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Carbon dioxide fixation and biomass production from combustion flue gas using energy microalgae

机译:利用能量微藻类从燃烧烟气中固定二氧化碳和生产生物质

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Algae-based bioenergy has been regarded as the next generation of renewable energy. To fix CO2 from flue gas and harvest algal biomass for energy conversion, three energy microalgae, Chlorella sp., Isochlysis sp. and Amphidinium carterae, were investigated in 1-L bubble column photobioreactors with an aeration of 15% CO2 at the flue-gas level. According to the potential on CO2 fixation and biomass production, Chlorella sp. was selected as the dominant species due to its superiority to the other species, with a specific growth rate of 0.328 d(-1), a biomass production rate of 0.192 gL(-1) d(-1) and a CO2 fixation rate of 0.353 gL(-1) d(-1). Furthermore, Chlorella sp. was cultured under varied physicochemical parameters, including CO2 concentrations, aeration rates and toxic compounds (SO2, NO and Hg2+) to assess its performances. The maximum specific growth rate, biomass production rate and CO2 fixation rate were found to be 0372 d(-1), 0.268 gL(-1) d(-1) and 0.492 gL(-1) d(-1) at a CO2 concentration of 10%; 0.375 d(-1), 0.274 gL(-1) d(-1) and 0.503 gL(-1) d(-1) at an aeration rate of 0.1 vvm; and 0.328 d(-1), 0.192 gL(-1) d(-1) and 0.353 gL(-1) d(-1) in the absence of toxic compounds, respectively. The results provide a basis for microalgal-based CO2 emission reduction and bioenergy utilization in pilot-scale applications. (C) 2015 Elsevier Ltd. All rights reserved.
机译:基于藻类的生物能源已被视为下一代可再生能源。为了固定烟气中的CO2并收集藻类生物质以进行能量转换,使用了三种能量微藻,分别是小球藻(Chlorella sp。),等渗线(Isochlysis)。在1-L鼓泡塔光生物反应器中对烟灰缸和角叉两栖动物进行了研究,在烟气中通气量为15%CO2。根据潜在的二氧化碳固定和生物质生产,小球藻。被选为优势种,因为它具有比其他种高的优势,比生长速率为0.328 d(-1),生物量的产生率为0.192 gL(​​-1)d(-1),CO2的固定速率为。 0.353 gL(-1)d(-1)。此外,小球藻。在各种物理化学参数(包括CO2浓度,通气速率和有毒化合物(SO2,NO和Hg2 +))下进行培养,以评估其性能。发现在CO2下的最大比生长速率,生物量生产率和CO2固定率分别为0372 d(-1),0.268 gL(-1)d(-1)和0.492 gL(​​-1)d(-1)浓度为10%;曝气速率为0.1 vvm时为0.375 d(-1),0.274 gL(-1)d(-1)和0.503 gL(-1)d(-1);和0.328 d(-1),0.192 gL(​​-1)d(-1)和0.353 gL(-1)d(-1),分别在无毒化合物的情况下。该结果为中试规模应用中基于微藻的CO2排放减少和生物能源利用提供了基础。 (C)2015 Elsevier Ltd.保留所有权利。

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