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Reducing formation damage by artificially controlling the fluid-rock chemical interaction in a double-well geothermal heat production system

机译:通过人为地控制双井地热供热系统中的流体-岩石化学相互作用来减少地层损害

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Direct heat production by double wells is widely used to extract thermal energy from geothermal reservoirs. However, geothermal water is often type of brine with high dissolved salts. Injection and extraction of the geothermal fluid may cause strong chemical reactions, leading to scaling in the wellbore and reservoir. Such process was seldom considered in the heat production optimization. This study numerically investigated the mechanism of chemical damage to the reservoir in the Zhacang geothermal field, China, and optimized the heat production with constraint of weakening chemical damage. It was found that direct injection of the tail geothermal water can lead the porosity to reduce by 0.06%. The degree of precipitation can be controlled by artificial factors, including injection temperature and mixing ratio of the geothermal water with river water. The comparative computation indicated that at an injection temperature of 35 degrees C, and a mixing ratio of the river to the geothermal water of 6:4, the reservoir porosity was unaffected by chemical reactions in 100 years and geothermal energy production can be maintained above 0.11 MW. The methodology can be applied in other geothermal fields for sustainable geothermal energy production regarding the formation damage in geothermal reservoirs due to fluid-rock interaction. (C) 2019 Elsevier Ltd. All rights reserved.
机译:双井直接产生热量被广泛用于从地热储层中提取热能。但是,地热水通常是含高溶解盐的盐水。注入和提取地热流体可能引起强烈的化学反应,从而导致井眼和储层结垢。在热量生产优化中很少考虑这种过程。本文通过数值研究了中国闸仓地热田对储层的化学破坏机理,并在弱化化学破坏的约束下优化了热量的产生。发现直接注入尾部地热水可以使孔隙度降低0.06%。降水程度可以通过人为因素控制,包括注入温度和地热水与河水的混合比。对比计算表明,在注入温度为35℃,河流与地热水的混合比为6:4的情况下,储层孔隙度在100年内不受化学反应的影响,地热能产量可保持在0.11以上兆瓦该方法可以应用于其他地热领域,以实现可持续的地热能源生产,这涉及由于流体-岩石相互作用在地热储层中造成的地层损害。 (C)2019 Elsevier Ltd.保留所有权利。

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