[1] 李强,曹砚锋,刘书杰,等.海上油气井完整性现状及解决方案[J].中国海上油气,2018,30(6):115-122.
LI Qiang,CAO Yanfeng,LIU Shujie,et al.Well integrity status and solutions of offshore oil and gas wells[J].China Offshore Oil and Gas,2018,30(6):115-122.
[2] 庞学玉,秦建鲲,王治国,等.深层超高温水泥浆体配方及其强度衰退机理[J].天然气工业,2023,43(7):90-100.
PANG Xueyu,QIN Jiankun,WANG Zhiguo,et al.Formula of cementing slurry system for ultra-high temperature conditions of deep wells and its strength retrogression mechanism[J].Natural Gas Industry,2023,43(7):90-100.
[3] 刘书杰,武治强,吴怡,等.深水深井高温高压水泥石固化养护及制备方法研究[J].石油钻采工艺,2022,44(3):291-296.
LIU Shujie,WU Zhiqiang,WU Yi,et al.Research on solidification conservation and preparation method of high-temperature and high-pressure set cement for deep wells in deep water[J].Oil Drilling & Production Technology,2022,44(3):291-296.
[4] 王鼎,万向臣,杨晨.低摩阻耐压防漏低密度水泥浆固井技术[J].钻井液与完井液,2022,39(5):608-614.
WANG Ding,WAN Xiangchen,YANG Chen.Well cementing with low friction pressure resistant leaking preventive low density cement slurry[J].Drilling Fluid and Completion Fluid,2022,39(5):608-614.
[5] 唐俊峰,王丽敏,甘霖,等.我国油井水泥标准的发展及存在问题分析[J].石油工业技术监督,2017,33(12):11-15.
TANG Junfeng,WANG Limin,GAN Lin,et al.Analysis on the development and existing problems of oil well cement standard in China[J].Technology Supervision in Petroleum Industry Journal Agency,2017,33(12):11-15.
[6] 吕宝玉.油井水泥工艺质量管理技术[J].中国水泥,2021,36(1):96-100.
LYU Baoyu.Oil well cement process quality management technology[J].China Cement,2021,36(1):96-100.
[7] 郝华中,桑明,张晔,等.耐碱玻璃纤维增韧水泥石力学性能及对水泥浆性能影响[J].钻采工艺,2020,43(5):134-138.
HAO Huazhong,SANG Ming,ZHANG Ye,et al.Mechanical properties of alkali-resistant glass fiber toughened cement and its influence on cement slurry properties[J].Drilling & Production Technology,2020,43(5):134-138.
[8] 张智,李炎军,张超,等.高温含CO2气井的井筒完整性设计[J].天然气工业,2013,33(9):79-86.
ZHANG Zhi,LI Yanjun,ZHANG Chao,et al.Wellbore integrity design of high temperature gas wells containing CO2[J].Natural Gas Industry,2013,33(9):79-86.
[9] 高德利,刘奎,王宴滨,等.页岩气井井筒完整性失效力学机理与设计控制技术若干研究进展[J].石油学报,2022,43(12):1798-1812.
GAO Deli,LIU Kui,WANG Yanbin,et al.Some research advances in the failure mechanism and design & control technologies of shale gas well integrity[J].Acta Petrolei Sinica,2022,43(12):1798-1812.
[10] 葛梦龙,叶倩倩,康海娇,等.外加剂改性氯氧镁水泥研究进展[J].硅酸盐通报,2022,41(4):1202-1210.
GE Menglong,Ye Qianqian,Kang Haijiao,et al.Research progress of admixture-modified magnesium oxychloride cement[J].Bulletin of the Chinese Ceramic Society,2022,41(4):1202-1210.
[11] 丁锐,贺尚旭.氯氧镁水泥的耐水性改性研究进展[J].四川水泥,2023,45(1):20-22.
DING Rui,HE Shangxu.Research progress on water resistance modification of magnesium oxychloride cement[J].Sichuan Cement,2023,45(1):20-22.
[12] JANKOVSKY O,LOJKA M,LAUERMANNOVÁ A,et al.Carbon dioxide uptake by MOC-Based Materials[J].Applied Sciences,2020,10(7):2254.
[13] SORREL S.On a new magnesium cement[J].Competes Rendus-Academic dessciences,1867,65(1):2-4.
[14] 马慧,关博文,王永维,等.氯氧镁水泥胶凝材料的研究进展[J].材料导报,2015,29(15):103-107.
MA Hui,GUAN Bowen,WANG Yongwei,et al.Research progress of magnesium oxychloride cement gelled material[J].Materials Reports,2015,29(15):103-107.
[15] 崔可浩,王胜年,崔崇,等.氯氧镁水泥水化相的相转变——规律及机理[J].上海建材学院学报,1991,3(2):150-155.
CUI Kehao,WANG Shengnian,CUI Chong, et al.Phase transformation-law and mechanism of hydration phase of magnesium oxychloride cement[J].Journal of Shanghai Institute Building Materials,1991,3(2):150-155.
[16] 李颖,余红发,董金美,等.氯氧镁水泥的水化产物、相转变规律和抗水性评价方法的研究进展[J].硅酸盐学报,2013,41(11):1465-1473.
LI Ying,YU Hongfa,DONG Jinmei,et al.Reseach development on hydration product,phase transformation and water resistance evaluation method of magnesium oxychloride cement[J].Bulletin of The Chinese Ceramic Society,2013,41(11):1465-1473.
[17] 祝志雄,应晓孟.MgO-MgCl2-H2O凝胶及凝胶镁水泥[J].中国建材科技,1993,15(6): 13-16.
ZHU Zhixiong,YING Xiaomeng.MgO-MgCl2-H2O gel and gel magnesium cement[J].China Building Materials Science and Technology,1993,15(6): 13-16.
[18] 冯超.氯氧镁水泥水分侵蚀机理及其耐水性研究[D].西安:长安大学,2019.
FENG Chao.Study on water erosion mechanism and water resistance of magnesium oxychloride cement[D].Xi'an:Chang'an University,2019.
[19] ZHOU Z,CHEN H,LI Z,et al.Simulation of the properties of MgO-MgfCl2-H2O system by thermodynamic method[J].Cement and Concrete Research,2015,68(2):105-111.
[20] 黄青.氯氧镁水泥的抗盐卤腐蚀性能研究[D].西宁:中国科学院大学(中国科学院青海盐湖研究所),2020.
HUANG Qing.Study on salt brine corrosion resistance of magnesium oxychloride cement[D].Xining:Qinghai Institute of Salt Lakes,Chinese Academy of Sciences,2020.
[21] 李早元,贺婵娟,葛红江,等.氯氧镁水泥在水热环境下强度变化机理[J].钻井液与完井液,2011,28(1):43-46.
LI Zaoyuan,HE Chanjuan,GE Hongjiang,et al.The strength change mechanism of magnesium oxychloride cement (MOC) in hydrothermal environment[J].Drilling Fluid and Completion Fluid,2011,28(1):43-46.
[22] 杜沛东.氯氧镁水泥早期水化及磷酸盐改性机理研究[D].西安:长安大学,2020.
DU Peidong.Study on early hydration and phosphate modification mechanism of magnesium oxychloride cement[D].Xi'an:Chang'an University,2020.
[23] 宁亚瑜,张冷庆,丁向群.几种因素对氯氧镁水泥性能的影响[J].硅酸盐通报,2016,35(7):2287-2290.
NING Yayu,ZHANG Lengqing,DING Xiangqun.Influence of some factors on the properties of magnesium oxychloride cement[J].Bulletin of the Chinese Ceramic Society,2016,35(7):2287-2290.
[24] 李领肖.氯氧镁水泥耐水改性剂的研究[D].石家庄:河北科技大学,2019.
LI Lingxiao.Study on water-resistant modifier of magnesium oxychloride cement[D].Shijiazhuang:Hebei University of Science and Technology,2019.
[25] 卢海川,李宗要,高继超,等.油气井用合成树脂胶凝材料研究综述[J].钻井液与完井液,2018,35(5):1-7.
LU Haichuan,LI Zongyao,GAO Jichao,et al.Review of studies on synthetic resin cementitious materials used in oil and gas wells[J].Drilling Fluid and Completion Fluid,2018,35(5):1-7.
[26] 陈雪霏,王路明.磷酸改性氯氧镁水泥耐水机理的研究[J].混凝土,2018,40(2):68-71.
CHEN Xuefei,WANG Luming.Research on the mechanism of water resistance of magnesium oxychloride cement with phosphoric acid[J].Concrete,2018,40(2):68-71.
[27] CHEN X,ZHANG T,BI W,et al.Effect of tartaric acid and phosphoric acid on the water resistance of magnesium oxychloride(MOC) cement[J].Construction and Building Materials,2019,213(7):528-536.
[28] 陈啸洋,毕万利,张婷婷,等.柠檬酸对氯氧镁水泥的改性[J].硅酸盐学报,2019,47(7):884-890.
CHEN Xiaoyang,BI Wanli,ZHANG Tingting,et al.Modification of magnesium oxychloride cement by citric acid[J].Bulletin of the Chinese Ceramic Society,2019,47(7):884-890.
[29] 王路明.镁氯胶凝材料复合改性的研究[J].功能材料,2012,43(14):1964-1968.
WANG Luming.Research on the compound modification on magnesium oxychloride cement[J].Journal of Functional Materials,2012,43(14):1964-1968.
[30] 张世鹏,铁生年.微硅粉复合氯氧镁水泥制备与性能研究[J].硅酸盐通报,2020,39(2):402-408.
ZHANG Shipeng,TIE Shengnian.Preparation and properties of Silica fume composite magnesium oxychloride cement[J].Bulletin of the Chinese Ceramic Society,2020,39(2):402-408.
[31] 王永维,何文敏,关博文,等.矿物掺合料对氯氧镁水泥稳定碎石基层耐水性的影响[J].新型建筑材料,2021,48(9):85-88.
WANG Yongwei,HE Wenmin,GUAN Bowen,et al.Effect of mineral admixtures on water resistance of magnesium oxychloride cement stabilized macadam base[J].New Building Materials,2021,48(9):85-88.
[32] GUO Y,ZHANG Y X,SOE K,et al.Development of magnesium oxychloride cement with enhanced water resistance by adding silica fume and hybrid fly ash-silica fume[J].Journal of Cleaner Production,2021,313(11):127682.
[33] 孙恩禹,陈啸洋.天然沸石粉对氯氧镁水泥耐水性影响研究[J].硅酸盐通报,2021,40(1):41-47.
SUN Enyu,CHEN Xiaoyang.Effect of natural zeolite powder on water resistance of magnesium oxychloride cement[J].Bulletin of the Chinese Ceramic Society,2021,40(1):41-47.
[34] HUANG X,WANG S,WU Y,et al.Preparation and characterization of high-strength and water-resistant waterborne epoxy resin/magnesium oxychloride composite based on cross-linked network structure[J].Construction and Building Materials,2021,285(3):122902.
[35] LI K,WANG Y,WANG X,et al.Superhydrophobic magnesium oxychloride cement based composites with integral stability and recyclability[J].Cement and Concrete Composites,2021,118(4):103973.
[36] CAO W T,FENG W,JIANG Y,et al.Two-dimensional mxene-reinforced robust surface superhydrophobicity with self-cleaning and photothermal-actuating binary effects[J].Materials Horizons,2019,6(5):1057-1065.
[37] 陈雷,周仕明,赵艳,等.固井用热固性树脂–镁氧水泥复合材料研究[J].石油钻探技术,2019,47(2):74-80.
CHEN Lei,ZHOU Shiming,ZHAO Yan,et al.Study of a thermosetting resin-magnesia cement composite for cementing[J].Petroleum Drilling Techniques,2019,47(2):74-80.
[38] 周仕明,谭春勤,陈雷,等.一种中温氯氧镁热固树脂胶凝体系及固化体和其制备方法[P].CN201610907772.2,2018-04-24.
ZHOU Shiming,TAN Chunqin,CHEN Lei,et al.A medium temperature magnesium oxychloride thermosetting resin cementitious system and solidified body and its preparation method[P].CN201610907772.2,2018-04-24.
[39] 谭春勤,周仕明,陈雷,等.一种高温氯氧镁热固树脂胶凝体系及固化体和其制备方法[P].CN201610902252.2,2018-04-24.
TAN Chunqin,ZHOU Shiming,CHEN Lei,et al.A high temperature magnesium oxychloride thermosetting resin cementitious system and solidified body and its preparation method[P].China:CN201610902252.2,2018-04-24.
[40] XU M,BU Y,DU J,et al.Magnesium oxychloride cement with hydrophobic pore network for utilizing as oil well cement[J].Construction and Building Materials,2023,409(11):133745.
[41] 乐宏,范宇,李玉飞.高温高压含硫气井完整性关键技术——以安岳特大型气田为例[J].天然气工业,2022,42(3):81-90.
LE Hong,FAN Yu,LI Yufei.Integrity key technologies for high temperature and high pressure sour gas wells:a case study of the supergiant Anyue Gas Field[J].Natural Gas Industry,2022,42(3):81-90.
[42] 许成元,张洪琳,康毅力,等.深层裂缝性储层物理类堵漏材料定量评价优选方法[J].天然气工业,2021,41(12):99-109.
XU Chengyuan,ZHANG Honglin,KANG Yili,et al.Quantitative evaluation and selection method of physical plugging materials in deep fractured reservoirs[J].Natural Gas Industry,2021,41(12):99-109.
[43] 赵洪波,单文军,朱迪斯,等.裂缝性地层漏失机理及堵漏材料新进展[J].油田化学,2021,38(4):740-746.
ZHAO Hongbo,SHAN Wenjun,ZHU Disi,et al.Advance of fractured formation lost circulation mechanism and lost circulation materials in oil and gas wells[J].Oilfield Chemistry,2021,38(4):740-746.
[44] 俞玲,刘卫红,许明标,等.用于油基钻井液堵漏的氯氧镁水泥浆体系[J].钻井液与完井液,2020,37(3):332-336.
YU Ling,LIU Weihong,XU Mingbiao,et al.A magnesium oxychloride cement slurry for controlling loss of oil base drilling fluids[J].Drilling Fluid and Completion Fluid,2020,37(3):332-336.
[45] SWEATMAN R,SCOGGINS W.Acid-soluble magnesia cement: new applications in completion and workover operations[J].SPE Production Engineering,1990,5(4):441-447.
[46] 孙金声,白英睿,程荣超,等.裂缝性恶性井漏地层堵漏技术研究进展与展望[J].石油勘探与开发,2021,48(3):630-638.
SUN Jinsheng,BAI Yingrui,CHENG Rongchao,et al.Research progress and prospect of plugging technologies for fractured formation with severe lost circulation[J].Petroleum Exploration and Development,2021,48(3):630-638.
[47] 郭新健.碳酸盐岩储层堵漏酸溶性凝胶实验研究[D].北京:中国地质大学(北京),2019.
GUO Xinjian.Experimental study on plugging acid-soluble gel in carbonate reservoirs[D].Beijing:China University of Geosciences (Beijing),2019.
[48] 郭国浩.具有温敏固化功能的复合水泥堵漏剂研究[D].西安:西安石油大学,2020.
GUO Guohao.Study on composite cement plugging agent with temperature-sensitive curing function[D].Xi'an:Xi'an Shiyou University,2020.
[49] 方健.渤海油田钻井废弃物源头减量及资源化利用研究[J].石油与天然气化工,2021,50(1):129-134.
FANG Jian.Research of source reduction of drilling waste and reuse in Bohai offshore oilfield[J].Chemical Engineering of Oil and Gas,2021,50(1):129-134.
[50] 王志宏,石昀,孙凤萍,等.钻井废弃物环保处理技术的研究与应用[J].当代化工,2022,51(11):2574-2578.
WANG Zhihong,SHI Yun,SUN Fengping,et al.Research and application of environmentally friendly treatment technology for drilling waste[J].Contemporary Chemical Industry,2022,51(11):2574-2578.
[51] 石昌森,董明,崔磊,等.国内钻井废弃物无害化处理技术现状[J].西部探矿工程,2023,35(2):25-27.
SHI Changsen,DONG Ming,CUI Lei,et al.Present situation of harmless treatment technology of drilling waste in China[J].West-China Exploration Engineering,2023,35(2):25-27.
[52] 王景.临兴—神府井区废弃钻井液处理技术[J].石油钻探技术,2022,50(1):60-64.
WANG Jing.Treatment technology of waste drilling fluids in the Linxing-Shenfu well area[J].Petroleum Drilling Techniques,2022,50(1):60-64.
[53] XIAO W C,DAN L,CHI Z,et al.Utilization of red mud, slag and waste drilling fluid for the synthesis of slag-red mud cementitious material[J].Journal of Cleaner Production,2019,238(11):117902.
[54] 王彩萍,周明凯,陈潇,等.氯氧镁水泥对焚烧飞灰固化作用及影响因素[J].功能材料,2013,44(21):3186-3189.
WANG Caiping,ZHOU Mingkai,CHEN Xiao,et al.Experimental study on the solidification technology and affecting factors in treating with fly ash using magnesium oxychloride cement[J].Journal of Functional Materials,2013,44(21):3186-3189.
[55] 张现斌,邱正松,陶瑞东,等.钻井废弃物高强度固化处理新技术[J].中国石油大学学报(自然科学版),2011,35(2):172-177.
ZHANG Xianbin,QIU Zhengsong,TAO Ruidong,et al.Novel technology of high strength stabilization/solidification of drilling waste[J].Journal of China University of Petroleum (Edition of Natural Science),2011,35(2):172-177.
[56] WANG D,GAO X,LIU X,et al.Strength, durability and microstructure of granulated blast furnace slag-modified magnesium oxychloride cement solidified waste sludge[J].Journal of Cleaner Production,2021,292(3):126072.
[57] WANG D,CHEN Z,GAO X.Sustainable improvement of magnesium oxychloride cement solidified waste sludge with fly-ash inclusion[J].Journal of Materials in Civil Engineering,2022,34(12):130902.
[58] 王晓强.致密油气钻井废弃物高强度固化及表面涂覆技术研究[D].青岛:中国石油大学(华东),2018.
WANG Xiaoqiang.Research on high-strength solidification and surface coating technology of tight oil and gas drilling waste[D].Qingdao:China University of Petroleum (East China),2018.
[59] WANG D,YANG D,YUAN Y.Strength improvement and micromechanism of inorganic/organic additive-modified magnesium oxychloride cement solidified sludge[J].Construction and Building Materials,2023,366(1):130159.
[60] 赫英状,步玉环,柳华杰.遇气自愈合水泥浆体系[J].钻井液与完井液,2022,39(6):743-747.
HE Yingzhuang,BU Yuhuan,LIU Huajie.Research and field test of self-healing cement slurry for gas[J].Drilling Fluid and Completion Fluid,2022,39(6):743-747.
[61] 杨静雯,马荣,李娟,等.利用粉煤灰制备氯氧镁水泥复合材料的研究进展[J].科技创新与应用,2022,12(11):53-55.
YANG Jingwen,MA Rong,LI Juan,et al.Research progress of the preparation of magnesium oxychloride cement(MOC) composite from fly ash[J].Technology Innovation and Application,2022,12(11):53-55.
[62] 张棣,马云麒,李兴意,等.托素湖湖水蒸发过程中析盐及其pH值的变化规律研究[J].盐湖研究,2022,30(1):46-56.
ZHANG Di,MA Yunqi,LI Xingyi,et al.Study on the variation of salt precipitation and its pH value in the process of water evaporation in Tuosu Lake[J].Journal of Salt Lake Research,2022,30(1):46-56.
[63] GRÜNHÄUSER S,CASTRO-GOMES J.Carbonation curing influencing factors of carbonated reactive magnesia cements(CRMC):a review[J].Journal of Cleaner Production,2021,305(5):127210.
[64] WALLING S A,PROVIS J L.Magnesia-based cements:a journey of 150 years, and cements for the future?[J].Chemical reviews,2016,116(7):4170.
[65] ROQUE G,THOMAS V,JIM W,et al.Conversion of magnesium oxychloride to chlorartinite and resulting increased water resistance[J].Materials Letters,2017,207(6):1-3.
[66] 曼阳阳.碳化对氯氧镁胶凝材料性能的影响研究[D].西宁:中国科学院大学(中国科学院青海盐湖研究所),2019.
MAN Yangyang.Study on the effect of carbonization on the properties of magnesium oxychloride cementitious materials[D].Xi'ning:Qinghai Institute of Salt Lakes,Chinese Academy of Sciences,2019.
[67] POWER I M,DIPPLE G M,FRANCIS P S.Assessing the carbon sequestration potential of magnesium oxychloride cement building materials[J].Cement and Concrete Composites,2017,78(4):97-107.
[68] 贾海平.钻井中盐膏层危害及其应对措施分析[J].中国石油和化工标准与质量,2023,43(3):97-99.
JIA Haiping.Analysis of the harm of salt-gypsum layer in drilling and its countermeasures[J].China Petroleum and Chemical Standard and Quality,2023,43(3):97-99.
[69] 程海平,黄英姿,龙继承,等.提高盐膏层固井水泥性能的研究[J].新世纪水泥导报,2021,27(3):6-10.
CHENG Haiping,HUANG Yingzi,LONG Jicheng, et al.Study on improving the cementing performance of salt-gypsum layer[J].Cement Guide for New Epoch,2021,27(3):6-10.
[70] 步玉环,刘晓文,谢关宝,等.模拟水泥浆对盐岩冲刷溶解作用的实验装置及评价方法[P].中国:CN201910344741.4,2021-06-04.
BU Yuhuan,LIU Xiaowen,XIE Guanbao,et al.Experimental device and evaluation method for simulating the erosion and dissolution of salt rock by cement slurry[P].China:CN201910344741.4,2021-06-04.
[71] 肖学英,郑卫新,黄青,等.抗腐性氯氧镁水泥混凝土在高寒、高盐渍地区的研究及应用[J].盐湖研究,2018,26(3):7-13.
XIAO Xueying,ZHENG Weixin,HUANG Qing,et al.Study and application of anti-corrosion magnesium oxychloride cement concrete in high cold and high salinity areas[J].Journal of Salt Lake Research,2018,26(3):7-13.
[72] 宋明礼,肖学英,孙庆国.抗腐蚀镁水泥的研究[J].盐湖研究,1993,22(2):36-40.
SONG Mingli,XIAO Xueying,SUN Qingguo.Study on corrosion resistant magnesium cement[J].Journal of Salt Lake Research,1993,22(2):36-40.
[73] 童义平,林燕文.氯氧镁改性与抗盐卤性能研究[J].海湖盐与化工,2004,33(6):20-22.
TONG Yiping,LIN Yanwen.Studies on improvement properties of bittern resistance of magnesium oxychloride cement[J].Journal of Salt and Chemical Industry,2004,33(6):20-22.
[74] 吴大龙,刘庆伟,于浩,等.不同配合比氯氧镁水泥在卤水中强度发展规律实验研究[J].混凝土,2014,36(4):24-27.
WU Dalong,LIU Qingwei,YU Hao,et al.Experimental study on the strength development law of magnesium oxychloride cement with different mix proportions in brine[J].Concrete,2014,36(4):24-27.
[75] 高德利,张广瑞,王宴滨.中国海洋深水油气工程技术与装备创新需求预见及风险分析[J].科技导报,2022,40(13):6-16.
GAO Deli,ZHANG Guangrui,WANG Yanbin.Innovation demand foresight and risk analysis of technologies and equipment for deepwater Oil & Gas engineering in China[J].Science & Technology Review,2022,40(13):6-16.
[76] 杨进,傅超,刘书杰,等.超深水浅层建井关键技术创新与实践[J].石油学报,2022,43(10):1500-1508.
YANG Jin,FU Chao,LIU Shujie,et al.Key technological innovation and practice of well construction in ultra-deepwater shallow formations[J]. Acta Petrolei Sinica,2022,43(10):1500-1508.
[77] 步玉环,杜嘉培,柳华杰,等.深水弱胶结地层固井强度梯度层理论与固化材料性能[J].中国石油大学学报(自然科学版),2021,45(4):74-83.
BU Yuhuan,DU Jiapei,LIU Huajie,et al.Theory of strength gradient layer in deepwater weakly consolidated formation and performance of cementing materials[J].Journal of China University of Petroleum (Edition of Natural Science),2021,45(4):74-83.
[78] 武斌,杨焕强,王柱军.深水油藏窄密度窗口气井固井动态仿真模拟研究与应用[J].特种油气藏,2020,27(4):156-162.
WU Bin,YANG Huanqiang,WANG Zhujun.Study and application of anti-corrosion magnesium oxychloride cement concrete in high cold and high salinity areas[J].Special Oil & Gas Reservoirs,2020,27(4):156-162.
[79] 张俊斌,李彬,金颢,等.深水水合物层固井低水化热水泥浆体系研究及应用[J].中国海上油气,2020,32(1):119-124.
ZHANG Junbin,LI Bin,JIN Hao,et al.Study and application of a low hydration heat cement slurry system for the cementing of deepwater hydrate layer[J].China Offshore Oil and Gas,2020,32(1):119-124.
[80] 郭永宾,李中,刘和兴,等.低温早强低水化放热水泥浆体系开发[J].钻井液与完井液,2019,36(4):500-505.
GUO Yongbin,LI Zhong,LIU Hexing,et al.Development of a low temperature early strength cement slurry with low exothermic heat of hydration[J].Drilling Fluid and Completion Fluid,2019,36(4):500-505.
[81] 廖易波,韦红术,魏裕森,等.深水天然气水合物地层固井低水化热水泥浆体系研究与应用[J].化工管理,2019,34(30):195-197.
LIAO Yibo,WEI Hongshu,WEI Yusen,et al.Research and application of cementing low hydration hot water mud system in deepwater gas hydrate formation[J].Chemical Enterprise Management,2019,34(30):195-197.
[82] 曹永敏,王乐祥,王昭,等.菱镁制品低温早强促凝剂作用机理分析[J].新型建筑材料,2005,32(5):35-37.
CAO Yongmin,WANG Lexiang,WANG Zhao,et al.Analysis of mechanism of accelerator for magnetite products under low temperature and early strength[J].New Building Materials,2005,32(5):35-37.
[83] 杨红健,马学景,何豫基,等.氧化钙对氯氧镁水泥低温凝结性能的影响[J].无机盐工业,2015,47(4):33-35.
YANG Hongjian,MA Xuejing,HE Yuji,et al.Effect of CaO on magnesium oxychloride cement setting performance at low temperature[J].Inorganic Chemicals Industry,2015,47(4):33-35.
[84] 严正斌.提高低温氯氧镁水泥早期强度及其工程性能的研究[D].常州:常州大学,2022.
YAN Zhengbin.Study on improving the early strength and engineering properties of low temperature magnesium oxychloride cement[D].Changzhou:Changzhou University,2022.
[85] 黄皓哲,马灵飞.不同木粉对氯氧镁水泥水化放热特性的影响[J].木材加工机械,2010,21(5):18-21.
HUANG Haozhe,MA Lingfei.Effect of different wood powder on heat of hydration of magnesium oxychloride cement[J].Wood Processing Machinery,2010,21(5):18-21.
[86] 陈争骥,华佳璐,王灵燕,等.木(竹)粉-NaHCO3外加剂对氯氧镁水泥水化放热特性以及抗折强度的影响[J].木材加工机械,2016,27(2):40-43.
CHEN Zhengji,HUA Jialu,WANG Lingyan,et al.Effect of wood(bamboo) powder-NaHCO3 on heat of hydration and flexural strength of magnesium oxychloride cement[J].Wood Processing Machinery,2016,27(2):40-43.
[87] 彭志刚,张健,冯茜,等.环境响应型聚合物对水泥石抗CO2腐蚀性能的影响[J].石油学报,2018,39(6):703-711.
PENG Zhigang,ZHANG Jian,FENG Qian,et al.Effects of environmental responsive polymer on the anti-CO2 corrosion performance of set cement[J].Acta Petrolei Sinica,2018,39(6):703-711.
[88] 张国强.无机胶黏贴碳纤维布加固混凝土板高温性能的实验研究[D].济南:山东建筑大学,2011.
ZHANG Guoqiang.Experimental study on high temperature performance of concrete slabs strengthened with inorganic adhesive bonded carbon fiber cloth[D].Ji'nan:Shandong Jianzhu University,2011.
[89] 赵少伟,石可心,郭蓉,等.高温处理后氯氧镁水泥黏贴CFRP-混凝土黏结性能研究[J].北京理工大学学报,2023,43(7):685-692.
ZHAO Shaowei,SHI Kexin,GUO Rong,et al.Study on bond properties of CFRP-concrete bonded with magnesium oxychloride cement after high-temperature treatment[J].Transactions of Beijing Institute of Technology,2023,43(7):685-692.