,在单个9k x 9k CCD上产生R~100,000个光谱,覆盖0.38 - 0.92微米的完整波长范围。光学台和光学稳定与最先进的温度控制系统,达到亚mk的稳定性状态,并被真空室,保持10^-7托尔压力或更好的包围。这种极端的稳定性最大限度地减少了光学和光机械系统的漂移。光从望远镜传输到光谱仪,使用光纤馈源,将圆形和八角形光纤与球透镜双扰频器结合起来,提供大量的径向和方位扰频,最大限度地减少输入照明的变化。这些光纤通过一个复杂的新仪器接口与WIYN望远镜连接,该接口将提供大气色散校正和主动倾斜,以确保光纤上精确和可重复的目标定位。三层校准系统利用激光频率梳作为主要波长校准器,同时提供稳定的标准子和ThAr和UNe空心阴极灯作为高可靠性的备用源。低分辨率光谱仪形式的集成曝光计可测量精确的彩色曝光时间质心。建立在数十年精密RV光谱开发算法基础上的复杂数据简化管道将自动将原始图像和遥测数据转换为RV和其他高级数据产品,这些产品将通过NExScI门户网站提供给用户和社区。在本文中,我们将提供NEID项目的概述,包括仪器集成和测试的进展更新。我们还将介绍WIYN的运行计划,该计划是围绕排队安排的观测建立的,并详细介绍可以使用NEID执行的概念科学计划,包括仪器团队的GTO计划。最后,我们将简要讨论恒星变异性的影响,它目前限制了RV测量精度,远远低于基本仪器的极限,我们和其他人正在积极努力更好地理解和缓解。本次会议的其他论文将更详细地描述仪器子系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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