[1] DRY C. Matrix cracking repair and filling using active and passive modes for smart timed release of chemicals from fibers into cement matrices[J]. Smart Materials & Structures, 1994, 3(2):118-123. doi:10.1088/09641726/3/2/006 [2] 李思超,韩朋,许华平. 自修复高分子材料[J]. 化学进展,2012,24(7):1346-1352. LI Sichao, HAN Peng, XU Huaping. Self-healing polymeric materials[J]. Progress in Chemistry, 2012, 24(7):1346-1352. [3] 廖月敏,付美龙,杨松林. 耐温抗盐凝胶堵水调剖体系的研究与应用[J]. 特种油气藏,2019,26(1):158-162. doi:10.3969/j.issn.1006-6535.2019.01.028 LIAO Yuemin, FU Meilong, YANG Songlin. Study and application of water plugging and profile control system of heat and salt resistant gel[J]. Special Oil and Gas Reservoir, 2019, 26(1):158-162. doi:10.3969/j.issn.10066535.2019.01.028 [4] 熊春明,唐孝芬. 国内外堵水调剖技术最新进展及发展趋势[J]. 石油勘探与开发,2007,34(1):83-88. doi:10.3321/j.issn:1000-0747.2007.01.016 XIONG Chunming, TANG Xiaofen. Technologies of water shut-off and profile control:An overview[J]. Petroleum Exploration and Development, 2007, 34(1):83-88. doi:10.3321/j.issn:1000-0747.2007.01.016 [5] CHEN Xiangxu, DAM M A, ONO K, et al. A thermally re-mendable cross-linked polymeric material[J]. Science, 2002, 295(5560):1698-1702. doi:10.1126/science.1065879 [6] REUTENAUER P, BUHLER E, BOUL P J, et al. Room temperature dynamic polymers based on Diels-Alder chemistry[J]. Chemistry, 2009, 15(8):1893-1900. doi:10.1002/chem.200802145 [7] YU Feng, CAO Xiaodong, DU Jie, et al. Multifunctional hydrogel with good structure integrity, self-healing, and tissue-adhesive property formed by combining Diels-Alder click reaction and acylhydrazone bond[J]. ACS Applied Materials & Interfaces, 2015, 43(7):24023-24031. doi:10.1021/acsami.5b06896 [8] CHUJO Y, SADA K, NAKA A, et al. Synthesis and redox gelation of disulfide-modified polyoxazoline[J]. Macromolecules, 1993, 26(5):883-887. doi:10.1021/ma00057a001 [9] CANADELL J, GOOSSENS H, KLUMPERMAN B. Self-healing materials based on disulfide links[J]. Macromolecules, 2011, 44(8):2536-2541. doi:10.1021/ma2001492 [10] GUO Ruiwei, SU Qian, ZHANG Jinwei, et al. Facile access to multisensitive and self-healing hydrogels with reversible and dynamic boronic ester and disulfide linkages[J]. Biomacromolecules, 2017, 18(4):1356-1364. doi:10.1021/acs.biomac.7b00089 [11] XIAO Guifa, WANG Ying, ZHANG Hui, et al. Facile strategy to construct a self-healing and biocompatible cellulose nanocomposite hydrogel via reversible acylhydrazone[J]. Carbohydrate Polymers, 2019, 218:68-77. doi:10.1016/j.carbpol.2019.04.080 [12] APOSTOLIDES D E, PATRICKIOS C S. Dynamic covalent polymer hydrogels and organogels cross-linked through acylhydrazone bonds:Synthesis, characterization, and applications[J]. Polymer International, 2018, 67(6):627-649. doi:10.1002/pi.5554 [13] 袁伟忠,黄薇薇. 一种基于酰腙键动态可逆自修复的磁场、温度双响应型智能水凝胶的制备方法:CN105713134A[P]. 2016-06-29. YUAN Weizhong, HUANG Weiwei. A preparation method of magnetic field and temperature double response intelligent hydrogel based on dynamic reversible selfhealing of acylhydrazone bond:CN105713134A[P]. 2016-06-29. [14] DENG Guohua, LI Fuya, YU Hongxia, et al. Dynamic hydrogels with an environmental adaptive self-healing ability and dual responsive sol-gel transitions[J]. ACS Macro Letters, 2012, 1(2):275-279. doi:10.1021/mz200195n [15] BERMEJO V D, KADEKAR S, COSTA M V T, et al. First aldol cross-linked hyaluronic acid hydrogel:Fast and hydrolytically stable hydrogel with tissue adhesive properties[J]. ACS Applied Materials & Interfaces, 2019, 11(41):38232-382398. doi:10.1021/acsami.9b10239 [16] JEON I, CUI Jiaxi, ILLEPERUMA W R K, et al. Extremely stretchable and fast self-healing hydrogels[J]. Advanced Materials, 2016, 28(23):4678-4683. doi:10.1002/adma.201600480 [17] DENG Zexing, GUO Yi, ZHAO Xin, et al. Multifunctional stimuli-responsive hydrogels with self-healing, high conductivity and rapid recovery through host-guest interactions[J]. Chemistry of Materials, 2018, 30(5):1729-1742. doi:10.1021/acs.chemmater.8b00008 [18] XIAO Tangxin, XU Lixiang, ZHOU Ling, et al. Dynamic hydrogels mediated by macrocyclic host-guest interactions[J]. Journal of Materials Chemistry B, 2019, 10(7):1526-1540. doi:10.1039/C8TB02339E [19] KAKUTA T, TAKASHIMA Y, HARADA A. Highly elastic supramolecular hydrogels using host-guest inclusion complexes with cyclodextrins[J]. Macromolecules, 2013, 46(11):4575-4579. doi:10.1021/ma400695p [20] ZHANG Mingming, XU Donghua, YAN Xuzhou, et al. Self-healing supramolecular gels formed by crown ether based host-guest interactions[J]. Angewandte Chemie, 2012, 124(28):7117-7121. doi:10.1002/anie.201203063 [21] 郑景,张佳玮,陈涛. 高强度自修复超分子水凝胶[C]. 苏州:全国高分子学术论文报告会,2015. ZHENG Jing, ZHANG Jiawei, CHEN Tao. High-strength self-healing supramolecular hydrogel[C]. Suzhou:National Polymer Academic Paper Conference, 2015. [22] WANG Qigang, MYNAR J L, YOSHIDA M, et al. High-water-content mouldable hydrogels by mixing clay and a dendritic molecular binder[J]. Nature, 2010, 463:339-343. doi:10.1038/nature08693 [23] TUNCABOYLU D C, SAHIN M, ARGUN A, et al. Dynamics and large strain behavior of self-healing hydrogels with and without surfactants[J]. Macromolecules, 2012, 45(4):1991-2000. doi:10.1021/ma202672y [24] ZHOU Linjie, WANG Zhenwu, WU Changsong, et al. Highly sensitive pressure and strain sensors based on stretchable and recoverable ion-conductive physically cross-linked double-network hydrogels[J]. ACS Applied Materials & Interfaces, 2020, 12(46):51969-51977. doi:10.1021/acsami.0c15108 [25] OKAY O. Self-healing hydrogels formed via hydrophobic interactions[J]. Science, 2015, 268:101-142. doi:10.1007/978-3-319-15404-6_3 [26] TUNCABOYLU D C, SARI M, OPPERMANN W, et al. Tough and self-healing hydrogels formed via hydrophobic interactions[J]. Macromolecules, 2011, 44(12):4997-5005. doi:10.1021/ma200579v [27] ZHOU Hongwei, XU Guohe, LI Jie, et al. Preparation and self-healing behaviors of poly (acrylic acid)/cerium ions double network hydrogels[J]. Macromolecular Research, 2015, 23(12):1098-1102. doi:10.1007/s13233-015-314-5-7 [28] WANG Yixin, XIE Ruiqi, LI Qing, et al. A self-adapting hydrogel based on chitosan/oxidized konjac glucomannan/AgNPs for repairing irregular wounds[J]. Biomaterials Science, 2020, 8:1910-1922. doi:10.1039/C9BM01635J [29] YANG Bin, ZHANG Yaling, ZHANG Xiaoyong, et al. Facilely prepared inexpensive and biocompatible self-healing hydrogel:A new injectable cell therapy carrier[J]. Polymer Chemistry, 2012, 12:3235-3238. doi:10.1039/c2py20627g [30] WANG Gang, ZHU Jiehua, CHEN Xiaofeng, et al. Alginate based antimicrobial hydrogels formed by integrating diels-alder click chemistry and the thiol-ene reaction[J]. RSC Advances, 2018, 20:11036-11042. doi:10.1039/c8ra00668g [31] 王光星,侯文轩,刘香兰,等. 仿生矿化法制备磁响应自修复水凝胶及其性能研究[J]. 现代化工,2020,40(6):114-117. doi:10.16606/j.cnki.issn0253-4320.2020.06.024 WANG Guangxing, HOU Wenxuan, LIU Xianglan, et al. Preparation of magnetic response self-healing hydrogel by biomimetic mineralization process and study on its properties[J]. Modern Chemical Industry, 2020, 40(6):114-117. doi:10.16606/j.cnki.issn0253-4320.2020.06.024 [32] SONG Kedong, LI Liying, YAN Xinyu, et al. Characterization of human adipose tissue-derived stem cells in vitro culture and in vivo differentiation in a temperature-sensitive chitosan/β glycerophosphate/collagen hybrid hydrogel[J]. Materials Science and Engineering:C, 2017, 70:231-240. doi:10.1016/j.msec.2016.08.085 [33] SHI Liyang, ZENG Yuqin, ZHAO Yannan, et al. Biocompatible injectable magnetic hydrogel formed by dynamic coordination network[J]. ACS Applied Materials & Interfaces, 2019, 11(49):46233-46240. doi:10.1021/acsami.9b17627 [34] 武培怡. 一种基于仿生矿物水凝胶的智能离子皮肤[C]. 成都:中国化学会2017全国高分子学术论文报告会,2017. WU Peiyi. A smart ion skin based on bionic mineral hydrogel[C]. Chengdu:National Polymer Academic Papers Conference of the Chinese Chemical Society, 2017. [35] 刘国宝,孙铭泽. 耐温凝胶体系的研制及性能评价[J]. 油田化学,2019,36(4):620-623. doi:10.19346/j.cnki.1000-4092.2019.04.010 LIU Guobao, SUN Mingze. Development and evaluation of temperature resistant gel system[J]. Oilfield Chemistry, 2019, 36(4):620-623. doi:10.19346/j.cnki.1000-4092.2019.04.010 [36] 魏建君. 油田调剖堵水技术[J]. 中国化工贸易,2019,11(4):80. doi:10.3969/j.issn.1674-5167.2019.04.077 WEI Jianjun. Oilfield profile control and water blocking technology[J]. China Chemical Trade, 2019, 11(4):80. doi:10.3969/j.issn.1674-5167.2019.04.077 [37] 刘战君. 老君庙油田深度调剖技术研究及应用[D]. 南充:西南石油学院,2000. LIU Zhanjun. Research and application of deep profile control technology in Laojunmiao Oilfield[D]. Nanchong:Southwest Petroleum Institute, 2000. [38] 王雷,李亮,张潇,等. 两性离子水凝胶的制备及性能研究[J]. 应用化工,2019,48(4):780-784. doi:10.16581/j.cnki.issn1671-3206.20190125.026 WANG Lei, LI Liang, ZHANG Xiao, et al. Preparation and properties of zwitterionic hydrogel[J]. Applied Chemical Industry, 2019, 48(4):780-784. doi:10.16581/j.cnki.issn1671-3206.20190125.026 [39] 吴俊. 一种水凝胶覆膜自悬浮支撑剂的性能评价与应用[J]. 石油知识,2018(2):54-55. doi:10.3969/j.issn.1003-4609.2018.02.028 WU Jun. Performance evaluation and application of a hydrogel-coated self-suspending proppant[J]. Petroleum Knowledge, 2018(2):54-55. doi:10.3969/j.issn.10034609.2018.02.028 [40] 李辉,刘华康,何仲,等. 塔河油田碳酸盐岩储层恶性漏失空间堵漏凝胶技术[J]. 钻井液与完井液,2019,36(1):25-28. doi:10.3969/j.issn.1001-5620.2019.01.005 LI Hui, LIU Huakang, HE Zhong, et al. Use gel to control severe mud losses in carbonate reservoir formations in Tahe Oilfield[J]. Drilling Fluid and Completion Fluid, 2019, 36(1):25-28. doi:10.3969/j.issn.1001-5620.2019.01.005 [41] 冯祥,宫汝祥,王莉. 温敏凝胶辅助多元热流体防窜机理及在渤海油田的应用[J]. 石油地质与工程,2019,33(1):108-111. doi:10.3969/j.issn.1673-8217.2019.01.027 FENG Xiang, GONG Ruxiang, WANG Li. Mechanism of multivariate thermal fluid channeling prevention assisted by temperature sensitive gel and its application in Bohai Oilfield[J]. Petroleum Geology and Engineering, 2019, 33(1):108-111. doi:10.3969/j.issn.1673-8217.2019.01.027 [42] 纪朝凤,葛红江. 调剖堵水材料研究现状与发展趋势[J]. 石油钻采工艺,2002,24(1):54-57. doi:10.3969/j.issn.1000-7393.2002.01.015 JI Chaofeng, GE Hongjiang. Recent study and development of material for profile control and water shutoff[J]. Oil Drilling & Production Technology, 2002, 24(1):54-57. doi:10.3969/j.issn.1000-7393.2002.01.015 [43] 赵金洲,刘鹏,李勇明,等. 适用于页岩的低分子烷烃无水压裂液性能研究[J]. 石油钻探技术,2015,43(5):15-19. doi:10.11911/syztjs.201505003 ZHAO Jinzhou, LIU Peng, LI Yongming, et al. The properties of non-aqueous fracturing fluid with low-molecular alkane suitable for shales[J]. Petroleum Drilling Techniques, 2015, 43(5):15-19. doi:10.11911/syztjs.201505003 |