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Microalgae Growth and Lipid Production in a Vertical Flat-Plate Photobioreactor: Mechanistic Model Development.

机译:垂直平板光生物反应器中微藻的生长和脂质产生:机械模型开发。

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摘要

Energy production via extracted lipids from microalgae has emerged as a promising alternative to fossil fuels. To optimize microalgae biomass production in photobioreactors, identification of optimal operating conditions, optimization of the microalgae production processes, and quantification of fundamental biochemical responses to the environmental factors are the most significant challenges. These need to be addressed for microalgae biomass productions to become economically feasible. For that, this study developed a mechanistic model of microalgal lipid production with respect to environmental and growth conditions, such as photosynthetic photon flux density (PPFFD), essential nutrients, temperature, and CO2 availability. The main objective of this mechanistic model was to identify nutrient and light conditions that optimize the lipid synthesis in flat-plate photobioreactors with metal halide lamps. In this model, mass balance, quantum mechanics, and soichiometry were taken into account to simulate microalgae biomass production and chemical conversion of light energy into lipids. Mathematical expressions of various fundamental biological and physiological processes governing lipid productivity were determined and integrated into the model to study their complex interactions and to predict biomass, protein, carbohydrate, and lipid productivities. Simulations were compared with actual data for Nannochloropsis salina culture grown the four automated and controlled environment photobioreactors (FACE 4) located at Texas Agrilife Research Center for model calibration and validation.
机译:通过从微藻类中提取脂质来产生能量已成为一种有前途的替代化石燃料的替代品。要优化光生物反应器中微藻生物量的生产,确定最佳操作条件,优化微藻生产过程以及量化对环境因素的基本生化反应是最重大的挑战。为了使微藻生物质生产在经济上可行,需要解决这些问题。为此,本研究针对环境和生长条件(例如光合作用光子通量密度(PPFFD),必需营养素,温度和CO2利用率)建立了微藻脂质生产的机械模型。该机理模型的主要目的是确定营养和光照条件,以优化带有金属卤化物灯的平板光生物反应器中的脂质合成。在该模型中,考虑了质量平衡,量子力学和化学计量,以模拟微藻生物量的产生以及将光能化学转化为脂质的过程。确定了控制脂质生产率的各种基本生物学和生理过程的数学表达式,并将其集成到模型中以研究它们的复杂相互作用并预测生物量,蛋白质,碳水化合物和脂质生产率。将模拟与实际数据进行了比较,得出的纳米拟南芥盐酸盐培养物生长在德克萨斯州Agrilife研究中心的四个自动化和受控环境光生物反应器(FACE 4)中,用于模型校准和验证。

著录项

  • 作者

    Bao, Qilin.;

  • 作者单位

    University of Louisiana at Lafayette.;

  • 授予单位 University of Louisiana at Lafayette.;
  • 学科 Engineering Civil.
  • 学位 M.S.
  • 年度 2013
  • 页码 131 p.
  • 总页数 131
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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