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Heavy metal bioremediation of coal-fired flue gas using microalgae under different CO_2 concentrations

机译:不同CO_2浓度下微藻对煤烟气的重金属生物修复

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Sustainability assessments have revealed that integration of CO2 from coal-fired flue gas with microalgae cultivation systems could reduce greenhouse gas emissions. The technical goal of this integration is to utilize exhaust from coal power plants to enhance microalgae cultivation processes by capturing and recycling of carbon dioxide from a more toxic to a less toxic form. However, heavy metals are also introduced along with CO2 to the cultivation system which could contaminate biomass and have deleterious effects on products derived from such systems. The present study aimed at shedding some light on capability of microalgae to sustain their diversity and propagate them under different CO2 concentrations from coal-fired flue gas. Mixed microalgal culture was grown in nutrient rich medium and heavy metals (Al, Cu, Fe, Mn and Zn) are expected to be introduced from flue gas. Three concentrations (1%, 3% and 5.5%) of CO2 were evaluated (reference concentrations from flue gas). Comparative studies were carried out by flue gas and control systems in photobioreactors. Under the 3% CO2 (30% flue gas), the highest fraction of B, Mn and Zn were found to be internalized by the cells (46.8 +/- 9.45 gL-1, 253.66 +/- 40.62 gL-1 and 355.5 +/- 50.69 gL-1 respectively) during their cultivation period into biomass. Hence, microalgae may offer solution to two major challenges: providing potential biofuel feedstock for energy security and reducing heavy metal pollution to the air.
机译:可持续性评估表明,将燃煤烟道气中的二氧化碳与微藻培养系统整合在一起可以减少温室气体的排放。这种整合的技术目标是利用燃煤发电厂的废气,通过捕获和回收从毒性更大到毒性较小的二氧化碳来增强微藻的培养过程。但是,重金属也与CO2一起引入到培养系统中,这可能会污染生物质,并对衍生自此类系统的产品产生有害影响。本研究旨在揭示微藻维持其多样性并在燃煤烟气中以不同的CO2浓度进行繁殖的能力。混合微藻培养物生长在营养丰富的培养基中,预计将从烟气中引入重金属(Al,Cu,Fe,Mn和Zn)。评估了三种浓度的CO2(分别为1%,3%和5.5%)(来自烟气的参考浓度)。烟气和控制系统在光生物反应器中进行了比较研究。在3%的CO2(30%的烟气)下,发现B,Mn和Zn的最高含量被细胞内化(46.8 +/- 9.45 gL-1、253.66 +/- 40.62 gL-1和355.5 + (分别为50.69 gL-1)转化为生物质。因此,微藻可能为两个主要挑战提供解决方案:为能源安全提供潜在的生物燃料原料,并减少空气中的重金属污染。

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