References
- S. Shaaban, Performance optimization of an integrated solar
combined cycle power plant equipped with a brine circulation
MSF desalination unit, Energy Convers. Manage., 198 (2019)
111794, doi: 10.1016/j.enconman.2019.111794.
- C.S. Bandi, R. Uppaluri, A. Kumar, Global optimization of
MSF seawater desalination processes, Desalination, 394 (2016)
30–43.
- S. Lin, H. Zhao, L. Zhu, T. He, S. Chen, C. Gao, L. Zhang,
Seawater desalination technology and engineering in China:
a review, Desalination, 498 (2021) 114728, doi: 10.1016/j.desal.2020.114728.
- M. Ziyaei, M. Jalili, A. Chitsaz, M. Alhuyi Nazari, Dynamic
simulation and life cycle cost analysis of a MSF desalination
system driven by solar parabolic trough collectors using
TRNSYS software: a comparative study in different world
regions, Energy Convers. Manage., 243 (2021) 114412,
doi: 10.1016/j.enconman.2021.114412.
- S. Kabiri, M.H. Khoshgoftar Manesh, M. Yazdi, M. Amidpour,
New procedure for optimal solar repowering of thermal
power plants and integration with MSF desalination based
on environmental friendliness and economic benefit,
Energy Convers. Manage., 240 (2021) 114247, doi: 10.1016/j.enconman.2021.114247.
- E. Jones, M. Qadir, M.T.H. van Vliet, V. Smakhtin, S.M. Kang,
The state of desalination and brine production: a global
outlook, Sci. Total Environ., 657 (2019) 1343–1356.
- Z.M. Ghazi, S.W.F. Rizvi, W.M. Shahid, A.M. Abdulhameed,
H. Saleem, S.J. Zaidi, An overview of water desalination systems
integrated with renewable energy sources, Desalination,
542 (2022) 116063, doi: 10.1016/j.desal.2022.116063.
- M. Ayaz, M.A. Namazi, M.A.u. Din, M.I.M. Ershath, A. Mansour,
e.-H.M. Aggoune, Sustainable seawater desalination: current
status, environmental implications and future expectations,
Desalination, 540 (2022) 116022, doi: 10.1016/j.desal.2022.116022.
- N. Ghaffour, J. Bundschuh, H. Mahmoudi, M.F.A. Goosen,
Renewable energy-driven desalination technologies:
a comprehensive
review on challenges and potential applications of
integrated systems, Desalination, 356 (2015) 94–114.
- H. Al-Fulaij, A. Cipollina, H. Ettouney, D. Bogle, Simulation
of stability and dynamics of multistage flash desalination,
Desalination, 281 (2011) 404–412.
- Y. Xu, Z. Yang, J. Zhang, Study on performance of wave-plate
mist eliminator with porous foam layer as enhanced structure.
Part I: numerical simulation, Chem. Eng. Sci., 171 (2017)
650–661.
- R. Kouhikamali, S.M.A. Noori Rahim Abadi, M. Hassani,
Numerical study of performance of wire mesh mist eliminator,
Appl. Therm. Eng., 67 (2014) 214–222.
- J. Ruiz, C.G. Cutillas, A.S. Kaiser, B. Zamora, H. Sadafi,
M. Lucas, Experimental study on pressure loss and collection
efficiency of drift eliminators, Appl. Therm. Eng., 149 (2019)
94–104.
- E. Narimani, S. Shahhoseini, Optimization of vane mist
eliminators, Appl. Therm. Eng., 31 (2011) 188–193.
- H.E.S. Fath, M.A. Ismail, An online cleaning system to
reduce demister fouling in MSF Sidi Krir Desalination Plant,
2 × 5,000 m3/day, Desalination, 220 (2008) 252–257.
- I. Janajreh, A. Hasania, H. Fath, Numerical simulation of
vapor flow and pressure drop across the demister of MSF
desalination plant, Energy Convers. Manage., 65 (2013) 793–800.
- C. Zhao, J. Zhao, M. Cong, H. Shen, Simulation study on the
corrugated plate gas-liquid separator with the assistance of
the drainage hook, ACS Omega, 7 (2022) 44134–44146.
- H. Lv, Y. Wang, L. Wu, Y. Hu, Numerical simulation and
optimization of the flash chamber for multi-stage flash
seawater desalination, Desalination, 465 (2019) 69–78.
- C. Fang, R. Zou, G. Luo, Q. Ji, R. Sun, H. Hu, X. Li,
H. Yao, CFD simulation design and optimization of a
novel zigzag wave-plate mist eliminator with perforated
plate, Appl. Therm. Eng., 184 (2021) 116212, doi: 10.1016/j.applthermaleng.2020.116212.
- Z. Yu, C. Sun, J. Fang, L. Zhang, Y. Hu, B. Bao, S. Bu, W. Xu, Y. Ji,
Water recovery efficiency improvement using the enhanced
structure of the mist eliminator, Process. Saf. Environ.,
154 (2021) 433–446.
- Y. Tang, Y. Xu, B. Zhang, C. He, Q. Chen, J. Ren, An integrated
computational strategy for the geometric design and
prioritization of wave-plate mist eliminators, Process. Saf.
Environ., 158 (2022) 674–686.
- Y. Liu, D. Yu, J. Jiang, X. Yu, H. Yao, M. Xu, Experimental
and numerical evaluation of the performance of a novel
compound demister, Desalination, 409 (2017) 115–127.
- L. Yang, M. Xu, J. Wang, L. Song, J. Wang, Experimental and
numerical analysis of a demister with vortex generators,
Chin. J. Chem. Eng., 33 (2021) 83–95.
- H. Zhou, Y. Jin, L. Zhu, Z. Li, Numerical simulation of
droplets re-entrainment in baffle demister, Part. Sci. Technol.,
40 (2021) 567–575.
- S. Yuan, Y. Fan, H. Lin, Influence of discrete particle diameter
and separating velocity on the separation efficiency of
wave-plate separator including coalescence and breakup
model, J. Dispersion Sci. Technol., 37 (2015) 1324–1333.
- F. Mao, R. Tian, Y. Chen, B. Chen, B. Wang, L. Sun,
Re-entrainment in and optimization of a vane mist eliminator,
Ann. Nucl. Energy, 120 (2018) 656–665.
- R.J. Moffat, Describing the uncertainties in experimental results,
Exp. Therm. Fluid Sci., 1 (1988) 3–17.
- Y. Luan, S. Bu, H. Sun, T. Sun, Numerical Investigation on
Flow and Heat Transfer in Matrix Cooling Channels for
Turbine Blades, ASME Turbo Expo 2016: Turbomachinery
Technical Conference and Exposition, Seoul, South Korea, 2016.
doi: 10.1115/GT2016-56279
- P.J. O’Rourke, Collective Drop Effects on Vaporizing Liquid
Sprays, Ph.D. Thesis, Princeton University, Princeton, NJ,
USA, 1981. Available at www.osti.gov/biblio/5201366-
collective-drop-effects-vaporizing-liquid-sprays (Last Accessed
on October 30th, 2022).
- S. Yuan, Y. Fan, B. Chen, J. Li, L. Gao, S. Zhang, Forming
and stripping of the wall film and the influence on gas–
liquid separation, Asia-Pac. J. Chem. Eng., 15 (2020) e2447,
doi: 10.1002/apj.2447.
- C. Liu, Y. Wang, Y. Yang, Z. Duan, New omega vortex
identification method, Sci. China Phys. Mech., 59 (2016) 1–9.
- H. Liang, H. Song, X. Jiang, C. Li, J. Ma, Study on the
performance of a vortex mist eliminator for improving the
separation efficiency of fine particles, Asia-Pac. J. Chem. Eng.,
17 (2022) e2757, doi: 10.1002/apj.2757.
- Y. Xu, Z. Yang, J. Zhang, Study on performance of waveplate
mist eliminator with porous foam layer as enhanced
structure. Part II: experiments, Chem. Eng. Sci., 171 (2017)
662–671.