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首页» 过刊浏览» 2023» Vol.8» Issue(5) 600-613     DOI : 10.3969/j.issn.2096-1693.2023.05.057
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环氧树脂胶结人造砂岩单轴力学性质研究
晏敏, 邓金根, 田得粮, 蔚宝华, 肖强忠, 陈卓.
1 中海油田服务股份有限公司,天津 300459 2 中国石油大学( 北京) 油气资源与工程国家重点实验室,北京 102249 3 中海石油( 中国) 有限公司天津分公司,天津 300459
Research on uniaxial mechanical properties of synthetic sandstones cemented with epoxy resin adhesives
YAN Min, DENG Jingen, TIAN Deliang, YU Baohua, XIAO Qiangzhong, CHEN Zhuo
1 China Oilfield Services Limited, Tianjin 300459, China 2 National Key Laboratory of Petroleum Resources and Engineering, China University of Petroleum, Beijing 102249, China 3 Tianjin Branch of CNOOC Ltd, Tianjin 300459, China

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摘要  人造砂岩以其易于获取和性质可控的特点,在石油、岩土工程等领域具有广泛的运用。然而,人造岩心的力学性质与天然岩心之间仍然存在一定的差异。为研究环氧树脂胶结人造砂岩的力学性质,分别使用3 种不同的环氧固化体系进行人造岩心的制备。通过对不同固化体系胶结岩心的单轴应力—应变曲线和破坏形式的对比,研究了固化体系对岩心力学性质的影响。通过改变固化剂比例、固化时间和促进剂含量,分析了影响脂环族环氧树脂胶结岩心脆性的主导因素。针对环氧树脂的老化问题,进行了岩心浸泡流体后的强度测试,研究了环氧树脂胶结人造岩心力学性质对流体的敏感性。结果表明:环氧固化物的力学性质与环氧树脂及固化剂的类型和结构有关,不同环氧固化体系胶结的人造岩心力学性质差异较大;使用脂环族环氧树脂胶结的人造岩心其脆性相对更好,岩心破坏后应变软化迅速,表面可见明显的破坏倾角;促进剂对脂环族环氧树脂胶结岩心的脆性和强度有较大影响,促进剂含量低会导致岩心塑性太强,含量过高则导致岩心强度下降,以DMP-30 作促进剂时用量3% 到5%较为合适;岩心强度对水和矿物油均有不同程度的敏感性,其中水对强度的弱化作用较为显著,泡水2 h可导致50%左右的强度损失;对于涉及流体饱和的人造岩心力学性质的相关研究,应考虑岩心强度对流体的敏感性。本文的结果对于降低人造岩心与天然岩心之间的力学性质差异以及人造岩心在岩石力学实验方面的运用具有一定的指导意义。
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关键词 : 人造砂岩,环氧树脂,力学性质,胶结剂,岩心制备
Abstract

Synthetic sandstones have been widely used in petroleum, rock and soil engineering for their easy acquisition and controllable properties. However, there are still some differences between the mechanical properties of the artificial and natural cores. In this study, synthetic sandstones were prepared with three different curing systems to investigate the mechanical properties of epoxy resin-cemented cores. The effect of curing systems on the mechanical properties of artificial cores was studied through the comparison of uniaxial stress/strain curves and rock failure forms between the cores cemented with different adhesives. The dominant factors affecting the brittleness of the cycloaliphatic epoxy resin-bonded cores were determined by varying the curing agent ratio, the curing duration, and the catalyst content. Considering the material aging of epoxy products, mechanical tests were conducted on the artificial cores that have been treated with fluids, and the sensitivity of the mechanical properties of the core to fluid was analyzed. The results show that the mechanical properties of epoxy products are related to the type and molecular structure of epoxy resins and curing agents, which lead to the differences in the mechanical properties of the synthetic samples based on different curing systems. The cores cemented with cycloaliphatic epoxy resin have relatively high brittleness. The strain softening was rapid and the apparent failure line was observed on the core surface after the failure of the core. The catalyst can greatly affect both the brittleness and strength of the cycloaliphatic resin-bonded cores. A low content of catalyst may lead to distinct plasticity, while a high content can lower the core strength. A dosage of 3% to 5% is recommended when using DMP-30 as the catalyst. The artificial cores are sensitive to water and mineral oil in different degrees, and the effect of water on strength weakening is more obvious than that of mineral oil. The core lost up to 50% of its strength after two hours soaking in water. It is recommended that the sensitivity of core strength to fluids should be considered for research involving mechanical properties of epoxy resin-cemented artificial cores affected by fluids. The results can provide some guidance for reducing the difference in mechanical properties between artificial and natural cores and the application of artificial cores in rock mechanics experiments.


Key words: synthetic sandstone; epoxy resin; mechanical property; adhesive; core preparation
收稿日期: 2023-10-31     
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通讯作者: yanmin2@cnooc.com.cn
引用本文:   
晏敏, 邓金根, 田得粮, 蔚宝华, 肖强忠, 陈卓. 环氧树脂胶结人造砂岩单轴力学性质研究. 石油科学通报, 2023, 05: 600-613 YAN Min, DENG Jingen, TIAN Deliang, YU Baohua, XIAO Qiangzhong, CHEN Zhuo. Research on uniaxial mechanical properties of synthetic sandstones cemented with epoxy resin adhesives. Petroleum Science Bulletin, 2023, 05: 600-613.
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