利用造纸废料和园艺废料与城市生物废料的可持续协同作用,加强生物丁醇的生产

IF 5.8 2区 生物学 Q1 AGRICULTURAL ENGINEERING Biomass & Bioenergy Pub Date : 2024-06-19 DOI:10.1016/j.biombioe.2024.107262
Sara Farmanbordar , Armaghan Javid , Hamid Amiri , Joeri F.M. Denayer , Keikhosro Karimi
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引用次数: 0

摘要

木质纤维素废料和城市生物废料(MB)的协同处理可释放其生产生物丁醇的潜力。本研究评估了通过木质纤维素废物和甲基溴共处理生产生物丁醇的潜力。具体而言,它比较了造纸废料与甲基溴的共处理和园林废料与甲基溴的共处理。乙醇有机溶液预处理是一种双重功能工艺,既可用于预处理,也可用于解毒。使用乙酰丁酸梭菌对未经处理的废纸水解物进行初始发酵,可产生 0.9 克/升的丙酮和乙醇,但检测不到丁醇。有机溶胶预处理使丙酮和乙醇的产量显著增加,但没有产生丁醇。使用有机溶胶预处理法对造纸废料和甲基溴进行共处理,可生产出 2.8-3.2 克/升的丁醇,同时丙酮和乙醇的产量也有所增加。此外,在轻度和重度预处理条件下,对造纸废料和甲基溴的 1:1 (重量/重量)混合物进行共处理,可分别生产 45.5 克和 43.4 克丁醇,而对这些废料流进行单独处理,则可分别生产 34.8 克和 14.4 克丁醇。研究还探讨了花园废物与甲基溴(一种独特的木质纤维素来源)共同处理的积极影响,丙酮-丁醇-乙醇(ABE)产量提高了 27-40%。这些发现凸显了协同废物协同处理的潜力,可实现更适当的营养平衡,提高生物废物的生物丁醇和 ABE 产量。此外,同时处理木质纤维素废物和城市生物废物提供了一种简化的废物处理方法,有助于推进可持续生物质利用和生物能源生产。
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Enhanced biobutanol production with sustainable Co-substrates synergy from paper waste and garden waste with municipal biowaste

Synergy in the co-processing of lignocellulosic wastes and municipal biowaste (MB) can unlock their potential for biobutanol production. This study assessed the potential for biobutanol production through the co-processing of lignocellulosic waste and MB. Specifically, it compared the co-processing of paper waste with MB to that of garden waste and MB. Ethanol organosolv pretreatment served as a dual-function process for both pretreatment and detoxification purposes. Initial fermentation of hydrolysates from untreated paper waste using Clostridium acetobutylicum produced 0.9 g/L of acetone and ethanol but no detectable butanol. Organosolv pretreatment led to a significant increase in acetone and ethanol production but did not yield butanol. Co-processing paper waste with MB using organosolv pretreatment resulted in the production of 2.8–3.2 g/L butanol, along with increased acetone and ethanol production. Furthermore, co-processing a 1:1 (w/w) mixture of paper waste and MB under mild and severe pretreatment conditions produced 45.5 g and 43.4 g butanol, respectively, compared to 34.8 g and 14.4 g butanol when processing these waste streams separately. The study also explored the positive impact of co-processing garden waste with MB, a distinct lignocellulosic source, enhancing acetone-butanol-ethanol (ABE) yield by 27–40%. These findings highlight the potential of synergistic waste co-processing for achieving a more suitable balance of nutrients to enhance biobutanol and ABE production from biowastes. Additionally, the simultaneous treatment of lignocellulosic waste and municipal biowaste offers a simplified approach to waste processing, contributing to advancements in sustainable biomass utilization and bioenergy production.

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来源期刊
Biomass & Bioenergy
Biomass & Bioenergy 工程技术-能源与燃料
CiteScore
11.50
自引率
3.30%
发文量
258
审稿时长
60 days
期刊介绍: Biomass & Bioenergy is an international journal publishing original research papers and short communications, review articles and case studies on biological resources, chemical and biological processes, and biomass products for new renewable sources of energy and materials. The scope of the journal extends to the environmental, management and economic aspects of biomass and bioenergy. Key areas covered by the journal: • Biomass: sources, energy crop production processes, genetic improvements, composition. Please note that research on these biomass subjects must be linked directly to bioenergy generation. • Biological Residues: residues/rests from agricultural production, forestry and plantations (palm, sugar etc), processing industries, and municipal sources (MSW). Papers on the use of biomass residues through innovative processes/technological novelty and/or consideration of feedstock/system sustainability (or unsustainability) are welcomed. However waste treatment processes and pollution control or mitigation which are only tangentially related to bioenergy are not in the scope of the journal, as they are more suited to publications in the environmental arena. Papers that describe conventional waste streams (ie well described in existing literature) that do not empirically address ''new'' added value from the process are not suitable for submission to the journal. • Bioenergy Processes: fermentations, thermochemical conversions, liquid and gaseous fuels, and petrochemical substitutes • Bioenergy Utilization: direct combustion, gasification, electricity production, chemical processes, and by-product remediation • Biomass and the Environment: carbon cycle, the net energy efficiency of bioenergy systems, assessment of sustainability, and biodiversity issues.
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