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Analytical model of cold water front movement in a geothermal reservoir

机译:地热库中冷水锋运动的解析模型

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Injection of cooled geothermal water back into the producing formation is a procedure that maintains reservoir pressure and increases energy extraction efficiency, but, because reinjected fluids tend to be much colder than the reservoir rock, injection can also cause cooling of the fluid produced from nearby wells. It is therefore essential to determine the cold front velocity in a geothermal reservoir. Constant thermal properties of both rock and fluid are generally assumed in order to solve this problem. In this paper, the rock density and heat capacity of the water-rock system as functions of temperature are assumed. Using the method of characteristics, an analytical solution is obtained. It is shown that the variable heat capacity of rock leads to a temperature-dependent speed of propagation of the thermal front. This results in a steepening of the front when cold water is injected into a hot zone, and eventually the formation of a discontinuous solution, or shock. A method is proposed for finding such discontinuous solutions and an equation for the velocity of the thermal front is presented. The difference between the front velocity obtained by means of the weak solution presented here and the classical model with constant thermal properties varies between about 1 and 14%.
机译:将冷却的地热水回注到生产地层中是维持油层压力并提高能量提取效率的过程,但是,由于再注入的流体往往比储层岩石温度低得多,因此注入还会导致附近井中产出的流体冷却。因此,确定地热储层中的冷锋速度至关重要。为了解决该问题,通常假定岩石和流体的热特性均恒定。本文假设水岩石系统的岩石密度和热容量与温度成函数关系。使用特征方法,可以获得分析溶液。结果表明,岩石的可变热容量导致热锋的传播速度与温度有关。当将冷水注入热水区域时,这会导致前端变陡,最终形成不连续的溶液或震动。提出了一种寻找这种不连续解的方法,并给出了热锋速度的方程式。通过此处介绍的弱解获得的前沿速度与具有恒定热特性的经典模型之间的差异在大约1%到14%之间变化。

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