首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Numerical investigation of electricity generation potential from fractured granite reservoir by water circulating through three horizontal wells at Yangbajing geothermal field
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Numerical investigation of electricity generation potential from fractured granite reservoir by water circulating through three horizontal wells at Yangbajing geothermal field

机译:羊八井地热场三口水平井循环水对裂缝花岗岩油藏发电潜力的数值研究。

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摘要

Deep geological exploration indicates that there is a high-temperature fractured granite reservoir at depth of 950-1350 m in well ZK4001 in the north of Yangbajing geothermal field, with an average temperature of 248 degrees C and a pressure within 8.01-11.57 MPa. In this work, we evaluated electricity generation potential from this fractured granite reservoir by water circulating through three horizontal wells, and analyzed main factors affecting the performance and efficiency through numerical simulation. The results show that in the reference case the system attains a production temperature of 248.0-235.7 degrees C, an electrical power of 26.9-24.3 MW, an injection pressure of 10.48-12.94 MPa, a reservoir impedance of 0.07-0.10 MPa/(kg/s), a pump power of 0.54-1.08 MW and an energy efficiency of 50.10-22.39 during a period of 20 years, displaying favorable production performance. Main factors affecting the production performance and efficiency are reservoir permeability, water production rate and injection temperature; within certain ranges increasing the reservoir permeability or adopting more reasonable water production rate or injection temperature will obviously improve the system production performance. (C) 2016 Elsevier Ltd. All rights reserved.
机译:深层地质勘探表明,羊八井地热田以北ZK4001井在950-1350 m深度处有一个高温裂缝花岗岩储层,平均温度为248℃,压力在8.01-11.57 MPa之间。在这项工作中,我们通过在三个水平井中循环水,评估了该裂缝性花岗岩储层的发电潜力,并通过数值模拟分析了影响性能和效率的主要因素。结果表明,在参考情况下,系统的生产温度为248.0-235.7摄氏度,电功率为26.9-24.3 MW,注入压力为10.48-12.94 MPa,储层阻抗为0.07-0.10 MPa /(kg / s),泵功率为0.54-1.08 MW,在20年内的能效为50.10-22.39,显示出良好的生产性能。影响生产性能和效率的主要因素是储层渗透率,产水率和注入温度。在一定范围内增加储层渗透率或采用更合理的产水速率或注入温度将明显改善系统的生产性能。 (C)2016 Elsevier Ltd.保留所有权利。

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