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Sample Acquisition and Caching Architecture for the Mars Sample Return Mission

机译:MARS样本返回任务的示例采集和缓存架构

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This paper presents a Mars Sample Return (MSR) Sample Acquisition and Caching (SAC) study developed for the three rover platforms: MER, MER+, and MSL. The study took into account 26 SAC requirements provided by the NASA Mars Exploration Program Office. For this SAC architecture, the reduction of mission risk was chosen by us as having greater priority than mass or volume. For this reason, we selected a "One Bit per Core" approach. The enabling technology for this architecture is Honeybee Robotics' "eccentric tubes" core breakoff approach. The breakoff approach allows the drill bits to be relatively small in diameter and in turn lightweight. Hence, the bits could be returned to Earth with the cores inside them with only a modest increase to the total returned mass, but a significant decrease in complexity. Having dedicated bits allows a reduction in the number of core transfer steps and actuators. It also alleviates the bit life problem, eliminates cross contamination, and aids in hermetic sealing. An added advantage is faster drilling time, lower power, lower energy, and lower Weight on Bit (which reduces Arm preload requirements). Drill bits are based on the BigTooth bit concept, which allows re-use of the same bit multiple times, if necessary. The proposed SAC consists of a 1) Rotary-Percussive Core Drill, 2) Bit Storage Carousel, 3) Cache, 4) Robotic Arm, and 5) Rock Abrasion and Brushing Bit (RABBit), which is deployed using the Drill. The system also includes PreView bits (for viewing of cores prior to caching) and Powder bits for acquisition of regolith or cuttings. The SAC total system mass is less than 22 kg for MER and MER+ size rovers and less than 32 kg for the MSL-size rover.
机译:本文介绍了为三个Rover平台开发的Mars样本返回(MSR)样本采集和缓存(SAC)研究:MER,MER +和MSL。该研究考虑到美国宇航局火星勘探计划办公室提供的26个SAC要求。对于这种SAC架构,我们的特派团风险的减少是由我们选择的优先权,优先于质量或体积。出于这个原因,我们选择了“每个核心”方法。这种体系结构的启用技术是蜜蜂机器人的“偏心管”核心突破方法。突破方法允许钻头直径相对较小,而且变轻。因此,可以将这些位与它们内部的核心返回到地球,只能增加到总返回的质量,但复杂性的显着降低。具有专用位允许减少核心传输步骤和执行器的数量。它还减轻了钻头寿命问题,消除了交叉污染,并辅助气密密封。额外的优势是更快的钻井时间,较低的功率,较低的能量和较低的重量(可降低臂预载要求)。钻头基于Bigtooth位概念,允许在必要时重复使用相同的比特。所提出的囊由A 1)旋转冲击核心钻头,2)位存储转盘,3)缓存,4)机器人臂和5)岩石磨损和刷牙钻头(兔子),其使用钻头展开。该系统还包括预览位(用于在缓存之前观看核心)和用于获取极孔或切屑的粉末比特。 SAC总系统质量小于22kg,MER和MER +尺寸升频率小于32千克,用于MSL尺寸流动站。

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