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Numerical modeling of a coaxial borehole heat exchanger to exploit geothermal energy from abandoned petroleum wells in Hinton, Alberta

机译:同轴钻孔热交换器的数值模型,从艾伯塔省亨林顿遗弃石油井开采地热能

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Deep petroleum wells are often associated with high bottom-hole temperatures and can provide a cost-effective way to produce geothermal energy. The goal of this study is to develop a reliable simulation model to demonstrate the feasibility of extracting geothermal energy with deep coaxial borehole heat exchangers in abandoned petroleum wells in the Western Canadian Sedimentary Basin. Our simulation model was constructed with COMSOL Multiphysics and verified with analytical results. The temperature dependence of the working fluid's (water) and the reservoir rocks' thermodynamic properties were found to significantly affect the long-term performance of the heat exchanger. The production temperature and the geothermal well power stabilize at similar to 29 degrees C and 0.38 MW, respectively, during long-term running of the model. The performance of the heat exchanger can be controlled by varying the injection flow rate, the injection temperature, and the thermal conductivity of the insulating pipe. Heat exchanger performance is only marginally affected by a thermally insulated section at the top of the well casing. We conclude that abandoned petroleum wells in the Western Canadian Sedimentary Basin have a great potential for geothermal exploitation using coaxial borehole heat exchangers. (C) 2019 Elsevier Ltd. All rights reserved.
机译:深层石油井通常与高底孔温度相关,并且可以提供经济高效的方法来产生地热能。该研究的目标是开发一种可靠的模拟模型,以证明在西加拿大沉积盆地的废弃石油井中用深同轴钻孔热交换器提取地热能的可行性。我们的仿真模型用COMSOL多发性构建并通过分析结果进行了验证。发现工作流体(水)和储存器岩石热力学性质的温度依赖性显着影响热交换器的长期性能。在模型的长期运行期间,生产温度和地热井功率分别稳定到29摄氏度和0.38兆瓦。可以通过改变绝缘管的喷射流速,喷射温度和导热率来控制热交换器的性能。热交换器性能仅受井壳顶部的绝热部分略微影响。我们得出结论,西加拿大沉积盆地的被遗弃的石油井具有使用同轴钻孔热交换器的地热剥削的巨大潜力。 (c)2019 Elsevier Ltd.保留所有权利。

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