Safe Interactions and Kinesthetic Feedback in High Performance Earth-To-Moon Teleoperation

M. Panzirsch, Harsimran Singh, Harsimran Singh, T. Krüger, C. Ott, A. Albu-Schäffer
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引用次数: 19

Abstract

The international space agencies plan to implement orbiting space stations around celestial bodies as moon or Mars in the near future. Autonomous robots will be assigned with exploration tasks and the building of structures as habitats. A teleoperator interface will be available in the orbiter to assure the possibility of direct control of the robots located on the celestial body as a fallback, in case an autonomous functionality fails. Communication links will be comparable to the ones between the International Space Station and earth, reaching from direct S-band communication, to communication via geostationary relay satellites in a Ku-Forward link. Since the planned Gateway orbiting the moon will not be manned throughout the year, further interfaces have to be established with which the robots can be controlled from earth. An available laser link to the moon provides a high-bandwidth communication with 2.6s roundtrip-delay, which currently allows for supervised control, for example via a tablet interface. Current advances in control theory can achieve stable and high performance kinesthetic feedback in bilateral telemanipulation at delays above 1s. This paper presents the first experimental analysis of the feasibility and human operator performance of telemanipulation with an Earth-to-Moon like delay of 3s. In light of the fact that several technologies such as visual augmentation and shared control can be integrated in addition, the results are highly promising.
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高性能地月遥操作中的安全交互和动觉反馈
国际空间机构计划在不久的将来在月球或火星等天体周围建立轨道空间站。自主机器人将被分配探索任务和建造作为栖息地的结构。轨道飞行器将提供远程操作接口,以确保在自主功能失败的情况下,可以直接控制位于天体上的机器人作为后备。通信链路将与国际空间站与地球之间的通信链路相当,从直接s波段通信到通过地球静止中继卫星在Ku-Forward链路中进行通信。由于计划中的“门户”探测器全年都不会载人,因此必须建立进一步的接口,以便机器人能够从地球上进行控制。与月球之间可用的激光链路提供2.6s往返延迟的高带宽通信,目前允许通过平板电脑界面等方式进行监督控制。当前控制理论的发展可以实现双侧遥操作在15秒以上延时时的稳定、高性能的动觉反馈。本文首次对类地月3秒时延远程操作的可行性和人工操作性能进行了实验分析。此外,还可以集成视觉增强和共享控制等多种技术,因此该结果非常有前景。
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