首页> 外文期刊>Archaea: an international microbiological journal >Simulation of a Novel Tubular Microalgae Photobioreactor with Aerated Tangent Inner Tubes: Improvements in Mixing Performance and Flashing-Light Effects
【24h】

Simulation of a Novel Tubular Microalgae Photobioreactor with Aerated Tangent Inner Tubes: Improvements in Mixing Performance and Flashing-Light Effects

机译:具有膨胀切线内管的新型管状微藻光生物反应器的仿真:改善混合性能和闪光效应

获取原文
       

摘要

At present, large-scale and high-efficiency microalgal cultivation is the key to realizing the technology for carbon capture and storage (CCS) and bioresource recovery. Meanwhile, tubular photobioreactors (PBRs) have great potential for microalgal cultivation due to their high productivity. To improve the mixing performance and flashing-light effect, a novel tube PBR with the inner tube tangential to the outer tube was developed, whose radial aeration pores are situated along the length of the inner tube. The direction of aeration, aeration rate, light/dark cycle period (L/D), light-time ratio, average turbulent kinetic energy (TKE), and degree of synergy between the velocity and direction of the light field in the PBR were optimized by a computational fluid dynamics (CFD) simulation and field synergy theory. The results show that a downwards aeration direction of 30° and an aeration rate of 0.7?vvm are the most conducive to reducing the dead zone and improving the light/dark cycle frequency. Compared to the concentric double-tube PBR, the light/dark cycle frequency and light time of the tangent double-tube PBR increased by 78.2% and 36.2% to 1.8?Hz and 47.8%, respectively, and the TKE was enhanced by 48.1% from 54 to 80?cm2·s?2. Meanwhile, field synergy theory can be extended and applied to the design of tubular microalgae PBRs, and the average synergy of the light and velocity gradients across the cross-section increased by 38% to 0.69. The tangential inner tube aeration structure generated symmetrical vertical vortices between the light and dark areas in the PBR, which significantly improved the mixing performance and flashing-light effect. This novel design can provide a more suitable microenvironment for microalgal cultivation and is promising for bioresource recovery applications and improving the yield of microalgae.
机译:目前,大规模和高效的微藻栽培是实现碳捕获和储存技术和生物源恢复技术的关键。同时,由于其高生产率,管状光生物反应器(PBR)具有很大的微藻培养潜力。为了提高混合性能和闪光效果,开发了一种具有内管与外管的内管的新型管PBR,其径向曝气孔沿着内管的长度位于。优化了曝气方向,曝气速率,光/暗循环周期(L / D),光 - 时间比,PBR中光场的速度和方向之间的协同程度和协同作用通过计算流体动力学(CFD)仿真与现场协同理论。结果表明,向下曝气方向为30°和曝气速率为0.7?VVM最有利于减少死区并改善光/暗循环频率。与同心双管PBR相比,切线双管PBR的光/暗循环频率和光时间分别增加了78.2%和36.2%至1.8℃和47.8%,并且TKE提高了48.1%从54到80?cm2·s?2。同时,现场协同理论可以扩展并应用于管状微藻PBR的设计,以及横截面上光和速度梯度的平均协同作用增加了38%至0.69。切向内管曝气结构在PBR中的光线和暗区之间产生对称的垂直涡流,这显着提高了混合性能和闪光效果。这种新颖的设计可以为微藻栽培提供更合适的微环境,并且很有希望用于生物源恢复应用并提高微藻的产率。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号