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Environmental analysis of Spirulina cultivation and biogas production using experimental and simulation approach

机译:螺旋藻栽培和沼气生产的环境分析

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摘要

Microalgae is constituted by different compounds, interesting for the production of a wide range of end products by using different technologies. Many potential possibilities have been developed under the context of a biorefinery. The aim of this work is to evaluate the environmental performance of biogas production from Spirulina (Arthrospira maxima) through LCA using experimental and simulation results. For this purpose, kinetic models for batch cultivation and anaerobic digestion (AD) were determined from experimental data. Thus, Monod kinetic model and a first order model describe well microalgal biomass growth and AD, respectively. This model was used to simulate growth of Spirulina in a continuous system by using SuperPro Designer 9.5. Calculated results were compared to continuous experimental ones, obtaining good agreement in all cases. On the other hand, the whole process (cultivation, dewatering and AD of Spirulina biomass) was also simulated and the obtained results (material and energy balances) were used to construct LCA inventory data. Thereafter, environmental impacts were quantified through CML-2001 methodology using software Gabi 6.0. LCA results show that abiotic depletion of fossil resources (ADFR) category presents the highest impact, being biomass cultivation the most important contributor (about 56%). This result is directly related to the high energy consumption required for nutrient production, which also leads to increase remarkably the global warming potential (GWP) category. Main conclusion of the work is that the total partial substitution of mineral fertilizers as nutrient source is the key to improve the environmental performance of the studied process. In this sense, a potential alternative could be the use of nutrients from wastewater or other wastes. (C) 2017 Elsevier Ltd. All rights reserved.
机译:微藻由不同的化合物组成,通过使用不同的技术可以生产多种最终产品。在生物精炼厂的背景下已经开发出许多潜在的可能性。这项工作的目的是使用实验和模拟结果评估通过螺旋藻(LCA)生产的螺旋藻(Arthrospira maxima)生产的沼气的环境性能。为此,从实验数据确定了用于分批培养和厌氧消化(AD)的动力学模型。因此,Monod动力学模型和一阶模型分别描述了微藻生物量的生长和AD。通过使用SuperPro Designer 9.5,该模型用于模拟螺旋藻在连续系统中的生长。将计算结果与连续实验结果进行比较,在所有情况下均获得良好的一致性。另一方面,还对整个过程(螺旋藻生物质的培养,脱水和AD)进行了模拟,并将获得的结果(材料和能量平衡)用于构建LCA库存数据。此后,使用软件Gabi 6.0通过CML-2001方法对环境影响进行量化。 LCA结果表明,非生物耗竭的化石资源(ADFR)类别影响最大,其中生物质耕种是最重要的贡献者(约56%)。这一结果与养分生产所需的高能耗直接相关,这也导致全球变暖潜能(GWP)类别显着增加。这项工作的主要结论是,部分替代矿物肥料作为养分来源是改善研究过程的环境绩效的关键。从这个意义上讲,一种潜在的替代方法可能是利用废水或其他废物中的养分。 (C)2017 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Renewable energy》 |2018年第ptab期|724-732|共9页
  • 作者单位

    Univ Rey Juan Carlos, ESCET, Dept Chem & Energy Technol, Chem & Environm Technol,Mech Technol & Analyt Che, C Tulipan S-N, Madrid 28933, Spain;

    Univ Rey Juan Carlos, ESCET, Dept Chem & Energy Technol, Chem & Environm Technol,Mech Technol & Analyt Che, C Tulipan S-N, Madrid 28933, Spain;

    Univ Rey Juan Carlos, ESCET, Dept Chem & Energy Technol, Chem & Environm Technol,Mech Technol & Analyt Che, C Tulipan S-N, Madrid 28933, Spain;

    Univ Rey Juan Carlos, ESCET, Dept Chem & Energy Technol, Chem & Environm Technol,Mech Technol & Analyt Che, C Tulipan S-N, Madrid 28933, Spain;

    Univ Rey Juan Carlos, ESCET, Dept Chem & Energy Technol, Chem & Environm Technol,Mech Technol & Analyt Che, C Tulipan S-N, Madrid 28933, Spain;

    Univ Rey Juan Carlos, ESCET, Dept Chem & Energy Technol, Chem & Environm Technol,Mech Technol & Analyt Che, C Tulipan S-N, Madrid 28933, Spain;

    Univ Rey Juan Carlos, ESCET, Dept Chem & Energy Technol, Chem & Environm Technol,Mech Technol & Analyt Che, C Tulipan S-N, Madrid 28933, Spain;

    Univ Rey Juan Carlos, ESCET, Dept Chem & Energy Technol, Chem & Environm Technol,Mech Technol & Analyt Che, C Tulipan S-N, Madrid 28933, Spain;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Microalgae; Spirulina; Biorefinery; LCA; Biogas;

    机译:微藻;螺旋藻;生物精炼;LCA;沼气;

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