Intensification of ex-situ biomethanation in a bubble column bioreactor by addition of colonized biochips

Q1 Environmental Science
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Abstract

Biological methanation is a promising sustainable energy technology. To intensify ex-situ biomethanation, a 3-L bubble column reactor was operated continuously under thermophilic conditions, with and without colonized biochips. Studies in batch reactors showed biofilm formation on biochips, with an archaea:bacteria ratio of 5.7 compared to 3.2 in planktonic phase with Methanothermobacter being the dominant archaea. Using colonized biochips in the bubble column increased methane production rate (MPR) nearly threefold, achieving a steady MPR of 15.7 ± 0.5 NLCH4/Lr.d at 84.4 ± 0.9 % methane content. Gas retention time (GRT) was 0.3 h, with 97.4 % and 96.5 % conversion of H2 and CO2, respectively. Volatile fatty acid (VFA) production was under 40 mg/L per day, indicating dominant hydrogenotrophic methanogenic (HM) pathway. The results suggest biofilm formation significantly enhances MPR in ex-situ methanation reactors, advancing towards industrial application.

Abstract Image

在气泡柱生物反应器中加入定植生物芯片,加强原位生物甲烷化
生物甲烷化是一种前景广阔的可持续能源技术。为了加强原位生物甲烷化,我们在嗜热条件下连续运行了一个 3 升的气泡柱反应器,其中有和没有定殖生物芯片。在间歇反应器中进行的研究表明,生物芯片上形成了生物膜,古细菌与细菌的比例为 5.7,而浮游生物中的比例为 3.2,其中甲烷热杆菌是主要的古细菌。在气泡塔中使用定殖生物芯片可将甲烷生产率(MPR)提高近三倍,在甲烷含量为 84.4 ± 0.9 % 时,MPR 稳定在 15.7 ± 0.5 NLCH4/Lr.d。气体停留时间(GRT)为 0.3 小时,H2 和 CO2 的转化率分别为 97.4% 和 96.5%。挥发性脂肪酸(VFA)的日产量低于 40 毫克/升,表明养氢型甲烷生成(HM)途径占主导地位。研究结果表明,生物膜的形成可显著提高异地甲烷化反应器的甲烷转化率,从而推动工业应用。
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来源期刊
Bioresource Technology Reports
Bioresource Technology Reports Environmental Science-Environmental Engineering
CiteScore
7.20
自引率
0.00%
发文量
390
审稿时长
28 days
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