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Thermal Drawdown-Induced Flow Channeling in Fractured Geothermal Reservoirs

机译:裂缝型地热储层中由热降引起的流道

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摘要

We investigate the flow-channeling phenomenon caused by thermal drawdown in fractured geothermal reservoirs. A discrete fracture network-based, fully coupled thermal-hydrological-mechanical simulator is used to study the interactions between fluid flow, temperature change, and the associated rock deformation. The responses of a number of randomly generated 2D fracture networks that represent a variety of reservoir characteristics are simulated with various injection-production well distances. We find that flow channeling, namely flow concentration in cooled zones, is the inevitable fate of all the scenarios evaluated. We also identify a secondary geomechanical mechanism caused by the anisotropy in thermal stress that counteracts the primary mechanism of flow channeling. This new mechanism tends, to some extent, to result in a more diffuse flow distribution, although it is generally not strong enough to completely reverse flow channeling. We find that fracture intensity substantially affects the overall hydraulic impedance of the reservoir but increasing fracture intensity generally does not improve heat production performance. Increasing the injection-production well separation appears to be an effective means to prolong the production life of a reservoir.
机译:我们研究了裂缝性地热储层中由于热降落引起的流动通道现象。基于离散裂缝网络的全耦合热水文力学模拟器用于研究流体流动,温度变化和相关岩石变形之间的相互作用。用各种注入生产井距模拟了代表各种储层特征的许多随机生成的二维裂缝网络的响应。我们发现流动通道,即冷却区域中的流动浓度,是所有评估方案的必然结果。我们还确定了由热应力各向异性引起的次要地质力学机制,该机制抵消了流动通道的主要机制。尽管通常它的强度不足以完全逆转流道,但这种新机制在某种程度上倾向于导致更加分散的流动分布。我们发现,裂缝强度会实质上影响储层的整体水力阻抗,但增加裂缝强度通常不会改善热量产生性能。增加注入-生产井的分离似乎是延长油藏生产寿命的有效手段。

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