应力敏感型裂缝堵漏实验装置研发与应用OA
Development and application of an experimental device for lost-circulation plugging in stress-sensitive fractures
针对钻井过程中波动压力导致裂缝开度动态变化及封堵层易失稳的问题,该文设计了一套"井筒-地层-裂缝"耦合的应力敏感型裂缝调节堵漏实验装置.该装置可实现裂缝闭合压力与裂缝入口压力的独立加载,裂缝开度随压差变化的自动调节,并具备反向承压和返排评价功能.文章以废旧轮胎橡胶弹性颗粒为例,开展了楔形裂缝阶梯加压堵漏模拟实验,系统分析了裂缝闭合压力、堵漏材料总浓度、堵漏材料体系及橡胶颗粒粒径复配对动态封堵效果的影响规律.实验结果表明,裂缝闭合压力由 1 MPa 提高至 3 MPa 时,失稳扩张宽度增幅仅为 7.5%,对增强裂缝动态封堵稳定性作用有限;堵漏材料总浓度存在优选区间,浓度选择不当会导致漏失或封门等无效封堵;弹性颗粒增强体系在 1 mm 小开度裂缝下难以建立稳定封堵,而在2 mm 裂缝下通过粒径复配可以提升封堵效果.依托该装置建立的面向应力敏感裂缝堵漏的标准化实验平台,具有多工况精确控制与完善的数据采集优势,可为科研验证与教学实践提供支撑.
[Objective]Stress-sensitive fractures can experience continuous aperture changes under wellbore pressure variations during drilling.However,many existing lost-circulation evaluation methods and material-selection criteria assume a fixed fracture aperture.As a result,the chosen plugging formulations may not match the evolving fracture width,leading to instability of the plugging layer and repeated losses.To address this issue,we developed an experimental device that simulates a coupled wellbore-formation-fracture plugging system.[Methods]The device includes a drilling-fluid circulation system,temperature-control system,plugging slurry preparation system,dynamic fracture-aperture regulation system,and data acquisition system.It models lost circulation in stress-sensitive fractures with pressure-driven aperture changes,allowing independent control of fracture closure pressure,fracture inlet pressure,temperature,and different fracture geometries.Pressure,temperature,and fracture deformation are recorded simultaneously,and loss volume can be quantified.After each test,the fracture module is disassembled for direct observation of plugging layer distribution and local bridging morphology.Two plugging systems were compared using the device:a conventional bridging system consisting of rigid bridging and filling materials,and an elastic particle-enhanced system that incorporates recycled tire rubber particles to improve deformation adaptability under dynamic conditions.The effects of fracture closure pressure,total lost circulation material(LCM)concentration,plugging material system,and the performance of composite plugging formulas were systematically evaluated.[Results]Comparative tests show that increasing fracture closure pressure improves plugging stability against dynamic aperture growth;however,the gain is only 7.5%when the closure pressure rises from 1 MPa to 3 MPa,indicating that fracture closure pressure alone has limited capacity to enhance dynamic plugging stability.Total LCM concentration has an effective operational window:at too low a concentration,persistent leakage occurs because a continuous and stable bridging skeleton cannot form;at too high a concentration,premature entrance plugging may happen,increasing the apparent pressure-bearing capacity but risking operational issues during circulation.The effectiveness of elastic particles strongly depends on fracture aperture.In 1 mm fractures,the elastic particle-enhanced system failed to establish a stable pressure-bearing plugging layer,suggesting that small-aperture fractures depend primarily on the rapid formation of a stiff bridging skeleton.In 2 mm fractures,the elastic-particle system reduced fluid loss from 188 mL to 133 mL under similar conditions.This demonstrates that elastic particles are more effective in larger fractures where deformable filling and contact reconfiguration improve loss control.After further optimizing the rubber particle-size combination,fluid loss dropped from 133 mL to 98 mL,while the pressure-bearing capacity remained between 4.5 and 4.8 MPa.This indicates that particle-size recombination mainly enhances loss control and densifies the plugging layer,without significantly increasing ultimate pressure-bearing strength.[Conclusions]This study establishes a dedicated experimental foundation for evaluating pressure-bearing plugging in stress-sensitive fractures.The coupled wellbore-formation-fracture plugging device links macroscopic plugging performance with the evolution of plugging-layer morphology during dynamic fracture deformation.The results provide a reliable basis for dynamic plugging evaluation,mechanism-oriented formulation design,and developing pressure-bearing plugging strategies for fractured formations.
胡晗;冯永存;赖辰熙;王广宇;李晓蓉
中国石油大学(北京) 石油工程学院,北京 102249||中国石油大学(北京) 油气资源与工程全国重点实验室,北京 102249中国石油大学(北京) 油气资源与工程全国重点实验室,北京 102249||中国石油大学(北京) 安全与海洋工程学院,北京 102249中国石油大学(北京) 石油工程学院,北京 102249||中国石油大学(北京) 油气资源与工程全国重点实验室,北京 102249中国石油大学(北京) 油气资源与工程全国重点实验室,北京 102249||中国石油大学(北京) 安全与海洋工程学院,北京 102249中国石油大学(北京) 油气资源与工程全国重点实验室,北京 102249||中国石油大学(北京) 安全与海洋工程学院,北京 102249
能源科技
应力敏感裂缝性地层动态裂缝弹性堵漏材料实验设备
stress-sensitive fracturesfractured formationfracture deformationelastic plugging materialexperimental device
《实验技术与管理》 2026 (5)
160-168,9
国家自然科学基金企业创新发展联合基金(U23B208)新疆维吾尔自治区重点研发计划(2024B01014)
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