Integrated Intelligent Energy ›› 2024, Vol. 46 ›› Issue (8): 41-49.doi: 10.3969/j.issn.2097-0706.2024.08.006

• Energy Conservation and Environmental Protection • Previous Articles     Next Articles

Impact of iron-manganese modified Camellia oleifera shell-based biochar on the anaerobic digestion performance and microbial community structure of sludge

LUO Kun1,2(), ZHU Yi1,*(), HUANG Jing2,*(), LI Hui1,2()   

  1. 1. College of Resources and Environment, Yangtze University, Wuhan 430100, China
    2. State Key Laboratory of Utilization of Woody Oil Resource, Hunan Academy of Forestry, Changsha 410004, China
  • Received:2024-03-06 Revised:2024-04-01 Published:2024-08-25
  • Contact: ZHU Yi,HUANG Jing E-mail:1490899790@qq.com;zhuyi0731@126.com;gavinhj@163.com;lihuiluoyang@163.com
  • Supported by:
    Hunan Outstanding Youth Fund(2023JJ10023);Changsha Natural Science Foundation(kq2208101)

Abstract:

Hydrolysis process limits the anaerobic digestion (AD) rate of sludge. Supplementing exogenous biochar (BC) can effectively boost methane production by overcoming the limitation in hydrolysis. The iron-manganese modified biochar (Fe-Mn-BC) derived from the residual shells of woody oil crops, specifically Camellia oleifera shells, is studied. SEM, FTIR, XPS and XRD are employed to characterize the material, and its impacts on sludge AD performance, methane yield and microbial community structure are explored. The study results demonstrate that since Fe-Mn-BC possesses a porous structure, iron and manganese particles can load onto the BC surface in various forms of oxides. The addition of Fe-Mn-BC elevates methane production. When the total solid mass fraction of Fe-Mn-BC reaches 80 mg/g, cumulative gas production peaks at 301.59 mL/g, marking a 45.27% increase compared to that of the control group. Microbial community analysis reveals that Fe-Mn-BC enriches the abundance of archaeal communities, including CrenarchaeotaCandidatus_Methanomethylicus and Candidatus_Methanofastidiosum. These communities play crucial roles in promoting the hydrolysis of organic matters and enhancing the methane production, indicating that Fe-Mn-BC not only enriches functional microbial communities such as methanogenic bacteria, but also effectively improves the efficiency of sludge AD. Furthermore, this method presents a resource utilization solution for Camellia oleifera shells.

Key words: anaerobic digestion, sludge, Camellia oleifera shell, iron-manganese modified biochar, microbial community, methane, hydrolysis

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