Modeling transient temperature coupled pressure behaviour for waterflooding well with induced fractures: Semi-analytical model, numerical model, and case studies

IF 3.5 2区 工程技术 Q3 ENERGY & FUELS Geothermics Pub Date : 2024-05-17 DOI:10.1016/j.geothermics.2024.103055
Zhipeng Wang , Zhengfu Ning , Wenting Guo , Jie Zhan , Zhangxin Chen
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Abstract

Waterflooding is a widely used technique for developing unconventional reservoirs. Long-term waterflooding can lead to the formation of multiple induced fractures. Accurately tracking the location, extent, and dynamic behavior of these induced fractures is crucial. To enhance monitoring capabilities, data obtained from distributed temperature sensors are used to track temperature variations within the wellbore and at the bottom of the well. Combining temperature and pressure inversion techniques helps mitigate the issue of multiple solutions while offering a more comprehensive characterization of multi-induced fractures from various perspectives. In this study, this work presents a model for temperature coupled pressure (TCP) transient analysis. Additionally, this work utilizes COMSOL Multiphysics software to develop and solve a dynamic wellbore temperature (DWT) model. This work proposes a workflow that describes the dynamic behaviour of multi-induced fractures. During model development and solution, this work employs both pressure and temperature transient analysis methods, examining time-dependent non-linear pressure drop and heat transfer variations. Our results reveal that induced fractures exhibit convective heat exchange with the wellbore, resulting in significantly higher temperatures at the induced fracture locations compared to other wellbore locations. By analyzing temperature-wellbore location curves, this work can accurately identify the locations of induced fractures. The TCP model successfully extracts characteristic parameters of induced fractures, while the DWT model allows for monitoring the locations and heights of these fractures. By combining the workflows of both models, this work achieves a comprehensive characterization of the physical properties of induced fractures. In conclusion, this advancement empowers engineers to manage the development of such fractures effectively, thereby averting potential adverse effects on production well performance and preventing the need for well abandonment.

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诱导裂缝注水井的瞬态温度耦合压力行为建模:半分析模型、数值模型和案例研究
注水是一种广泛用于开发非常规储层的技术。长期注水会形成多条诱导裂缝。准确跟踪这些诱导裂缝的位置、范围和动态行为至关重要。为了提高监测能力,可利用分布式温度传感器获得的数据来跟踪井筒内和井底的温度变化。将温度反演和压力反演技术相结合,有助于缓解多方案问题,同时从不同角度对多诱导裂缝进行更全面的描述。在本研究中,本工作提出了一个温度耦合压力(TCP)瞬态分析模型。此外,本研究还利用 COMSOL Multiphysics 软件开发并求解了动态井筒温度 (DWT) 模型。这项工作提出了一种描述多诱导裂缝动态行为的工作流程。在模型开发和求解过程中,这项工作采用了压力和温度瞬态分析方法,研究了随时间变化的非线性压降和传热变化。我们的研究结果表明,诱导裂缝与井筒进行对流热交换,导致诱导裂缝位置的温度明显高于其他井筒位置。通过分析温度-井筒位置曲线,这项工作可以准确确定诱导裂缝的位置。TCP 模型成功提取了诱导裂缝的特征参数,而 DWT 模型则可以监测这些裂缝的位置和高度。通过结合两种模型的工作流程,这项工作实现了对诱发裂缝物理特性的全面描述。总之,这一进步使工程师能够有效地管理此类裂缝的开发,从而避免对生产井性能造成潜在的不利影响,并防止需要弃井。
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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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