高级检索+

餐厨垃圾酸化液水热预处理对秸秆厌氧消化产甲烷的影响

Effect of hydrothermal and acidified food waste pretreatment on anaerobic digestion of rice straw

  • 摘要: 针对秸秆木质纤维素结构致密、碳氮比高导致的厌氧消化效率低下问题,亟需探寻高效绿色的预处理方法并揭示其作用机制。该研究突破传统强酸强碱的预处理方法,基于“以废治废”思路,通过发酵制备餐厨垃圾酸化液,协同水热预处理,探究了不同预处理方式对稻秸木质纤维素降解及其后续厌氧发酵产甲烷的影响;基于16S rRNA基因绝对定量测序技术,解析了厌氧微生物群落对不同预处理的响应特征。结果表明,酸性酸化液协同水热预处理效果最优,处理后料液还原糖浓度达11.73 g/L,稻秸半纤维素绝对含量降低39.3%,累计甲烷产率达77.06 mL/g VS,较稻秸未预处理组和单一水热处理组分别提升140%和18.1%。酸性酸化液协同水热预处理富集了以乙酸营养型产甲烷古菌Methanosaeta为优势菌的产甲烷菌群落结构,其绝对丰度相较于未预处理组提升50%,达2.69×108 copies/g;与此同时,关键糖降解菌SBR1031和水解菌Trichococcus在预处理组中也显著富集,支撑了预处理组中高还原糖浓度的降解。研究结果为农业废弃物协同资源化利用提供理论依据和技术支撑。

     

    Abstract: To address the low efficiency of anaerobic digestion (AD) of rice straw caused by its dense lignocellulosic structure and high carbon-to-nitrogen ratio, there is an urgent need to develop an efficient and environmentally friendly pretreatment method and to elucidate its underlying mechanisms. Based on the “waste-treat-waste” concept, this study prepared acidified liquid from food waste via fermentation and combined it with hydrothermal pretreatment. The effects of different pretreatments on lignocellulose degradation of rice straw and subsequent methane production were investigated. Microbial community responses were analyzed using both 16S rRNA gene relative abundance profiling and absolute quantitative sequencing.In the pretreatment phase, five groups were compared: raw acidified liquid (FW), acidified liquid adjusted to pH 2.4 with hydrochloric acid (AFW), hydrothermal treatment with water alone (Hydro), hydrothermal treatment with hydrochloric acid as control (CG), and untreated straw (RS). After pretreatment, the solid residues were characterized for lignocellulose composition, and the supernatants were analyzed for reducing sugar concentration. The AFW pretreatment showed the best performance, achieving a reducing sugar concentration of 11.73 g/L and a 39.3 % reduction in absolute hemicellulose content of rice straw. In comparison, FW and Hydro achieved lower reducing sugar yields, while CG produced high SCOD but low reducing sugars. During AD phase, batch experiments were conducted at 37  ℃ for 21 days with an inoculum-to-substrate ratio of approximately 2:1 (based on volatile solids). The AD performance was evaluated by cumulative methane yield, as well as by monitoring pH, volatile fatty acids (VFAs), and SCOD over time. Six experimental groups were included: straw pretreated with AFW (EXAFW), straw pretreated with FW (EXFW), straw pretreated with Hydro (Hydro), untreated straw (RS), and two controls with acidified liquid only (CKFW and FW without straw). The EXAFW group achieved the highest cumulative methane yield of 77.06 mL/g VS, which was 140 % higher than that of RS and 18.1 % higher than that of Hydro. The EXFW group also outperformed Hydro, with a 113 % increase over RS. The EXAFW group showed the fastest methane production, with most of the biogas generated within 9 days, and its acetate was nearly depleted by day 6, whereas EXFW consumed acetate more slowly. The pH in all reactors remained between 7.9 and 8.2 after an initial slight decrease, and SCOD dynamics were consistent with methane production patterns. Microbial community analysis revealed that EXAFW significantly altered both bacterial and archaeal community structures. At the phylum level, the relative abundances of Chloroflexi and Spirochaetota were higher in the EXAFW compared with RS. These phyla have been previously reported to be involved in VFAs metabolism and lignocellulose degradation. At the genus level, the absolute abundance of the acetoclastic methanogen Methanosaeta reached 2.69 × 108 copies/g in EXAFW, a 50 % increase over RS. The absolute abundances of the saccharolytic bacterium SBR1031 and the hydrolytic bacterium Trichococcus were also markedly higher in EXAFW than in RS, which correlated with the high reducing sugar yield observed in the pretreatment phase. Additionally, the absolute abundance of Methanosarcina, a versatile methanogen capable of both acetoclastic and hydrogenotrophic pathways, increased nearly six-fold in EXAFW. In conclusion, the synergistic pretreatment combining acidified food waste liquid with mild hydrothermal conditions (AFW) effectively disrupted the lignocellulosic structure of rice straw and enhanced methane production. The improvement in AD performance was associated with the enrichment of specific hydrolytic and acetoclastic microbial populations, particularly Methanosaeta and SBR1031. This study demonstrates that food waste-derived acidified liquid can serve as a low-cost and eco-friendly alternative to pure organic acids for straw pretreatment, and the “waste-treat-waste” approach provides a promising strategy for the synergistic valorization of food waste and agricultural residues.

     

/

返回文章
返回