• Title/Summary/Keyword: Reverse osmosis brine

Search Result 13, Processing Time 0.02 seconds

An analysis on power regeneration of hydrostatic pressure exchanger (정수압방식 동력회수장치의 구동동력 절감량 해석)

  • Ham, Y.B.;Choi, J.H.;Jeong, H.S.;Park, S.J.;Park, J.H.;Yun, S.N.
    • Transactions of The Korea Fluid Power Systems Society
    • /
    • v.4 no.3
    • /
    • pp.7-12
    • /
    • 2007
  • This paper presents an energy saving hydrostatic pressure exchanger for sea water desalination equipment. In a reverse osmosis(RO) system for desalinating sea water, more than 70 percent of the supplied sea water, brines which were impassable through RO membrane are bypassed, resulting in high energy losses. In this paper, a hydrostatic pressure exchanger consisting of an embedded water hydraulic piston motor and a water hydraulic piston pump was proposed and investigated in order to recover the energy of the bypassed brines. The pressurized brines are supplied to the embedded water hydraulic piston motor as power sources and the water hydraulic piston pump is driven by the output torque of the embedded water hydraulic piston motor as well as electric motor. Consequently, the energy of the bypassed brines can be recovered. To examine the electric energy saving characteristics of the hydrostatic pressure exchanger, a simulation model was constructed using commercial software and experiments were conducted. Through the results of simulation and experiment, the feasibility of the electric energy saving effect of the proposed hydrostatic pressure exchanger was investigated.

  • PDF

Secondary Concentration Technology of Brine from Membrane Seawater Desalination Process with Electrodialysis (전기투석을 이용한 분리막 담수화 공정 배출 농축수의 이차 농축기술)

  • Moon, Jeong-Ki;Park, Kwang-Seok;Yoo, Yoon-Ki;Yun, Young-Ki
    • Transactions of the KSME C: Technology and Education
    • /
    • v.1 no.1
    • /
    • pp.69-73
    • /
    • 2013
  • This study is about the secondary concentration technology using electrodialysis process for minimum discharge and maximize recovery ratio from seawater desalination by reverse osmosis process. The experimental method adopted the constant voltage driving method and, concentrated/desalination volume capacity ratio changes, voltage changes and electrolyte types. Multi-ion membrane is used, aiming to derive conditions to minimize the TDS concentration of desalination water, to minimize the volumes of secnodary concentraion water and minimizing the power efficiency. The results of this study are as follows. The optimal ratio of concentraion/desalination volume is 1:5, the final TDS concentration of desalinated water is 5.32g/l, the final secnodary concentrated water salinity is 17.07% and electric energy demands of desalinated water is $16.74kWh/m^3$.

Synthesis of Low Concentration of NaOH Solution using $Na^+$ ion in the Concentrated Water from Membrane Separation Process (분리막 농축수에 포함된 Na를 이용한 저농도 NaOH 용액의 합성)

  • Lee, Yoon-Ji;Park, Youn-Jin;Choi, Jeong-Hak;Shin, Won-Sik;Choi, Sang-June;Chon, Uong
    • Korean Chemical Engineering Research
    • /
    • v.49 no.6
    • /
    • pp.810-815
    • /
    • 2011
  • Concentrated water discharged from seawater desalination process contains a high concentration of $Na^+$ ion. Electrolysis was applied to synthesize NaOH solution from the highly concentrated NaCl solution. The effect of various operating parameters of composited laboratory-scale chlor-alkali (CA) membrane cell was investigated. The operating parameters such as membrane types (CIMS and Nafion membranes), pretreatment of the membrane, flow rate (73 mL/min~200 mL/min), initial $Na^+$ ion concentration (1.5 M, 3M and 5 M) and current (1.5A and 2A) were evaluated. It was observed that synthesis efficiency of NaOH solution with CIMS membrane was higher than that with Nafion membrane, but the durability of CIMS membrane on $Cl_2$ gas was poor. The synthesis efficiency of NaOH solution increased with increasing initial $Na^+$ ion concentration and current, while the efficiency decreased with increasing flow rate using Nafion membrane.