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Reaction force of percussive corer, rotary-friction corer, and rotary-percussive corer

机译:敲击型,旋转摩擦型,敲击型的反作用力

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Future NASA exploration missions will increasingly require sampling, in-situ analysis and possibly the return of material to Earth for laboratory analysis. To address these objectives, effective and optimized drilling techniques are needed. This requires developing comprehensive tools to be able to determine analytically what takes place during the operation and what are the control parameters that can be enhanced. In this study, three types of coring techniques were studied and were identified as potential candidates for operation from a possible future Mars Sample Return (MSR) mission rover. These techniques include percussive, rotary-friction, and rotary-percussive coring. Theoretical models were developed to predict the dynamic reaction forces transmitted from these three types of corers to the robotic arms that hold them. The predicted reaction forces will then be used in a dynamic simulation environment to simulate a representative corer tool to obtain a best estimate of a tool that can be operated from a small rover. The predicted dynamic reaction forces will be presented in this paper.
机译:未来的NASA勘探任务将越来越需要采样,原位分析以及可能的物质返回地球进行实验室分析。为了实现这些目标,需要有效且优化的钻探技术。这就要求开发综合工具,以便能够分析性地确定操作期间发生的情况以及可以增强的控制参数。在这项研究中,研究了三种取芯技术,并从可能的未来火星样本返回(MSR)任务漫游车中识别出了潜在的操作候选者。这些技术包括打击,旋转摩擦和旋转打击取芯。开发了理论模型来预测从这三种类型的挖芯器传递到支撑它们的机械臂的动态反作用力。然后,预测的反作用力将在动态模拟环境中使用,以模拟代表性的Corer工具,以获得可以从小型流动站进行操作的工具的最佳估计。预测的动态反作用力将在本文中介绍。

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