A NOVEL ZERO-DISCHARGE SUPERCRITICAL WATER-BASED WAVE ENERGY DESALINATION SYSTEM

被引:0
|
作者
Filho, Faete [1 ]
Glosson, Gabriel [1 ]
McMorris, Jason [1 ]
Duba, Kurabachew [1 ]
Abdel-Salam, Tarek [1 ]
Thanh Toan Tran [2 ]
Husain, Salman [2 ]
机构
[1] East Carolina Univ, Greenville, NC 27858 USA
[2] Natl Renewable Energy Lab, Golden, CO USA
来源
PROCEEDINGS OF ASME 2022 41ST INTERNATIONAL CONFERENCE ON OCEAN, OFFSHORE & ARCTIC ENGINEERING, OMAE2022, VOL 8 | 2022年
关键词
Wave Energy Converter; Reverse Osmosis; Wave to Water; Supercritical Water Desalination; Zero Liquid Waste; MICROBIAL COMMUNITIES;
D O I
暂无
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
This paper presents a sustainable and innovative wave-energy-based water desalination system combined with an emerging supercritical water process for a zero-liquid-discharge technology. There is growing demand for producing clean water. Within desalination technologies, reverse osmosis, one of the most popular methods, uses a semipermeable membrane that separates fresh water from pressurized seawater. However, this technology produces brine, which is harmful to the environment. Supercritical water desalination is employed here as a means of using the brine to extract more fresh water and eliminate this environmentally toxic output. Wave energy is integrated with reverse osmosis to provide direct seawater pressurization for the first stage in the process. This wave energy converter converts the motion of waves into pressurized water through a power takeoff unit.
引用
收藏
页数:7
相关论文
共 50 条
  • [31] Model-based zero liquid discharge desalination for land-locked arid/ semi-arid regions in India
    Tyagi, Annu
    Anand, Vikky
    Tewari, Pradip Kumar
    JOURNAL OF WATER PROCESS ENGINEERING, 2024, 65
  • [32] Aquaporin-Based Biomimetic Membranes for Low Energy Water Desalination and Separation Applications
    Azarafza, Abouzar
    Islam, Muhammad Amirul
    Golpazirsorkheh, Yekta
    Efteghar, Irene
    Sadrzadeh, Mohtada
    Kamkar, Milad
    Shojaei, Arsalan Faghih
    Younas, Mohammad
    Aminabhavi, Tejraj M.
    Rezakazemi, Mashallah
    ADVANCED FUNCTIONAL MATERIALS, 2023, 33 (21)
  • [33] FPGA based QDMC control for reverse-osmosis water desalination system
    Li, Dewei
    Yang, Nan
    Niu, Ran
    Qiu, Hai
    Xi, Yugeng
    DESALINATION, 2012, 285 : 83 - 90
  • [34] Renewable energy powered membrane technology: Safe operating window of a brackish water desalination system
    Richards, Bryce S.
    Park, Gavin L.
    Pietzsch, Thomas
    Schaefer, Andrea I.
    JOURNAL OF MEMBRANE SCIENCE, 2014, 468 : 400 - 409
  • [35] Design a novel air to water pressure amplifier powered by PV system for reverse osmosis desalination
    Eltawil, Mohamed A.
    Alamri, Ali M.
    Azam, Mostafa M.
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2022, 160
  • [36] Design and performance simulation comparison of a wave energy-powered and wind-powered modular desalination system
    Cabrera, Pedro
    Folley, Matt
    Carta, Jose Antonio
    DESALINATION, 2021, 514
  • [37] Deep reinforcement learning based coastal seawater desalination via a pitching paddle wave energy converter
    Yin, Xiuxing
    Lei, Meizhen
    DESALINATION, 2022, 543
  • [38] Reduction of water cost for an existing wind-energy-based desalination scheme: A preliminary configuration
    Rosales-Asensio, Enrique
    Borge-Diez, David
    Perez-Hoyos, Ana
    Colmenar-Santos, Antonio
    ENERGY, 2019, 167 : 548 - 560
  • [39] Energy recovery through a water-hydraulic motor in a small-scale RO desalination system
    Kim, Yu Chang
    Ham, Young-Bog
    Park, Sang-Jin
    DESALINATION AND WATER TREATMENT, 2010, 15 (1-3) : 172 - 177
  • [40] Coupling of forward osmosis with desalination technologies: System-scale analysis at the water-energy nexus
    Giagnorio, Mattia
    Morciano, Matteo
    Zhang, Wenjing
    Helix-Nielsen, Claus
    Fasano, Matteo
    Tiraferri, Alberto
    DESALINATION, 2022, 543