Short Review of Produced Water Management System for Beneficial Use or Implementing Environmental Rules and Regulation

Authors

  • Md. Mehedi Hasan Department of Petroleum and Mining Engineering (PME), Jashore University of Science and Technology (JUST), Bangladesh
  • Mohammed Mahbubur Rahman Department of Petroleum and Mineral Resources Engineering, Bangladesh University of Engineering Technology, Dhaka-1000, Bangladesh
  • Mohammad Tofayal Ahmed Department of Petroleum and Mining Engineering (PME), Jashore University of Science and Technology (JUST), Bangladesh

DOI:

https://doi.org/10.54536/ajaset.v5i1.60

Keywords:

Produced water, Wastewater, Treatment technology, Zero discharge

Abstract

The produced water (PW), which could be a confounding blend of different natural and inorganic mixes (generally salts, minerals and oils) is a noteworthy wastewater stream formed during petroleum generation forms. With the worldwide interest and production of petroleum derivative (oil and gas) increment, the produced water generation likewise increases similarly. Previously, PW was just re-injected into the unfilled well after extraction. As freshwater deliver turns out to be gradually rare, PW can turn into a significant water source after suitable treatment. There are different physical and substance strategies to treat the PW. Nonetheless, a thorough and thoughtful understanding of each issue can prompt a higher and progressively productive arrangement. In this investigation, different physical and chemical treatment techniques for PW have been checked on dependent on the most recent detections and as of late distributed articles on this topic. Moreover, difficulties and chances of every one of these treatment plans have been completely discussed. In expansion, possible applications for reprocessing the treated PW have been recommended and talked about at long last.

Downloads

Download data is not yet available.

References

Ahmed, M., Shayya, W. H., Hoey, D., Mahendran, A., Morris, R., & Al-Handaly, J. (2000). Use of evaporation ponds for brine disposal in desalination plants. Desalination, 130(2), 155-168.

Akzo Nobel, M. P. P. (2004). Macro-porous Polymer Extraction for Offshore Produced Water Removes Dissolved and Dispersed Hydrocarbons.

Al-Amshawee, S., Yunus, M. Y. B. M., Azoddein, A. A. M., Hassell, D. G., Dakhil, I. H., & Hasan, H. A. (2020). Electrodialysis desalination for water and wastewater: A review. Chemical Engineering Journal, 380, 122231.

Al-Ghouti, M. A., Al-Kaabi, M. A., Ashfaq, M. Y., & Da’na, D. A. (2019). Produced water characteristics, treatment and reuse: A review. Journal of Water Process Engineering, 28, 222-239.

Ali, I., & Gupta, V. (2006). Advances in water treatment by adsorption technology. Nature protocols, 1(6), 2661.

Anis, S. F., Hashaikeh, R., & Hilal, N. (2019). Microfiltration membrane processes: A review of research trends over the past decade. Journal of Water Process Engineering, 32, 100941.

Arthur, J. D., Langhus, B. G., & Patel, C. (2005). Technical summary of oil & gas produced water treatment technologies. All Consulting, LLC, Tulsa, OK.

Bahar, R., Hawlader, M., & Woei, L. S. (2004). Performance evaluation of a mechanical vapor compression desalination system. Desalination, 166, 123-127.

Bhojwani, S., Topolski, K., Mukherjee, R., Sengupta, D., & El-Halwagi, M. M. (2019). Technology review and data analysis for cost assessment of water treatment systems. Science of the Total Environment, 651, 2749-2761.

Boysen, J., & Boysen, D. (2007). The freeze-thaw/evaporation (FTE) process for produced water treatment, disposal and beneficial uses. Paper presented at the 14th Annual International Petroleum Environmental Conference, Houston, TX, 5.

Bradley, B. (1990). Produced water treatment technology assessment. Prepared for the American Petroleum Institute-Offshore effluent guidelines steering committee, Washington, DC.

Calderon Carrillo, Z. H., Aranguren Campos, F. A., & Usuriaga Torres, J. M. (2017). A selection methodology of flowback treatment technologies and water reuse in hydraulic fracturing in source rocks a strategy to reduce the environmental impacts in colombia. CIENCIA TECNOLOGIA Y FUTURO.

Cline, J. (2000). Survey of gas flotation technologies for treatment of oil & grease. Paper presented at the 10th produced water seminar, Houston, TX, Jan.

Commission, O. (2012). Discharges, spills and emissions from offshore oil and gas installations in 2010. OSPAR Commission, Paris.

Consulting, A. (2003). Handbook on coal bed methane produced water: Management and beneficial use alternatives. Prepared for: Groundwater Protection Research Foundation, US Department of Energy, National Petroleum Technology Ofce, Bureau of Land Management, July.

Dahm, K., & Chapman, M. (2014). Produced water treatment primer: case studies of treatment applications: [US Department of the Interior], Bureau of Reclamation, Technical Service Center.

Dahm, K., & Chapman, M. (2014). Produced water treatment primer: case studies of treatment applications.[US Department of the Interior]. Bureau of Reclamation, Technical Service Center.

Darwish, M., Al Asfour, F., & Al-Najem, N. (2003). Energy consumption in equivalent work by different desalting methods: case study for Kuwait. Desalination, 152(1-3), 83-92.

Drewes, J. E., Cath, T. Y., Xu, P., Graydon, J., Veil, J., & Snyder, S. (2009). An integrated framework for treatment and management of produced water. RPSEA Project, 07122-07112.

Duraisamy, R. T., Beni, A. H., & Henni, A. (2013). State of the art treatment of produced water. Water Treatment, 199-222.

Echchelh, A., Hess, T., & Sakrabani, R. (2018). Reusing oil and gas produced water for irrigation of food crops in drylands. Agricultural Water Management, 206, 124-134.

El-Dessouky, H., Ettouney, H., & Al-Juwayhel, F. (2000). Multiple effect evaporation—vapour compression desalination processes. Chemical Engineering Research and Design, 78(4), 662-676.

Ettouney, H. M., El-Dessouky, H. T., Faibish, R. S., & Gowin, P. J. (2002). Evaluating the economics of desalination. Chemical Engineering Progress, 98(12), 32-39.

Eykamp, W. (1995). Microfiltration and ultrafiltration. In Membrane science and technology (Vol. 2, pp. 1-43): Elsevier.

The Facts About Instant Ocean®. Retrieved from https://aquacraft.net/marine-aquarist/issue3-2000/ma3-instant-ocean/

Fakhru’l-Razi, A., Pendashteh, A., Abdullah, L. C., Biak, D. R. A., Madaeni, S. S., & Abidin, Z. Z. (2009). Review of technologies for oil and gas produced water treatment. Journal of hazardous materials, 170(2-3), 530-551.

Fillo, J., & Evans, J. (1990). Characterization and management of produced waters from underground natural gas storage reservoirs. American Gas Association Operation Section Proceedings, 448459.

FTE® Process for Water Treatment (English). Retrieved from http://www.polarbearwater.net/14273/index.html. Retrieved 28/04/2020, from Polar Bear Water Treatment http://www.polarbearwater.net/14273/index.html

Fu, L., Wu, C., Zhou, Y., Zuo, J., & Ding, Y. (2016). Treatment of petrochemical secondary effluent by an up-flow biological aerated filter (BAF). Water Science and Technology, 73(8), 2031-2038.

Gabarrón, S., Gernjak, W., Valero, F., Barceló, A., Petrovic, M., & Rodríguez-Roda, I. (2016). Evaluation of emerging contaminants in a drinking water treatment plant using electrodialysis reversal technology. Journal of hazardous materials, 309, 192-201.

Garland, E. (2005). Environmental regulatory framework in Europe: An update. Paper presented at the SPE/EPA/DOE Exploration and Production Environmental Conference.

Godshall, N. (2006). AltelaRainSM produced water treatment technology: making water from waste. Paper presented at the 13th Annual International Petroleum Environmental Conference.

GWI, I. (2006). Worldwide Desalting Plants Inventory Report no. 19 (Global water intelligence) Gnarrenburg. In: Germany.

Hasan, M. (2018). Design of a water treatment system for beneficial use of the produced water in a gas field in Bangladesh.

Hassan, A. A., & Al-zobai, K. M. M. (2019). Chemical Oxidation for Oil Separation from Oilfield Produced Water under UV Irradiation Using Titanium Dioxide as a Nano-Photocatalyst by Batch and Continuous Techniques. International Journal of Chemical Engineering, 2019.

Heins, W., & Schooley, K. (2004). Achieving zero liquid discharge in SAGD heavy oil recovery. Journal of Canadian Petroleum Technology, 43(08).

Hoque, S., Alexander, T., & Gurian, P. L. (2010). Innovative technologies increase evaporation pond efficiency. IDA Journal of Desalination and Water Reuse, 2(1), 72-78.

Igunnu, E. T., & Chen, G. Z. (2014). Produced water treatment technologies. International Journal of Low-Carbon Technologies, 9(3), 157-177.

Islam, M., Banat, F., Baba, A., & Abuyahya, S. (2019). Design and Development of a Small Multistage Flash Desalination System Using Aspen HYSYS. Paper presented at the Fluids Engineering Division Summer Meeting.

Jiménez, S., Micó, M., Arnaldos, M., Medina, F., & Contreras, S. (2018). State of the art of produced water treatment. Chemosphere, 192, 186-208.

Johnson, B. M., Kanagy, L. E., Rodgers, J. H., & Castle, J. W. (2008). Chemical, physical, and risk characterization of natural gas storage produced waters. Water, air, and soil pollution, 191(1-4), 33-54.

Knudsen, B., Hjelsvold, M., Frost, T., Svarstad, M., Grini, P., Willumsen, C., & Torvik, H. (2004). Meeting the zero discharge challenge for produced water. Paper presented at the SPE International Conference on Health, Safety, and Environment in Oil and Gas Exploration and Production.

Marsidi, N., Hasan, H. A., & Abdullah, S. R. S. (2018). A review of biological aerated filters for iron and manganese ions removal in water treatment. Journal of Water Process Engineering, 23, 1-12.

Macro Porous Polymer Extraction (MPPE) Technology. Retrieved 10/05/2020 from https://www.wateronline.com/doc/macro-porous-polymer-extraction-technology-0001 .

Meller, F. H. (1984). Electrodialysis (ED) & electrodialysis reversal (EDR) technology: Ionics, Incorporated.

Mendonça, E. T., de Araujo, C. M., Chiavone, O., & da Motta, M. A. (2017). Evaluation of Produced Water Treatment Using Advanced Oxidation Processes and Sodium Ferrate (VI). International Journal of Chemical and Molecular Engineering, 11(2), 135-140.

MINERAL MAKEUP OF SEAWATER. Retrieved from https://web.stanford.edu/group/Urchin/mineral.html

Mohammed, T. J., Habeeb, S. I., Kreamid, Z. K., & Ali, A. A. (2018). Treatment of Refinery Industry Wastewater Using Ion Exchange Technology and Studies Kinetics and Thermo-dynamic Parameters. Journal of Petroleum Research & Studies(20), 97-112.

Mondal, S., & Wickramasinghe, S. R. (2008). Produced water treatment by nanofiltration and reverse osmosis membranes. Journal of membrane science, 322(1), 162-170.

Niazi, S., Habibian, M., & Rahimi, M. (2017). Performance evaluation of a uniflow mini-hydrocyclone for removing fine heavy metal particles from water. Chemical Engineering Research and Design, 126, 89-96.

Nicolaisen, B., & Lien, L. (2003). Treating oil and gas produced water using membrane filtration technology. Paper presented at the Produced Water Workshop, Aberdeen, Scotland.

Pars, H. M., & Meijer, D. T. (1998, January). Removal of dissolved hydrocarbons from production water by macro porous polymer extraction (MPPE). In SPE International Conference on Health, Safety, and Environment in Oil and Gas Exploration and Production. Society of Petroleum Engineers.

Produced Water Market - Opportunities in the oil, shale and gas sectors in North America. (2011). Retrieved from https://www.gwiwaterdata.com/

Razaghiyan, M., Rahimi, M. R., & Karimi, H. (2020). Investigating the Treatment of Oil and Gas Produced Water Using a Spray Dryer on a Bench Scale. Iranian Journal of Oil & Gas Science and Technology, 9(1), 16-32.

Rostamzadeh, H., Ghiasirad, H., Amidpour, M., & Amidpour, Y. (2020). Performance enhancement of a conventional multi-effect desalination (MED) system by heat pump cycles. Desalination, 477, 114261.

Shen, C., Zhao, Y., Li, W., Yang, Y., Liu, R., & Morgen, D. (2019). Global profile of heavy metals and semimetals adsorption using drinking water treatment residual. Chemical Engineering Journal.

Shepherd, M., Shore, F., Mertens, S., & Gibson, J. (1992). Characterization of produced waters from natural gas production and storage operations: regulatory analysis of a complex matrix. In Produced Water (pp. 163-173): Springer.

Sirivedhin, T., McCue, J., & Dallbauman, L. (2004). Reclaiming produced water for beneficial use: salt removal by electrodialysis. Journal of membrane science, 243(1-2), 335-343.

Spiegler, K., & Kedem, O. (1966). Thermodynamics of hyperfiltration (reverse osmosis): criteria for efficient membranes. Desalination, 1(4), 311-326.

Stewart, M., & Arnold, K. (2008). Surface Production Operations, Design of Oil Handling Systems and Facilities, vol. 1.

Subban, C. V., & Gadgil, A. J. (2019). Electrically regenerated ion-exchange technology for desalination of low-salinity water sources. Desalination, 465, 38-43.

Thiruvenkatachari, R., Su, S., & Cunnington, M. (2020). FO-RO for mining wastewater treatment. In Current Trends and Future Developments on (Bio-) Membranes (pp. 325-336): Elsevier.

Veil, J. A., Puder, M. G., Elcock, D., & Redweik Jr, R. J. (2004). A white paper describing produced water from production of crude oil, natural gas, and coal bed methane. Retrieved from

Velmurugan, V., & Srithar, K. (2008). Prospects and scopes of solar pond: a detailed review. Renewable and sustainable energy reviews, 12(8), 2253-2263.

Wastewater discharge standards in Latin America. (29 January 2020). Retrieved from https://en.wikipedia.org/wiki/Wastewater_discharge_standards_in_Latin_America

Watson, I., Morin, P., & Henthorne, J. (2003). Desalting Handbook for Planners, 3rd edn. Desalination and Water Purification Research and Development Program. Retrieved from

Xu, P., & Drewes, J. E. (2006). Viability of nanofiltration and ultra-low pressure reverse osmosis membranes for multi-beneficial use of methane produced water. Separation and Purification Technology, 52(1), 67-76.

Zhao, D., Lee, L. Y., Ong, S. L., Chowdhury, P., Siah, K. B., & Ng, H. Y. (2019). Electrodialysis reversal for industrial reverse osmosis brine treatment. Separation and Purification Technology, 213, 339-347.

Zhu, A.-m., Wang, S., Xiong, R., DING, T., LI, P.-l., WANG, Z., & XIE, L.-x. (2006). Heat Transfer in Dewvaporation Seawater Desalination Process. Technology of Water Treatment, 32(12), 23.

Downloads

Published

2021-05-10

How to Cite

Hasan, M. M., Rahman, M. M., & Ahmed, M. T. (2021). Short Review of Produced Water Management System for Beneficial Use or Implementing Environmental Rules and Regulation. American Journal of Agricultural Science, Engineering, and Technology, 5(1), 45–63. https://doi.org/10.54536/ajaset.v5i1.60