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Development and mathematical modeling of an airlift-driven raceway reactor for microalgae cultivation.

机译:开发用于微藻培养的气举驱动滚道反应堆并进行数学建模。

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摘要

A new airlift-driven raceway reactor configuration for microalgae cultivation was developed in this research. A preliminary liquid circulation model was proposed to predict the liquid circulation velocity in the reactor system based on theoretical energy balance. Theoretical analysis of the energy requirements for the traditional paddlewheel--driven raceway reactor and the proposed airlift-driven raceway reactor showed that the mixing energy requirement in a paddlewheel-driven raceway could be reduced by as much as 60--80% with the proposed airlift configuration. Two prototype versions (20 L and 23 L) of the airlift--raceway reactor were fabricated and tested. The feasibility of microalgae cultivation in these prototype airlift-raceway reactors was tested with two model microalgae species, Scenedesmus sp. and Nannochloropsis salina, under a range of CO2 supply rates.;Fresh water microalgae, Scenedesmus sp. were cultivated in the 23-L airlift--driven raceway reactor under artificial lighting and laboratory conditions, in batch and continuous modes. In continuous mode, the maximum volumetric biomass productivity was 0.19 dry g L-1 day-1.;Marine microalgae Nannochloropsis salina were tested in the 20-L and 23-L versions of the airlift--driven raceway reactor under artificial lighting and outdoor sunlight, in batch and continuous modes. In continuous modes, the maximum volumetric biomass productivity were 0.072 dry g L-1 day-1 and 0.077 dry g L-1 day-1 in laboratory and outdoor conditions, respectively.;As a part of this research, a mathematical model for predicting biomass growth in the airlift-raceway design was developed. This model included supply and transfer of CO2 and the synergetic effects of light, CO 2, nitrogen, and temperature. Biomass concentrations predicted by the proposed model with two test species, Nannochloropsis salina and Scenedesmus sp., agreed well with the temporal trend of the experimental data, for both indoor and outdoor conditions, with r 2 ranging from 0.96 to 0.98, p 0.001.;Based on cultivation energy requirements, biomass productivities per unit power input in the proposed reactor configuration under laboratory conditions (0.30 to 0.69 dry g W-1 day-1) were comparable to or better than those reported in the literature for different photobioreactors (0.10 to 0.51 dry g W-1 day-1). Under outdoor conditions, a maximum net energy gain of 9.3 W m-3 was achieved with Nannochloropsis salina based on the energetic value of algal biomass. The maximum CO2 utilization efficiency (33%) demonstrated with the airlift-driven raceway configuration with Scenedesmus sp. (0.25 CO2 to air ratio) under laboratory conditions was comparable to or better than those reported in the literature for various bioreactors (2--35%).
机译:在这项研究中,开发了一种新的由空运驱动的用于微藻培养的跑道反应器配置。提出了一个初步的液体循环模型,根据理论能量平衡来预测反应器系统中的液体循环速度。对传统桨轮驱动滚道反应堆和拟议中的气举驱动滚道反应堆的能量需求进行理论分析,结果表明,采用该建议方案,桨轮驱动滚道反应堆的混合能量需求可降低多达60--80%空运配置。制作并测试了空运-气道反应堆的两个原型版本(20 L和23 L)。在两个原型微藻物种Scenedesmus sp。中测试了在这些原型空运-气道反应堆中微藻培养的可行性。淡水微藻,Scendesmus sp.。在人工照明和实验室条件下以分批和连续模式在23升空运驱动的跑道反应器中进行培养。在连续模式下,最大容积生物量生产力为0.19干克L-1天-1 .;海洋微藻Nannochloropsis盐沼在人工照明和室外的20升和23升空运驱动的跑道反应器中进行了测试分批和连续模式的阳光。在连续模式下,在实验室和室外条件下,最大容积生物量生产力分别为0.072干g L-1天-1和0.077干g L-1天-1。作为本研究的一部分,建立了数学模型来预测开发了气举气道设计中的生物量增长。该模型包括CO2的供应和转移以及光,CO 2,氮和温度的协同作用。在室内和室外条件下,由拟议的模型对两个试验种Nannochloropsis salina和Scenedesmus sp。预测的生物质浓度与实验数据的时间趋势非常吻合,r 2为0.96至0.98,p <0.001。 ;根据栽培能源需求,在实验室条件下(0.30至0.69干g W-1天-1天),在拟议的反应堆配置中,单位输入功率的生物质生产率与不同光生物反应器的文献报道的(0.10)相当或更好。至0.51干克W-1第1天)。在室外条件下,根据藻类生物质的能量值,用拟南芥(Nannochloropsis salina)可获得的最大净能量增益为9.3 W m-3。空运驱动的风道配置(与Scenedesmus sp。一起使用)证明了最高的CO2利用率(33%)。在实验室条件下(二氧化碳与空气之比为0.25)与各种生物反应器的文献报道(2--35%)相当或更好。

著录项

  • 作者

    Ketheesan, Balachandran.;

  • 作者单位

    New Mexico State University.;

  • 授予单位 New Mexico State University.;
  • 学科 Engineering Civil.;Engineering Environmental.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 203 p.
  • 总页数 203
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:42:42

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