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Design and productivity evaluation of multi-lateral well enhanced geothermal development system

机译:多侧井井增强地热发展系统的设计与生产力评价

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Enhanced geothermal development system is an effective means to develop hot dry rock geothermal resources, and its reasonable structural design is crucial to the efficient exploitation of hot dry rocks. In this paper, a multi-lateral well enhanced geothermal development system, which is composed of one low-permeability thermal reservoir, three multi-lateral injection wells, three multi-lateral production wells and three artificial fractures, was designed based on the traditional dual-well development model. Then, a 3D hydrothermal coupling numerical evaluation model was established by using the local heat balance method, and its accuracy and reliability were verified according to Lauwerier analytical theory of fractured flow and heat transfer. Finally, the influence of reservoir parameters, well layout parameters, and injection-production parameters on the heat production performance of this enhanced geothermal development system were explored based on the water-rock coupling mechanism inside the reservoir in the process of thermal production. And the following research results were obtained. First, the “rock invasion effect” of the cold front in the fractures of the multi-lateral well development system is stronger than that in the matrix. Increasing the reservoir permeability can improve the internal heat transfer effect, but also enhances the “invasion performance” of cold front. Second, the annual thermal energy extraction of the system gradually decreases over time and it also decreases with the increase of the injection temperature. It increases with the increase of the reservoir permeability in the early stage of the operation, but decreases greatly after the completion of the thermal breakthrough. Third, the system's thermal energy extraction rate and production mass flow rate are less influenced by reservoir porosity and injection temperature, but they decrease with the increase of the vertical spacing of injection-production wells. Fourth, the production temperature decreases greatly with the increase of the reservoir permeability, increases with the increase of the reservoir porosity, and decreases with the decrease of the vertical spacing of injection-production wells. Fifth, the heat production performance of the system in the early stage can be improved by increasing the length of the production well, and the heat production capacity of the system can be enhanced to a certain degree by increasing the injection-production pressure difference, but excessive pressure difference will impact the service life of the reservoir seriously.
机译:增强的地热发展系统是开发热干岩地热资源的有效手段,其合理的结构设计对于高效利用热干岩的关键是至关重要的。本文根据传统的双重设计,由一种低渗透性热贮存器,三种多横向喷射井,三种多横向生产井和三个人工骨折组成的多横向井增强的地热发育系统。 - 威尔开发模式。然后,通过使用局部热平衡法建立了3D水热耦合数值评估模型,并根据裂缝流动和热传递的Lauwerier分析理论验证了其精度和可靠性。最后,基于热产量下的水库内的水岩联轴器机制,探讨了储层参数,井布局参数和注射生产参数对该增强地热开发系统的热量生产性能的影响。并获得以下研究结果。首先,多横向井发育系统的裂缝中冷前沿的“岩侵入效应”比基质的骨折更强烈。增加储层渗透性可以提高内部传热效果,但也增强了冷锋的“侵袭性”。其次,系统的年热能提取随时间逐渐减少,随着喷射温度的增加,它也会降低。随着储层渗透率的增加,在手术的早期阶段的增加增加,但在热突破完成后大大降低。第三,系统的热能提取率和生产质量流量较小受储层孔隙率和喷射温度的影响较小,但它们随着注射生产井的垂直间隔的增加而降低。第四,随着储层渗透性的增加,生产温度大大降低,随着储层孔隙率的增加而增加,随着注射生产井的垂直间隔的降低而降低。第五,通过增加生产井的长度,可以提高系统在早期阶段的热量生产性能,并且通过增加注射生产压力差,系统的热量生产能力可以提高到一定程度,但是过压差异会严重影响水库的使用寿命。

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