4.7 Article

Numerical simulation of electricity generation potential from fractured granite reservoir through a single horizontal well at Yangbajing geothermal field

Journal

ENERGY
Volume 65, Issue -, Pages 472-487

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.energy.2013.10.084

Keywords

Single horizontal well; Electricity generation potential; Fractured granite reservoir; Water mining; Yangbajing geothermal field

Funding

  1. National High Technology Research and Development Program of China [2012AA052802]
  2. Director Fund Projects of the Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences [y107a41001]
  3. Science and Technology Innovation Special for Graduate Student, Chinese Academy of Sciences [y207y81001]

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Development of deep high-temperature heat reservoir at Yangbajing geothermal field has very important significance for capacity expanding and sustaining of the ground power plant. The geological exploration found that there is a fractured granite heat reservoir with an average temperature of 248 degrees C at depth of 950 similar to 1350 m in well ZK4001 in the north of the geothermal field. In this work, a simplified conceptual model of the 950 similar to 1350 m reservoir is established based on all the existing geological data, and the electricity generation potential from this fractured granite reservoir by geothermal water mining through a single horizontal well is numerically simulated. The results indicate that the single horizontal well system attains an electric power of 3.23 similar to 3.48 MW and an energy efficiency of about 50.00 similar to 17.16 during 20 years under reference conditions. The main parameters that affect the heat extraction and electricity generation are reservoir porosity, permeability and water production rate. Higher porosity or higher permeability or higher water production rate will be favorable for improving the electricity generation performance, under the precondition of not arousing vaporization and precipitation in the liquid water saturated reservoir. (C) 2013 Elsevier Ltd. All rights reserved.

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