首页> 美国政府科技报告 >Simulated Evolution of Fractures and Fracture Networks Subject to Thermal Cooling: A Coupled Discrete Element and Heat Conduction Model. 38th Workshop on Geothermal Reservoir Engineering.
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Simulated Evolution of Fractures and Fracture Networks Subject to Thermal Cooling: A Coupled Discrete Element and Heat Conduction Model. 38th Workshop on Geothermal Reservoir Engineering.

机译:热冷却下裂缝和断裂网络的模拟演化:耦合离散元和热传导模型。第38届地热储层工程研讨会。

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摘要

Advancement of EGS requires improved prediction of fracture development and growth during reservoir stimulation and long-term operation. This, in turn, requires better understanding of the dynamics of the strongly coupled thermo-hydro-mechanical (THM) processes within fractured rocks. We have developed a physically based rock deformation and fracture propagation simulator by using a quasi-static discrete element model (DEM) to model mechanical rock deformation and fracture propagation induced by thermal stress and fluid pressure changes. We also developed a network model to simulate fluid flow and heat transport in both fractures and porous rock. In this paper, we describe results of simulations in which the DEM model and network flow & heat transport model are coupled together to provide realistic simulation of the changes of apertures and permeability of fractures and fracture networks induced by thermal cooling and fluid pressure changes within fractures. Various processes, such as Stokes flow in low velocity pores, convection-dominated heat transport in fractures, heat exchange between fluid-filled fractures and solid rock, heat conduction through low-permeability matrices and associated mechanical deformations are all incorporated into the coupled model. The effects of confining stresses, developing thermal stress and injection pressure on the permeability evolution of fracture and fracture networks are systematically investigated.

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