• Title/Summary/Keyword: Hollow-fiber Membrane

Search Result 425, Processing Time 0.023 seconds

Performance of a Hollow Fiber Membrane Bioreactor for the Treatment of Gaseous Toluene (중공사막 결합형 생물반응기를 이용한 기체상 톨루엔 제거 특성 검토)

  • Son, Young-Gyu;Kim, Yong-Sik;Khim, Jee-Hyeong;Song, Ji-Hyeon
    • Journal of Korean Society of Environmental Engineers
    • /
    • v.27 no.8
    • /
    • pp.886-891
    • /
    • 2005
  • In this study, a novel bioreactor system using a submerged hollow fiber membrane module (so called hollow fiber membrane bioreactor, HFMB) was applied to investigate feasibility and biodegradation capacity of the system for the treatment of gaseous toluene. First an abiotic test was conducted to determine the mass transfer coefficient, showing the value was similar to that obtained from a diffuser system using fine bubbles. Second, in the presence of toluene-degrading microorganisms, the HFMB was operated at different inlet toluene loading rates of 50, 100, $500\;g/m^3/hr$, and overall removal efficiencies were maintained in the range of $70{\sim}80%$. In addition, elimination capacities(EC) were increased up to $800\;g/m^3/hr$, which was substantially higher than maximum ECs for toluene reported in the biofiltration literature. Consequently, the HFMB was considered as an alternative method over other conventional VOC-treating technologies.

Separation and Simulation for Carbon Dioxide from Flaring Gas Using Polysulfone Hollow Fiber Membrane (폴리술폰 중공사막을 이용한 Flaring Gas에서의 이산화탄소 분리 및 전산모사)

  • Lim, Joo Hwan;Lee, Chung Seop;Kim, Hack Eun;Bae, Myong Won;Mo, Yong Gi;Ha, Seong Yong
    • Membrane Journal
    • /
    • v.25 no.2
    • /
    • pp.99-106
    • /
    • 2015
  • Polysulfone (PSF) hollow fiber membrane was prepared to separate $CO_2$ from the flaring gas. Fabricated PSF membrane system was fulfilled under 1 stage, 2 stage membrane process and simulation in order to confirm the operating condition for 99% of $CH_4$ and 1% of $CO_2$ concentration. Also, $25Nm^3/h$ bench scale $CO_2$ separation membrane system was operated under 1% of $CO_2$ concentration during 100 hr, and $CH_4$ recovery ratio was 98%.

A Study of Prediction of Gas Transfer rate in Intravascular Lung Assist Device (혈관 내 폐 보조장치에서의 산소전달속도 예측에 관한 연구)

  • 김기범;나도춘;김성종;정인수;정경락;권대규
    • Membrane Journal
    • /
    • v.14 no.1
    • /
    • pp.18-25
    • /
    • 2004
  • The purpose of this paper was to find out the proper equation to predict the gas transfer rate for designing intravenous artificial lung assist device. The prepared hollow fiber modules were examined under various experimental conditions through experimental modeling before inserted the artificial lung assist d $\varepsilon$ vice into as venous. As a result, we can estimate the gas transfer as a function of the packing density. The gas transfer obtained from the experiment was similar to that from the equation, confirming the usefulness equation. Therefore, we can conclude the gas transfer of the intravenous artificial lung assist device as a function of the packing density, and this functions are very useful for predicting the gas transfer of the intravenous artificial lung assist device.

The Effect of the Making Methods of Hollow Fiber Active Layer on Performance for Nanofiltration Helical Module (Nanofiltration Helical Module에서 Hollow Fiber Active Layer의 성형법에 따른 성능변화에 관한 연구)

  • ;Belfort, Georges
    • Membrane Journal
    • /
    • v.7 no.2
    • /
    • pp.95-109
    • /
    • 1997
  • The effects of varing axial flow rate and solute concentration on the performance of both module sets made by different methods for active layer formation were compared and determined. All experiments were conducted simultaneously at the same transmembrane pressure and energy consumption per membrane area. In every comparative run between the presence of Dean vortices in a helical module and absence of such vortices in a linear module from the first module set, the solution fluxes and permeabilities were higher, and in some cases substantially higher for the vortex flow. With pure water, the permeabilities of both modules from the second module set were different and the flux in a linear module was 150% higher than in the helical module. This explained both module membranes were totally different.

  • PDF

Simulation on Concentration of CH4 Using Hollow Fiber Membrane Permeator with Countercurrent Flow (향류 흐름 중공사 분리막의 메탄 농축 수치해석)

  • Seo, Yeonhee;Lee, Seungmin;Park, Sungeun;Jung, Woojin;Kim, Jeonghoon;Lee, Yongtaek
    • Membrane Journal
    • /
    • v.24 no.3
    • /
    • pp.223-230
    • /
    • 2014
  • A numerical analysis was performed for concentration of methane from the biogas using a polysulfone hollow fiber membrane permeator. Governing equations were derived for the countercurrent flow and numerically solved by using the Compaq Visual Fortran 6.6 software. When the methane mole fraction of feed was 0.5, the mole fraction of retentate increased from 0.5 to 0.8; the normalized retentate flow rate to the feed flow rate decreased from 1.0 to 0.57 at the given typical operating condition as the feed gas flowed from the inlet to the outlet of the membrane. As the methane mole fraction of feed was changed to 0.9, the methane mole fraction of retentate became 0.93 and the normalized retentate flow rate was changed to 0.91. When the pressure ratio of the permeate to the feed was varied from 0.33 to 0.17, there was a little difference in the methane mole fraction of retentate for the low stage cut of 0.1, whereas there was an significant increment for the high stage cut of 0.3. The retentate methane mole fraction remained relatively high despite the change of a stage cut as the area of the membrane increased from $1.14m^2$ to $2.57m^2$.

Study on the Gas Separation of Carbon Molecular Sieve (CMS) Membrane for Recovering the Perfluorocompound Gases from the Electronics Industry (전자산업 배출 불화가스 회수를 위한 탄소분자체 분리막의 기체분리 연구)

  • Jeong, Su Jung;Lim, Joo Hwan;Han, Sang Hoon;Koh, Hyung Chul;Ha, Seong Yong
    • Membrane Journal
    • /
    • v.26 no.3
    • /
    • pp.220-228
    • /
    • 2016
  • Carbon molecular sieve (CMS) hollow fiber membranes were prepared by carbonizing a polyimide precursor manufactured by non-solvent induced phase separation process. Gas separation performance of CMS hollow fiber membrane was investigated on the effect of three carbonization conditions. CMS membrane with the highest gas separation performance was obtained at the pyrolysis temperature of $250-450^{\circ}C$: $N_2$, $SF_6$, and $CF_4$ permeance were 20, 0.32, 0.48 GPU, respectively, and $N_2/SF_6$ and $N_2/CF_4$ selectivities were 62 and 42, respectively. In the $SF_6/CF_4/N_2$ mixture gas test, when the stage cut was 0.2, the recovery ratio of $SF_6$ and $CF_4$ was over 99% and 98%. $SF_6$ concentration ratio was 4.5 times higher than the $SF_6$ concentration at the feed side. From the results, it was concluded that CMS membrane was one of the promising membranes for recovery Perfluorocompound gases process.

Numerical Study on Flow Characteristics of Hollow Fiber Membrane Module for Water Recovery Cooling Tower (수분회수 냉각탑에 적용되는 중공사막 모듈의 유동특성에 관한 수치해석적 연구)

  • Park, Sang Cheol;Park, Hyun Seol;Lee, Hyung Keun;Shin, Weon Gyu
    • Transactions of the Korean Society of Mechanical Engineers B
    • /
    • v.41 no.8
    • /
    • pp.537-544
    • /
    • 2017
  • The purpose of this study is to analyze the flow characteristics when a staggered hollow fiber membrane module is modeled as a porous medium. The pressure-velocity equation was used for modeling the porous medium, using pressure drop data. In terms of flow characteristics, we compared the case of the "porous medium" when the membrane module was modeled as a porous medium with the case of the "membrane module" when considering the original shape of the membrane module. The difference in pressure drop between the "porous medium" and "membrane module" was less than 0.6%. However, the maximum flow velocity and mean turbulent kinetic energy of the "porous medium" were 2.5 and 95 times larger than those of the "membrane module," respectively. Our results indicate that modeling the hollow fiber module as a porous medium is useful for predicting pressure drop, but not sufficient for predicting the maximum flow velocity and mean turbulent kinetic energy.

Development of PTFE Membrane Bio-reactor (MBR) for Integrating Wastewater Reclamation and Rainwater Harvesting (PTFE막을 이용한 빗물 중수 통합형 MBR 시스템 개발 및 성능 평가)

  • Lee, Taeseop;Kim, Youngjin;Ham, Sangwoo;Hong, Seungkwan;Park, Byungjoo;Shin, Yongil;Jung, Insik
    • Journal of Korean Society on Water Environment
    • /
    • v.28 no.2
    • /
    • pp.269-276
    • /
    • 2012
  • The surface characteristics and performance of PTFE (polytetrafluoroethylene) hollow fiber membranes have been systematically investigated at lab- and pilot-scale to assess their application to membrane-bioreactor, particularly for integrating wastewater reclamation and rainwater harvesting. The PTFE membrane expressed some surface features, such as hydrophobicity, which might enhance membrane fouling. However, lab-scale performance and cleaning experiments under various conditions demonstrated that the PTFE membrane could produce the desirable water flux with good cleaning efficiency, implying easy operation and maintenance due to superior chemical resistance of PTFE membranes. Most of effluent water qualities were met with Korean standard for discharge and reuse, except color. Color level was further reduced by blending with rainwater at 75:25 ratio. Based on the lab-scale experimental results, the pilot plant was designed and operated. Pilot operation clearly showed sTable performance with satisfactory water quality, suggesting that PTFE membrane could be applied for decentralized MBR integrated with rainwater use.

Application of Membranes for Biological Waste Gas Treatment Processes (생물학적 폐가스 처리공정 내 멤브레인 활용)

  • Lee, Sang-hun
    • Membrane Journal
    • /
    • v.31 no.5
    • /
    • pp.327-332
    • /
    • 2021
  • The use of membranes for MBRWG (Membrane Bioreactor for Waste Gas) treatment can provide highly selective separation of a waste gas stream followed by effective biological removal. MBRWG have several potential advantages, among which the most distinctive one is separation of gas and liquid phases at each side of membrane potentially allowing the optimal biomass control toward effective biodegradation of target gases as well as biofilm activation. This advantage becomes especially favorable for removal of hydrophobic toxic gases, such as xylene, by MBRWG systems, because the mass transfer, the toxicity, and thereby the biodegradation of hydrophobic gas treatment requires sensitive handling of liquid stream and water control near biofilm. Among various membranes for MBRWG treatment, PDMS-hollow fiber membranes provide the high gas mass transfer. Despite lower specific surface areas, capillary type membranes are also applied current MBRWG studies. In addition to the main application of membranes as biofilm supporter in MBRWG systems, there can be another application of membranes in a posterior process for removal of residual gases or dusts emitted from conventional biological waste gas treatment processes.

A Study of Design of Hollow Fiber Membrane Modules for using in Artificial Lung by the PZT Actuator

  • Kim, Gi-Beum;Kim, Seong-Jong;Hong, Chul-Un;Lee, Yong-Chul;Kim, Min-Ho
    • Journal of Biomedical Engineering Research
    • /
    • v.27 no.4
    • /
    • pp.143-153
    • /
    • 2006
  • The purpose of this work was to assess and quantify the beneficial effects of gas exchange, while testingto the various frequencies of the sinusoidal wave that was excited by the PZT actuator, for patients suffering from acute respiratory distress syndrome (ARDS) or chronic respiratory problems. Also, this paper considered a simulator to design a hollow type artificial lung, and a mathematical model was used to predict a behavior of blood. This simulation was carried out according to the Montecarno's simulation method, anda fourth order Runge-Kutta method was used to solve the equation. The experimental design and procedure are then applied to the construction of a new device to assess the effectiveness of the membrane vibrations. As a result, the vibration method is very effective in the increase of gas transport. The gas exchange efficiency for the vibrating intravascular lung assist device can be increased by emphasizing the following design features: consistent and reproducible fiber geometry, and most importantly, an active means of enhancing convective mixing of water around the hollow fiber membranes. The experimental results showed the effective performance of the vibrating intravascular lung assist device. Also, we concluded that important design parameters were blood flow rates, fiber outer diameter and oxygen pressure drop. Based on the present results, it was believed that the optimal level of blood flow rates was 200$cm^3$/min.