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Integrated biorefineries: CO2 utilization for maximum biomass conversion

机译:综合生物精炼厂:利用CO2以最大程度地转化生物质

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Biomass-derived fuels can contribute to energy sustainability through diversifying energy supply and mitigating carbon emissions. However, the biomass chemistry poses an important challenge, i.e., the effective hydrogen to carbon ratio is significantly lower for biomass compared to petroleum, and biomass conversion technologies produce a large amount of carbon dioxide by-product. Therefore, CO2 capture and utilization will be an indispensable element of future biorefineries. The present research explores the economic feasibility and environmental performance of utilizing CO2 from biomass pyrolysis for biodiesel production via microalgae. The results suggest that it is possible to increase biomass to fuel conversion from 55% to 73%. In addition, if subsidies and fuel taxes are included in the economic analysis, the extra produced fuel can compensate the cost of CO2 utilization, and is competitive with petroleum-derived fuels. Finally, the proposed integrated refinery shows promise as CO2 in the flue gas is reduced from 45% of total input carbon to 6% with another 19% in biomass residue waste streams. (C) 2015 Elsevier Ltd. All rights reserved.
机译:生物质燃料可以通过使能源供应多样化和减少碳排放来促进能源可持续性。然而,生物质化学构成了重要的挑战,即,与石油相比,生物质的有效氢碳比明显更低,并且生物质转化技术产生大量的二氧化碳副产物。因此,二氧化碳的捕获和利用将是未来生物精炼厂必不可少的要素。本研究探索了利用生物质热解产生的二氧化碳通过微藻生产生物柴油的经济可行性和环境性能。结果表明可以将生物质燃料转化率从55%提高到73%。此外,如果将补贴和燃油税包括在经济分析中,则额外产生的燃料可以补偿CO2的利用成本,并且与石油衍生的燃料相比具有竞争力。最后,拟议中的综合精炼厂显示出有望将烟道气中的二氧化碳从总输入碳的45%减少到6%,而在生物质残渣废物流中再减少19%。 (C)2015 Elsevier Ltd.保留所有权利。

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