• Included in CSCD
  • Chinese Core Journals
  • Included in WJCI Report
  • Included in Scopus, CA, DOAJ, EBSCO, JST
  • The Key Magazine of China Technology
Volume 34 Issue 2
Apr.  2015
Turn off MathJax
Article Contents
GAO Xiang, JIANG Jian-fang, WU Chuan, LIU Guang-pu, LI Long, JIANG Rui. Experiments on solubility of different acidizing fluids to Syrian limestone[J]. CARSOLOGICA SINICA, 2015, 34(2): 195-200. doi: 10.11932/karst20150214
Citation: GAO Xiang, JIANG Jian-fang, WU Chuan, LIU Guang-pu, LI Long, JIANG Rui. Experiments on solubility of different acidizing fluids to Syrian limestone[J]. CARSOLOGICA SINICA, 2015, 34(2): 195-200. doi: 10.11932/karst20150214

Experiments on solubility of different acidizing fluids to Syrian limestone

doi: 10.11932/karst20150214
  • Publish Date: 2015-04-25
  • Acidizing stimulation treatment always plays a very important role in enhancement of the production of oil and gas wells. Whether the characteristics of the chosen acid fluids used in the acidizing treatment meet the quality of formation determines success of the treatment. With development for more than half century, it has already evolved from conventional acids including normal hydrochloric acid and mud acid to retarded acids including multicomponent acid fluid, emulsified acid fluid, gelled acid fluid and surface cross-linked acid fluid. However, many of the unconventional oil and gas reservoirs are buried very deep, which leads to the reaction temperature between acid and formation rock becomes higher. This can fasten the reaction rate of acid and rock, decrease the effective distance of live acid, and lower the efficient acid fluids. The final result is the stimulation treatment cannot remove the damage of near well-bore, increase the production of oil and gas wells and reach the aim of deep-penetration. To solve the problems above, many researchers made character evaluation of only 1 to 2 acid fluids and the temperature in the experiments is too limited, which is not enough to many unconventional reservoirs. Besides, to retarded acids, exploring the reaction mechanism from the perspective of molecular is essential. Based on SY/T 6526-2002 of “Method of Testing the Rate of Dynamic Reaction between Hydrochloric Acid and Carbonate”,several experiments were conducted on the solubility of hydrochloric acid, organic acid (hydrochloric acid combined with acetic acid), gelled acid, emulsified acid and surface cross-linked acid to Syrian limestone powder by using acid - core reaction device under the conditions of high pressure and temperature in laboratory. The results show that,(1) The solubility of five acidizing fluids to limestone is above 90% in 2 hours. (2) The solubility of hydrochloric acid and organic acid to limestone is stronger than other three kinds of retarded acid. (3) Although the speed of dissolution of emulsified acid and surface cross-linked acid is slow, correspondingly low solubility under 95℃, due to destruction of stability of emulsified acid under the condition of higher temperature of 150℃, both the rate of dissolution and the solubility are highly enhanced. (4) In temporary condition, the inhibiting effect of “multiphase isolation” for H+ is stronger than high viscosity, and the more complex the linking between macromolecules is, the severer constraining effect for H+ will be. (5) The increase of temperature obviously speeds up the rate of dissolution, and has a great effect on the solubility of gelled acid, emulsified acid and surface cross-linked acid, but not at all for normal hydrochloric acid and organic acid. We obtained several different acidizing fluids’ reaction rates and solubility values at different times under different temperatures, which would be helpful for the optimization of acidizing fluid systems in oilfields.

     

  • loading
  • [1]
    埃克诺米德斯M J,诺尔蒂 K G.油藏增产措施[M].北京:石油工业出版社,1991.
    [2]
    王兴文,郭建春,赵金洲,等.碳酸盐岩储层酸化(酸压)技术与理论研究[J].特种油气藏,2004,11(4):67-69,73.
    [3]
    陈志海,戴勇.深层碳酸盐岩储层酸压工艺技术现状与展望[J].石油钻探技术,2005,33(1):58-62.
    [4]
    郭富凤,赵立强,刘平礼,等.碳酸盐岩高温储层酸压工艺应用现状[J].天然气技术,2007,1(6):46-49,63.
    [5]
    陈大钧,陈腹,韩利娟.特殊油气井化学工作液[M].北京:化学工业出版社,2012:99-105.
    [6]
    Bazin B. From Matrix Acidizing to Acid Fracturing:A Laboratory Evaluation of Acid/Rock Interactions[J]. Society of Petroleum Engineers, 2001,16(1):22-29.
    [7]
    Buijse M A, Van Domelen M S. Novel Application of Emulsified Acids to Matrix Stimulation of Heterogeneous Formations[J]. Society of Petroleum Engineers, 2000,15(3):208-213.
    [8]
    张振峰,张士诚,单学军,等.海上油田酸化酸液的选择及现场应用[J].石油钻采工艺,2001,23(5):57-60.
    [9]
    吕小明,丁里,石华强,等.长庆油田高桥区块碳酸盐岩储层酸岩反应基础研究[J].石油天然气学报,2013,35(6):106-108.
    [10]
    陈赓良,黄瑛.酸化工作液缓速作用的理论与实践[J].钻井液与完井液,2004,21(1):50-54.
    [11]
    刘炜,陶高杰,张斌, 等.新型抗高温乳化酸的研制及性能评价[J].精细石油化工进展,2012,13(7):8-10.
    [12]
    何伟国.塔河油田乳化酸酸化技术研究[J].新疆石油学院学报,2001,13(3):43-47.
    [13]
    刘炜,张斌,常启新,等.胶凝酸体系的性能研究及应用[J].精细石油化工进展,2013,14(1):12-14.
    [14]
    杜国滨,刘友权,王小红,等.胶凝酸在五百梯气田压裂酸化改造中的应用及作业效果分析[J].石油与天然气化工,2002,31(3):140-143.
    [15]
    张智勇,蒋廷学,梁冲,等.胶凝酸反应动力学试验研究[J].钻井液与完井液,2005,22(5):28-30.
    [16]
    蒋建方,杨玉凤,张智勇,等.交联酸酸化技术发展综述[J].油气井测试,2007,16(6):68-71.
    [17]
    吴月先,李武平,钟水清,等.地面交联酸携砂压裂工艺技术开发及其发展方向[J].石油科技论坛,2010(1):44-47.
    [18]
    陈馥,肖承川,黄磊光,等.一种碳酸盐岩抗高温交联酸体系[J].石油与天然气化工,2013,42(1):64-67.
    [19]
    肖博,张士诚,张雄,等.耐高温可携砂交联酸配方优化与评价[J].油田化学,2015,32(1):18-22.
    [20]
    温长云,王磊,马收,等.新型交联酸液体系的研制及其应用[J].西南石油大学学报(自然科学版),2013,35(2):146-151.
    [21]
    赵文娜,王宇宾,张烨.高温地面交联酸体系研究及其现场应用[J].科学技术与工程,2013,13(8):2190-2192,2197.
    [22]
    张健强,袁飞,王斌,等.交联酸携砂压裂技术在火山岩储层的应用[J].新疆石油科技,2008,18(4):23-24,31.
    [23]
    姚席斌.高温地面交联酸酸液交联剂的研制[J].钻井液与完井液,2012,29(2):65-67.
    [24]
    王俊明,祁万顺,张培平,等.狮31井交联酸酸压加砂技术的应用[J].油气井测试,2007,16(S1):57-59.
    [25]
    张杰.乳化酸酸液体系配方研究进展[J].应用化工,2012,41(4):685-688,696.
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (1409) PDF downloads(1940) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return