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Current Status and Expectation of Salt Containing Waste Water Discharged from Oil Production and Its Treatment

Received: 7 August 2016    Accepted:     Published: 8 August 2016
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Abstract

In this paper, we review the current status about the salt containing waste water discharged from oil production. Currently, most of the waste water discharged from oil production in China has not been treated by desalination. Soilsalinization has been an important environment problem. The salt-containing composition and mineralization degree data of reservoir water in major oil and gas fields of China were summarized. It can be seen that the reported data show very different and complex distribution of salt-containing composition of reservoir water. The application of computer simulation canimprove the prediction of the analytical data. The predicted data of water and salt concentration in the soil can be used to determine the boundary condition and initial condition of the simulation, and the limit of the sampling can be thus avoided. The results of the study will provide a scientific basis for environmental protection to build the standards of the salt contents of waste water and to prevent secondary salinization of soil of oil fields.

Published in Science Discovery (Volume 4, Issue 4)
DOI 10.11648/j.sd.20160404.21
Page(s) 264-269
Creative Commons

This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited.

Copyright

Copyright © The Author(s), 2024. Published by Science Publishing Group

Keywords

Salt-Containing Waste Water from Oil Production, Pollution, Treatment

References
[1] 霍秋立,申家年,付丽,汪振英,刘剑营.海拉尔盆地地层水特征及成因分析[J].世界地质,2006,25卷,第2期.
[2] 李贤庆,侯读杰,柳常青,张爱云.鄂尔多斯盆地中部气田奥陶系地层水与水溶气地球化学特征[J].断块油气田,2001,8(3),1-5.
[3] 黄焕雨.双南油田储层水水特征分析[J].吉林水利,2007,(9),27-29.
[4] 齐春梅.新场地区气田水化学特征及处理途径研究[J].成都理工学院学报,1999,26(2),168-170.
[5] 周晓芬.塔里木北部油田水特征离子及其意义[J].石油与天然气地质,2000,21(4),372-374.
[6] 徐国盛,宋焕荣,周文.鄂尔多斯盆地中部气田水化学条件与天然气聚集[J].石油实验地质,2000,22(4),330-335.
[7] 潘文蕾,刘光祥,吕俊祥.鄂西渝东区建南气田地层水水化学特征及其意义[J].石油实验地质,2003,25(3),295-299.
[8] 黄福堂.松辽盆地北部地层水的分类、化学组成与特征研究[J].大庆高等专科学校学报,1994,14(4),84-100.
[9] 李忠堂,刘娜,辛迎春.王家岗高温污水生物处理中试研究[J].油气田地面工程,2003,22(5),29-30.
[10] 赵延茂.吸附法处理现河首站采油污水的研究[M].中国海洋大学硕士学位论文,2006.
[11] 汪卫东,李希明,蒋淼,陈勇,段传慧.胜利油田污水处理的主要矛盾及对策[M].中国环境科学学会学术年会优秀论文集,2007,北京.
[12] 王立勇,董学良,李楠,陈兴国.大庆及周边地区地质环境问题现状及防治对策[J].黑龙江水利科技,2010,38(1),177-179.
[13] Seybold A, Cook J, Rajian R V, et al. Demonstration of dissolved organics removal from produced water, SPE. Production Operation Symposium, Okalahoma City: Society of Petroleum Engineers Inc., 1997,5-8.
[14] 许振良,膜法水处理技术[M],北京:化学工业出版社,2001.
[15] 李海波,等.含油废水的膜处理技术[J].过滤与分离,2000,10(4),10-14.
[16] 耿爱平,赵江楼,反渗透技术在脱盐中的应用[J].河南化工,1998,12(1),22-24.
[17] Bowman R W, Gramma L C, Craycraft R R, Water softening of high TDS produced water. SPE, International Thermal Operations and Heavy Oil Symposium, Barksfield: Society of Petroleum Engineers Inc.,1997, 143-154.
[18] Mommaerts G J, Softening of Produced water: which system is best for your application. SPE, International Thermal Operations and Heavy Oil Symposium, Barksfield: Society of Petroleum Engineers Inc., 1999,1-11.
[19] Doran C F, Carini F H, Fruth D A, et al. Evaluation of technology in treat oil field produced water to drinking water or reusequality. SPE, 1997 Annual Technical Conference and Exhibition, San Antonio: Society of Petroleum Engineers Inc., 1998,811-822.
[20] Doran C F, Williams K L, Drago J A, et al. Pilot study results to convert oil field produced water to drinking water or reusequality. 1998 Annual Technical Conference and Exhibition, New Orleans: Society of Petroleum Engineers Inc., 1999, 403-417.
[21] 汪卫东,李希明,蒋淼,陈勇,段传慧,胜利油田污水处理的主要矛盾及对策[M].中国环境科学学会学术年会优秀论文集,2007,北京.
[22] US Salinity Laboratory Staff: Diagnosis and Improvement of Salineand Alkali Soils, US Depat. Of Agric. Hanb. 60, 1954.
[23] 河北省水利研究所,小麦全生长期利用咸水灌溉试验报告[M].见南皮试区综合治理旱涝碱的研究,1981,84-94.
[24] Tal A, Seeking sustainability: Israel’s evolving water management strategy. Science, 2006, 313, 1081-1084.
[25] 尤文瑞,土壤盐渍化预测预报的研究[J].土壤学进展,1988,(1),1-8.
[26] 席承藩等译,盐渍土的发生演变[M].北京:科学出版社,1959.
[27] Kelley W.P., Alkali Soil. New York: Rinhold,1948
[28] 中国科学院南京土壤研究所主编.中国土壤[M],Beijing,科学出版社,1978.
[29] 张妙仙,潜水蒸发规律和调控.中国水利部水利科技的曙光[M].北京:北京科学技术出版社,1997.
[30] 李云祯,姚远,庞练,罗伟,基于VisualModflow的西南矿区土壤的地下水重金属污染评价[J].广东农业科学,2013,(17),168-171.
[31] 毛飞,张桂华,卢志光,金之庆,地下水浅埋条件下冬小麦和大豆土壤水分动态预报模型研究[J].应用气象学报,2003,14(4),479-486.
[32] Hu S., Zhao R., Tian C., Empirical models of calculating phreatice vaporating from bare soil in Tarim river basin, Xinjiang. Environmental Earth Sciences, 2009,59(3),663-668.
[33] 雷志栋,杨秀诗,谢森传,潜水稳定蒸发的分析与经验公式[J].水利学报,1984,(8),60-64.
[34] 胡顺军,田长彦,宋郁东等,裸地与柽柳生长条件下潜水蒸发计算模型[J].科学通报,2006,50(S1),36-41.
[35] 邵景力,崔亚莉,张德强,基于包气带水分运移模型的黄河三角洲蒸发量研究[J].地学前沿,2005,12,95-100.
[36] 陈启生,戚龙溪,有植被覆盖条件下土壤水盐运动规律研究[J].水利学报,1996,1,38-45.
[37] 张妙仙,毛任钊,蒸散发条件下农田土壤水盐动态简化模型[J].中国生态农业学报,2003,11(3),102-105.
[38] Zimmerman S., Bauer P., Held R.,et al. Salt transport on islands in the Okavango Delta: numerical investigations. Water Resources, 29(1),11-29.
[39] Nassor I. N., Horton R., Heat, water, and solute transfer in unsaturanted porous media: I–Theory development and transport coefficient evaluation. Transport in Porous Media, 1997,27:17-38
[40] Hansson K, LundinL C, Equifinality and sensitivity in freezing gandthawing simulations of laboratory and in situ data. Cold Regions Sci. Tech., 2006,44:20-37.
[41] Kotzer E., Artificial kidneys for the soil: solving the problem of salinization of the soil and underground water. Desalination, 2005, 185(1-3),71-77.
[42] 万良兴,田军仓,郑艳艳等,土壤中水、热、盐耦合运移机理与模型的研究进展[J].节水灌溉,2007,(3),22-25.
[43] 李亮,史海滨,贾锦凤等,内蒙古河套灌区荒地水盐运移规律模拟[J].农业工程学报,2010,26(1),31-35.
[44] 国家科技保护局科技标准司.土壤环境质量标准[Z].1995.
[45] 李忠良.中外土壤环境监测现状及对策建议[J].环境经济,2005,03:19-21.
[46] 陈晓冰,李阳芳.土壤水分运动方程与参数研究进展[J].现代农业科技,2011,(20):265-268.
[47] 彭筱峻,袁文芳,朱艳芳.生态环境监测的现状及发展趋势[M].江西省宜春市环科所,2009(2):25-29.
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    Wang Lisheng. (2016). Current Status and Expectation of Salt Containing Waste Water Discharged from Oil Production and Its Treatment. Science Discovery, 4(4), 264-269. https://doi.org/10.11648/j.sd.20160404.21

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    Wang Lisheng. Current Status and Expectation of Salt Containing Waste Water Discharged from Oil Production and Its Treatment. Sci. Discov. 2016, 4(4), 264-269. doi: 10.11648/j.sd.20160404.21

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    AMA Style

    Wang Lisheng. Current Status and Expectation of Salt Containing Waste Water Discharged from Oil Production and Its Treatment. Sci Discov. 2016;4(4):264-269. doi: 10.11648/j.sd.20160404.21

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  • @article{10.11648/j.sd.20160404.21,
      author = {Wang Lisheng},
      title = {Current Status and Expectation of Salt Containing Waste Water Discharged from Oil Production and Its Treatment},
      journal = {Science Discovery},
      volume = {4},
      number = {4},
      pages = {264-269},
      doi = {10.11648/j.sd.20160404.21},
      url = {https://doi.org/10.11648/j.sd.20160404.21},
      eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.sd.20160404.21},
      abstract = {In this paper, we review the current status about the salt containing waste water discharged from oil production. Currently, most of the waste water discharged from oil production in China has not been treated by desalination. Soilsalinization has been an important environment problem. The salt-containing composition and mineralization degree data of reservoir water in major oil and gas fields of China were summarized. It can be seen that the reported data show very different and complex distribution of salt-containing composition of reservoir water. The application of computer simulation canimprove the prediction of the analytical data. The predicted data of water and salt concentration in the soil can be used to determine the boundary condition and initial condition of the simulation, and the limit of the sampling can be thus avoided. The results of the study will provide a scientific basis for environmental protection to build the standards of the salt contents of waste water and to prevent secondary salinization of soil of oil fields.},
     year = {2016}
    }
    

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  • TY  - JOUR
    T1  - Current Status and Expectation of Salt Containing Waste Water Discharged from Oil Production and Its Treatment
    AU  - Wang Lisheng
    Y1  - 2016/08/08
    PY  - 2016
    N1  - https://doi.org/10.11648/j.sd.20160404.21
    DO  - 10.11648/j.sd.20160404.21
    T2  - Science Discovery
    JF  - Science Discovery
    JO  - Science Discovery
    SP  - 264
    EP  - 269
    PB  - Science Publishing Group
    SN  - 2331-0650
    UR  - https://doi.org/10.11648/j.sd.20160404.21
    AB  - In this paper, we review the current status about the salt containing waste water discharged from oil production. Currently, most of the waste water discharged from oil production in China has not been treated by desalination. Soilsalinization has been an important environment problem. The salt-containing composition and mineralization degree data of reservoir water in major oil and gas fields of China were summarized. It can be seen that the reported data show very different and complex distribution of salt-containing composition of reservoir water. The application of computer simulation canimprove the prediction of the analytical data. The predicted data of water and salt concentration in the soil can be used to determine the boundary condition and initial condition of the simulation, and the limit of the sampling can be thus avoided. The results of the study will provide a scientific basis for environmental protection to build the standards of the salt contents of waste water and to prevent secondary salinization of soil of oil fields.
    VL  - 4
    IS  - 4
    ER  - 

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Author Information
  • School of Chemical Engineering and the Environment, Beijing Institute of Technology, Beijing, China

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