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Design and Field Test of a Mass Efficient Crane for Lunar Payload Handling and Inspection: The Lunar Surface Manipulation System

机译:用于月球有效载荷检查的大型起重机的设计和现场测试:月球表面操纵系统

摘要

Devices for lifting, translating and precisely placing payloads are critical for efficient Earthbased construction operations. Both recent and past studies have demonstrated that devices with similar functionality will be needed to support lunar outpost operations. Lunar payloads include: a) prepackaged hardware and supplies which must be unloaded from landers and then accurately located at their operational site, b) sensor packages used for periodic inspection of landers, habitat surfaces, etc., and c) local materials such as regolith which require grading, excavation and placement. Although several designs have been developed for Earth based applications, these devices lack unique design characteristics necessary for transport to and use on the harsh lunar surface. These design characteristics include: a) composite components, b) compact packaging for launch, c) simple in-field reconfiguration and repair, and d) support for tele-operated or automated operations. Also, in contrast to Earth-based construction, where special purpose devices dominate a construction site, a lunar outpost will require versatile devices which provide operational benefit from initial construction through sustained operations. This paper will detail the design of a unique, high performance, versatile lifting device designed for operations on the lunar surface. The device is called the Lunar Surface Manipulation System to highlight the versatile nature of the device which supports conventional cable suspended crane operations as well as operations usually associated with a manipulator such as precise positioning where the payload is rigidly grappled by a tool attached to the tip of the device. A first generation test-bed to verify design methods and operational procedures is under development at the NASA Langley Research Center and recently completed field tests at Moses Lake Washington. The design relied on non-linear finite element analysis which is shown to correlate favorably with laboratory experiments. A key design objective, reviewed in this paper, is the device s simplicity, resulting from a focus on the minimum set of functions necessary to perform payload offload. Further development of the device has the potential for significant mass savings, with a high performance device incorporating composite elements estimated to have a mass less than 3% of the mass of the maximum lunar payload lifted at the tip. The paper will conclude with future plans for expanding the operational versatility of the device.
机译:提升,平移和精确放置有效载荷的设备对于有效的地基施工作业至关重要。最近和过去的研究均表明,需要具有类似功能的设备来支持登月前哨行动。月球有效载荷包括:a)必须从着陆器上卸下并随后准确定位在其着陆点上的预包装硬件和补给品,b)用于定期检查着陆器,栖息地表面等的传感器包装,以及c)本地材料,例如重石需要平整,挖掘和安置。尽管已经为基于地球的应用开发了几种设计,但是这些设备缺乏运输到恶劣的月球表面并在其上使用所必需的独特设计特征。这些设计特征包括:a)复合组件,b)用于发射的紧凑包装,c)简单的现场重新配置和维修,以及d)支持远程操作或自动化操作。此外,与以地面为基础的建筑(在这种建筑中,专用设备占主导地位)形成对比,登月哨所将需要多功能的设备,这些设备将从最初的建设到持续运营提供运营收益。本文将详细介绍设计用于月球表面的独特,高性能,多功能升降装置的设计。该设备被称为“月球表面操纵系统”,以突出该设备的多功能特性,该特性可支持常规的缆索吊车操作以及通常与机械手相关的操作,例如精确定位,其中有效载荷可通过连接到尖端的工具牢固地进行抓紧设备的NASA Langley研究中心正在开发验证设计方法和操作程序的第一代试验台,最近在华盛顿摩西湖完成了现场试验。该设计依赖于非线性有限元分析,该分析表明与实验室实验具有良好的相关性。本文所论述的一个关键设计目标是设备的简单性,这是因为它专注于执行有效负载卸载所需的最少功能集。该设备的进一步发展具有显着节省质量的潜力,其中包括结合了复合元件的高性能设备,其质量估计不到尖端提起的最大月球有效载荷质量的3%。本文将以扩大设备操作多功能性的未来计划作为结束。

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