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添加石灰调节酸度条件下生物强化堆肥过程中厨余垃圾气态排放和腐殖化过程中的细菌动态。

Bacterial dynamics for gaseous emission and humification during bio-augmented composting of kitchen waste with lime addition for acidity regulation.

机构信息

Beijing Key Laboratory of Farmland Soil Pollution Prevention and Remediation, College of Resources and Environmental Sciences, China Agricultural University, Beijing 100193, China.

Centre for Technology in Water and Wastewater, School of Civil and Environmental Engineering, University of Technology Sydney, Ultimo, NSW 2007, Australia.

出版信息

Sci Total Environ. 2022 Nov 20;848:157653. doi: 10.1016/j.scitotenv.2022.157653. Epub 2022 Aug 2.

Abstract

This study investigated the impacts of lime addition and further microbial inoculum on gaseous emission and humification during kitchen waste composting. High-throughput sequencing was integrated with Linear Discriminant Analysis Effect Size (LEfSe) and Functional Annotation of Prokaryotic Taxa (FAPROTAX) to decipher bacterial dynamics in response to different additives. Results showed that lime addition enriched bacteria, such as Taibaiella and Sphingobacterium as biomarkers, to strengthen organic biodegradation toward humification. Furthermore, lime addition facilitated the proliferation of thermophilic bacteria (e.g. Bacillus and Symbiobacterium) for aerobic chemoheterotrophy, leading to enhanced organic decomposition to trigger notable gaseous emission. Such emission profile was further exacerbated by microbial inoculum to lime-regulated condition given the rapid enrichment of bacteria (e.g. Caldicoprobacter and Pusillimonas as biomarkers) for fermentation and denitrification. In addition, microbial inoculum slightly hindered humus formation by narrowing the relative abundance of bacteria for humification. Results from this study show that microbial inoculum to feedstock should be carefully regulated to accelerate composting and avoid excessive gaseous emission.

摘要

本研究调查了添加石灰和进一步接种微生物对厨余垃圾堆肥过程中气态排放和腐殖化的影响。高通量测序与线性判别分析效应量(LEfSe)和原核分类群功能注释(FAPROTAX)相结合,以揭示细菌对不同添加剂的响应动态。结果表明,添加石灰富集了 Taibaiella 和 Sphingobacterium 等细菌作为生物标志物,以增强有机生物降解向腐殖化的转化。此外,石灰添加促进了嗜热细菌(如 Bacillus 和 Symbiobacterium)的增殖,有利于好氧化学生物异养,从而增强有机分解,引发显著的气态排放。由于细菌(如 Caldicoprobacter 和 Pusillimonas 作为生物标志物)的快速富集,微生物接种进一步加剧了这种排放模式,用于发酵和反硝化。此外,微生物接种通过缩小腐殖化细菌的相对丰度,略微阻碍腐殖质的形成。本研究结果表明,应谨慎调节微生物接种剂与原料的比例,以加速堆肥过程并避免过度的气态排放。

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