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首页> 外文期刊>Biomass & bioenergy >Determining the optimal cultivation strategy for microalgae for biodiesel production using flow cytometric monitoring and mathematical modeling
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Determining the optimal cultivation strategy for microalgae for biodiesel production using flow cytometric monitoring and mathematical modeling

机译:使用流式细胞仪监测和数学建模确定用于生物柴油生产的微藻的最佳培养策略

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摘要

Trade-off between growth and lipid accumulation is one of the main issues in cultivation of microalgae for biodiesel production. Advantages of two-phase cultivation systems, with growth and lipid accumulation occurring in separate tanks, have been proposed. However, because the two-phase cultivation system requires more cultivation space and complex operation procedures compared to a single tank system, its advantage for lipid production is still uncertain. Furthermore, previous studies have not explicitly determined an optimal cultivation schedule, defining timing of the transfer of cells to the second tank and harvesting in the second tank. We therefore developed a model for lipid accumulation in the microalgae Chlorella sorokiniana to compare theoretical maxima of lipid productivity in single- and two-tank cultivation systems. We first established a monitoring method of growth and lipid accumulation using a flow cytometer, and then modeled the data by a logistic equation to derive a model for lipid accumulation. This model was used to theoretically optimize cultivation methods and harvest times to maximize lipid productivity in four different cultivation systems: single- or two-tank setups, with batch or fed-batch cultures, respectively. Results theoretically demonstrated that a two-phase cultivation system is slightly more productive than a single-tank one. The mathematical model analysis indicates strategies for further improving the productivity of each cultivation system without any additional investments in cultivation systems (i.e., nutrient, light, CO2). Our model analysis approach provides a theoretical basis for determining an optimal cultivation strategy of microalgae and identifies experimental data helpful for further improvement of cultivation systems.
机译:生长和脂质积累之间的权衡是用于生物柴油生产的微藻培养的主要问题之一。已经提出了两相培养系统的优点,其中生长和脂质积累发生在分开的罐中。但是,由于与单罐系统相比,两阶段培养系统需要更多的培养空间和复杂的操作程序,因此其在脂质生产方面的优势仍然不确定。此外,先前的研究还没有明确确定最佳的培养时间表,也没有确定将细胞转移到第二槽的时间以及在第二槽中收获的时间。因此,我们开发了微藻小球藻小球藻脂质积累的模型,以比较单罐和两罐培养系统中脂质生产率的理论最大值。我们首先建立了使用流式细胞仪监测生长和脂质积累的方法,然后通过逻辑方程对数据进行建模,以得出脂质积累的模型。该模型在理论上用于优化培养方法和收获时间,以在四种不同的培养系统中实现脂质生产率的最大化:单罐或两罐设置,分别使用分批或补料分批培养。理论上的结果表明,两阶段耕作系统比单缸耕作系统生产力更高。数学模型分析表明了在不对栽培系统进行任何额外投资(即养分,光照,二氧化碳)的情况下进一步提高每个栽培系统生产力的策略。我们的模型分析方法为确定微藻的最佳栽培策略提供了理论基础,并确定了有助于进一步改善栽培系统的实验数据。

著录项

  • 来源
    《Biomass & bioenergy》 |2018年第10期|24-31|共8页
  • 作者单位

    Osaka Inst Technol, Dept Environm Engn, Asahi Ku, 5-16-1 Ohmiya, Osaka 5358585, Japan;

    Osaka Inst Technol, Dept Environm Engn, Asahi Ku, 5-16-1 Ohmiya, Osaka 5358585, Japan;

    Osaka Inst Technol, Dept Environm Engn, Asahi Ku, 5-16-1 Ohmiya, Osaka 5358585, Japan;

    Osaka Inst Technol, Dept Environm Engn, Asahi Ku, 5-16-1 Ohmiya, Osaka 5358585, Japan;

    Osaka Inst Technol, Dept Environm Engn, Asahi Ku, 5-16-1 Ohmiya, Osaka 5358585, Japan;

    Osaka Inst Technol, Dept Environm Engn, Asahi Ku, 5-16-1 Ohmiya, Osaka 5358585, Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Biofuel; Logistic equation; Optimal cultivation; Simulation model; Triacylglycerols;

    机译:生物燃料Logistic方程最佳栽培模拟模型三酰甘油;

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