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首页> 外文期刊>The Science of the Total Environment >Integral microalgae-bacteria model (BICL_ALGAE): Application to wastewater high rate algal ponds
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Integral microalgae-bacteria model (BICL_ALGAE): Application to wastewater high rate algal ponds

机译:整体微藻细菌模型(BICL_ALGAE):在废水高速率藻类池塘中的应用

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摘要

An integral mechanistic model describing the complex interactions in mixed algal-bacterial systems was developed. The model includes crucial physical, chemical and biokinetic processes of microalgae as well as bacteria in wastewater. Carbon-limited microalgae and autotrophic bacteria growth, light attenuation, photorespiration, temperature and pH dependency are some of the new features included. The model named BIO_ALGAE was built using the general formulation and structure of activated sludge models (ASM), and it was implemented in COMSOL Multiphysics~(™) platform. Calibration and validation were conducted with experimental data from two identical pilot HRAPs receiving real wastewater. The model was able to simulate the dynamics of different components in the ponds, and to predict the relative proportion of microalgae (58-68% in average of total suspended solids (TSS) and bacteria (30-20% in average of TSS). Microalgae growth resulted strongly influenced by the light factor f_L(I), decreasing microalgae concentrations from 40 to 60%. Furthermore, reducing the influent organic matter concentration of 50% and 70%, model predictions indicated that microalgae production increased from (8.7 g TSS m~(-2)d~(-1) to 13.5 g TSS m~(-2)d~(-1)) due to the new distribution of particulate components. The proposed model could be an efficient tool for industry to predict the production of microalgae, as well as to design and optimize HRAPs.
机译:建立了描述混合藻-细菌系统中复杂相互作用的完整机理模型。该模型包括微藻以及废水中细菌的关键物理,化学和生物动力学过程。碳限制的微藻类和自养细菌的生长,光衰减,光呼吸,温度和pH依赖性是其中的一些新功能。使用活性污泥模型(ASM)的一般公式和结构构建了名为BIO_ALGAE的模型,并在COMSOL Multiphysics〜™平台中实现了该模型。使用来自接收实际废水的两个相同的试点HRAP的实验数据进行校准和验证。该模型能够模拟池塘中不同成分的动态,并预测微藻的相对比例(总悬浮固体(TSS)和细菌的平均比例为58-68%,TSS平均为30-20%)。微藻的生长受到光因子f_L(I)的强烈影响,使微藻浓度从40%降低到60%,此外,将进水有机物浓度降低50%和70%,模型预测表明微藻产量从(8.7 g TSS)增加m〜(-2)d〜(-1)至13.5 g TSS m〜(-2)d〜(-1)),该模型可以为工业预测提供有效的工具微藻的生产以及设计和优化HRAP。

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  • 来源
    《The Science of the Total Environment》 |2017年第1期|646-657|共12页
  • 作者单位

    GEMMA - Croup of Environmental Engineering and Microbiology, Department of Civil and Environmental Engineering. Universitat Politecnica de Catalunya - BarcelonaTech, c/Jordi Girona, 1-3, Building D1. E-08034 Barcelona, Spain;

    Civil and Environmental Engineering Department, California Polytechnic State University, San Luis Obispo, CA 93407, United States;

    Civil and Environmental Engineering Department, California Polytechnic State University, San Luis Obispo, CA 93407, United States;

    GEMMA - Croup of Environmental Engineering and Microbiology, Department of Civil and Environmental Engineering. Universitat Politecnica de Catalunya - BarcelonaTech, c/Jordi Girona, 1-3, Building D1. E-08034 Barcelona, Spain;

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