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A Parametric Study for the Design of an Optimized Ultrasonic Percussive Planetary Drill Tool

机译:优化超声冲击行星钻床设计的参数研究

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摘要

Traditional rotary drilling for planetary rock sampling, in situ analysis, and sample return are challenging because the axial force and holding torque requirements are not necessarily compatible with lightweight spacecraft architectures in low-gravity environments. This paper seeks to optimize an ultrasonic percussive drill tool to achieve rock penetration with lower reacted force requirements, with a strategic view toward building an ultrasonic planetary core drill (UPCD) device. The UPCD is a descendant of the ultrasonic/sonic driller/corer technique. In these concepts, a transducer and horn (typically resonant at around 20 kHz) are used to excite a toroidal free mass that oscillates chaotically between the horn tip and drill base at lower frequencies (generally between 10 Hz and 1 kHz). This creates a series of stress pulses that is transferred through the drill bit to the rock surface, and while the stress at the drill-bit tip/rock interface exceeds the compressive strength of the rock, it causes fractures that result in fragmentation of the rock. This facilitates augering and downward progress. In order to ensure that the drill-bit tip delivers the greatest effective impulse (the time integral of the drill-bit tip/rock pressure curve exceeding the strength of the rock), parameters such as the spring rates and the mass of the free mass, the drill bit and transducer have been varied and compared in both computer simulation and practical experiment. The most interesting findings and those of particular relevance to deep drilling indicate that increasing the mass of the drill bit has a limited (or even positive) influence on the rate of effective impulse delivered.
机译:传统的旋转钻孔用于行星岩石采样,原位分析和样品返回是具有挑战性的,因为轴向力和保持扭矩要求不一定与低重力环境中的轻型航天器结构兼容。本文旨在优化超声冲击钻机工具,以较低的反作用力要求实现岩石穿透,并具有构建超声行星式空心钻(UPCD)设备的战略眼光。 UPCD是超声波/超声波钻孔机/钻孔技术的后代。在这些概念中,使用换能器和变幅杆(通常在20 kHz左右谐振)来激发环形自由质量,该变质以较低的频率(通常在10 Hz和1 kHz之间)在变幅杆尖端和钻头基座之间无序振荡。这会产生一系列应力脉冲,这些脉冲会通过钻头传递到岩石表面,并且当钻头尖端/岩石界面处的应力超过岩石的抗压强度时,会导致破裂,从而导致岩石碎裂。这有利于挖掘和向下进展。为了确保钻头尖端产生最大的有效脉冲(钻头尖端/岩石压力曲线的时间积分超过岩石的强度),诸如弹簧刚度和自由质量的质量之类的参数,钻头和换能器已进行了变化,并在计算机仿真和实际实验中进行了比较。最有趣的发现以及与深钻孔特别相关的发现表明,增加钻头的质量对有效脉冲传输速率的影响有限(甚至是积极的)。

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