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Migration and transformation of nitrogen in bioretention system during rainfall runoff.

Authors :
Fan, Gongduan
Li, Zhongsheng
Wang, Shumin
Huang, Keshu
Luo, Jing
Source :
Chemosphere. Oct2019, Vol. 232, p54-62. 9p.
Publication Year :
2019

Abstract

Bioretention systems have been extensively studied as a highly efficient technical measure to tackle the global threat of nitrogen pollution during global rainfall runoff. However, the migration and transformation of various forms nitrogen in bioretention system is unclear. So, in this paper, the bioretention systems with different flow regimes and planted configurations were designed to study the nitrogen removal performance and migration and transformation mechanism. The dynamic changes of NH 4 +-N and NO 3 −-N were continuously monitored within 60 h after rainfall, and the abundance of 15N isotopes in soil layer NH 4 +-N was simultaneously measured. The results indicated that NH 4 +-N was mainly intercepted in soil layer in four constructed bioretention systems with similar removal efficiencies (95.42–97.69%). However, NO 3 −-N was retained in submerged layer with significant different removal efficiencies (43.03–83.00%). After fitting calculation, the nitrification rate of NH 4 +-N (0.0626 mg kg−1 h−1) in soil was 5.31 times higher than that of the accumulation rate of NO 3 −-N (0.0118 mg kg−1 h−1). During the elimination process of residual NH 4 +-N in soil, 41.46% removed by denitrification and plant absorption assimilation, another 57.28% stored in the form of organic nitrogen or inorganic nitrogen, only 1.26% leaked out. Based on this, the content variation of TN, NH 4 +-N and NO 3 −-N could be analyzed by a system-wide and established the nitrogen balance model, which provides a new insight into the enhancement of nitrogen removal in the bioretention system. Image 1 • Dynamic changes of NH 4 +-N and NO 3 −-N were continuously monitored in bioretention. • Take the lead in using 15N tracer technology to ascertain the fate pathway of NH 4 +-N. • NH 4 +-N mainly intercepted in soil layer and most NO 3 −-N retained in submerged layer. • Determined the proportion of each pathway in the NH 4 +-N elimination process. • Macroscopically analyzed the nitrogen variation and established the balance model. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00456535
Volume :
232
Database :
Academic Search Index
Journal :
Chemosphere
Publication Type :
Academic Journal
Accession number :
136984545
Full Text :
https://doi.org/10.1016/j.chemosphere.2019.05.177