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Laboratory experiments and thermal calculations for the development of a next-generation glacier-ice exploration system: Development of an electro-thermal drilling device

机译:用于开发下一代冰川 - 冰探测系统的实验室实验和热计算:开发电热钻探设备

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摘要

A next-generation drilling system, equipped with a thermal drilling device, is proposed for glacier ice. The system is designed to penetrate glacier ice via melting of the ice and continuously analyze melt-water in a contamination-free sonde. This new type of drilling system is expected to provide analysis data in less time and at less cost than existing systems. Because of the limited number of parameters that can be measured, the proposed system will not take the place of conventional drilling systems that are used to obtain ice cores; however, it will provide a useful method for quickly and simply investigating glacier ice. An electro-thermal drilling device is one of the most important elements needed to develop the proposed system. To estimate the thermal supply required to reach a target depth in a reasonable time, laboratory experiments were conducted using ice blocks and a small sonde equipped solely with heaters. Thermal calculations were then performed under a limited range of conditions. The experiments were undertaken to investigate the effects of the shape and material of the drill head and heater temperature on the rate of penetration into the ice. Additional thermal calculations were then performed based on the experimental results. According to the simple thermal calculations, if the thermal loss that occurs while heat is transferred from the heater to ice (in melting the ice) is assumed to be 50%, the total thermal supply required for heaters in the sonde and cable is as follows: (i) 4.8 kW (sonde) plus 0 W (cable) to penetrate to 300 m depth over 10 days into temperate glacier ice for which the temperature is 0 °C at all depths and to maintain a water layer along 300 m of cable; (ii) 10 kW (sonde) plus 19-32 kW (cable) to penetrate to 1000 m depth over 1 month into cold glacier ice for which the temperature is -25 °C at the surface and 0 °C at 1000 m depth and to maintain a water layer along 1000 m of cable; and (iii) 19 kW (sonde) plus 140-235 kW (cable) to penetrate to 3000 m depth over 2 months into an ice sheet for which the temperature is -55 °C at the surface and 0 °C at 3000 m depth and to maintain a water layer along 3000 m of cable. The thermal supply required for the cable is strongly affected by the thickness of the water layer, cable diameter, and the horizontal distance from the ice wall at which the ice temperature was maintained at its initial temperature. A large thermal supply is required to heat 3000 m of cable in an ice sheet (scenario (iii) above), but penetration into glacier ice (scenarios (i) and (ii) above) could be realistic with the use of a currently employed generator.
机译:提出了一种配备有热钻井装置的下一代钻井系统,用于冰川冰。该系统旨在通过融化冰层渗透冰川冰,并在无污染的探空仪中连续分析融化水。与现有系统相比,这种新型钻井系统有望在更短的时间内以更低的成本提供分析数据。由于可以测量的参数数量有限,因此建议的系统将无法代替用于获取冰芯的常规钻井系统;但是,它将为快速而简单地调查冰川冰提供有用的方法。电热钻探设备是开发拟议系统所需的最重要元素之一。为了估算在合理的时间内达到目标深度所需的热量供应,使用冰块和仅装有加热器的小型探空仪进行了实验室实验。然后在有限的条件范围内进行热计算。进行实验以研究钻头的形状和材料以及加热器温度对渗透到冰中的速率的影响。然后根据实验结果进行额外的热计算。根据简单的热计算,如果将热量从加热器传递到冰(融化冰)时发生的热损失假定为50%,则主机和电缆中的加热器所需的总热量供应如下:(i)4.8 kW(探空仪)加上0 W(电缆),可在10天之内渗透到300 m深度,进入温度为0°C的温带冰川冰,在所有深度处保持300 m的电缆水层; (ii)10 kW(探空仪)加上19-32 kW(电缆),在1个月内渗透到1000 m深度,进入表面温度为-25°C且温度为1000 m深度为0°C的冷冰川冰,在1000 m的电缆上保持水层; (iii)19 kW(探空仪)加上140-235 kW(电缆),在2个月内渗透到3000 m深度,进入冰盖,该冰盖的表面温度为-55°C,3000 m深度为0°C并在3000 m的电缆上保持水层。电缆所需的热供应受水层厚度,电缆直径以及距冰壁的水平距离(冰温度保持在其初始温度)的强烈影响。需要大量的热力来加热冰盖中的3000 m电缆(上述情况(iii)),但使用当前使用的电缆可能会渗透到冰川冰中(上述情况(i)和(ii))发电机。

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