Yanuka-Golub K, Baransi-Karkaby K, Szczupak A, Reshef L, Rishpon J, Shechter R, Gophna U, Sabbah I
School of Molecular Cell Biology and Biotechnology, Tel Aviv University, P.O. Box 39040, Tel Aviv 6997801, Israel E-mail:
The Regional Research & Development Center, The Galilee Society, P.O. Box 437, Shefa-Amr 20200, Israel.
Water Sci Technol. 2019 Jun;79(11):2145-2155. doi: 10.2166/wst.2019.214.
Biogas is a sustainable, renewable energy source generated from organic waste degradation during anaerobic digestion (AD). AD is applied for treating different types of wastewater, mostly containing high organic load. However, AD practice is still limited due to the low quality of the produced biogas. Upgrading biogas to natural gas quality (>90% CH) is essential for broad applications. Here, an innovative bio-electrochemically assisted AD process was developed, combining wastewater treatment and biogas upgrading. This process was based on a microbial electrolysis cell (MEC) that produced hydrogen from wastewater at a relatively high efficiency, followed by high-rate anaerobic systems for completing biodegradation of organic matter and an in situ bio-methanation process. Results showed that CH production yield was substantially improved upon coupling of the MEC with the AD system. Interestingly, CH production yield increase was most notable once circulation between AD and MEC was applied, while current density was not markedly affected by the circulation rates. The microbial community analysis confirmed that the MEC enhanced hydrogen production, leading to the enrichment of hydrogenotrophic methanogens. Thus, directing soluble hydrogen from the MEC to AD is plausible, and has great potential for biogas upgrading, avoiding the need for direct hydrogen harvesting.
沼气是一种可持续的可再生能源,由厌氧消化(AD)过程中有机废物的降解产生。AD用于处理不同类型的废水,这些废水大多含有高有机负荷。然而,由于所产生沼气的质量较低,AD的实际应用仍然有限。将沼气升级到天然气质量(>90% CH₄)对于广泛应用至关重要。在此,开发了一种创新的生物电化学辅助AD工艺,将废水处理和沼气升级相结合。该工艺基于一个微生物电解池(MEC),该电解池能以相对较高的效率从废水中产生氢气,随后是用于完成有机物生物降解的高速厌氧系统和原位生物甲烷化过程。结果表明,将MEC与AD系统耦合后,CH₄的产率得到了显著提高。有趣的是,一旦在AD和MEC之间应用循环,CH₄产率的增加最为显著,而电流密度并未受到循环速率的显著影响。微生物群落分析证实,MEC增强了氢气的产生,导致氢营养型产甲烷菌的富集。因此,将MEC产生的可溶性氢气导向AD是可行的,并且在沼气升级方面具有巨大潜力,无需直接收集氢气。