The Evaluation of a Novel Denitrifying Woodchip Bioreactor: Fairmont, MN, USA

Nitrogen Pub Date : 2024-02-21 DOI:10.3390/nitrogen5010010
Limeimei Xu, Kerry Holmberg, J. Magner
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Abstract

The risk of nitrate contamination became a reality for Fairmont in Minnesota, when water rich in NO3-N exceeded the drinking water standard of 10 mg/L. This was unexpected because this city draws its municipal water from a chain of lakes that are fed primarily by shallow groundwater under row-crop land use. Spring soil thaw drives cold water into a subsurface pipe where almost no NO3-N reduction occurs. This paper focuses on NO3-N reduction before the water enters the lakes and no other nitrogen management practices in the watershed. A novel denitrifying bioreactor was constructed behind a sediment forebay, which then flowed into a chamber covered by a greenhouse before entering a woodchip bioreactor. In 2022 and 2023, water depth, dissolved oxygen, and temperature were measured at several locations in the bioreactor, and continuous NO3-N was measured at the entry and exit of the bioreactor. The results showed better performance at a low water depth with lower dissolved oxygen and higher water temperature. The greenhouse raised the inlet temperature in 2022 but did not in 2023. The forebay and the greenhouse may have impeded the denitrification process due to the high dissolved oxygen concentrations in the influent and the stratification of dissolved oxygen caused by algae in the bioreactor.
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新型反硝化木片生物反应器的评估:美国明尼苏达州费尔蒙特
对明尼苏达州的费尔蒙特来说,硝酸盐污染的风险已经成为现实,因为富含 NO3-N 的水超过了 10 mg/L 的饮用水标准。这出乎费尔蒙特的意料,因为该市的市政用水取自一连串的湖泊,而这些湖泊的水源主要来自种植农作物的浅层地下水。春季土壤解冻后,冷水进入地下管道,而地下管道中的 NO3-N 几乎没有减少。本文的重点是在水进入湖泊之前减少 NO3-N,而流域内没有其他氮管理措施。在沉积物前池后面建造了一个新型反硝化生物反应器,然后水流进入一个由温室覆盖的腔室,再进入一个木屑生物反应器。2022 年和 2023 年,在生物反应器的多个位置测量了水深、溶解氧和温度,并在生物反应器的入口和出口处连续测量了 NO3-N。结果表明,在水深较低、溶解氧较低、水温较高的情况下,效果更好。温室在 2022 年提高了入口温度,但在 2023 年没有提高。由于进水溶解氧浓度较高以及生物反应器中的藻类导致溶解氧分层,前池和温室可能阻碍了反硝化过程。
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