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STARS: The Stellar Absorption and Refraction Sensor

机译:星星:恒星吸收和折射传感器

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The Stellar Absorption and Refraction Sensor (STARS) is a compact, large-aperture instrument that combines a UV-IR imaging spectrograph with a co-aligned visible-light imager to make simultaneous absorptive and refractive stellar occultation measurements. The absorption measurements provided by the spectrograph allow the determination of vertical profiles of atmospheric constituents. The coincident refraction observations made by the imager yield high-precision measurements of atmospheric density, pressure, and temperature and provide independent knowledge of both the refracted light path and Ray-leigh extinction, which are critical in reducing the uncertainty in the retrieved constituent profiles in the lower atmosphere. STARS employs a two-axis gimbaled telescope to acquire and track the star and a two-axis, high-precision, fast-steering mirror to correct for spacecraft jitter and maintain the star within the spectrograph field of view. The relative star position measured by the imager provides position feedback to the active tracking loop of the fast-steering mirror. With funding from NASA's Instrument Incubator Program, a laboratory facility has been developed to demonstrate the overall instrument performance and, in particular, its capability to acquire and track a setting, refracting, and scintillating star, to compensate for various degrees of platform jitter, and to provide the pointing knowledge required for accurate determination of the atmospheric quantities. The combination of built-in image tracking and motion compensation capabilities, small size, and limited spacecraft resource requirements makes STARS and its tracking mechanism suitable for deployment on existing and future commercial spacecraft platforms for applications that require high-precision pointing. In this paper, we present details of the instrument design and its expected performance based on our laboratory tests.
机译:恒星吸收和折射传感器(恒星)是一种紧凑的大孔径仪器,将UV-IR成像光谱仪与共轨的可见光成像器相结合,以进行同时吸收和折射恒星掩星综合测量。光谱仪提供的吸收测量允许确定大气成分的垂直轮廓。通过成像器制造的重合折射观察结果产生大气密度,压力和温度的高精度测量,并提供对折射光路和射线灭火的独立知识,这对于减少所检索的构成轮廓中的不确定性至关重要。较低的大气层。星星采用双轴万向望远镜来获取和跟踪星星和双轴,高精度,快速转向镜,以纠正宇宙飞船抖动,并在光谱仪视野中维护星星。由成像器测量的相对星位置向快速转向镜的主动跟踪环提供位置反馈。通过NASA的仪器孵化程序提供资金,已经开发了一个实验室设施,以展示整体仪器性能,特别是其能力获得和跟踪设置,折射和闪烁的星,以补偿各种程度的平台抖动,以及提供准确测定大气量所需的指向知识。内置图像跟踪和运动补偿功能,小尺寸和限制的航天器资源需求的组合使得恒星及其跟踪机制适用于部署现有和未来的商业航天器平台,用于需要高精度指向的应用。在本文中,我们根据我们的实验室测试了解仪器设计及其预期性能的详细信息。

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