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Efficiency of single-well geothermal systems with multi-lateral drills

机译:具有多侧钻的单井地热系统的效率

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Drilling costs, induced seismicity, scaling and corrosion, emissions, and assessment of the inherent uncertainty associated with the reservoir properties for long-term sustainable provision of thermal energy are the major challenges of deep geothermal systems. In particular, the cost of drilling typically comprises 50-70 % of the total capital investment of a geothermal power plant. As drilling costs are definitive for the accomplishment of deep geothermal systems, the concept to use one single drill hole for extraction and injection is arisen to reduce the overall drilling costs. The aim of this study is to overcome some simplifications made in the previous published studies to investigate such single-well systems in more detail and further resolve the governing physical processes. Focus of the study is on reservoirs with a low natural permeability (around 10(-14) m(2)). Firstly, an analytical solution is applied for justifying the numerical approach to produce consistent results for the presented simplest single-well design. Secondly, the efficiency of different single-well concepts is investigated via sensitivity analysis of variations in reservoir and operational parameters. Lastly, the previous study results are compared with the current approach for the gas-filled porous medium application. The results for the single-well system either with multi-laterals or without laterals demonstrate that the variation of permeability in different directions and the porosity play a crucial role on the overall performance. Single-well systems with multi-laterals are efficient, if the permeability is isotropic and in a range between 1 x 10(-14) and 1 x 10(-12) m(2). The results of gas-filled pore space applications show that the capillary entry pressure has a significant impact on the wetting phase saturation. Simultaneous injection and extraction affect the saturation and heat exchange localized around the wells which decreases the thermal output power.
机译:钻井成本,诱导地震性,缩放和腐蚀,排放和评估与长期可持续提供热能的储层特性相关的固有不确定性是深海地热系统的主要挑战。特别是,钻井成本通常包括地热发电厂总资本投资的50-70%。由于钻井成本是实现深层地热系统的实现,因此出现了使用一个单一钻孔用于提取和注射的概念,以降低整体钻井成本。本研究的目的是克服先前公布的研究中的一些简化,以更详细地调查此类单井系统,并进一步解决管理物理过程。该研究的重点是具有较低自然渗透率的储层(约10(-14)m(2))。首先,应用分析解决方案以证明为呈现的最简单的单井设计产生一致的结果。其次,通过储存器和操作参数的变化的灵敏度分析来研究不同单井概念的效率。最后,将先前的研究结果与当前燃气多孔介质施用的方法进行了比较。单孔系统的结果具有多孔或没有横向的结果表明,不同方向和孔隙率在不同方向上的变化在整体性能方面发挥着至关重要的作用。如果渗透性是各向同性的话,具有多侧或具有多侧的单层系统,并且在1×10( - 14)和1×10(-12)m(2)之间的范围内。气体填充孔隙空间应用结果表明,毛细入口压力对润湿相饱和度具有显着影响。同时注射和提取影响围绕井周围的饱和和热交换,这减少了热输出功率。

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