环境卫生工程 ›› 2026, Vol. 34 ›› Issue (4): 1-12.doi: 10.19841/j.cnki.hjwsgc.2026.04.001

• 有机固废生物处理与高值化利用 •    下一篇

利用多源有机固废原位制备复合酶的真菌筛选及其强化污泥酶解和甲烷生产

高孟姗,陈佳新,延一鸣,马英群   

  1. 1. 西安交通大学 化学工程与技术学院;2. 北方民族大学 化学与化学工程学院;3. 西安市一碳化合物生物转化技术重点实验室
  • 出版日期:2026-08-25 发布日期:2026-08-25

Fungus Screening for In-situ Preparation of Compound Enzymes from Multi-source Organic Solid Wastes and Its Enhancement on Sludge Enzymatic Hydrolysis and Methane Production

Gao Mengshan, Chen Jiaxin, Yan Yiming, Ma Yingqun   

  1. 1. School of Chemical Engineering and Technology, Xi’an Jiaotong University; 2. School of Chemistry and Chemical Engineering, North Minzu University; 3. Xi’an Key Laboratory of C1 Compound Bioconversion Technology
  • Online:2026-08-25 Published:2026-08-25

摘要: 酶预处理可以促进污泥中有机组分降解进而增强其厌氧消化效能,但商业酶成本高昂及单一酶水解效率较低限制了其大规模推广应用。本研究从剩余污泥中分离筛选出一株可以利用多源有机固废快速制备复合酶的真菌溜曲霉FM2(Aspergillus tamarii FM2),通过优化产酶和水解条件强化了剩余污泥水解和厌氧消化效能,并解析了其作用机制。结果表明,豆渣为溜曲霉FM2的最佳固态发酵基质,且最佳产酶条件为温度30 ℃、发酵基质含水率90%、发酵时间3 d,所得含复合酶发酵基质中蛋白酶、淀粉酶和纤维素酶的活性分别可达89.8、89.0、17.2 U/g。预处理的最佳含复合酶基质载量为10%,此时剩余污泥中的溶解性化学需氧量和可溶性蛋白浓度较对照组分别提高了41.9%和23.3%。进一步对复合酶预处理促进剩余污泥水解的作用机制进行解析,发现复合酶预处理有效促进了剩余污泥有机质的溶解,且显著提高了预处理液体的生物可降解性,同时有效破坏了剩余污泥的表面结构,预处理固体主要组分的动态降解顺序由结构性碳水化合物优先转变至蛋白质酰胺类物质优先,蛋白质氮的相对含量由71%降至63%。经复合酶预处理后,剩余污泥厌氧消化的甲烷累积产量达到209.0 mL/g,较未预处理污泥提高了84.0%。运行成本初步分析显示,相较于其他工艺,复合酶制备联合水解预处理强化污泥厌氧消化工艺在运行经济性上具备低成本、低能耗的特点,具有较高的推广应用潜力。

关键词: 有机固废, 复合酶, 剩余污泥, 预处理, 厌氧消化

Abstract: Enzymatic pretreatment can promote the degradation of organic components in sludge and thereby enhance its anaerobic digestion efficiency. Nevertheless, the high cost of commercial enzymes and the limited hydrolysis efficiency of single enzymes restrict their large-scale promotion and application. In this study, a strain of fungus, Aspergillus tamarii FM2, was isolated and screened from excess sludge (ES), which could rapidly produce compound enzymes using multi-source organic solid wastes. The hydrolysis and anaerobic digestion efficiency of ES were enhanced by optimizing enzyme production and hydrolysis conditions, and the underlying mechanism was systematically elucidated. The results showed that soybean residue was the optimal solid-state fermentation substrate for Aspergillus tamarii FM2. The optimal enzyme production conditions were determined as follows: a temperature of 30 ℃, a moisture content of 90% of fermentation substrate, and a fermentation duration of 3 days. Under these conditions, the activities of protease, amylase, and cellulase in the compound enzyme-containing fermentation substrate reached 89.8, 89.0, and 17.2 U/g, respectively. The optimal dosage of compound enzyme substrate for pretreatment was 10%. At this point, the soluble chemical oxygen demand and soluble protein content in ES increased by 41.9% and 23.3%, respectively, compared with the control group. Further mechanism analysis revealed that compound enzyme pretreatment effectively promoted the dissolution of organic matter in ES and significantly improved the biodegradability of the pretreated liquid. Meanwhile, it disrupted the surface structure of ES. The preferential degradation order of the main constituents in the pretreated solid changed from structural carbohydrates to protein-amide substances, with the relative content of protein-N decreasing from 71% to 63%. After compound enzyme pretreatment, the methane yield from ES anaerobic digestion reached 209.0 mL/g, which was 84.0% higher than that of the raw sludge. Preliminary analysis of operational costs showed that, compared with other processes, the integrated process of compound enzyme preparation combined with hydrolytic pretreatment for enhancing sludge anaerobic digestion featured low cost and low energy consumption in operational economy, and presented high potential for popularization and practical application.

Key words: organic solid wastes, compound enzyme, excess sludge, pretreatment, anaerobic digestion

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