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A closed loop biowaste to biofuel integrated process fed with waste frying oil, organic waste and algal biomass: Feasibility at pilot scale

机译:以废油炸油,有机废料和藻类生物质为原料的闭环生物废料到生物燃料的集成过程:中试规模的可行性

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Nowadays, the importance of recycle and energy savings is increasing due to the current economic and environmental situation. Many different technologies were developed to exploit biowaste to produce biofuels but they are not always easily available and economically advantageous, especially at small scale. A possible solution could be to couple them in a closed loop process. In this paper, we discuss the technological feasibility of a pilot plant producing biofuels from waste frying oil, solid organic wastes and algal biomass. The crucial point of this work is to the find the best layout and operative conditions in order to use organic wastes and by-products in a closed loop process. The study is carried out through a complete experimental campaign at both lab and pilot scale on the integrated process, consisting of three parts: I) biodiesel and glycerol production by transesterification of waste frying oil added with oil extracted from algal biomass; II) syngas production by gasification of biowaste, added with glycerol to increase the total LCV; III) algal biomass production in airlift photo-bioreactors, fed by the recycled process wastewater rich in glycerol, and capable of capturing carbon dioxide from flue gases and of producing valuable biomass to be reintroduced in the process cycle. Waste oil and organic waste were provided by the University Campus canteen and wood pellets were collected in the Campus park. Quality levels of biodiesel cetane number ranged from 47.7 to 58.4 and LHVs ranged from about 36080 kJ/kg to 36992 kJ/kg. A better syngas quality was found by adding glycerol, and flue gas composition was suitable to partially feed the airlift reactors. On the basis of this first step of experimentation, the technological feasibility of the proposed closed loop integrated process was verified.
机译:如今,由于当前的经济和环境形势,回收利用和节约能源的重要性日益提高。已经开发了许多不同的技术来利用生物废物来生产生物燃料,但是它们并不总是容易获得并且在经济上是有利的,尤其是在小规模的情况下。一种可能的解决方案是在闭环过程中将它们耦合。在本文中,我们讨论了由废煎炸油,固体有机废物和藻类生物质生产生物燃料的中试工厂的技术可行性。这项工作的关键点是找到最佳的布局和操作条件,以便在闭环过程中使用有机废物和副产品。该研究是通过一个完整的实验活动在实验室和中试规模上对集成过程进行的,该过程包括三个部分:I)通过将废油炸油与从藻类生物质中提取的油进行酯交换反应来生产生物柴油和甘油。 II)通过气化生物废物产生合成气,并添加甘油以增加总LCV; III)在空运光生物反应器中生产藻类生物质,由富含甘油的回收工艺废水供入,并能够从烟道气中捕集二氧化碳,并产生可在工艺周期中重新引入的有价值的生物质。大学校园食堂提供废油和有机废物,并在校园公园收集木屑。生物柴油十六烷值的质量水平范围为47.7至58.4,而LHV的范围为约36080 kJ / kg至36992 kJ / kg。通过添加甘油发现合成气质量更好,烟气成分适合部分供给空运反应器。在此第一步实验的基础上,验证了所提出的闭环集成过程的技术可行性。

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