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首页> 外文期刊>aerospace >Lessons Learned from IDEASSat: Design, Testing, on Orbit Operations, and Anomaly Analysis of a First University CubeSat Intended for Ionospheric Science
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Lessons Learned from IDEASSat: Design, Testing, on Orbit Operations, and Anomaly Analysis of a First University CubeSat Intended for Ionospheric Science

机译:从IDEASSat中吸取的经验教训:用于电离层科学的第一颗大学立方体卫星的设计、测试、轨道操作和异常分析

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Given the pervasive use of satellite and over the horizon wireless communication technology in modern society, ionospheric disturbances that can disrupt such services are a crucial consideration. Ionospheric irregularities, plasma bubbles and other phenomena can have a great impact on satellite navigation and communications, impacting other systems reliant on such technologies. The Ionospheric Dynamics and Attitude Subsystem Satellite (IDEASSat) was a 3U developed by National Central University (NCU) to measure irregularities in the ionosphere, as well as to establish spacecraft engineering and operations capacity at NCU. The onboard Compact Ionospheric Probe (CIP) could measure high-resolution plasma parameters, which can be used for identifying ionospheric irregularities that can cause scintillation in satellite navigation and communications signals. Part of the spacecraft sub-systems were independently designed and developed by students, who were also responsible for integration, testing, and operations. IDEASSat was successfully launched into low Earth orbit on 24 January 2021, and then began mission operations. The spacecraft successfully demonstrated three-axis attitude stabilization and control, tracking, telemetry and command (TTC), as well as flight software and ground systems that could support autonomous operation. The spacecraft experienced a critical anomaly 22 days after launch, followed by a 1.5-month communications blackout. The spacecraft briefly recovered from the blackout for long enough to replay flight data, which allowed for the cause of the blackout to be determined as an inability of the electrical power subsystem reset circuit to recover from an ionizing radiation induced single event latch-up. Although the mission was not completed, flight data obtained during the mission will help to improve the designs of future spacecraft in development at NCU. This paper will introduce IDEASSat's final flight model design and implementation, integration, testing, environmental verification, and failure analysis, and will review the performance of the spacecraft during on-orbit operations. The results and experiences encountered in implementation and operations of the IDEASSat mission are presented here as a reference for other university small satellite teams.
机译:鉴于卫星和超视距无线通信技术在现代社会中的普遍使用,可能破坏此类服务的电离层干扰是一个至关重要的考虑因素。电离层不规则性、等离子体气泡和其他现象会对卫星导航和通信产生重大影响,影响依赖此类技术的其他系统。电离层动力学和姿态子系统卫星(IDEASSat)是由国立中央大学(NCU)开发的3U,用于测量电离层的不规则性,并在NCU建立航天器工程和运行能力。机载紧凑型电离层探测器(CIP)可以测量高分辨率等离子体参数,可用于识别可能导致卫星导航和通信信号闪烁的电离层不规则性。部分航天器子系统由学生独立设计和开发,他们还负责集成、测试和操作。IDEASSat于2021年1月24日成功发射到近地轨道,然后开始执行任务。该航天器成功展示了三轴姿态稳定和控制、跟踪、遥测和指挥(TT&C),以及可以支持自主操作的飞行软件和地面系统。该航天器在发射后22天经历了一次严重的异常,随后是1.5个月的通信中断。航天器从停电中短暂恢复足够长的时间以重放飞行数据,这使得停电的原因可以确定为电力子系统复位电路无法从电离辐射引起的单粒子闩锁中恢复。虽然任务尚未完成,但在任务期间获得的飞行数据将有助于改进NCU正在开发的未来航天器的设计。本文将介绍IDEASSat的最终飞行模型设计与实现、集成、测试、环境验证和失效分析,并回顾航天器在轨运行期间的性能。这里介绍了IDEASSat任务的实施和运作中遇到的成果和经验,供其他大学小型卫星团队参考。

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