Optimizing Geothermal Heat Extraction from End of Life Oil & Gas Wells Using a Transient Multiphase Flow Simulator

D. Sask, P. Graham, C. Nascimento
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Abstract

Oil and gas wells that have reached their economic end of life or have never been put into production for any reason may have potential for an alternate form of energy. Geothermal energy can be extracted from wells and is dependent upon numerous factors, but primarily by the thermal gradient of the region and the well depth. These two primary factors cannot be altered, however the design of the completion and production systems for extracting geothermal energy can significantly impact the amount of energy that can be extracted. This paper presents results from evaluating the rate of thermal energy that can be extracted under various completion scenarios using a transient flow simulator. This evaluation was conducted on closed loop systems whereby the fluids are contained within the well bore and surface facilities and do not involve any formation fluids. The results from the transient flow simulator show that the direction of flow circulation and insulation of the tubing string are crucial in evaluating assorted options to diminish thermal losses. There is an economic decision required for the decision on insulation type Results were also obtained for using the system to store energy in the upper regions of the well during time periods when there is no heat required from the system. This improves thermal recovery efficiencies when heat demand returns. Based on analyses of the simulations the two-stage storage/extraction processes significantly improved the technical, economic and environmental merits of the previously developed coaxial technology for heat generation. The use of a multiphase flow simulator for this study provides a roadmap for understanding the thermal energy potential, as well as the most important variables when considering extraction of geothermal energy from existing oil and gas wells.
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利用瞬态多相流模拟器优化废弃油气井的地热开采
已经达到经济使用寿命或由于任何原因从未投入生产的油气井可能具有替代能源形式的潜力。地热能可以从井中提取,这取决于许多因素,但主要取决于该地区的热梯度和井深。这两个主要因素无法改变,然而,用于提取地热能的完井和生产系统的设计会显著影响可提取的能量。本文介绍了利用瞬态流动模拟器评估各种完井方案下可提取的热能速率的结果。该评估是在闭环系统中进行的,其中流体包含在井筒和地面设施中,不涉及任何地层流体。瞬态流动模拟器的结果表明,在评估减少热损失的各种选择时,流动循环方向和管柱的保温是至关重要的。在不需要系统供热的时间段内,使用该系统将能量储存在井的上部区域也获得了结果。当热需求返回时,这提高了热回收效率。基于模拟分析,两阶段蓄/萃取工艺显著提高了先前开发的同轴产热技术的技术、经济和环境优点。在这项研究中,多相流模拟器的使用为了解热能潜力提供了路线图,以及考虑从现有油气井中开采地热能时最重要的变量。
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