Innovative Approach to Drilling of Geothermal Deep Wells Using the Heat Factor

A. Dreus, A. Kozhevnykov
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引用次数: 1

Abstract

Using of sources of clean alternative energy is among the top priority challenges both in Europe and worldwide. Geothermal energy seems to be among the prospective energy sources. The challenge of developing of geothermal energy resources is caused by its complex nature and high cost of deep (up to 3–8 km) geothermal wells drilling. No traditional drilling methods are effective in this case. The present paper is aimed at estimation of innovative drilling technology using a thermal factor to rock disintegration. Decomposition process is intensified by using the pulse (interrupted) jet flushing mode which impacts the drilling bit / mining rock junction contact temperature and controls the heat exchange processes of the bottom-hole area. The theoretical basis and some experimental results of development such technologies are presented. The presented results show that it is possible to increase the drilling velocity of hard rocks up to 2.6 times due to the use of the heat factor. It is expected to offer new insights into the mechanics of mining rock disintegration by heat impact drilling and relation between mechanical and thermal fields in mining rock and drilling parameters. The proposed method ensures the efficient drilling of hard mining rocks at deep depths as required in the course of geothermal wells boring.
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利用热系数的地热深井钻井创新方法
使用清洁的可替代能源是欧洲和全世界面临的首要挑战之一。地热能似乎是很有前途的能源之一。地热井钻探深度为3 ~ 8 km,地热井性质复杂,成本高,是地热能资源开发面临的挑战。在这种情况下,传统的钻井方法都是无效的。本文的目的是利用岩石崩解的热因子来估计创新的钻井技术。脉冲(间断)射流冲刷方式强化了分解过程,影响了钻头/采场岩石结合部的接触温度,控制了井底区域的热交换过程。给出了开发该技术的理论基础和一些实验结果。结果表明,由于热因子的使用,可以将坚硬岩石的钻进速度提高2.6倍。期望对热冲击钻井开采岩石崩解机理以及开采岩石力学场和热场与钻井参数的关系提供新的认识。该方法保证了地热井钻探过程中对深部坚硬矿岩的有效钻进。
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