Reverse osmosis and osmotic power generation with isobaric energy recovery

被引:6
|
作者
Stover, Richard L. [1 ]
Martin, Jeremy [1 ]
机构
[1] Energy Recovery Inc, San Leandro, CA USA
关键词
Reverse osmosis; Osmotic power; Energy recovery devices; Forward osmosis; Pressure retarded osmosis; PRESSURE-RETARDED OSMOSIS;
D O I
10.5004/dwt.2010.1757
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Current state-of-the-art seawater reverse osmosis processes require isobaric energy recovery devices to minimize energy consumption and total operating costs. These "pressure-equalizing" devices efficiently recover pressure energy from the reject concentrate stream of the reverse osmosis process. The use of isobaric energy recovery devices in SWRO processes provides a great deal of flexibility in the design and operation of the plant. In a properly designed application, membrane flux and recovery can be dynamically changed without a significant total process energy efficiency penalty. The high efficiency and flexibility of isobaric energy recovery devices makes them logical solutions for other membrane processes such as brackish RO systems and pressure retarded osmosis. Pressure retarded osmosis, sometimes referred to as osmotic power, is a membrane process for generating energy from the osmotic potential between two feed streams such as seawater and fresh water. The process, invented by Sidney Loeb in 1973, will see its first full-scale prototype within 2009. Isobaric ERDs play a pivotal roll in making the pressure retarded osmosis process economically viable. This paper will illustrate how isobaric energy recovery devices work and chart the technological advances they have made through the years. The application of the isobaric ERDs, and specifically the ERI PX device, to reverse osmosis and pressure retarded osmosis processes will be discussed in detail.
引用
收藏
页码:267 / 270
页数:4
相关论文
共 50 条
  • [41] Thermodynamic and thermoeconomic analyses of seawater reverse osmosis desalination plant with energy recovery
    El-Emam, Rami Salah
    Dincer, Ibrahim
    Energy, 2014, 64 : 154 - 163
  • [42] Modified operation of a small scale energy recovery device for seawater reverse osmosis
    Bermudez-Contreras, Alfredo
    Thomson, Murray
    DESALINATION AND WATER TREATMENT, 2010, 13 (1-3) : 195 - 202
  • [43] Renewable energy power reverse osmosis system for seawater desalination plant
    Mahmoud, Mai Ahmed Mohamed
    DESALINATION AND WATER TREATMENT, 2020, 193 : 48 - 56
  • [44] THE USE OF PELTON WHEEL TURBINES FOR ENERGY RECOVERY IN REVERSE-OSMOSIS SYSTEMS
    WILSON, W
    GRUENDISCH, A
    CALDERPOTTS, I
    DESALINATION, 1987, 65 (1-3) : 231 - 240
  • [45] Feed salinity and cost-effectiveness of energy recovery in reverse osmosis desalination
    Mandil, MA
    Farag, HA
    Naim, MM
    Attia, MK
    DESALINATION, 1998, 120 (1-2) : 89 - 94
  • [46] Thermodynamic and thermoeconomic analyses of seawater reverse osmosis desalination plant with energy recovery
    El-Emam, Rami Salah
    Dincer, Ibrahim
    Energy, 2014, 64 : 154 - 163
  • [47] Thermodynamic and thermoeconomic analyses of seawater reverse osmosis desalination plant with energy recovery
    El-Emam, Rami Salah
    Dincer, Ibrahim
    ENERGY, 2014, 64 : 154 - 163
  • [48] Energy consumption and energy efficiency of high-pressure reverse osmosis: Effect of water recovery, number of stages, and energy recovery
    Touati, Khaled
    Mulligan, Catherine N.
    APPLIED ENERGY, 2025, 382
  • [49] The effect of energy recovery device and feed flow rate on the energy efficiency of reverse osmosis process
    Alanezi, Adnan Alhathal
    Altaee, Ali
    Sharif, Adel O.
    CHEMICAL ENGINEERING RESEARCH & DESIGN, 2020, 158 : 12 - 23
  • [50] Enhanced energy recovery using a cascaded reverse electrodialysis stack for salinity gradient power generation
    Nam, Joo-Youn
    Jwa, Eunjin
    Eom, Hyunji
    Kim, Hanki
    Hwang, Kyosik
    Jeong, Namjo
    WATER RESEARCH, 2021, 200