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高强度可控树脂封堵剂及其对裂缝性地层的性能评价

High-Strength Controllable Resin Plugging Agent and Its Performance Evaluation for Fractured Formation.

作者信息

Liu Xiongwei, Qi Biao, Chen Xiuping, Shen Ziyao, Yang Jingbin

机构信息

Key Laboratory of Enhanced Oil Recovery in Carbonate Fractured-Vuggy Reservoirs, SINOPEC, Xinjiang 830011, China.

SINOPEC Northwest Company of China Petroleum and Chemical Corporation, Xinjiang 830011, China.

出版信息

Gels. 2024 Aug 2;10(8):511. doi: 10.3390/gels10080511.

Abstract

Lost circulation is a common and complicated situation in drilling engineering. Serious lost circulation may lead to pressure drop in the well, affect normal drilling operations, and even cause wellbore instability, formation fluid flooding into the wellbore, and blowout. Therefore, appropriate preventive and treatment measures need to be taken to ensure the safe and smooth operation of drilling operations. So, it is necessary to conduct in-depth research on the development and performance of the plugging materials. In this study, urea formaldehyde resin with high temperature resistance and strength was used as the main raw material, and the curing conditions were optimized and adjusted by adding a variety of additives. The curing time, compressive strength, temperature resistance, and other key performance indexes of the resin plugging agent were studied, and a resin plugging agent system with excellent plugging performance was prepared. The formula is as follows: 25% urea formaldehyde resin +1% betaine +1% silane coupling agent KH-570 + 3% ammonium chloride +1% hexamethylenetetramine +1% sodium carboxymethyl cellulose. The optimal curing temperature is between 60 and 80 °C, with a controllable curing time of 1-3 h. Experimental studies examined the rheological and curing properties of the resin plugging agent system. The results showed that the viscosity of the high-strength curable resin system before curing remained stable with increasing shear rates. Additionally, the storage modulus and loss modulus of the resin solutions increased with shear stress, with the loss modulus being greater than the storage modulus, indicating a viscous fluid. The study also investigated the effect of different salt ion concentrations on the curing effect of the resin plugging system. The results showed that formation water containing Na at concentrations between 500 mg/L and 10,000 mg/L increased the resin's curing strength and reduced curing time. However, excessively high concentrations at lower temperatures reduced the curing strength. Formation water containing Ca increased the curing time of the resin plugging system and significantly impacted the curing strength, reducing it to some extent. Moreover, the high-strength curable resin plugging agent system can effectively stay in various fracture types (parallel, wedge-shaped) and different fracture sizes, forming a high-strength consolidation under certain temperature conditions for effective plugging. In wedge-shaped fractures with a width of 10 mm, the breakthrough pressure of the high-strength curable resin plugging agent system reached 8.1 MPa. As the fracture width decreases, the breakthrough pressure increases, reaching 9.98 MPa in wedge-shaped fractures with an outlet fracture width of 3 mm, forming a high-strength plugging layer. This research provides new ideas and methods for solving drilling fluid loss in fractured loss zones and has certain application and promotion value.

摘要

漏失是钻井工程中常见且复杂的情况。严重漏失可能导致井内压力下降,影响正常钻井作业,甚至引发井壁失稳、地层流体涌入井筒以及井喷。因此,需要采取适当的预防和处理措施,以确保钻井作业安全顺利进行。所以,有必要对堵漏材料的研制与性能进行深入研究。本研究以耐高温、高强度的脲醛树脂为主要原料,通过添加多种添加剂对固化条件进行优化调整。研究了树脂堵漏剂的固化时间、抗压强度、耐温性等关键性能指标,制备了具有优异堵漏性能的树脂堵漏剂体系。配方如下:25%脲醛树脂+1%甜菜碱+1%硅烷偶联剂KH - 570+3%氯化铵+1%六亚甲基四胺+1%羧甲基纤维素钠。最佳固化温度为60至80℃,固化时间可控在1至3小时。实验研究考察了树脂堵漏剂体系的流变性能和固化性能。结果表明,高强度可固化树脂体系固化前的粘度随剪切速率增加保持稳定。此外,树脂溶液的储能模量和损耗模量随剪切应力增加,损耗模量大于储能模量,表明为粘性流体。该研究还考察了不同盐离子浓度对树脂堵漏体系固化效果的影响。结果表明,浓度在500mg/L至10000mg/L之间含Na的地层水可提高树脂的固化强度并缩短固化时间。然而,在较低温度下过高的浓度会降低固化强度。含Ca的地层水会增加树脂堵漏体系的固化时间,并显著影响固化强度,使其有所降低。此外,高强度可固化树脂堵漏剂体系能有效滞留于各种裂缝类型(平行、楔形)和不同裂缝尺寸中,在一定温度条件下形成高强度固结体以实现有效堵漏。在宽度为10mm的楔形裂缝中,高强度可固化树脂堵漏剂体系的突破压力达到8.1MPa。随着裂缝宽度减小,突破压力增大,在出口裂缝宽度为3mm的楔形裂缝中达到9.98MPa,形成高强度堵漏层。本研究为解决裂缝性漏失层钻井液漏失问题提供了新的思路和方法,具有一定的应用和推广价值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ec7c/11353602/82bffaa852e4/gels-10-00511-g001.jpg

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