School of Environmental Science and Engineering, Gwangju Institute of Science and Technology, Gwangju 500-712, Republic of Korea.
Department of Chemical Engineering, Kyung Hee University, Gyeonggi-do 446-701, Republic of Korea.
Bioresour Technol. 2014 Oct;169:637-643. doi: 10.1016/j.biortech.2014.07.026. Epub 2014 Jul 18.
This study proposed a submerged hollow fibre membrane bioreactor (HFMBR) system capable of achieving high carbon monoxide (CO) mass transfer for applications in microbial synthesis gas conversion systems. Hydrophobic polyvinylidene fluoride (PVDF) membrane fibres were used to fabricate a membrane module, which was used for pressurising CO in water phase. Pressure through the hollow fibre lumen (P) and membrane surface area per unit working volume of the liquid (A(S)/V(L)) were used as controllable parameters to determine gas-liquid volumetric mass transfer coefficient (k(L)a) values. We found a k(L)a of 135.72 h(-1) when P was 93.76 kPa and AS/VL was fixed at 27.5m(-1). A higher k(L)a of 155.16 h(-1) was achieved by increasing AS/VL to 62.5m(-1) at a lower P of 37.23 kPa. Practicality of HFMBR to support microbial growth and organic product formation was assessed by CO/CO2 fermentation using Eubacterium limosum KIST612.
本研究提出了一种浸没式中空纤维膜生物反应器(HFMBR)系统,能够实现高一氧化碳(CO)传质,适用于微生物合成气转化系统。采用疏水性聚偏氟乙烯(PVDF)膜纤维制造膜组件,用于在水相中加压 CO。通过中空纤维内腔的压力(P)和单位工作液体体积的膜表面积(A(S)/V(L))被用作控制参数,以确定气液体积传质系数(k(L)a)值。当 P 为 93.76 kPa 且 AS/VL 固定在 27.5m(-1)时,我们发现 k(L)a 为 135.72 h(-1)。通过将 AS/VL 增加到 62.5m(-1),同时将 P 降低到 37.23 kPa,可以获得更高的 k(L)a,达到 155.16 h(-1)。通过使用 Eubacterium limosum KIST612 进行 CO/CO2 发酵,评估了 HFMBR 对微生物生长和有机产物形成的实用性。