ESCAPE任务实施概述:探索系外行星可居住性的恒星驱动因素

B. Unruh, Tom Patton, B. Fleming, K. France, Tim Hellickson, C. Spittler
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引用次数: 0

摘要

极紫外恒星大气物理与演化表征(ESCAPE)任务首次全面研究了控制大气质量损失和确定岩石系外行星可居住性的恒星极紫外环境。ESCAPE是美国宇航局的一项天体物理小型探测任务,于2021年完成了a阶段。ESCAPE任务概念概述强调了为2025年底发射的探索者级任务优化的设计和实施计划。ESCAPE使用极紫外(EUV)和远紫外(FUV)光谱(80 - 1650埃)来表征附近恒星周围可居住区域的高能辐射环境。ESCAPE将调查200多颗恒星,包括已知的行星宿主,以测量EUV辐照度、EUV耀斑率和恒星日冕物质抛射(cme)的特性。ESCAPE任务采用低风险、高遗产的设计,以确保科学目标和任务要求在充足的飞行系统余量下得到满足。ESCAPE天文台包括一个在科学观测期间没有主动机制的单一仪器,这使得科学观测和地面站通行证具有高度自动化的灵活操作概念。ESCAPE仪器由一个掠入射望远镜和四个衍射光栅和光子计数微通道板探测器组成。该科学仪器将在科罗拉多大学博尔德大气和空间物理实验室(CU-LASP)的空间硬件设施中进行组装和测试,并采用多功能和高传承的Ball Aerospace BCP-Small航天器。数据档案将保存在米库尔斯基空间望远镜档案馆(MAST)。CU-LASP是任务主要和PI机构,并提供项目系统工程来指导任务设计和开发。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
ESCAPE Mission Implementation Overview: Exploring the Stellar Drivers of Exoplanet Habitability
Extreme-ultraviolet Stellar Characterization for Atmospheric Physics and Evolution (ESCAPE) mission provides the first comprehensive study of the stellar EUV environments that control atmospheric mass-loss and determine the habitability of rocky exoplanets. ESCAPE is a NASA astrophysics Small Explorer mission that completed Phase A in 2021. This ESCAPE mission concept overview highlights designs and implementation plans optimized for an Explorer-class mission architected to launch in late-2025. ESCAPE employs extreme-ultraviolet (EUV) and far-ultraviolet (FUV) spectroscopy (80 – 1650 Angstroms) to characterize the high-energy radiation environment in the habitable zones around nearby stars. ESCAPE will survey over 200 stars, including known planet hosts, to measure EUV irradiance, EUV flare rates, and the properties of stellar coronal mass ejections (CMEs). ESCAPE mission uses a low-risk, high-heritage design to ensure science objectives and mission requirements are met with ample flight system margin. The ESCAPE observatory includes a single instrument with no active mechanisms during science observations which enables a flexible operational concept with a high degree of automation for both science observations and ground station passes. The ESCAPE instrument comprises a grazing incidence telescope feeding four diffraction gratings and photon-counting microchannel plate (MCP) detector. The science instrument will be assembled and tested in the space hardware facilities at the University of Colorado Boulder's Laboratory for Atmospheric and Space Physics (CU-LASP), and employs the versatile and high-heritage Ball Aerospace BCP-Small spacecraft. Data archives will reside at the Mikulski Archive for Space Telescopes (MAST). CU-LASP is the mission prime and PI institution and supplies project system engineering to guide the mission design and development.
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