小型航天器在小型太阳系体中的应用

J. Grundmann, Jan-Gerd Mess, J. Biele, P. Seefeldt, B. Dachwald, P. Spietz, C. Grimm, Tom Sprowitz, C. Lange, S. Ulamec
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引用次数: 4

摘要

随着“菲莱”成功登陆67P/Churyumov-Gerasimenko彗星,以及“隼鸟2号”向小行星(162173)龙宫发射首个移动小行星表面侦察员(MASCOT),小型航天器在与小型太阳系天体相关的应用已成为一个越来越感兴趣的话题。它们独特的高效能力、资源友好型设计和固有的坚固性相结合,使它们作为大型航天器探索太阳系的前沿任务元素,以及为更广泛的兴趣开辟太阳系的独立低成本方法,具有吸引力。运营商对与现有发射能力兼容的尖端任务的要求,在资源、时间、及时性、质量和规模方面受到了重大限制。为了在这些限制条件下创建可行的航天器,任务设计团队需要接受从新概念到现成单元的各种设备成熟度水平。由此产生的约束驱动工程(CDE)环境导致了超越传统均匀节奏和顺序开发的新方法。我们发展并扩展了并发设计和工程(CD/CE)方法,这些方法最初用于并发组装、集成和验证(CAIV)。它应用于我们大多数项目的所有阶段,以实现异步子系统成熟度时间表的收敛,并匹配集成和测试活动的并行轨迹。当面对这样的挑战时,基于模型的系统工程(MBSE)支持设计交易和由于不可预见的变化而导致的持续配置演变。通过mbse辅助CAIV进行跨接口边界的系统级CD/CE优化,实现了主动变更和进度加速。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Small spacecraft in small solar system body applications
In the wake of the successful Philae landing on comet 67P/Churyumov-Gerasimenko and the launch of the first Mobile Asteroid Surface Scout, MASCOT, aboard the Hayabusa2 space probe to asteroid (162173) Ryugu, small spacecraft in applications related to small solar system bodies have become a topic of increasing interest. Their unique combination of efficient capabilities, resource-friendly design and inherent robustness makes them attractive as a mission element at the frontiers of exploration of the solar system by larger spacecraft as well as stand-alone low-cost approaches to open up the solar system for a broader range of interests. The operators' requirements for cutting-edge missions compatible with available launch capabilities impose significant constraints in resources, timelines, timeliness, mass and size. To create spacecraft feasible within these constraints, the mission design teams need to accept a broad range of equipment maturity levels from fresh concepts to off-the-shelf units. The resulting Constraints-Driven Engineering (CDE) environment has led to new methods which transcend traditional evenly-paced and sequential development. We evolved and extended Concurrent Design and Engineering (CD/CE) methods originally incepted for initial studies into Concurrent Assembly, Integration and Verification (CAIV). It is applied in all phases in most of our projects to achieve convergence of asynchronous subsystem maturity timelines and to match parallel tracks of integration and test campaigns. When facing such a challenge, Model-Based Systems Engineering (MBSE) supports design trades and constant configuration evolution due to unforeseen changes. Proactive change and schedule acceleration has resulted from system-level CD/CE optimization across interface boundaries by MBSE-aided CAIV.
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