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Subsurface Sampler and Sensors Platform Using the Ultrasonic/Sonic Driller/Corer (USDC)

机译:使用超声波/声波钻/ Corer(USDC)的地下采样器和传感器平台

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The search for existing or past life in the Universe is one of the most important objectives of NASA's mission. For this purpose, effective instruments that can sample and conduct in-situ astrobiology analysis are being developed. In support of this objective, a series of novel mechanisms that are driven by an Ultrasonic/Sonic actuator have been developed to probe and sample rocks, ice and soil. This mechanism is driven by an ultrasonic piezoelectric actuator that impacts a bit at sonic frequencies through the use of an intermediate free-mass. Ultrasonic/Sonic Driller/Corer (USDC) devices were made that can produce both core and powdered cuttings, operate as a sounder to emit elastic waves and serve as a platform for sensors. For planetary exploration, this mechanism has the important advantage of requiring low axial force, virtually no torque, and can be duty cycled for operation at low average power. The advantage of requiring low axial load allows overcoming a major limitation of planetary sampling in low gravity environments or when operating from lightweight robots and rovers. The ability to operate at duty cycling with low average power produces a minimum sample temperature rise allowing for control of the sample integrity and preventing damage to potential biological markers in the acquired sample. The development of the USDC is being pursued on various fronts ranging from analytical modeling to mechanisms improvements while considering a wide range of potential applications. While developing the analytical capability to predict and optimize its performance, efforts are made to enhance its capability to drill at higher power and high speed. Taking advantage of the fact that the bit does not require rotation, sensors (e.g., thermocouple and fiberoptics) were integrated into the bit to examine the borehole during drilling. The sounding effect of the drill was used to emit elastic waves in order to evaluate the surface characteristics of rocks. Since the USDC is driven by piezoelectric actuation mechanism it can designed to operate at extreme temperature environments from very cold as on Titan and Europa to very hot as on Venus. In this paper, a review of the latest development and applications of the USDC will be given.
机译:在宇宙中寻找现有或过去的生活是NASA任务的最重要目标之一。为此目的,正在开发可以采样和进行原位天体生物学分析的有效仪器。为了实现这一目标,已经开发了一系列由超声波/超声波致动器驱动的新颖机制,以探测和采样岩石,冰和土壤。该机制由超声波压电致动器驱动,该超声波压电致动器通过使用中间自由质量以音速冲击一点。制造超声波/音速钻探/钻孔机(USDC)装置,既可以产生岩屑也可以产生粉屑,可以作为发声器发出弹性波,也可以作为传感器平台。对于行星探测,该机构的重要优点是需要低轴向力,几乎不需要扭矩,并且可以在低平均功率下进行占空比操作。要求低轴向载荷的优点是可以克服在低重力环境中或使用轻型机器人和漫游车操作时行星采样的主要限制。以较低的平均功率在占空比下运行的能力可产生最小的样品温度升高,从而可控制样品完整性并防止损坏所采集样品中的潜在生物标记。从分析模型到机制改进,同时考虑广泛的潜在应用,USDC的开发正在各个方面进行。在发展分析能力以预测和优化其性能的同时,努力提高其以更高功率和更高速度进行钻探的能力。利用钻头不需要旋转的事实,将传感器(例如,热电偶和光纤)集成到钻头中以在钻孔期间检查钻孔。为了评估岩石的表面特性,利用钻机的发声效果发出弹性波。由于USDC由压电致动机构驱动,因此可以将其设计为在极端温度的环境下工作,例如从Titan和Europa的极低温到在Venus的极高温。本文将对USDC的最新发展和应用进行回顾。

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