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Greenhouse gas emissions and energy balance of biodiesel production from microalgae cultivated in photobioreactors in Denmark: a life-cycle modeling

机译:丹麦光生物反应器中种植的微藻产生的温室气体排放和生物柴油生产的能量平衡:生命周期模型

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The current use of fossil fuels is problematic for both environmental and economic reasons and biofuels are regarded as a potential solution to current energy issues. This study analyzes the energy balances and greenhouse gas emissions of 24 different technology scenarios for the production of algal biodiesel from Nannochloropsis cultivated at industrial scale in photobioreactors in Denmark. Both consolidated and pioneering technologies are analyzed focusing on strengths and weaknesses which influence the performance. Based on literature data, energy balance and greenhouse gas emissions are determined in a comparative 'well-to-tank' Life Cycle Assessment against fossil diesel. Use of by-products from biodiesel production such as glycerol obtained from transesterification and anaerobic digestion of residual biomass are included. Different technologies and methods are considered in cultivation stage (freshwater vs. wastewater; synthetic CO2 vs. waste CO2), harvesting stage (flocculation vs. centrifugation) and oil extraction stage (hexane extraction vs. supercritical CO2 extraction). The choices affecting environmental performance of the scenarios are evaluated. Results show that algal biodiesel produced through current conventional technologies has higher energy demand and greenhouse gas emissions than fossil diesel. However, greenhouse gas emissions of algal biodiesel can be significantly reduced through the use of 'waste' flows (nutrients and CO2) but there are still technical difficulties with both microalgae cultivation in wastewater as well as transportation and injection of waste CO2. In any way, a positive energy balance is still far from being achieved. Considerable improvements must be made to develop an environmentally beneficial microalgae biodiesel production on an industrial scale. In particular, different aspects of cultivation need to be enhanced, such as the use of wastewater and CO2-rich flue gas from industrial power plants. (C) 2015 Elsevier Ltd. All rights reserved.
机译:由于环境和经济原因,目前使用化石燃料存在问题,而生物燃料被认为是解决当前能源问题的潜在解决方案。这项研究分析了在丹麦光生物反应器中以工业规模种植的拟南芥生产藻类生物柴油的24种不同技术方案的能量平衡和温室气体排放。分析了合并技术和开拓性技术,重点关注影响性能的优势和劣势。根据文献数据,在与化石柴油进行的“从罐到罐”的生命周期评估比较中确定了能量平衡和温室气体排放。包括使用生物柴油生产的副产物,例如从酯交换反应和残留生物质的厌氧消化获得的甘油。在栽培阶段(淡水与废水;合成CO2与废物CO2),收获阶段(絮凝与离心)和石油提取阶段(己烷提取与超临界CO2提取)考虑不同的技术和方法。评估影响方案环境性能的选择。结果表明,通过目前的常规技术生产的藻类生物柴油比化石柴油具有更高的能源需求和温室气体排放。但是,藻类生物柴油的温室气体排放可以通过使用“废物”流(营养物和CO2)来大大减少,但是废水中微藻的培养以及废物CO2的运输和注入仍然存在技术难题。无论如何,仍未实现积极的能量平衡。为了在工业规模上开发对环境有益的微藻生物柴油生产,必须进行相当大的改进。特别是,耕作的各个方面都需要加强,例如使用废水和来自工业发电厂的富含二氧化碳的烟道气。 (C)2015 Elsevier Ltd.保留所有权利。

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