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生物质厌氧转化技术及其产物新质利用趋势OA

Advancements in biomass anaerobic digestion and innovative product utilization

中文摘要英文摘要

厌氧转化是可同步实现污染治理、能源回收、养分循环与碳减排的多目标系统性技术,在"双碳"战略与科技革新驱动下,正从传统单一能源化利用向多目标协同的新质利用模式深度转型.该文系统梳理了该技术的战略定位与全球发展态势,对比分析了欧盟与中国产业发展的核心差距;综述了功能微生物协同代谢强化、原料预处理及核心工艺调控等关键环节的研究进展,明确了微生物互营代谢失衡导致的转化效率受限、系统运行稳定性不足、工程化精准调控难度大及产品附加值偏低等核心瓶颈.重点阐释了其新质利用的四大趋势:通过合成生物学与人工智能技术融合突破传统过程"黑箱",实现多尺度精准调控;定向调控代谢途径制备中短链脂肪酸等高值生物基平台化学品;构建主副产物梯级高值化体系,将沼气升级为液化生物甲烷等高端绿色燃料,沼渣沼液转化为功能材料、单细胞蛋白等多元产品;挖掘全链条碳减排潜力,开发可量化交易的碳资产,实现生态价值向经济价值的稳定转化.最后展望了构建全链条系统工程、推动多技术深度融合、释放生物质全组分价值的发展方向和分阶段路径,可为中国生物质厌氧转化领域的科技创新与产业高质量发展提供理论参考和实践指引.

Anaerobic digestion has been used to simultaneously realize pollution control,energy recovery,nutrient cycling,and carbon emission reduction.Among them,biomass anaerobic digestion can also contribute to bio-manufacturing,organic waste pollution in environmental protection,and national energy security in sustainable agriculture.Energy utilization can be expected to transform from conventional single energy to a multi-objective collaborative new-quality mode.Current industrial development was also characterized by technological precision,product high-endization,value diversification,and ecological low-carbonization.This study aims to systematically classify the three purposes of biomass anaerobic digestion technology:rural revitalization and food security,agricultural and rural pollution,and renewable energy conversion.A comparison was made to examine the industrial trends between the European Union and China,including standard certification,equipment manufacturing,business models,and technology breakthroughs.Furthermore,three technical links were also reviewed:the functional microbial synergistic metabolism(covering bioaugmentation of targeted functional consortia and intensification of interspecies electron transfer mechanisms),biomass feedstock pretreatment(including physical,chemical,biological,and combined technologies),and process regulation(involving feedstock solid content optimization,carbon-to-nitrogen ratio adjustment,and temperature gradient control).Four bottlenecks were identified to restrict the high-quality development of the industry:Low conversion efficiency caused by the imbalance of microbial syntrophic metabolism,long-term stability of engineering systems,great difficulty in precise regulation,and low added value of products.Four trends were also given for the new-quality utilization of biomass anaerobic digestion.1)The"black box"of conventional anaerobic digestion was integrated with synthetic biology,multi-omics technology,and artificial intelligence.Multi-scale precise regulation was realized from microbial metabolic pathways to full engineering.2)Anaerobic metabolic pathways were directionally regulated to apply carbon chain into high-value bio-based chemicals represented by medium-and short-chain fatty acids.The application boundary of anaerobic technology was expanded in the field of bio-manufacturing.3)A systematic cascade high-value utilization was constructed for primary and by-products:Raw biogas was upgraded into high-end green fuels,such as liquefied biomethane(LBM)for heavy-duty transportation,shipping,and aerospace applications;Biogas residue and slurry were converted into diversified high-value products,including functional bio-fertilizers,biochar materials,and single-cell protein(SCP)feed additives.4)Carbon emission reduction was realized for quantifiable and tradable carbon assets in the full-chain anaerobic conversion,according to China Certified Emission Reduction(CCER),thereby realizing the stable and sustainable transformation of ecological into economic value.Finally,the future directions and paths of biomass anaerobic digestion were determined using Technology Readiness Level(TRL),including organic waste treatment over the full chain at the county level.Biotechnology and information technology were integrated to realize the full-component value of biomass resources.The findings can provide important theoretical references and practical guidance for engineering and industrial formulation in the field of biomass anaerobic digestion.

甄峰;闫淼;孙永明

中国科学院广州能源研究所,广州 510640||中国科学技术大学能源科学与技术学院,合肥 230026中国科学院广州能源研究所,广州 510640||中国科学技术大学能源科学与技术学院,合肥 230026中国科学院广州能源研究所,广州 510640||中国科学技术大学能源科学与技术学院,合肥 230026

农业科技

厌氧转化微生物生物甲烷高值化新质利用碳减排

anaerobic digestionmicroorganismsbiomethanehigh-value utilizationnew-quality utilizationcarbon emission reduction

《农业工程学报》 2026 (13)

1-11,11

国家自然科学基金面上项目(52576243)"尖锋"行动计划项目(广西重大专项计划)(桂科JF2503980027)安徽省省级科技创新攻坚计划项目(202523n10050017)广东省基础与应用基础研究基金项目(2026A1515010852)中国博士后科学基金项目(2024M763281)

10.11975/j.issn.1002-6819.202604114

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