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A Long-Term Assessment of Nitrogen Removal Performance and Microecosystem Evolution in Bioretention Columns Modified with Sponge Iron

机译:海绵铁改性生物滞留柱脱氮性能和微生态系统演变的长期评估

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摘要

The nitrogen removal performance of bioretention urgently needs to be improved, and sponge iron has great potential to address this challenge. This study reported the results of a long-term investigation on bioretention columns improved by sponge iron, examining the durability of sponge iron from nitrogen removal performance, sponge iron properties, and the evolution of biological elements. The results showed that after 9 months of continuous operation, the removal rates of ammonia nitrogen (NH4+-N), nitrate nitrogen (NO3−-N), and total nitrogen (TN) in the bioretention columns with an appropriate proportion of sponge iron could reach 80% (some even over 90%). However, the long-term stress of sponge iron exposure, combined with the cumulative effect of pollutants, might lead to the excessive accumulation of reactive oxygen species (ROS) in plants, thereby posing risks of diminished chlorophyll content and enzyme activity. Simultaneously, the extended exposure could also have detrimental effects on microbial diversity and the abundance of dominant bacteria such as Proteobacteria and Sphingorhabdus. Therefore, it is necessary to select plant species and functional genes that demonstrate high adaptability to iron-induced stress.
机译:生物滞留的脱氮性能亟待提高,海绵铁在应对这一挑战方面具有巨大潜力。本研究报告了对海绵铁改进的生物保留柱的长期调查结果,从脱氮性能、海绵铁特性和生物元素的演变出发,检查了海绵铁的耐久性。结果表明,连续运行9个月后,海绵铁适配比例的生物滞留塔中氨氮(NH4+-N)、硝态氮(NO3−-N)和总氮(TN)的去除率可达80%(有的甚至超过90%)。然而,海绵铁暴露的长期压力,加上污染物的累积效应,可能导致植物体内活性氧 (ROS) 的过度积累,从而造成叶绿素含量和酶活性降低的风险。同时,长期暴露也可能对微生物多样性和优势细菌(如变形菌门和鞘氨醇菌门)的丰度产生不利影响。因此,有必要选择对铁诱导胁迫表现出高度适应性的植物物种和功能基因。

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