Fracture Diagnostic Using Distributed Temperature Measurements During Stimulation Fluid Flow-Back

Y. Mao, M. Zeidouni, C. Godefroy, M. Gysen
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引用次数: 2

Abstract

The significant temperature difference between the fractured and non-fractured regions during the stimulation fluid flow-back period can be very useful for fracture diagnosis. The recent developments in downhole temperature monitoring systems open new possibilities to detect these temperature variations to perform production logging analyses. In this work, we derive a novel analytical solution to model the temperature signal associated with the shut-in during flow-back and production periods. The temperature behavior can infer the efficiency of each fracture. To obtain the analytical solution from an existing wellbore fluid energy balance equation, we use the Method of Characteristics with the input of a relevant thermal boundary condition. The temperature modeling results acquired from this analytical solution are validated against those from a finite element model for multiple cases. Compared to the warm-back effect in the non-fractured region after shut-in, a less significant heating effect is observed in the fractured region because of the warmer fluid away from the perforation moving into the fracture (after-flow). Detailed parametric analyses are conducted on after-flow velocity and its variation, flowing, geothermal, and inflow temperature of each fracture, surrounding temperature field, and casing radius to investigate their impacts on the wellbore fluid temperature modeling results. The inversion procedures characterize each fracture considering the exponential distribution of temperature based on the analytical solutions in fractured and non-fractured regions. Inflow fluid temperature, surrounding temperature field, and after-flow velocity of each fracture can be estimated from the measured temperature data, which present decent accuracies analyzing synthetic temperature signal. The outputs of this work can contribute to production logging, warm-back, and wellbore storage analyses to achieve successful fracture diagnostic.
利用压裂液返排过程中的分布温度测量进行裂缝诊断
在压裂返排期间,压裂区和非压裂区之间的显著温差对裂缝诊断非常有用。井下温度监测系统的最新发展为检测这些温度变化进行生产测井分析提供了新的可能性。在这项工作中,我们推导了一种新的解析解,用于模拟反排和生产期间与关井相关的温度信号。温度行为可以推断出每条裂缝的效率。为了从已有的井筒流体能量平衡方程中得到解析解,我们采用特征化方法,输入相关的热边界条件。用该解析解得到的温度模拟结果与有限元模型的结果进行了验证。与关井后非压裂区域的热回效应相比,压裂区域的热效应不那么显著,因为从射孔处流出的热流体进入了裂缝(后流)。对尾流速度及其变化、每条裂缝的流动温度、地热温度、流入温度、周围温度场、套管半径等参数进行了详细的分析,探讨了它们对井筒流体温度建模结果的影响。在裂缝区和非裂缝区解析解的基础上,考虑温度的指数分布,对每条裂缝进行表征。根据实测温度数据,可以估计出每条裂缝的流入流体温度、周围温度场和尾流速度,对合成温度信号的分析精度较高。这项工作的结果可以用于生产测井、回温和井筒储存分析,从而实现成功的裂缝诊断。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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