The First Successful Casing in Casing Cementing for Re-Fracturing Treatment in China: Case Study from China’s First Shale Gas Field

Bin Wang, Devesh Bhaisora, Francois Missiaen, Chi Zhang, Yue Ming, Lipeng Shan, Le Qin, Jianting Liu
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Abstract

The Fuling shale gas field in China was discovered in 2012 and is a quality high pressure natural shale gas reservoir in the Longmaxi formation. Since then, more than 500 wells have been drilled and are being produced. However, over the period there has been a reduction in production and therefore refracturing is needed to maintain production. A new casing-in-casing method of re-constructing a new wellbore inside the legacy wellbore for re-fracturing was introduced and successfully executed. The producing wellbore has a series of perforations along the casing of the horizontal section. Wellbore re-construction is required to isolate all these perforations and allow a plug-and-perf fracturing process in the new wellbore. It was planned to run a 3.5 inch casing into the existing 5.5 inch casing and cement it. A dependable cement barrier in this extremely tight annulus is required to carry on future re-frac operations. Computational fluid dynamics and stress modelling were performed to optimize the slurry density, rheology, mechanical properties and based on various iterations tailored ceramic centralizers were proposed to achieve zonal isolation objectives. The top of cement (TOC) in the annulus is required to be above the topmost planned perforation. The remaining 3.5 inch casing above the designed depth was disconnected and pulled out. A new 5.5 inch X 3.5 inch wellbore without any leaks to the existing perforation was constructed. The wellbore was reamed to bottom, and the losses were treated prior to cementing. Tailored ceramic centralizers were installed on the casing to achieve optimum stand off along with a low friction factor which helped casing to run to the bottom successfully. A low rheology slurry tailored for optimum mechanical properties to withstand the fracturing operation was pumped and the cement returns to designed depth were noted. Cement bond log showed excellent results and the stage fracturing operation was performed with no issues with wellbore integrity. A tailored slurry and centralizer design helped to achieve zonal isolation objectives in the low clearance casing-in-casing (CiC) cementing configuration. The critical wellbore re-construction objectives were achieved, and the well was re-fractured with substantial increase in production.
国内首套固井复压成功套管——以中国首个页岩气田为例
涪陵页岩气田发现于2012年,是龙马溪组优质高压天然页岩气储层。从那时起,已经钻探和生产了500多口井。然而,在此期间,产量有所减少,因此需要重复压裂来维持产量。介绍了一种在原有井眼内重建新井眼进行再压裂的套中套新方法,并成功实施。生产井眼沿水平段套管有一系列射孔。需要进行井眼重建,以隔离所有这些射孔,并在新井眼中进行桥塞射孔压裂。计划在现有的5.5英寸套管中下入3.5英寸套管并进行固井。在这种极其紧密的环空中,需要可靠的水泥屏障来进行未来的再压裂作业。通过计算流体动力学和应力建模来优化浆液密度、流变学和力学性能,并基于各种迭代提出定制陶瓷扶正器,以实现层间隔离目标。环空水泥顶部(TOC)必须高于最顶部的计划射孔。将设计深度以上的3.5英寸套管断开并取出。新井眼尺寸为5.5英寸X 3.5英寸,现有射孔没有任何泄漏。将井筒扩眼至底部,并在固井前处理漏失。在套管上安装了定制的陶瓷扶正器,以达到最佳的高度,同时具有低摩擦系数,有助于套管成功下入底部。泵送了一种具有最佳机械性能的低流变性泥浆,以承受压裂作业,并注意到水泥返回到设计深度。水泥胶结测井结果非常好,分段压裂作业没有出现井筒完整性问题。量身定制的泥浆和扶正器设计有助于在低间隙套中套管(CiC)固井配置中实现层间隔离目标。实现了关键的井筒重建目标,并在产量大幅增加的情况下进行了重新压裂。
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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