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Enzyme Transmission during Crossflow Filtration of Yeast Suspensions Using Gas/Liquid Two-Phase Flows

机译:使用气/液两相流的酵母悬浮液的交叉流过滤期间酶传输

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The optimal conditions for recovery of an enzyme were determined using gas/liquid two-phase flows. When filtering the enzyme-only solution under single-phase flow conditions, severe fouling occurred. This fouling was manifest as a decline in flux to less than 2% of the initial water flux and a decline in protein concentration in the permeate to 30% of its initial value, during a five-hour filtration period. When yeast cells were added under the same experimental conditions, enzyme transmission was maintained at 100% for the five-hour period and the enzyme mass flux was twofold higher. During gas-sparged microflltration of the enzyme/yeast mixture in a permeate-recycling mode at the same liquid flow rate, gas/liquid slug flow strongly decreased the transmission of the enzyme (70% decrease), even though the permeate flux was improved (140% improvement). As a result, the mass flux of the enzyme was significantly reduced. However, with a bubble flow pattern, the permeate flux was 1.5 times higher and the transmission was maintained at a high level. The enzyme mass flux was then 25% higher when compared to single-phase flow filtration conditions. During diafiltration experiments with a bubble flow pattern, a 13% higher enzyme recovery was achieved.
机译:使用气体/液体两相流测定回收酶的最佳条件。在单相流动条件下过滤仅酶解决方案时,发生严重的污垢。在五小时过滤期间,这种污垢表现为磁通量下降至少于初始水通量的蛋白质浓度下降至其初始值的30%。当在相同的实验条件下加入酵母细胞时,酶传播保持在100%的五小时内,酶质量助熔剂更高。在以相同的液体流速的渗透 - 再循环模式下酶/酵母混合物的气体捕获微型液体,即使渗透通量改善,气/液体槽流量强烈降低酶的速度(70%降低)( 140%的改进)。结果,酶的质量通量显着降低。然而,通过气泡流动模式,渗透通量越高1.5倍,并且透射率保持在高水平。与单相流过滤条件相比,酶质量助熔剂较高25%。在用气泡流动模式的渗滤实验期间,实现了13%的酶回收率。

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