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首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Kinetic characteristics and modeling of microalgae Chlorella vulgaris growth and CO2 biofixation considering the coupled effects of light intensity and dissolved inorganic carbon
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Kinetic characteristics and modeling of microalgae Chlorella vulgaris growth and CO2 biofixation considering the coupled effects of light intensity and dissolved inorganic carbon

机译:考虑光强度和溶解的无机碳的耦合效应,微藻小球藻生长和CO2生物固定的动力学特性和建模

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Understanding and optimizing the microalgae growth process is an essential prerequisite for effective CO2 capture using microalgae in photobioreactors. In this study, the kinetic characteristics of microalgae Chlorella vulgaris growth in response to light intensity and dissolved inorganic carbon (DIC) concentration were investigated. The greatest values of maximum biomass concentration (X-max) and maximum specific growth rate (mu(max)) were obtained as 2.303 g L-1 and 0.078 h(-1), respectively, at a light intensity of 120 mu mol m(-2) s(-1) and DIC concentration of 17 mM. Based on the results, mathematical models describing the coupled effects of light intensity and DIC concentration on microalgae growth and CO2 biofixation are proposed. The models are able to predict the temporal evolution of C. vulgaris growth and CO2 biofixation rates from lag to stationary phases. Verification experiments confirmed that the model predictions agreed well with the experimental results. (C) 2016 Elsevier Ltd. All rights reserved.
机译:了解和优化微藻生长过程是在光生物反应器中使用微藻有效捕获CO2的必要前提。在这项研究中,研究了微藻小球藻生长对光强度和溶解的无机碳(DIC)浓度响应的动力学特性。在120μmol m的光强度下,最大生物量浓度(X-max)和最大比生长率(mu(max))的最大值分别为2.303 g L-1和0.078 h(-1)。 (-2)s(-1)和DIC浓度为17 mM。基于这些结果,提出了描述光强度和DIC浓度对微藻生长和CO2生物固定的耦合效应的数学模型。该模型能够预测寻常小球藻的生长和CO2生物固定率从滞后阶段到固定阶段的时间演变。验证实验证实模型预测与实验结果吻合良好。 (C)2016 Elsevier Ltd.保留所有权利。

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