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首页> 外文期刊>Chemical Engineering Science >Airlift-driven external-loop tubular photobioreactors for outdoor production of microalgae: assessment of design and performance
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Airlift-driven external-loop tubular photobioreactors for outdoor production of microalgae: assessment of design and performance

机译:气举驱动的用于室外微藻生产的外环管式光生物反应器:设计和性能评估

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A methodology is presented for designingphotobioreactors with tubular loop solar receivers in which the fluid is circulated by an airlift device. The design method effectively combines the relevant aspects of external irradiance-dependent cell growth, oxygen accumulation in the solar loop, oxygen refuoval in the airlift device, and hydrodynamics of the airlift system that determine the flow velocity through the solar receiver. The design approach developed was used to model and build a 0.2 m3 outdoor'photobioreactor. A compact degasser in the airlift section eliminated dead zones and dark zones, while achieving complete separation of gas and liquid. The measured gas-Iiquid hydrodynamics, mass transfer, and culture productivity were consistent with the model predictions. The reactor was tested with continuous culture of the microalga Phaeodactylum tricornutum at variol1s liquid velol;;ities through the tubular solar receiver. A biomass productivity of 1.20gl-'d-1 (or 20gm-2d-') was obtained at a dilution rate of 0.050 h -1.. Solar receiver linear liquid velocitiesofo.50 and 0.35 m s -lgave similar biomass productivities,but the culture collapsed at lower velocities. An adverse effect ofhigh dissolved oxygen concentration on productivity was observed. Oxygen accumulation could be reduced by increasing the liquid velocity and this enhanced the biomass yield.
机译:提出了一种用于设计具有管状回路太阳能接收器的光生物反应器的方法,其中流体通过气举装置进行循环。该设计方法有效地结合了取决于外部辐照度的细胞生长,太阳回路中的氧气积累,气举装置中的氧气回流以及气举系统的流体动力学等相关方面,这些因素决定了通过太阳能接收器的流速。开发的设计方法用于建模和构建0.2 m3的户外光生物反应器。空运部分中的紧凑型脱气机消除了死区和暗区,同时实现了气体和液体的完全分离。测得的气液流体动力学,传质和培养生产力与模型预测一致。通过微管藻类的液体藻类通过管状太阳能接收器连续培养微角藻小角藻进行了测试。在0.050 h -1的稀释速率下,生物量生产率为1.20gl-'d-1(或20gm-2d-')。太阳能接收器的线性液体速度分别为.50和0.35 ms-与相似的生物量生产率相同,但是文化以较低的速度崩溃。观察到高溶解氧浓度对生产率的不利影响。可以通过提高液体流速来减少氧气的积累,从而提高生物量的产量。

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