在低温条件下使用循环介导的同步细菌-藻类/亚纳莫克斯合脱系统:性能和机制
Peng-Fei Yu1, Dian-Lin Jiang1, Ding Wang2
1School of Municipal and Environmental Engineering, Shenyang Jianzhu University, Shenyang 110168, China.
Bioresource technology
|November 6, 2025
概括
将Mn@BC添加到废水处理中,可以显著提高在低温下去除的效率. 这种生物增强增强了微生物活动和共生微藻-细菌系统,以有效管理营养.
科学领域:
- 环境科学 环境科学
- 微生物学 微生物学
- 生物技术是生物技术.
背景情况:
- 高废水的有效处理是至关重要的,但由于反应速度缓慢,特别是在低温下受到阻碍.
- 无氧氨氧化 (anammox) 是一个关键的过程,但其低温性能需要改进.
研究的目的:
- 调查使用Mn@BC (添加生物炭) 在合无氧氨氧化和脱过程中增强低温耐受性.
- 探索微藻-细菌系统在去除营养和减少碳源方面的协同效应.
主要方法:
- 在17°C的无氧氨氧化过程中添加Mn@BC.
- 微生物社区分析和细胞外聚合物质 (EPS) 的量化.
- 代谢基因组测序以阐明代谢途径和功能基因 (mtrC,nirS/K,c-Cyts).
- 总有机碳 (TOC) 分析以评估碳来源的依赖性.
主要成果:
- 在17°C时,Mn@BC的去除效率达到82%,比单独的BC提高了9%.
- Mn@BC增强了EPS分泌和微生物群落的多样性.
- 一个协同的微藻-细菌系统实现了50%的去除,减少了外部有机碳的需求.
结论:
- Mn@BC有效地提高了去除过程的低温性能.
- 微藻-细菌协同作用增强了营养物质的去除,并降低了运营成本.
- 这种方法为处理高,低温废水提供了可持续的解决方案.
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