用户名: 密码: 验证码:
复杂地层地质钻探冲洗液研究与应用
详细信息    本馆镜像全文|  推荐本文 |  |   获取CNKI官网全文
摘要
本文研究了有机改性膨润土冲洗液材料、淀粉聚合物冲洗液材料和溶胀型随钻堵漏材料。以丙烯酸和丙烯酰胺聚合物为插层剂,采用炼压法制备了有机改性膨润土冲洗液材料。经过XRD、FT-IR、SEM分析表明,有机基团进入膨润土的层间结构或与膨润土产生了键合接枝作用,膨润土仍保持原有层状结构。冲洗液性能测试结果表明,与钠膨润土相比,有机改性膨润土冲洗液的滤失量和润滑系数降低,相对膨胀降低率提高,改善了冲洗液的流变性。现场试验表明其携带岩粉能力强,可抑制钻杆内壁结垢。采用接枝聚合法制备了淀粉聚合物冲洗液材料。冲洗液性能测试表明,其在淡水、4%盐水、饱和盐水中的粘度、动塑比和滤失量都有较好表现,相对膨胀降低率可达到61%。现场试验表明其是一类较好的冲洗液材料。制备了溶胀型随钻堵漏材料。冲洗液性能测试和现场试验结果均表明,溶胀型堵漏材料堵漏效果较好。
     进行了复杂地层冲洗液体系设计研究工作。总结如何根据地质条件和钻探施工要求,进行冲洗液类型选择,确定冲洗液性能参数、冲洗液处理剂优选、体系配方试验、泥浆材料及处理剂用量估算、设计冲洗液固控措施和冲洗液日常维护方案。
     对用于复杂地层的泥浆体系,主要是低粘增效粉-改性沥青体系、淀粉聚合物-改性沥青体系和淀粉聚合物泥浆等进行了研究及现场实验。现场实验表明低粘增效粉-改性沥青体系具有较好的造壁性能,有利于孔壁的稳定。可以有效封堵破碎带地层裂缝,提高地层承压能力。对于易掉块、坍塌的破碎地层,需适当提高冲洗液的密度、粘度和切力,保证冲洗液具有所需要的支撑力和岩屑悬浮力。低粘增效粉-改性沥青体系具有良好的流变性能,能够满足绳索取心钻探要求。淀粉聚合物-改性沥青体系的护壁效果好,孔壁稳定,泥浆流动性好,携带岩粉能力强,进尺效率较高,正常钻进时每天进尺30~45米,钻杆内壁不结泥皮。淀粉聚合物泥浆体系具有很好的护壁性能、具有很好的流变性能和触变性能,配制方法简单,使用方便。该泥浆体系中的材料比较容易分散,整个配浆过程只需30~40分钟即可完成。除此之外的其他体系也均有较好表现。
This paper studies on the organical modified bentonite drilling fluid materials, amylum graft copolymerization drilling fluid materials and swelling-type drilling plugging material. Acrylic acid and acrylamide asintercalation as agent, organical modified bentonite drilling fluid materials were prepared by pressure mixing method. The layered structure of bentonite was characterized by XRD, FT-IR, SEM. The results show that the organic groups go into the structure of the layer of bentonite or bonded graft. Drilling fluid performance test results shows that, compared with the sodium bentonite drilling fluid materials, fluid filtration and lubrication coefficient of organic bentonite drilling decrease. Field tests shows that its ability of carrying the rock powder and inhibiting the drill pipe wall fouling is great. Amylum graft copolymerization drilling fluid materials were prepared by graft copolymerization. The viscosity and fluid loss of Amylum graft copolymerization drilling fluid have a better performance, reducing rate of the relative expansion can reach 61%. Field tests show that it is a kind of good drilling in fresh water, 4% brine and saturated brine fluid materials. A swelling-type drilling plugging material was prepared. Drilling fluid performance tests and field tests results show that the swelling type of plugging material is better than any other.
     Study on design of complex formation drilling fluid system was carried out. We summerized how to choose the type of drilling fluid, determine the performance parameters of drilling fluid, optimize drilling fluid, estimate the amount of drilling materials, design drilling mud solids, control measures and the daily maintenance programs.
     LMB-GLA drilling system, grafted amylum-GLA drilling system and grafted amylum copolymerization drilling system which were used in complex formation have been studied. Field experiments shows that LMB-GLA drilling system have made a good performance to stabilize hole wall. The formation cracks of fracture zone can be blocked effectively, improving ground bearing capacity. The density and viscosity of fluid must be increased in the fracture zone where is easy to block out, to ensure that the debris levitation force and support of fluid . LMB-GLA drilling system with good rheological properties can satisfy the requirements of the rope core drilling. Grafted amylum-GLA drilling system can protect wall, stabilize the hole wall, carry the rock powder. Normal drilling footage per day was 30 to 45 meters, and the drill pipe wall did not bear clay skin. Grafted amylum copolymerization has a good performance in protect wall, good rheological and thixotropy properties. Its preparation method is simple and it easy to used. The material of the drilling system is easier to disperse, the slurry process was completed only 30 to 40 minutes. Other drilling system also have a good performance.
引文
Arvind Patel, Emanuel Stamatakis, Steve Young, et al.Advances in inhibitive water-based drilling fluids—can they replace oil-based muds [R] .SPE106476, 2007
    Athawale V D, Vidyagauri L. Graft copolymerization onto starchⅡ, grating of acrylic acid and preparation [J]. Carbohydrate Polymers, 1998, 3 (51) : 21-27
    Cho C G, Lee K H. Preparation of starch-g-polystyrene copolymer by emulsion polymerization[J]. Carbohydr polym. 2001, 48 (1) :125 - 130
    Choi Y S, Ham H T, Chung I J. Effect of monomers on the basal spacing of sodium montmorillonite and the structures of polymerclay nanocomposites[J]. Chem. Mater. 2004 (16): 2522
    Darly, H.C.H. Advantages of the polymer of borehole stability[J]. J.RT.July, 1969 Fang C C,Thaemlitz C.New ospar-compliant technologies for managing drilling-fluid lost-circulation events[R]. SPE94434, 2005.
    Finkenstadt V L, Willett J L. Reactive extrusion of starch-polyacrylamide graft copolymers: effects of monomer/starch ratio and moisture content[J] . Macromol Chem Phys, 2005, 206 (16) : 1648-1652
    Han T L, Kumar R N , Rozman H D. GMA grafted sago starch as a reactive component in ultra violet radiation curable coatings[J] . Carbohydr Polym, 2003, 54 (4): 509-516 Klein A L, Aldea C, Bruton J R, et al. Field verification: invert-mud performance form water-based mud in Gulf of Mexico Shelf[J]. SPE84314, 2005
    Lee J S, Kumar R N, Rozman H D. Pasting, swelling and solubility properties of UV initiated starch-graft-poly(AA) [J] . Food Chem, 2005, 91 (2) : 203-211.
    M. Chen, P. X. Zhu, M.Gao, Z. L. Du, Y. Chen, D. L. Zhou, Y. L. Jian. Properties of water-soluble acrylic copolymer/ montmorillonite nanocomposites for warp sizing[J]. Appl. Polym.Sci. 2010 (116), 2958.
    Ming Gao, Dong-Liang Zhou, Xiao Hu. Two-stage in situ intercalation polymerization of acrylic copolymer/montmorillonite nanocomposites[J]. Chem. Res. 2011, 50, 7784-7790
    Mo Limin, Wang Xichen, Wang Peizhang. Dextrinized starch as extender for starch graft polymer of high water absorbent resins[J]. Polymer Materials Science & Engineering, 1999, 15 (6) :167-168
    Morton K, Bomar B, Schiller M, et al. Selection and evaluation criteria for high-performance drilling fluids[R]. SPE96342, 2005
    Mukul Biswas, Suprakas Sinha Ray. Recent progress in synthesis and evaluation of polymer-montmorillonite nanocomposites[J]. Adv. Polym. Sci. 2001 (155):167-221
    Nehal Salahuddin, Mohamed Shehata. Polymethylmethacrylate-montmorillonite composite: preparation, characterization and properties[J].Polymer. 2001 (42): 8379-8385
    Nguyen H. Tran, Gary R. Dennis, Adriyan S. Milev. Interactions of sodium montmorillonite with poly(acrylic acid) [J]. Journal of Colloid and Interface Science. 2005 (290): 392-396
    Rafie M H, Zahran M K, Tahlawy K F, et al . A comparative study of the polymerization of acrylic acid with native and hydrolyzed maize starches using a potassium bromate-thiourea dioxide redox initiation system [J]. Polymer Degradation and Stability. 1995, 41 : 73 - 85
    Reynolds D, Popplestone A , Hodder M, et al. High-performance, Water-based drilling fluid helps achieve early oil with lower capital expenditure[J]. SPE 96798, 2005
    Samaha S H, Nasr H E, Hebeish A Synthesis and characterization of starch-poly( viny-acetate ) graft copolymers and their saponified form[J]. Polym Res. 2005, 12: 343-353
    Song Hui, Zhang Shufen, Ma Xichen, et al. Synthesis and application of starch-graft-poly (AM-co-AMPS) by using a complex initiation system of CS-APS[J]. Carbo-hydrate Polymers, 2007, 69 (1): 189 - 195.
    Suda K, Prodepan T, Manit S. Chemical modification of cassava starch for degradable polyethylene sheets[J]. Polymer Degradation and Stability. 2001, 73: 363 - 375
    Vilas D, Athawale Vidyagaufi Lele. Recent trends in hydrogels based on starchgraft-acrylic acid: a review[J]. Starke. 2001, 5 (31) : 7-13
    Walker C O. Encapsulated water absorbent polymers as lost circulation additivesforaqueous drillingfluids [P]. US 4 664816 ,1987.
    Wang Cunguo, Sun Lin, Lin Lin. Effects of different kinds of redox initiators on superabsorbent prepared by graft copolymerization of acrylic acid onto starch[J]. Journal of Functional Materials. 2008, 39 (2) : 290-296
    Wu Jihuai, Wei Yueling, Lin Jianming, et al. Study on starch-graft-acrylamide/ mineral powder super absorbent composite[J]. Polymer. 2003 , 44 ( 21 ) :6513-6520
    Xie Xinling, Tong Zhangfa, Huang Zuqiang. Graft co-polymerization of acrylamide onmechanical activated starch in inverse emulsion[J]. Journal of Chemical Engineering of Chinese Universities. 2008,22(1):44-48
    Yew,Chenevert, Martin E. Wellbore stress distribution produced by moisture adsorption[J]. SPE19536,1990
    Yue Jianxin, Wen Guohua, Wang Lili. Synthesis and properties of super absorbent polymer contained potassium[J] Chinese Journal of Colloid & Polymer. 2004 , 22 (2) : 17-19
    边晖.分散聚合制备改性聚丙烯酰胺:[硕士学位论文].南京:南京理工大学, 2007
    蔡晓文,纪卫军,阮海龙,等.不分散低固相冲洗液体系在张掖平山湖矿区中的应用[J].探矿工
    程(岩土钻掘工程), 2010, 37(8) : 27-28, 31
    曹亚峰,张春芳,刘兆丽,等.高锰酸钾引发双水相中淀粉接枝丙烯酰胺共聚反应[J].精细化工, 2010, 27(4):396-399
    曾义金,刘建立.深井超深井钻井技术现状和发展趋势[J].石油钻探技术, 2005, 33(5): 1-5
    陈娟,严波,孙庆林,等.新型降滤失剂NJ-1的研究与应用[J].冲洗液与完井液, 2005, 22(s1): 36-38
    陈爽,高文翰.膨润土改性及其应用展望[J].中国环境管理, 2008, (6):27-28
    代国忠,张亚兴,赖文辉,等. PVM聚合物型无固相冲洗液研究与应用[J].地质与勘探, 2010, 46(6):1127-1132
    党婧,王汝敏,王小建,等.玉米淀粉接枝丙烯酸高吸水性树脂的制备及性能研究[J].中国胶粘剂, 2009, 18(4):45-48
    邓小刚,朱爱军.扎纳若尔油田巨厚盐层的钻井泥浆工艺[J].西南石油学院学报, 2003, 25(1):52-54
    丁锐,杨富贵,隋少鹏.膨润土接枝聚合物降滤失剂研究[J].油田化学, 2002, 19 (4):297-300
    丁锐,邱正松,李健鹰,等.强烈蚀变火山岩地层组构及其防塌冲洗液研究[J].石油大学学报(自然科学版), 2000, 24( 5 ):14-16
    董树文,李廷栋. SinoProbe-中国深部探测实验[J].地质学报, 2009, 83(7):895-906
    冯京海,徐同台,王富华,等.南堡油田馆陶组玄武岩井壁失稳机理和技术对策研讨[J].冲洗液与完井液, 2008, 25(5): 1-4
    高学伟,李秋荣.膨润土接枝丙烯酸高吸水性树脂的抑尘性能研究[J].环境污染与防治, 2010, 32(2): 74-78
    韩秀山.膨润土的综合开发利用[J].硅铝化合物, 2004, 169(4): 1-11
    何远信,陶士先.环保型高效润滑剂(Glub)的研制与应用[J].探矿工程(岩土钻掘工程), 2006, 33(4):48-49
    何振奎,蒋建宁,景国安,等.连通盐井饱和盐水冲洗液技术[J].冲洗液与完井液, 2006, 23(5):74-77
    和冰.泥页岩水化试验研究[J].断块油气田, 2008, 15(4):105-108
    胡继良,付帆,陶士先,等.钠化及有机改性膨润土表征和冲洗液性能研究[A],第十六届全
    国探矿工程(岩土钻掘工程)技术学术交流会论文集[C].北京:地质出版社,2011:288-293
    胡继良,陶士先,纪卫军.破碎地层孔壁稳定技术的探讨与实践[J].探矿工程(岩土钻掘工程), 2011, 38(9): 30-32
    胡继良,陶士先.深部地质钻探冲洗液体系设计因素及其分析[J].探矿工程(岩土钻掘工程), 2011, 38(4): 17-21
    胡继良,陶士先.地质钻探常用冲洗液材料和处理剂[J].地质装备, 2010, 11(5):38-41
    黄承建,闫志刚.吐哈油田盐膏层冲洗液技术[J].石油钻探技术, 2002, 30(2):49-50
    黄玉文,胡继良,朱迪斯,等.地质钻探用冲洗液固控系统的研制[A],第十六届全国探矿工
    程(岩土钻掘工程)技术学术交流会论文集[C].北京:地质出版社,2011:91-95
    纪卫军,陶士先,黄卫东,等.抗盐共聚物在柴达木盆地西部千米科学深钻施工中的应用[J].地质装备, 2009, 36(s1):29-30
    贾军.科钻一井主孔取心钻进冲洗液技术[J].石油钻探技术, 2006, 34(3):16-18
    贾军.中国大陆科学钻探先导孔及扩孔泥浆工艺[J].探矿工程, 2003, 3:57-60
    柯玉军.严重漏失破碎地层钻孔综合施工方法及效果[J].探矿工程(岩土钻掘工程), 2009, 36(10): 25-27
    来水利,陈峰,韩武军.微波法合成凹凸棒复合丙烯酸-丙烯酰胺高吸水性树脂的研究[J].中
    国塑料, 2010, 24(3):41-44.
    李继志.石油钻采设备及工艺概论[M].北京:石油大学出版社, 1992
    李敏.聚丙烯酸钠丙烯酰胺蒙脱土三元共聚复合高吸水性树脂的制备与性能研究:[硕士学位论文].山东:山东科技大学, 2004
    李平,陈水桥,熊震,等.绳索取芯钻探中泥皮产生的原因和对策[J].江西煤炭科技, 2009, (4):88-89
    李翔,李长有.淀粉接枝共聚丙烯酸_丙烯酰胺煤尘抑尘剂的合成及应用[J].化学研究, 2010, 21(1):56-58
    李旭东,郭建华,王依建,等.凝胶承压堵漏技术在普光地区的应用[J].冲洗液与完井液, 2008, 25(1): 53-56.
    李云仙,付惠,曾珍,等.氧化还原引发木薯淀粉与丙烯酰胺接枝共聚的研究[J].弹性体, 2009, 19(4):41-43
    廖久明,熊方利.新型膨润土接枝聚合物冲洗液降滤失剂的合成研究[J].重庆科技学院学报, 2008, 10(2):24-28
    林华,汪志芳,符新.两种不同引发体系在木薯淀粉与醋酸乙烯酯接枝共聚中的应用[J].中国粮油学报, 2009, 24(4): 55-58
    刘波,鄢捷年.高效防塌冲洗液的研制及在新疆塔河油田的应用[J].石油大学学报(自然科学版), 2003,27(5 ):56-59
    刘贵传,郭才轩.正电胶冲洗液体系及应用[J].地质与勘探, 2000, 36(2):76-79
    刘崑,马涛.化学法和微波法引发淀粉与丙烯酸甲酯接枝共聚反应的比较[J].安徽农业科学, 2009, 37(24):11358-11359,11391
    刘选朋,郑秀华,王志民,等.硅酸盐防塌泥浆研究及其在碳质泥岩钻探中的应用[J].地质与勘探, 2010, 46(5):967-970
    刘延强,徐同台,杨振杰,等.国内外防漏堵漏技术新进展[J].冲洗液与完井液,2010,21(6):80-84
    刘艳,张琰.适用于大斜度井及水平井钻进的MEG冲洗液研究[J].地质与勘探, 2005, 41(1):93-96
    刘以明,周尚奎,彭瑞.聚硅醇冲洗液在川东北毛坝区块中的应用[J].南方油气, 2005, l8(2): 54-56
    龙柱,陈蕴智,车大军,等.制浆黑液碱木素的改性及其在冲洗液中降黏效果的室内研究[J].冲洗液与完井液, 2005, 22(4): 24-26.
    卢彦丽,王彬,宋芳,等.铝盐聚合醇冲洗液体系在辽河油田的应用[J].冲洗液与完井液, 2005, 22( S1):11-13
    栾守杰.吸水膨胀型膨润土/交联聚丙烯酰胺颗粒堵剂[J].油田化学, 2003, 20(3):230-231
    马东,蒋发太,赵林,等.仿油基冲洗液技术的研究[J].断块油气田, 2008, 15(2):98-100
    马鸿文.工业矿物与岩石[M].北京:化学工业出版社, 2005.
    马文臣,易绍金.冲洗液研究与使用应考虑的环境问题[J].石油钻采工艺, 1998, 20(3):37-40
    苗春省.X射线衍射快速划分膨润土类型的方法[J].矿物学报,1984, (1):88—91.
    潘广业,张喜民,欧阳朝霞,等.特殊盐岩地区冲洗液技术[J].冲洗液与完井液, 2007, 24(2):79-82
    潘松汉,王贞.淀粉糊化对淀粉—丙烯酰胺接枝共聚的影响[J].精细化工, 1993,10( 4):56-60
    齐路恒,李春杰. LBM冲洗液在绳索取心钻进中的应用[J].中国煤田地质, 2007, 8(19):27-28
    钱维金,黄祖强,胡华宇,等.淀粉的预处理方法对其接枝共聚的影响[J].化工科技, 2006, 14(3):49-53
    乔孟占,陈永奇,张明海,等.强力抑制防塌剂QYJ的研究与应用[J].石油钻采工艺, 2006, 28(6): 27-30.
    任维焕.柴达木盆地资源环境科学钻探工程实践[J].探矿工程(岩土钻掘工程), 2009 ,36(6):1-5
    邵赛,邓钢桥,刘德林,等.辐照引发马铃薯淀粉接枝制备吸水树脂[J].核农学报, 2008, 22(2):200-202
    史新慧,胡继良,贾军,等.金刚石钻探冲洗液固控技术的初步研究[J].地质装备, 2007,8:28-31
    隋跃华,成效华,高建礼,等.强抑制性钻井完井液研究与应用[J].冲洗液与完井液, 2001, 18(6):14-17
    孙金声,孙金声,屈沅治,等.纳米膨润土复合体的制备及性能[J].冲洗液与完井液, 2006 , 23(2):9-10
    孙绍春,邹长军.三元共聚物降滤失剂在无侵害冲洗液中的作用[J].冲洗液与完井液, 2008, 25(1): 15-17.
    汤凤林,段隆臣.岩心钻探学[M].北京:中国地质大学出版社. 2009: 323
    汤松然,寇从诗.钙膨润土钠化技术[J].探矿工程, 1996,4:56-58
    汤松然,胡耿寰,何远信.冲洗液技术发展的现状与前景[J].探矿工程, 1999,(s1):280~282
    陶士先,纪卫军,胡继良,等.复杂地层钻探冲洗液技术新成果[A],第十六届全国探矿工程(岩土钻掘工程)技术学术交流会论文集[C].北京:地质出版社, 2011:281-287
    陶士先,纪卫军,胡继良,等.淀粉聚合物共聚物降失水剂的研制及泥浆性能评价[A],第十六届全国探矿工程(岩土钻掘工程)技术学术交流会论文集[C].北京:地质出版社, 2011:294-297
    陶士先,彭步涛,纪卫军,等.低粘增效粉-改性沥青冲洗液体系的研究与应用[J].西部探矿工程, 2011, (12)
    陶士先,汤松然,彭步涛.绳索取心钻杆内壁结垢机理与防治[J].探矿工程(岩土钻掘工程),2007, 34(z1):155-159
    汪仲英,汤松然.卡森泥浆力学的研究进展[J].探矿工程, 1987, 6:10-17
    王成善,冯志强,吴河勇,等.中国白垩纪大陆科学钻探工程-松科一井科学钻探工程的实施与初步进展[J].地质学报, 2008, 82(1): 9-20
    王达,张伟,张晓西,等.中国大陆科学钻探工程科钻一井钻探工程技术[M].北京:科学出版社, 2007
    王达.深孔岩心钻探的技术关键[J].探矿工程(岩土钻掘工程), 2009, 39(s1): 1-4
    王达.中国大陆科学钻探工程钻探技术论文选集[C].北京:地质出版社, 2007:477-482
    王贵和,王定峰,崔迎春,等.冲洗液固体润滑剂的试验研究[J].石油钻探技术, 2005, 33(3): 19-21.
    王建.适用于深井钻井的KCl/聚磺水基冲洗液体系研究[J].重庆科技学院学报(自然科学版), 2010, 12(5): 88-91
    王建华,鄢捷年,丁彤伟.高性能水基冲洗液研究进展[J].冲洗液与完井液,2007, 24(1):71-75
    王平全.破碎性地层概念界定及其破碎的热力学分析[J].西南石油学院学报,1999, 21(1): 13-16
    王学龙,叶建良,张林霞.“十一五”期间探矿工程技术主要进展[A].第十六届全国探矿工程(岩土钻掘工程)技术学术交流会论文集[M].北京:地质出版社, 2011
    王政敏. PAA高分子聚合物冲洗液在复杂地层钻探中的应用[J].地质与勘探, 2001, 36(4):83-84
    王中华.国内外冲洗液技术进展及对冲洗液的有关认识[J].中文能源, 2011, 16(1):48-59
    魏娟明,马涛汤,达祯.体膨类堵水调剖剂研究现状[J].应用化工, 2009, 38(10):1517-1520
    魏文忠,王广书,吕国俭.新1井严重破碎带地层钻井技术难点及对策[J].石油钻探技术, 2006,34(6):27-29
    温佩,武文洁,赵立辉.膨润土的改性及应用研究进展[J].化工技术与开发, 2008, 37(2): 27-31
    肖娟,郭会明.膨润土改性及应用进展[J].当代化工, 2009, 38 (6): 626-628
    谢威,黄祖强,胡华宇.机械活化预处理对木薯淀粉与丙烯酰胺接枝共聚反应的影响[J].淀粉工程, 2008, (8):97-100
    徐同台,沙东,王伟,等.埕海油田2区沙河街组地层井壁失稳原因及对策[J].石油钻探技术, 2010,38 (3 ):49-53
    许志琴,李海兵,吴忠良.汶川地震和科学钻探[J].地质学报, 2008, 82(12):1614-1621
    鄢捷年.冲洗液工艺学[M].北京:石油大学出版社. 2001, 5:57-89
    杨晋斌,杨健.川东北地区盐膏层冲洗液技术[J].石油钻探枝术. 2004, 32(3):24-25
    杨小华. AOIAS/AM /AA共聚物冲洗液降滤失剂的合成[J].精细与专用化学品, 2007, 15(19): 22-24.
    杨小华.国内近5年冲洗液处理剂研究与应用进展[J].油田化学, 2009, 26(2): 211
    于培志,牛新明,苏长明,等.西部新区复杂地层冲洗液技术[J].冲洗液与完井液, 2005, 22 (2): 29-32
    袁建强,王越之,罗春芝. JMR聚醚润滑剂的研制与应用[J].石油钻探技术, 2005, 33(3): 34-35.
    岳前升,舒福昌,向兴金,等.合成基冲洗液的研制及其应用[J].冲洗液与完井液, 2004, 21(5):1-3
    占样烈,徐力生,李月良. SM植物胶冲洗液的流变性分析与探讨[J].地质与勘探, 2010,46(2):343-346
    张红红,徐会文,刘建邦.溶液法制备钻井泥浆用的钠羧甲基淀粉(CMS)的试验研究[J].地质与勘探, 2006, 42(6):85-87
    张建国,张依华,党娟华,等.油田堵水调剖用吸水膨胀聚合物的研究[J].化学与生物工程, 2004, (2):41-42,53
    张敬畅,范国辉,曹维良.新型磺化腐殖酸冲洗液添加剂的研究[J].冲洗液与完井液, 2007, 24(5): 1-5.
    张克勤,刘雨晴.国内外冲洗液技术综述[A].99年度冲洗液完井液技术研讨会论文集[M].北京:中国石油学会,1999:145-146
    张克勤,卢彦丽,宋芳,等.国外冲洗液处理剂20年发展分析[J].冲洗液与完井液. 2005,22(s1):1-4
    张克勤.元坝地区钻井难题分析与技术对策探讨[J].石油钻探技术,2010,38 (3):26-31
    张秋冬,朱永宜,李旭东,等.松科一井(主井)钻探工程技术配套[J].探矿工程(岩土钻掘工程), 2008,37(12):1-5
    张伟,贾军,胡时有.汶川地震科学钻探项目的概况和钻探技术[J].探矿工程(岩土钻掘工程) , 2009, 39(s1):5-9,16
    张伟,王达.基于技术经济评价的取心钻进方法设计[J].地质科技情报, 2007, 26(5):95-99
    张伟.地质钻探技术发展有关问题的思考[J].探矿工程(岩土钻掘工程) , 2007,37(1): 1-3
    张伟.特深岩心钻孔套管程序和钻具级配等问题的探讨[J].探矿工程(岩土钻掘工程) , 2010,40(11) :1-5
    张炜,刘振东,刘宝锋,等.油基冲洗液的推广及循环利用[J].石油钻探技术, 2008, 36(6):34-38
    张文波,戎克生,李建国,等.油基冲洗液研究及现场应用[J].石油天然气学报, 2010, 32(3):303-305
    张新民,聂勋勇,王平全,等.特种凝胶在钻井堵漏中的应用[J].冲洗液与完井液, 2007, 24(5): 83-84.
    张琰,陈铸.新型抑制性冲洗液的研究[J].地质与勘探, 2000, 36(2):80-84
    张永明.聚合物无机物纳米复合降滤失剂的研究:[博士研究生学位].北京:北京交通大学论文, 2010
    张永勤,孙建华,贾志耀,等.中国陆地永久冻土带天然气水合物钻探技术研究与应用[J].探矿工程(岩土钻掘工程) , 2009, 39(s1): 22-28
    赵素丽,肖超,宋明全.泥页岩抑制剂乙基葡糖苷的研制[J].油田化学, 2004, 21(3): 202-204.
    郑力会,鄢捷年,陈勉,等.冲洗液用仿磺化沥青防塌剂的性能与作用机理[J].油田化学, 2005, 22(2): 97-100.
    郑玉婴,王灿耀,傅明连.膨润土有机改性的FTIR和XRD研究[J].光谱学与光谱分析. 2005, 25(11):1814-1817
    周开吉,郝俊芳.钻井工程设计[M].山东:石油大学出版社, 1996:160-161
    朱迪斯,贾军,李建华,等. TGLW 350-692T型冲洗液离心机的研制及实验效果[J].探矿工程(岩石钻掘工程), 2009, 36(z1):40
    朱宽亮,卢淑芹,邢韦亮,等.南堡1-3人工岛冲洗液技术[J].石油钻探技术, 2010 , 38(3): 54-58
    朱林晖,唐尧基.淀粉与乙烯基单体接枝共聚物的研究进展.山东科技大学学报(自然科学版), 2008, 27(2):82-87
    祝有海,张永勤,文怀沙,等.青海祁连山冻土区发现天然气水合物[J].地质学报, 2009, 83(11): 1762-1771

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700