利用牡蛎壳和零价铁消除过度酸化,提高易酸化底物的甲烷产量。

IF 2.2 4区 环境科学与生态学 Q3 ENVIRONMENTAL SCIENCES
Environmental Technology Pub Date : 2025-06-01 Epub Date: 2024-12-24 DOI:10.1080/09593330.2024.2442778
Xiaofan Ding, Wei Jiang, Fangyuan Feng, Yanfei Li, Yanzhen Yu, Chunhui Zhao, Hui Mu
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引用次数: 0

摘要

厌氧消化是一种从有机废物和废水中产生甲烷(CH4)的可持续技术。然而,在容易酸化的基质中,如淀粉废水,其性能经常受到过度酸化的阻碍。牡蛎壳(OS)是一种天然碱性物质,能有效调节pH,促进CH4的产生。然而,它的使用增加了沼气中的二氧化碳含量,强调了将二氧化碳就地转化为CH4的必要性。本研究提出了一种新方法,将OS与零价铁(ZVI)结合,作为间接氢(H2)源,促进这种转化,并促进易酸化底物的甲烷生成。结果表明,CO2浓度降低22.8%,CH4产率显著提高至364 mL/g-COD,超过了先前报道的值和350 mL/g-COD的理论最大值。日CH4产率提高60.3%,滞后期和总持续时间均较短。这种改善是由OS和ZVI之间的协同作用驱动的,这增加了氢离子的消耗,释放了额外的二氧化碳和氢气用于甲烷生成。协同作用还促进了胞外聚合物质水平、产酸和产甲烷步骤、关键酶活性以及产甲烷菌、氢营养型产甲烷菌和Longilinea的富集。此外,一项经济评估显示,这种方法具有显著的成本效益,为工业应用提供了巨大的潜力。该研究为利用OS和ZVI消除过度酸化和提高易酸化底物的CH4产量提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Leveraging oyster shell and zero-valent iron to eliminate excessive acidification and enhance methane production from readily acidified substrates.

Anaerobic digestion is a sustainable technology for methane (CH4) production from organic waste and wastewater. However, its performance is frequently hindered by excessive acidification in readily acidified substrates, such as starch wastewater. Oyster shell (OS), a natural alkaline material, effectively regulates pH and enhances CH4 production. Nevertheless, its use increases CO2 levels in biogas, highlighting the need for in-situ conversion of CO2 into CH4. This study presents a novel approach by combining OS with zero-valent iron (ZVI), which acts as an indirect hydrogen (H2) source, to facilitate this conversion and boost methanogenesis from readily acidified substrates. Results demonstrated a 22.8% reduction in CO2 levels and a significant increase in CH4 yield to 364 mL/g-COD, surpassing both previously reported values and the theoretical maximum of 350 mL/g-COD. Additionally, the daily CH4 production rate was increased by 60.3%, with a shorter lag phase and overall duration. This improvement was driven by the synergy between OS and ZVI, which enhanced hydrogen ion consumption, releasing additional CO2 and H2 for methanogenesis. The synergistic interaction also promoted extracellular polymeric substances levels, acidogenic and methanogenic steps, key enzyme activities, and enrichments of Methanothrix, hydrogenotrophic methanogens, and Longilinea. Furthermore, an economic assessment revealed significant cost benefits of this approach, offering promising potential for industrial applications. This study provides new insights into leveraging OS and ZVI to eliminate excessive acidification and improve CH4 production from readily acidified substrates.

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来源期刊
Environmental Technology
Environmental Technology 环境科学-环境科学
CiteScore
6.50
自引率
3.60%
发文量
0
审稿时长
4 months
期刊介绍: Environmental Technology is a leading journal for the rapid publication of science and technology papers on a wide range of topics in applied environmental studies, from environmental engineering to environmental biotechnology, the circular economy, municipal and industrial wastewater management, drinking-water treatment, air- and water-pollution control, solid-waste management, industrial hygiene and associated technologies. Environmental Technology is intended to provide rapid publication of new developments in environmental technology. The journal has an international readership with a broad scientific base. Contributions will be accepted from scientists and engineers in industry, government and universities. Accepted manuscripts are generally published within four months. Please note that Environmental Technology does not publish any review papers unless for a specified special issue which is decided by the Editor. Please do submit your review papers to our sister journal Environmental Technology Reviews at http://www.tandfonline.com/toc/tetr20/current
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