An elastoplastic semi-analytical solution for enhanced geothermal wellbore stability considering temperature-sensitive failure criterion

IF 3.5 2区 工程技术 Q3 ENERGY & FUELS Geothermics Pub Date : 2024-05-13 DOI:10.1016/j.geothermics.2024.103046
Gaurav Jain, Aditya Singh
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Abstract

Temperature alters the rocks’ mechanical behavior and influences the stability and operation of enhanced geothermal wells. The stability of the well is a concern during construction, just after the construction, at the time of production, and injection. Most available analytical and semi-analytical solutions for wellbore stability do not account for rock's temperature-dependent yield behavior. In the present study, we proposed an elastoplastic constitutive model based on the temperature-sensitive yield criterion and a semi-analytical solution for wellbore stability. The applicability of the constitutive model is demonstrated by comparing the experimental results of Comiso limestone with the model output. The model elastic perfectly plastic assumption reasonability captures the stress-strain behavior at elevated temperatures. Temperature-sensitive yield criterion effectively predicts the yield point of Comiso limestone, even the substantial decay in yield stress after the temperature of 400 οC. The semi-analytical solution of wellbore stability analysis is validated using FE (Finite element) analysis. An implementation of the semi-analytical solution is showcased for a vertical wellbore, considering changes in in-situ stresses and temperature. A parametric analysis establishes that external factors, like vertical stress increase, do not consistently decrease the size of the plastic zone. Instead, a specific threshold of vertical stress exists at which the plastic zone radius reaches its minimum value. In the presented case, the least radius of the plastic zone is observed for in-situ vertical stress of 80 MPa. Furthermore, the parametric study examines the impact of horizontal stress, support pressure, temperature, and dilation parameter, which followed the generally reported trends.

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考虑温度敏感失效标准的弹性半解析增强地热井井筒稳定性解决方案
温度会改变岩石的机械行为,影响强化地热井的稳定性和运行。在施工期间、施工结束后、生产和注入时,井的稳定性都是一个值得关注的问题。大多数现有的井筒稳定性分析和半分析解决方案都没有考虑岩石随温度变化的屈服行为。在本研究中,我们提出了基于温度敏感屈服准则的弹塑性构成模型和井筒稳定性的半解析解决方案。通过比较 Comiso 石灰岩的实验结果和模型输出结果,证明了该构成模型的适用性。模型的弹性完全塑性假设合理地捕捉到了高温下的应力-应变行为。温度敏感屈服准则有效地预测了 Comiso 石灰岩的屈服点,即使在温度达到 400 οC 后屈服应力也会大幅衰减。井筒稳定性分析的半解析解决方案通过有限元分析进行了验证。考虑到原位应力和温度的变化,展示了垂直井筒的半分析解决方案的实施情况。参数分析表明,外部因素(如垂直应力增加)并不会持续减小塑性区的大小。相反,存在一个特定的垂直应力临界值,在该临界值上,塑性区半径达到最小值。在本案例中,原位垂直应力为 80 兆帕时,塑性区半径最小。此外,参数研究还考察了水平应力、支撑压力、温度和扩张参数的影响,结果与普遍报道的趋势一致。
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来源期刊
Geothermics
Geothermics 工程技术-地球科学综合
CiteScore
7.70
自引率
15.40%
发文量
237
审稿时长
4.5 months
期刊介绍: Geothermics is an international journal devoted to the research and development of geothermal energy. The International Board of Editors of Geothermics, which comprises specialists in the various aspects of geothermal resources, exploration and development, guarantees the balanced, comprehensive view of scientific and technological developments in this promising energy field. It promulgates the state of the art and science of geothermal energy, its exploration and exploitation through a regular exchange of information from all parts of the world. The journal publishes articles dealing with the theory, exploration techniques and all aspects of the utilization of geothermal resources. Geothermics serves as the scientific house, or exchange medium, through which the growing community of geothermal specialists can provide and receive information.
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