...
首页> 外文期刊>RSC Advances >Study on enhancing sludge methanogenesis by adding acetylene black and effect on the characteristics & microbial community of anaerobic granular sludge
【24h】

Study on enhancing sludge methanogenesis by adding acetylene black and effect on the characteristics & microbial community of anaerobic granular sludge

机译:添加乙炔黑促进污泥甲烷化及其对厌氧颗粒污泥特性和微生物群落影响的研究

获取原文
           

摘要

The effect of acetylene black (ACET) as additives on methane production, extracellular polymeric substances (EPS), microbial community structure and methanogenesis pathway during sludge anaerobic digestion (AD) was investigated in this study. The results indicated that the addition of 2 g L ~(?1) ACET resulted in a 44.36% increase in methane accumulation. ACET, which resulted in the increase of EPS and VSS/TSS by 4.71–50.64%, effectively improved the physicochemical properties of anaerobic granular sludge (AnGS). During anaerobic digestion, the high throughput sequencing presented direct evidence that the ACET increased microbial diversity and enriched functional microorganisms such as norank_f__Synergistaceae , norank_f__Anaerolineaceae , and unclassified_f__Clostridiaceae_3 , which can improve the hydrolysis acidification process and the acetotrophic pathway. These results were reaffirmed by applying metagenome inference and gene content inference (16S function prediction). Microscopically, significant enhancement in the AD efficiency can be due to the methanogenesis promoted by the ACET that can construct direct interspecies electron transfer (DIET) between the unclassified_f__Clostridiaceae_3 , norank_f__Anaerolineaceae , and Methanosaeta . These results were expected to provide primary research data for improving the performance of anaerobic reactors and the development of microbial fuel cells.
机译:本研究研究了乙炔黑(ACET)作为添加剂对污泥厌氧消化(AD)过程中甲烷产生,细胞外聚合物(EPS),微生物群落结构和甲烷生成途径的影响。结果表明,加入2 g L〜(?1)ACET可使甲烷积累增加44.36%。 ACET可使EPS和VSS / TSS升高4.71–50.64%,有效改善了厌氧颗粒污泥(AnGS)的理化特性。在厌氧消化过程中,高通量测序提供了直接证据,表明ACET增加了微生物多样性并丰富了功能微生物,例如norank_f__Synergistaceae,norank_f__Anaerolineaceae和unclassified_f__Clostridiaceae_3,它们可以改善水解酸化过程和醋化途径。通过应用元基因组推论和基因含量推论(16S功能预测)可以再次确认这些结果。在微观上,AD效率的显着提高可以归因于ACET促进的甲烷生成,它可以在unclassified_f__Clostridiaceae_3,norank_f__Anaerolineaceae和Methanosaeta之间建立直接的种间电子转移(DIET)。这些结果有望为改善厌氧反应器性能和开发微生物燃料电池提供主要的研究数据。

著录项

获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号