Design of a Stacked-layer Tubular Photobioreactor for Microalgae Cultivation

Varit Kunopagarnwong, T. Srinophakun, Theerawat Sritaweewat, Y. Chisti
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Abstract

A tubular photobioreactor is one of the most effective methods of microalgae cultivation because of the high solar receiver area and better biomass productivity. However, the pressure drop along the tubular solar receiver induces a relatively high dead zone. An optimal design is necessary to maximize biomass productivity. In this article, the proposed model can reduce the dead zone by up to 15% under a pressure drop of 106 Pa. To optimize the area requirement, three configurations with different stacking angles of 30, 45, and 60°, are simulated. The optimal 60° stacked-layer model is then connected to an airlift device to demonstrate the complete system. This model can circulate seawater inside the reactor at an average velocity of 0.188 m/s with 0.07 m/s of air inlet velocity. The radial flow can force the microalgae from the inner part of the tube to the outer part and back again throughout the entire stacked section. This turbulence will enhance biomass productivity because the microalgae are moved from the darker interior of the tube to the periphery where they are exposed to solar radiation. The optimal stacked-layer tubular photobioreactor has a slope of 60° with four stacked layers. This modification promotes the circulation of microalgae in both axial and radial directions.
微藻培养叠层管状光生物反应器的设计
管式光生物反应器因其太阳能接收面积大、生物量产量高而成为最有效的微藻培养方法之一。然而,沿管状太阳能接收器的压降诱导了一个相对较高的死区。优化设计是最大化生物质生产力的必要条件。在本文中,所提出的模型可以在106 Pa的压降下减少高达15%的死区。为了优化面积需求,模拟了30°、45°和60°不同堆叠角的三种配置。然后将最佳的60°堆叠层模型连接到气举设备以演示完整的系统。该模型能以0.188 m/s的平均速度在反应器内循环海水,进气速度为0.07 m/s。径向流可以迫使微藻在整个堆积截面中从管的内部到外部再返回。这种湍流将提高生物量生产力,因为微藻从较暗的管内移动到外围,在那里它们暴露在太阳辐射下。最优的叠层管状光生物反应器有4层叠层,斜率为60°。这种修饰促进了微藻在轴向和径向的循环。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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