堵塞
微观世界
环境工程
基质(水族馆)
磷
地下水流
水力停留时间
吸附
人工湿地
化学
环境科学
废水
环境化学
岩土工程
生态学
地质学
考古
有机化学
历史
生物
地下水
作者
Fenglin Jin,Zhen Hu,Huaqing Liu,Jixin Su,Jian Zhang,Shuo Wang,Yanhui Zhao
出处
期刊:Chemosphere
[Elsevier BV]
日期:2023-02-01
卷期号:313: 137429-137429
被引量:3
标识
DOI:10.1016/j.chemosphere.2022.137429
摘要
Substrate clogging is one of the major operation challenges of subsurface flow constructed wetlands (SSF-CWs). And the phosphorus (P) removal performance and stability of P accumulation of SSF-CWs would be varied with the development of substrate clogging. In this study, three horizontal SSF-CWs microcosms with different clogging degrees were conducted to explore the mechanism of P accumulation behavior influenced by substrate clogging. Increase in clogging degree resulted in hydraulic retention time (HRT) diminution and adsorption sites increase, which jointly led to reduced P removal efficiency at low clogging degree (L-CW), however, higher P removal efficiency was obtained as adsorption sites increase offset HRT diminution at high clogging degree (H-CW). Substrate adsorption was the primary removal pathway in all SSF-CW systems. It accounted for 77.86 ± 2.63% of the P input in the H-CW, significantly higher than the control (60.08 ± 4.79%). This was attributed to a higher proportion of Fe/Al–P accumulated on the substrate of H-CW, since clogging aggravated the anaerobic condition and promoted the generation of Fe ions. The increase in clogging degree also elevated the release risk of the accrued P in SSF-CWs, since Fe/Al–P was considered bioavailable and readily released under environmental disturbance. The obtained results provide new insights into the P transport and transformation in SSF-CWs and would be helpful to optimize substrate clogging management.
科研通智能强力驱动
Strongly Powered by AbleSci AI