Fracture Pre-propping and Temporary Plugging for Formation Damage Control in Deep Naturally Fractured Tight Reservoirs

SPE Journal Pub Date : 2024-07-01 DOI:10.2118/221489-pa
Chengyuan Xu, Jun Xie, Yili Kang, Lei Liu, Kun Guo, Dan Xue, Zhenjiang You
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Abstract

To address the challenges of formation damage related to drill-in fluid loss into deep reservoir fractures during the drill-in process, we propose pre-propping and temporary plugging (PPTP) technology as an integrated solution in this paper. The PPTP approach combines high-strength bridging (HSB) materials with self-degrading filling (SDF) materials for efficient fracture plugging during lost circulation and effective fracture propping during oil and gas production from deep naturally fractured reservoirs. HSB material with good mechanical properties and SDF material with a controllable degradation cycle are developed and systematically evaluated. Fracture plugging tests and stress sensitivity experiments are conducted to evaluate the transformation effect of fracture plugging zones on fracture propping zones. Research results show that the developed HSB material exhibits a high compressive capacity and friction coefficient, which maintains a crushing rate below 3% under 60 MPa pressure and an average friction coefficient of 1.56. The degradation ratio of SDF material increases with temperature and pH value. The degradation cycle can reach up to 168 hours under the conditions of 120°C and pH = 13, which ensures continuous stable fracture plugging and lost-circulation control during the drill-in process. The PPTP technology, combining HSB and SDF components, efficiently plugs fractures with widths ranging from 1.0 mm to 3.0 mm, with a maximum plugging pressure of up to 10.16 MPa. HSB material props the fractures after SDF degrades, preventing fracture closure and converting the fracture plugging zone into a propping zone. The stress sensitivity damage of reservoir fractures can be effectively mitigated, preserving and enhancing fracture conductivity. Thus, the PPTP technology shows great potential for the integration solution of drill-in fluid loss and formation damage in deep naturally fractured reservoirs.
在深层自然压裂致密油藏中进行压裂预处理和临时封堵以控制地层损害
为了解决钻井过程中钻井液流失到深层储层裂缝中造成地层破坏的难题,我们在本文中提出了预支撑和临时封堵(PPTP)技术作为一种综合解决方案。PPTP 方法将高强度桥接(HSB)材料与自降解填充(SDF)材料相结合,可在深层天然裂缝储层失去循环时高效堵塞裂缝,并在油气生产过程中有效支撑裂缝。开发并系统评估了具有良好机械性能的 HSB 材料和降解周期可控的 SDF 材料。进行了裂缝封堵试验和应力敏感性实验,以评估裂缝封堵区对裂缝支撑区的转化效应。研究结果表明,所开发的 HSB 材料具有较高的抗压能力和摩擦系数,在 60 兆帕压力下的压碎率保持在 3% 以下,平均摩擦系数为 1.56。SDF 材料的降解率随温度和 pH 值的升高而增加。在 120℃、pH = 13 的条件下,降解周期可达 168 小时,从而确保了钻进过程中持续稳定的裂缝封堵和失流控制。PPTP 技术结合了 HSB 和 SDF 成分,可有效封堵宽度为 1.0 毫米至 3.0 毫米的裂缝,最大封堵压力可达 10.16 兆帕。在 SDF 降解后,HSB 材料可支撑裂缝,防止裂缝闭合,并将裂缝堵塞区转化为支撑区。可有效减轻储层裂缝的应力敏感性破坏,保持并提高裂缝的导电性。因此,PPTP 技术在综合解决深层天然裂缝储层的钻进流体损失和地层损害方面显示出巨大潜力。
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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