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Modeling, simulation, and optimization of geothermal energy production from hot sedimentary aquifers

机译:热沉积含水层地热能生产的建模,仿真与优化

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Geothermal district heating development has been gaining momentum in Europe with numerous deep geothermal installations and projects currently under development. With the increasing density of geothermal wells, questions related to the optimal and sustainable reservoir exploitation become more and more important. A quantitative understanding of the complex thermo-hydraulic interaction between tightly deployed geothermal wells in heterogeneous temperature and permeability fields is key for a maximum sustainable use of geothermal resources. Motivated by the geological settings of the Upper Jurassic aquifer in the Greater Munich region, we develop a computational model based on finite element analysis and gradient-free optimization to simulate groundwater flow and heat transport in hot sedimentary aquifers, and numerically investigate the optimal positioning and spacing of multi-well systems. Based on our numerical simulations, net energy production from deep geothermal reservoirs in sedimentary basins by smart geothermal multi-well arrangements provides significant amounts of energy to meet heat demand in highly urbanized regions. Our results show that taking into account heterogeneous permeability structures and a variable reservoir temperature may drastically affect the results in the optimal configuration. We demonstrate that the proposed numerical framework is able to efficiently handle generic geometrical and geological configurations, and can be thus flexibly used in the context of multi-variable optimization problems. Hence, this numerical framework can be used to assess the extractable geothermal energy from heterogeneous deep geothermal reservoirs by the optimized deployment of smart multi-well systems.
机译:地热区供热开发一直在欧洲获得动力,具有目前正在开发的众多深层地热设施和项目。随着地热井的密度越来越多,与最佳和可持续水库剥削有关的问题变得越来越重要。在异构温度和渗透性场中紧密展开地热井之间的复杂热液体相互作用的定量理解是最大可持续使用地热资源的关键。通过慕尼黑地区的上侏罗纪含水层的地质环境的推动,我们基于有限元分析和渐变优化来开发一种计算模型,以模拟热沉积含水层的地下水流量和热传输,并在数值上调查最佳定位和多井系统的间距。基于我们的数值模拟,智能地热量布置的沉积盆地深层地热水库的净能源提供了大量的能量,以满足高度城市化地区的热需求。我们的结果表明,考虑到异质渗透结构和可变储层温度可能会在最佳配置中大大影响结果。我们证明所提出的数值框架能够有效地处理通用几何和地质配置,因此可以灵活地在多变量优化问题的上下文中使用。因此,该数值框架可用于通过优化的智能多井系统的优化部署来评估来自异质深层地热储层的可提取的地热能量。

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