Enhancing Food Waste Anaerobic Digestion Efficiency with Biochar as a Sustainable Technology in Decentralized Real-World Systems

IF 7.4 Q1 ENGINEERING, ENVIRONMENTAL
Yong Wei Tiong, Hailin Tian, Pooja Sharma, Miao Yan, Heng Thong Lam, Jonathan Tian En Lee, Jingxin Zhang and Yen Wah Tong*, 
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引用次数: 0

Abstract

Long-term anaerobic digestion (AD) of food waste often faces challenges, with volatile fatty acid inhibition being a common issue that hinders optimal performance. This research explores the effect of biochar supplementation on long-term AD of food waste characterized by volatile fatty acid inhibition. The findings demonstrate that adding a modest amount of biochar (0.055 g/L) effectively enhances AD under ambient conditions at 29 °C. This biochar supplementation reduced volatile fatty acids to a safe level of 1195 mg/L after 36 days, well within the generally accepted safe threshold of 1500 mg/L. This safe threshold is supported by other studies, which indicate that maintaining VFA concentrations below 1500 mg/L minimizes the risk of process inhibition and ensures stable AD operation. Additionally, the normalized specific biogas yield averaged 1.33 ± 0.45 m3/kg VS, representing a 47.4% improvement over the control AD conducted under identical conditions. After stabilization, the study assessed whether AD could maintain functionality and stability under mesophilic conditions (35 °C) without further biochar supplementation, simulating a real-world scenario to test long-term efficacy in industrial-like conditions. This mesophilic postbiochar AD resulted in an additional 31.8% increase in the normalized average specific biogas yield, reaching 1.95 ± 0.25 m3/kg VS. Biochar increased Methanosaeta methanogens by 30%, enhancing direct interspecies electron transfer and strengthening syntrophic interactions. This shift made aceticlastic methanogens 9 times more prominent, improving acetate oxidation, biogas yield, and overall AD stability. These findings highlight biochar’s potential to enhance decentralized biogas facilities, promote sustainable food waste management, and advance the bioeconomy by providing a replicable model for closing the food waste loop.

Abstract Image

在分散的现实世界系统中,利用生物炭提高食物垃圾厌氧消化效率是一种可持续技术
食物垃圾的长期厌氧消化(AD)经常面临挑战,挥发性脂肪酸抑制是阻碍最佳性能的常见问题。本研究探讨了添加生物炭对以抑制挥发性脂肪酸为特征的食物垃圾长期AD的影响。结果表明,在29°C的环境条件下,添加适量的生物炭(0.055 g/L)可有效提高AD。36天后,这种生物炭的补充将挥发性脂肪酸降低到1195 mg/L的安全水平,完全在普遍接受的1500 mg/L的安全阈值之内。这一安全阈值得到了其他研究的支持,这些研究表明,将VFA浓度维持在1500 mg/L以下可以最大限度地降低过程抑制的风险,并确保AD的稳定运行。此外,标准化的比沼气产量平均为1.33±0.45 m3/kg VS,比相同条件下进行的对照AD提高了47.4%。稳定后,研究评估了AD是否可以在中温条件下(35°C)保持功能和稳定性,而无需进一步添加生物炭,模拟现实世界的场景,以测试在工业条件下的长期疗效。这种中温生物炭处理使标准化平均比沼气产量增加了31.8%,达到1.95±0.25 m3/kg,相比之下,生物炭使产甲烷菌增加了30%,促进了种间电子的直接传递,加强了共生相互作用。这种转变使醋酸产甲烷菌的地位提高了9倍,提高了醋酸氧化、沼气产量和总体AD稳定性。这些发现强调了生物炭在加强分散式沼气设施、促进可持续食物垃圾管理以及通过提供一种可复制的模式来关闭食物垃圾循环来推进生物经济方面的潜力。
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来源期刊
ACS ES&T engineering
ACS ES&T engineering ENGINEERING, ENVIRONMENTAL-
CiteScore
8.50
自引率
0.00%
发文量
0
期刊介绍: ACS ES&T Engineering publishes impactful research and review articles across all realms of environmental technology and engineering, employing a rigorous peer-review process. As a specialized journal, it aims to provide an international platform for research and innovation, inviting contributions on materials technologies, processes, data analytics, and engineering systems that can effectively manage, protect, and remediate air, water, and soil quality, as well as treat wastes and recover resources. The journal encourages research that supports informed decision-making within complex engineered systems and is grounded in mechanistic science and analytics, describing intricate environmental engineering systems. It considers papers presenting novel advancements, spanning from laboratory discovery to field-based application. However, case or demonstration studies lacking significant scientific advancements and technological innovations are not within its scope. Contributions containing experimental and/or theoretical methods, rooted in engineering principles and integrated with knowledge from other disciplines, are welcomed.
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