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Approach to Technology Prioritization In Support Of Moon Initiatives In The Framework Of ESA Exploration Technology Roadmaps

机译:在ESA勘探技术框架框架中支持月球倡议的技术优先考虑方法

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Exploration technology roadmaps have been developed by ESA in the past few years and the latest edition has been released in 2015. Scope of these technology roadmaps, elaborated in consultation with the different ESA stakeholders (e.g. European Industries and Research Entities), is to provide a powerful tool for strategic, programmatic and technical decisions in support of the European role within an International Space Exploration context. In the context of preparation for possible future European Moon exploration initiatives, the technology roadmaps have been used to highlight the role of technology within Missions, Building Blocks and Operational Capabilities of relevance. In particular, as part of reference missions to the Moon that would fit in the time frame 2020 to 2030, ESA has addressed the definition of lunar surface exploration missions in line with its space exploration strategy, with the common mission goals of returning samples from the Moon and Mars and expanding human presence to these destinations in a step-wise approach. The roadmaps for the procurement of technologies required for the first mission elements of the above strategy have been elaborated through their main building blocks, i.e. Visual navigation, Hazard detection and avoidance; Sample acquisition, processing and containment system; Surface mobility elements; Tele-robotic and autonomous control systems; and Storable propulsion modules and equipment. Technology prioritization methodologies have been developed in support of the ESA Exploration Technology Roadmaps, in order to provide logical and quantitative instruments to verify choices of prioritization that can be carried out on the basis of important, but non-quantitative factors. These methodologies that are thoroughly described in the paper proceed through subsequent steps. First technology prioritization's criteria are selected; then decision trees are developed to highlight all feasible paths of combination of technology prioritization's criteria and to assess the final achievement of each path, i.e. the cost-effectiveness. The risk associated to each path is also evaluated. In the second part of the paper, these prioritization methodologies have been applied to some of the building blocks of relevance for the mission concepts under evaluation at ESA (such as Tele-robotic and autonomous control systems; Storable propulsion modules and equipment) and the results are presented to highlight the approach for an effective TRL increase. Eventually main conclusions are drawn.
机译:勘探技术路线图已于过去几年的ESA开发,最新版本已于2015年发布。这些技术的范围是与不同的ESA利益相关者(例如欧洲工业和研究实体)进行磋商,是提供A.强大的工具,以支持在国际空间勘探背景下的欧洲角色的战略性,编程和技术决策。在准备未来可能的欧洲月亮勘探计划的背景下,技术路线图已被用于突出技术在任务中的作用,构建块和相关性的操作能力。特别是作为将在时间框架2020到2030的月球上的参考任务的一部分,ESA已经符合其空间探索策略的定义,符合其空间探索策略,具有返回样本的共同任务目标月球和火星并以一步的方法在这些目的地扩展人类存在。通过其主要构建块阐述了上述战略的第一次任务要素所需技术所需的技术,即视觉导航,危险检测和避免;采样采集,加工和遏制系统;表面移动元件;远程机器人和自主控制系统;和可存储的推进模块和设备。技术优先级方法已经开发了支持ESA勘探技术路线图,以提供逻辑和定量仪器来验证可以在重要的基础上进行的优先级排序的选择,但不定量因素。本文中彻底描述的这些方法进行了后续步骤。选择首先选择优先级的标准;然后开发了决策树以突出技术优先级的标准组合的所有可行性路径,并评估每条路径的最终成果,即成本效益。还评估与每个路径相关的风险。在本文的第二部分中,这些优先级方法已经应用于在ESA评估下的任务概念的一些构建块(例如远程机器人和自主控制系统;可存储的推进模块和设备)以及结果提出突出了有效TRL增加的方法。最终得出主要结论。

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