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基于微生物代谢的闭路营养循环的氢营养型培养物的产甲烷能力和稳健性:温度和微生物附着的影响。

Methanogenic capacity and robustness of hydrogenotrophic cultures based on closed nutrient recycling via microbial catabolism: Impact of temperature and microbial attachment.

机构信息

Wales Centre of Excellence for Anaerobic Digestion, Sustainable Environment Research Centre, University of South Wales, Pontypridd CF37 1DL, Wales, UK.

Wales Centre of Excellence for Anaerobic Digestion, Sustainable Environment Research Centre, University of South Wales, Pontypridd CF37 1DL, Wales, UK.

出版信息

Bioresour Technol. 2018 Jun;257:164-171. doi: 10.1016/j.biortech.2018.02.109. Epub 2018 Feb 24.

Abstract

A biological methanation system based on nutrient recycling via mixed culture microbial catabolism was investigated at mesophilic (37 °C) and thermophilic (55 °C) temperatures. At mesophilic temperatures, the formation of biofilms on two different types of material was assessed. Results showed that with intense mixing the biofilm reactors presented methanogenic capacities (per working volume) 50% higher than the ones operated with suspended cultures. Gas feeding rates of 200 L/L/d were achieved at a H/CO to CH conversion efficiency of above 90% by linking two reactors in series. Furthermore the robustness of the cultures was assessed under a series of inhibitory conditions that simulated possible process interferences at full scale operation. Full recovery after separate intense oxygenation and long starvation periods was observed within 2-5 days.

摘要

本研究旨在探究基于混合培养微生物代谢的营养物质循环的生物甲烷化系统在中温(37°C)和高温(55°C)条件下的运行情况。在中温条件下,评估了两种不同材料上生物膜的形成情况。结果表明,在强烈混合的情况下,生物膜反应器的产甲烷能力(单位工作体积)比悬浮培养反应器高出 50%。通过将两个反应器串联连接,可以实现 200 L/L/d 的气体进料速率,同时 H/CO 至 CH 的转化率超过 90%。此外,还在一系列抑制条件下评估了培养物的稳健性,这些抑制条件模拟了全规模运行中可能出现的工艺干扰。在单独进行强烈曝气和长时间饥饿期后,培养物在 2-5 天内完全恢复。

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