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首页> 外文期刊>Journal of Cleaner Production >An integer superstructure model to find a sustainable biorefinery platform for valorizing household waste to bioenergy, microbial protein, and biochemicals
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An integer superstructure model to find a sustainable biorefinery platform for valorizing household waste to bioenergy, microbial protein, and biochemicals

机译:一个整数上层结构模型,以找到可持续的生物遗工平台,用于对生物能量,微生物蛋白和生物化学储存家庭废物

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In this study, a superstructure-based decision making model is presented to determine the most sustainable biorefining pathway of organic fraction of municipal solid waste, i.e., anaerobic digestion, fermentation for bio-succinic acid and lactic acid recovery, and single cell protein production, as well as the best downstream process for the produced biogas. Based on the possible bioprocess routes created from implied technologies, thirteen scenarios were developed to perform mass and energy balances as well as environmental life cycle assessments. Subsequently, a general superstructure-based multi-criteria decision making model was designed representing possible technologies at each stage of biomass processing and their interconnections. The optimal biorefining route for achieving a sustainability solution was selected based on energetic, economic, and environmental aspects; three objective functions for maximizing energy saving and profitability, and minimizing greenhouse gas emissions. The results achieved in this study demonstrated that the scenario including anaerobic digestion of organic fraction of municipal solid waste coupled with a biological biogas upgrading unit for bio-methanation of biogas into fuel-grade bioCH(4) was the most sustainable biorefining route. This scenario led to a greenhouse gas saving of 243.4 kg CO2 eq/t biopulp and a primary energy saving of 4664.77 MJ/t biopulp, creating a profit of 145.41 (sic)/t biopulp. On the contrary, biosuccinic acid production with cogeneration of heat & power and bioCH4 with further use as home cooking fuel found to be the least preference for biowaste valorization. The sensitivity analysis showed that fluctuations in production costs and revenue would not change the rank of scenarios however the profitability of scenarios would change to some extent. The framework presented herein is a promising approach to find the most sustainable biorefining rout out of several technically-possible solutions. Such framework would be even more applicable if other important aspects such as spatio-temporal parameters, policy regulations, market-driven factors, etc. to be included in the decision making process. (C) 2020 Elsevier Ltd. All rights reserved.
机译:在该研究中,提出了一种基于上部结构的决策模型,以确定城市固体废物的有机级数最可持续的生物化途径,即生物 - 琥珀酸和乳酸回收的厌氧消化,发酵和单细胞蛋白质生产,以及所产生的沼气的最佳下游过程。根据从隐含技术创建的可能的生物过程路线,开发了十三场景,以进行质量和能量余额以及环境生命周期评估。随后,设计了一种基于普通结构的多标准决策模型,该决策模型代表了生物量处理的每个阶段和它们的互连的可能技术。基于能量,经济和环境方面选择实现可持续性解决方案的最佳生物化途径;最大限度地提高节能和盈利能力,最大限度地减少温室气体排放。本研究中达到的结果表明,与生物甲烷化生物甲烷化的生物沼气升级单元的城市固体废物的有机分数的情景均为最可持续的生物化途径。这种情况导致温室气体节省243.4千克CO2 EQ / T BioPulp,主要节能为4664.77 mJ / t BioPulp,创造了145.41(SiC)/ T BioPulp的利润。相反,生物酸产生的热量和电力和Bioch4的产生,进一步用作家庭烹饪燃料,发现是BioWasty Valorization的最低偏好。敏感性分析表明,生产成本和收入的波动不会改变情景的级别,但情况的盈利能力将在一定程度上变化。这里提出的框架是一个有希望的方法,可以在几种技术上可能的解决方案中找到最可持续的生物化漏洞。如果其他重要方面如时空参数,政策规定,市场驱动因子等,则这些框架将更适用。 (c)2020 elestvier有限公司保留所有权利。

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