Saeed, H. M., Husseini, G. A., Yousef, S., Saif, J., Al-Asheh, S., Fara,
A. A., et al. (2015). Microbial desalination cell technology: A
review and a case study. Desalination, 359, 1–13.
Salahi, A., Mohammadi, T., Rahmat Pour, A., & Rekabdar, F. (2012).
Oily wastewater treatment using ultrafiltration. Desalination and
Water Treatment, 6, 289–298.
Scoth, K. (1999). Handbook of industrial membranes (2nd ed.).
Amsterdam: Elsevier.
Scoth, K. (1990). Membrane separation technology: Industrial applications and markets. British Hydromechanics Association.
Seyed Shahabadi, S. M., & Reyhani, A. (2014). Optimization of
operating conditions in ultrafiltration process for produced water
treatment via the full factorial design methodology. Separation
Science and Technology, 132, 50–61.
Shaffer, D. L., Chavez, L. H. A., Ben-Sasson, M., Castrillón, S. R.-V.,
Yip, N. Y., & Elimelech, M. (2013). Desalination and reuse of
high-salinity shale gas produced water: Drivers, technologies, and
future directions. Environmental Science & Technology, 47, 9569–
9583.
Shrestha, N., Chilkoor, G., Wilder, J., Ren, Z. J., & Gadhamshetty, V.
(2018). Comparative performances of microbial capacitive deionization cell and microbial fuel cell fed with produced water from the
Bakken shale. Bioelectrochemistry, 121, 56–64.
Stoll, Z. A., Forrestal, C., Ren, Z. J., & Xu, P. (2015). Shale gas
produced water treatment using innovative microbial capacitive
desalination cell. Journal of Hazardous Materials, 283, 847–855.
Sule, M. N., Templeton, M. R., & Bond, T. (2016). Rejection of
organic micro-pollutants from water by a tubular, hydrophilic
pervaporative membrane designed for irrigation applications. Environmental Technology, 37, 1382–1389.
Takht Ravanchi, M., Kaghazchi, T., & Kargari, A. (2009). Application
of membrane separation processes in petrochemical industry: A
review. Desalination, 235(1–3), 199–244.
van der Biesheuvel, P. M., & Wal, A. (2010). Membrane capacitive
deionization. Journal of Membrane Science, 346, 256–262.
Wandera, D., Wickramasinghe, S. R., & Husson, S. M. (2011).
Modification and characterization of ultrafiltration membranes for
treatment of produced water. Journal of Membrane Science, 373,
178–188.
Wandera, D., Himstedt, H. H., Marroquin, M., Wickramasinghe, S. R.,
& Husson, S. M. (2012). Modification of ultrafiltration membranes
with block copolymer nanolayers for produced water treatment: The
roles of polymer chain density and polymerization time on
performance. Journal of Membrane Science, 403–404, 250–260.
Wang, P., & Chung, Y.-S. (2015). Recent advances in membrane
distillation processes: Membrane development, configuration design
and application exploring. Journal of Membrane Science, 474, 39–
56.
Weller, S., & Steiner, W. A. (1950). Engineering aspects of separation
gases: Fractional permeation through membranes. Chemical Engineering Progress, 46, 585–590.
Werber, J. R., Osuji, C. O., & Elimelech, M. (2016). Materials for
next-generation desalination and water purification membranes.
Nature Reviews Materials, 1, 16018.
Witze, A. (2015). Race to unravel Oklahoma’s artificial quakes. Nature,
520, 418–419.
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 Science and Technology, 52,
67–76.
Yan, L., Hong, S., Li, M. L., & Li, Y. S. (2009). Application of the
Al 2 O 3 –PVDF nanocomposite tubular ultrafiltration (UF) membrane
for oily wastewater treatment and its antifouling research. Separation and Purification Technology, 66(2), 347–352.
Yun, T., Koo, J. W., Sohn, J., & Lee, S. (2014). Pressure assisted
forward osmosis for shale gas wastewater treatment. Desalination
Water Treatment, 54, 1–9.
Zhao, Y., Wang, Y., Wang, R., Wu, Y., Xu, S., & Wang, J. (2013).
Performance comparison and energy consumption analysis of
capacitive deionization and membrane capacitive deionization
processes Desalination, 324, 127–133.
Zhang, Z., & He, B. (2013). Improving water desalination by
hydraulically coupling an osmotic microbial fuel cell with a
microbial desalination cell. Journal of Membrane Science, 441,
18–24.
Zhong, J., Sun, X., & Wang, C. (2003). Treatment of oily wastewater
produced from refinery processes using flocculation and ceramic
membrane filtration. Separation Science and Technology, 32, 93–
98.
Zsirai, T., Qiblawey, H., Buzatu, P., Al-Marri, M., & Judd, S. J. (2018).
Cleaning of ceramic membranes for produced water filtration.
Journal of Petroleum Science and Engineering, 166, 283–289.
90
M. A. B. Pauzan et al.
A. A., et al. (2015). Microbial desalination cell technology: A
review and a case study. Desalination, 359, 1–13.
Salahi, A., Mohammadi, T., Rahmat Pour, A., & Rekabdar, F. (2012).
Oily wastewater treatment using ultrafiltration. Desalination and
Water Treatment, 6, 289–298.
Scoth, K. (1999). Handbook of industrial membranes (2nd ed.).
Amsterdam: Elsevier.
Scoth, K. (1990). Membrane separation technology: Industrial applications and markets. British Hydromechanics Association.
Seyed Shahabadi, S. M., & Reyhani, A. (2014). Optimization of
operating conditions in ultrafiltration process for produced water
treatment via the full factorial design methodology. Separation
Science and Technology, 132, 50–61.
Shaffer, D. L., Chavez, L. H. A., Ben-Sasson, M., Castrillón, S. R.-V.,
Yip, N. Y., & Elimelech, M. (2013). Desalination and reuse of
high-salinity shale gas produced water: Drivers, technologies, and
future directions. Environmental Science & Technology, 47, 9569–
9583.
Shrestha, N., Chilkoor, G., Wilder, J., Ren, Z. J., & Gadhamshetty, V.
(2018). Comparative performances of microbial capacitive deionization cell and microbial fuel cell fed with produced water from the
Bakken shale. Bioelectrochemistry, 121, 56–64.
Stoll, Z. A., Forrestal, C., Ren, Z. J., & Xu, P. (2015). Shale gas
produced water treatment using innovative microbial capacitive
desalination cell. Journal of Hazardous Materials, 283, 847–855.
Sule, M. N., Templeton, M. R., & Bond, T. (2016). Rejection of
organic micro-pollutants from water by a tubular, hydrophilic
pervaporative membrane designed for irrigation applications. Environmental Technology, 37, 1382–1389.
Takht Ravanchi, M., Kaghazchi, T., & Kargari, A. (2009). Application
of membrane separation processes in petrochemical industry: A
review. Desalination, 235(1–3), 199–244.
van der Biesheuvel, P. M., & Wal, A. (2010). Membrane capacitive
deionization. Journal of Membrane Science, 346, 256–262.
Wandera, D., Wickramasinghe, S. R., & Husson, S. M. (2011).
Modification and characterization of ultrafiltration membranes for
treatment of produced water. Journal of Membrane Science, 373,
178–188.
Wandera, D., Himstedt, H. H., Marroquin, M., Wickramasinghe, S. R.,
& Husson, S. M. (2012). Modification of ultrafiltration membranes
with block copolymer nanolayers for produced water treatment: The
roles of polymer chain density and polymerization time on
performance. Journal of Membrane Science, 403–404, 250–260.
Wang, P., & Chung, Y.-S. (2015). Recent advances in membrane
distillation processes: Membrane development, configuration design
and application exploring. Journal of Membrane Science, 474, 39–
56.
Weller, S., & Steiner, W. A. (1950). Engineering aspects of separation
gases: Fractional permeation through membranes. Chemical Engineering Progress, 46, 585–590.
Werber, J. R., Osuji, C. O., & Elimelech, M. (2016). Materials for
next-generation desalination and water purification membranes.
Nature Reviews Materials, 1, 16018.
Witze, A. (2015). Race to unravel Oklahoma’s artificial quakes. Nature,
520, 418–419.
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 Science and Technology, 52,
67–76.
Yan, L., Hong, S., Li, M. L., & Li, Y. S. (2009). Application of the
Al 2 O 3 –PVDF nanocomposite tubular ultrafiltration (UF) membrane
for oily wastewater treatment and its antifouling research. Separation and Purification Technology, 66(2), 347–352.
Yun, T., Koo, J. W., Sohn, J., & Lee, S. (2014). Pressure assisted
forward osmosis for shale gas wastewater treatment. Desalination
Water Treatment, 54, 1–9.
Zhao, Y., Wang, Y., Wang, R., Wu, Y., Xu, S., & Wang, J. (2013).
Performance comparison and energy consumption analysis of
capacitive deionization and membrane capacitive deionization
processes Desalination, 324, 127–133.
Zhang, Z., & He, B. (2013). Improving water desalination by
hydraulically coupling an osmotic microbial fuel cell with a
microbial desalination cell. Journal of Membrane Science, 441,
18–24.
Zhong, J., Sun, X., & Wang, C. (2003). Treatment of oily wastewater
produced from refinery processes using flocculation and ceramic
membrane filtration. Separation Science and Technology, 32, 93–
98.
Zsirai, T., Qiblawey, H., Buzatu, P., Al-Marri, M., & Judd, S. J. (2018).
Cleaning of ceramic membranes for produced water filtration.
Journal of Petroleum Science and Engineering, 166, 283–289.
90
M. A. B. Pauzan et al.
