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Numerical simulation of electricity generation potential from fractured granite reservoir through vertical wells at Yangbajing geothermal field

机译:羊八井地热田裂隙花岗岩储层垂直井发电潜力的数值模拟

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摘要

Yangbajing geothermal field is the first high-temperature hydrothermal convective geothermal system in China. Research and development of the deep fractured granite reservoir is of great importance for capacity expanding and sustaining of the ground power plant. The geological exploration found that there is a fractured granite heat reservoir at depth of 950-1350 m in well ZK4001 in the north of the geothermal field, with an average temperature of 248 degrees C and a pressure of 8.01-11.57 MPa. In this work, electricity generation potential and its dependent factors from this fractured granite reservoir by water circulating through vertical wells are numerically investigated. The results indicate that the vertical well system attains an electric power of 16.8-14.7 MW, a reservoir impedance of 0.29-0.46 MPa/(kg/s) and an energy efficiency of about 29.6-12.8 during an exploiting period of 50 years under reference conditions, showing good heat production performance. The main parameters affecting the electric power are water production rate and injection temperature. The main parameters affecting reservoir impedance are reservoir permeability, injection temperature and water production rate. The main parameters affecting the energy efficiency are reservoir permeability, injection temperature and water production rate. Higher reservoir permeability or more reasonable injection temperature or water production rate within certain ranges will be favorable for improving the electricity generation performance. (C) 2016 Elsevier Ltd. All rights reserved.
机译:羊八井地热田是中国第一个高温水热对流地热系统。深裂花岗岩储层的研究与开发对于地面电厂的扩容和维持至关重要。地质勘查发现,地热田北部ZK4001井在950-1350 m深度处有一个花岗岩热储层,平均温度为248摄氏度,压力为8.01-11.57 MPa。在这项工作中,数值研究了该裂缝性花岗岩储层通过垂直井循环水产生的电势及其影响因素。结果表明,在参考条件下的50年开采期内,垂直井系统的电功率为16.8-14.7 MW,储层阻抗为0.29-0.46 MPa /(kg / s),能效约为29.6-12.8。条件下,表现出良好的发热性能。影响电功率的主要参数是产水量和注入温度。影响储层阻抗的主要参数是储层渗透率,注入温度和产水率。影响能源效率的主要参数是储层渗透率,注入温度和产水率。在一定范围内较高的储层渗透率或较合理的注入温度或产水率将有利于提高发电性能。 (C)2016 Elsevier Ltd.保留所有权利。

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