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A thermo-hydro-mechanical coupled model in local thermal non-equilibrium for fractured HDR reservoir with double porosity

机译:双孔裂缝HDR储层局部热非平衡的热-水-力耦合模型

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[1] The constitutive thermo-hydro-mechanical equations of fractured media are embodied in the theory of mixtures applied to three-phase poroelastic media. The solid skeleton contains two distinct cavities filled with the same fluid. Each of the three phases is endowed with its own temperature. The constitutive relations governing the thermomechanical behavior, generalized diffusion and transfer are structured by, and satisfy, the dissipation inequality. The cavities exchange both mass and energy. Mass exchanges are driven by the jump in scaled chemical potential, and energy exchanges by the jump in coldness. The finite element approximation uses the displacement vector, the two fluid pressures and the three temperatures as primary variables. It is used to analyze a generic hot dry rock geothermal reservoir. Three parameters of the model are calibrated from the thermal outputs of Fenton Hill and Rosemanowes HDR reservoirs. The calibrated model is next applied to simulate circulation tests at the Fenton Hill HDR reservoir. The finer thermo-hydro-mechanical response provided by the dual porosity model with respect to a single porosity model is highlighted in a parameter analysis. Emphasis is put on the influence of the fracture spacing, on the effective stress response and on the permeation of the fluid into the porous blocks. The dual porosity model yields a thermally induced effective stress that is less tensile compared with the single porosity response. This effect becomes significant for large fracture spacings. In agreement with field data, fluid loss is observed to be high initially and to decrease with time.
机译:[1]裂缝介质的本构热-水-力学方程体现在应用于三相多孔弹性介质的混合物理论中。实体骨架包含两个充满相同流体的不同空腔。三相中的每一个都具有自己的温度。由热耗散不等式构成并满足热力学行为,广义扩散和传递的本构关系。空腔交换质量和能量。质量交换是由成比例的化学势的跃迁驱动的,而能量交换是由寒冷的跃迁驱动的。有限元近似使用位移矢量,两个流体压力和三个温度作为主要变量。它用于分析一般的热干岩地热储层。该模型的三个参数从Fenton Hill和Rosemanowes HDR储层的热输出进行了校准。校准后的模型接下来将用于模拟Fenton Hill HDR油藏的循环测试。在参数分析中突出显示了相对于单一孔隙率模型,由双重孔隙率模型提供的更精细的热-水-机械响应。重点放在裂缝间距的影响,有效应力响应以及流体渗入多孔块体中的影响上。双重孔隙度模型产生的热诱导有效应力与单一孔隙度响应相比,拉伸应力较小。对于较大的裂缝间距,此效果变得很明显。与现场数据一致,最初观察到的流体损失较高,并随时间减少。

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