首页> 外文会议>IEEE Aerospace Conference >Enhancing the Cassini mission through FP applications after launch
【24h】

Enhancing the Cassini mission through FP applications after launch

机译:发射后通过FP应用程序增强卡西尼号任务

获取原文

摘要

Although rigorous pre-emptive measures are taken to preclude failures and anomalous conditions from occurring in JPL spacecraft missions prior to launch, unforeseeable problems can still surface after liftoff. In the case of the Cassini/Huygens Mission-to-Saturn spacecraft, several problems were observed post-launch: 1) immediately after takeoff, the collected engineering/science data stored on the Solid State Recorders (SSR) contained a significantly higher number of corrupted bits than was expected (considerably over spec) due to human error in the memory mapping of these devices, 2) numerous Solid State Power Switches (SSPS) sporadically tripped off throughout the mission due to cosmic ray bombardment from the unique space environment, and 3) false assumptions in the pressure regulator design in combination with missing heritage test data led to inaccurate design conclusions, causing the issuance of two waivers for the regulator to close properly (a potentially mission catastrophic single-point failure which occurred 24 days after launch) ¿¿¿ amongst other problems. For Cassini, some of these anomalies led to arduous work-arounds or required continuous monitoring of telemetry variables by the ground-based Spacecraft Operations Flight Support (SOFS) team in order to detect and fix fault occurrences as they happened. Fortunately, sufficient funding and schedule margin allowed several Fault Protection (FP) solutions to be implemented into post-launch Flight Software (FSW) uploads to help resolve these issues autonomously, reducing SOFS ground support efforts while improving anomaly recovery time in order to preserve maximum science capture. This paper details the FP applications used to resolve the above issues as well as to optimize solutions for several other problems experienced by the Cassini spacecraft during its flight, in order to enhance the spacecraft's overall mission success throughout the 18 years of its 20 year expedition to and within the Saturnian sys- em.1
机译:尽管采取了严格的先发制人的措施来防止JPL航天飞机发射前发生故障和异常情况,但升空后仍然会出现无法预见的问题。对于卡西尼号/惠更斯号土星飞行器,发射后发现了几个问题:1)起飞后立即,存储在固态记录器(SSR)上的收集的工程/科学数据包含大量的由于这些设备的内存映射中的人为错误,导致损坏的位比预期的要大(超出规格); 2)由于来自独特太空环境的宇宙射线轰击,许多固态电源开关(SSPS)在整个任务中偶发跳闸,并且3)压力调节器设计中的错误假设,加上遗留的测试数据缺失,导致设计结论不准确,导致为调节器正确关闭发出了两项豁免(发射后24天可能发生的任务性灾难性单点故障) ¿¿¿在其他问题中。对于卡西尼号来说,其中一些异常导致了艰巨的变通方法,或者需要地面太空飞行器飞行飞行支持(SOFS)团队持续监控遥测变量,以便在故障发生时进行检测和修复。幸运的是,足够的资金和进度保证金允许将多个故障保护(FP)解决方案实施到发布后的飞行软件(FSW)上传文件中,以帮助自动解决这些问题,从而减少了SOFS地面支持的工作量,同时缩短了异常恢复时间,从而最大程度地保持了正常运行。科学捕获。本文详细介绍了用于解决上述问题以及优化卡西尼号飞船在飞行过程中遇到的其他问题的解决方案的FP应用程序,以增强飞船在20年来的18年探险中的总体飞行任务成功率。在土星系统1中

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号