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GIMBAL CONTROL ALGORITHMS FOR THE GLOBAL PRECIPITATION MEASUREMENT CORE OBSERVATORY

机译:全球降水测量核心天文台的万向节控制算法

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There are two gimbaled systems on the Global Precipitation Measurement Core Observatory: two single-degree-of-freedom solar arrays (SAs) and one two-degree-of-freedom high gain antenna (HGA). The guidance, navigation, and control analysis team was presented with the following challenges regarding SA orientation control during periods of normal mission science: (1) maximize solar flux on the SAs during orbit day, subject to battery charging limits, (2) minimize atmospheric drag during orbit night to reduce frequency of orbit maintenance thruster usage, (3) minimize atmospheric drag during orbits for which solar flux is nearly independent of SA orientation, and (4) keep array-induced spacecraft attitude disturbances within allocated tolerances. The team was presented with the following challenges regarding HGA control during mission science periods: (1) while tracking a ground-selected Tracking Data and Relay Satellite (TDRS), keep HGA control error below about 4', (2) keep array-induced spacecraft attitude disturbances small, and (3) minimize transition time between TDRSs subject to constraints imposed by item 2. This paper describes the control algorithms developed to achieve these goals and certain analysis done as part of that work.
机译:全球降水测量核心天文台上有两个万向数系统:两个自由度的太阳能阵列(SAS)和一个自由度高增益天线(HGA)。在正常的任务科学期间,在轨道定向控制期间提出了以下挑战:(1)在轨道天期间最大化SAS在SAS上的太阳能通量,(2)最小化大气最小化在轨道夜间拖动以降低轨道维护推进器的频率,(3)在轨道上最大限度地减少太阳能通量几乎独立于SA方向的轨道上的大气阻力,并且(4)将阵列引起的航天器姿态干扰保持在分配的公差内。该团队在使命科学期间有关HGA控制的以下挑战:(1)在跟踪地面选择的跟踪数据和继电器卫星(TDR)时,将HGA控制误差保持在约4',(2)保持阵列诱导航天器姿态扰动小,(3)最小化TDRS之间的过渡时间,经过第2项所施加的约束。本文介绍了实现这些目标的控制算法,以及作为该工作的一部分完成的某些分析。

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