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Life Cycle Optimization for Sustainable Algal Biofuel Production Using Integrated Nutrient Recycling Technology

机译:采用综合营养回收技术实现可持续藻类生物燃料生产的生命周期优化

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src="http://pubs.acs.org/appl/literatum/publisher/achs/journals/content/ascecg/2017/ascecg.2017.5.issue-11/acssuschemeng.7b01833/20171031/images/medium/sc-2017-01833m_0008.gif">In this study, a multi-objective optimization of sustainable integration of algal biofuel production using nutrient recycling technology, such as anaerobic digestion and hydrothermal liquefaction, is considered. Gross annual profitability and global warming potential (GWP) are the criteria chosen for the design of the algal biofuel production system. Three scenarios, such as full-scale (baseline), pilot-scale (conservative), and lab-scale (nominal), are chosen based on the expected maturity levels and nutrient demand. The results of the optimization produce Pareto sets of optimal solutions for acknowledging the trade-off between the economic and the environmental criteria of the integrated system. It is found that the anaerobic digestion (AD) technology shows better performance in terms of an environmental perspective, displacing the excessive fertilizer requirements due to its maturity in comparison with the hydrothermal liquefaction (HTL) process. However, HTL is a new, evolving, promising nutrient recycling technology which demonstrates economic preferences compared to the AD process due to its low cost of production.
机译:src =“http://pubs.acs.org/appl/literatum/publisher/achs/journals/content/ suscecg/2017/ socecg.2017.5.issue-11/acssuschemeng.7b01833/20171031/images/medium/sc考虑了2017-01833M_0008.GIF“在本研究中,考虑了使用营养回收技术的藻类生物燃料生产的可持续整合的多目标优化,例如厌氧消化和水热液化。总年度盈利能力和全球变暖潜力(GWP)是为藻类生物燃料生产系统设计选择的标准。三种场景,如全尺度(基线),导频(保守)和实验室标度(名义),基于预期的成熟度水平和营养需求。优化的结果产生了帕累托最优解决方案,以确认经济和综合系统的环境标准之间的权衡。发现厌氧消化(AD)技术在环境视角方面表现出更好的性能,使由于其成熟度,与水热液化(HTL)工艺相比,施用过多的肥料要求。然而,HTL是一种新的,不断发展的营养回收技术,其由于其生产成本低而与广告过程相比,这展示了经济偏好。

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