College of Environment, Hohai University, Nanjing, 210098, China.
College of Hydrology and Water Resources, Hohai University, Nanjing, 210098, China.
Environ Sci Pollut Res Int. 2024 Feb;31(10):15559-15570. doi: 10.1007/s11356-024-32227-y. Epub 2024 Feb 1.
In recent years, the total nitrogen concentration in Taihu Lake has decreased significantly. Denitrification, as the main nitrogen removal process, is the key reason for the decrease. Here, the denitrification parameter values in the Environmental Fluid Dynamic Code (EFDC) model were calculated based on isotope-labeled denitrification experiment instead of selecting the recommended values directly. This study further focused on EFDC denitrification parameter derivation with an experimental denitrification rate (D) to reduce simulation errors. According to the EFDC nitrate deposition flux mechanism, the conversion equation between the denitrification rate of the first sediment layer ([Formula: see text]) in EFDC and D was successfully derived. The results revealed a linear correlation between [Formula: see text] and (D). The [Formula: see text] values of sampling points ranged from 0.25 to 0.27 m·day, within the range of model parameters. After substituting [Formula: see text] into the Taihu Lake EFDC model, the average percentage bias and determination coefficient of total nitrogen were 16.25% and 0.87, respectively. The average total nitrogen concentration reduction caused by denitrification at water quality calibration points ranged from 0.027 to 0.305 mg·L.
近年来,太湖的总氮浓度显著下降。反硝化作用作为主要的脱氮过程,是导致总氮浓度下降的关键原因。本研究采用同位素标记反硝化实验来计算环境流体动力学模型(EFDC)中的反硝化参数值,而不是直接选择推荐值。本研究进一步关注 EFDC 反硝化参数的推导,采用实验反硝化速率(D)来减少模拟误差。根据 EFDC 硝酸盐沉积通量机制,成功推导出 EFDC 中第一沉积物层反硝化速率 ([Formula: see text]) 与 D 之间的转换方程。结果表明,[Formula: see text]与 D 之间存在线性相关关系。采样点的 [Formula: see text] 值范围为 0.25 到 0.27 m·day,处于模型参数范围内。将 [Formula: see text] 代入太湖 EFDC 模型后,总氮的平均百分比偏差和决定系数分别为 16.25%和 0.87。水质校准点的反硝化导致总氮平均浓度降低 0.027 到 0.305 mg·L。