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在一个大规模的黄土流域,水-环境变量之间的相关性与其自身的时间变化程度是否一致?

Is the correlation between hydro-environmental variables consistent with their own time variability degrees in a large-scale loessial watershed?

机构信息

Key Laboratory of Agricultural Soil and Water Engineering in Arid and Semiarid Areas, Ministry of Education, Northwest A&F University, Yangling, Shaanxi 712100, PR China; Blackland Research and Extension Center, Texas A&M AgriLife Research, Texas A&M University, Temple, TX 76502, USA; State Key Laboratory of Soil Erosion and Dryland Farming on the Loess Plateau, Northwest A&F University, Yangling, Shaanxi 712100, PR China; College of Water Resources and Architectural Engineering, Northwest A&F University, Yangling, Shaanxi 712100, PR China.

Blackland Research and Extension Center, Texas A&M AgriLife Research, Texas A&M University, Temple, TX 76502, USA.

出版信息

Sci Total Environ. 2020 Jun 20;722:137737. doi: 10.1016/j.scitotenv.2020.137737. Epub 2020 Mar 14.

Abstract

Temporal scale is an important keyword in environmental hydrology but little information is available in the relationship between correlation and time variability degree of hydro-environmental variables at a watershed scale, which makes it difficult to design effective real-time management strategies. Here we take the Yanhe River Watershed as a study case to simulate and inventory the fractal characteristics of correlation and time variability degree of runoff, rainfall, and NH-N at different time scales, focusing on the long-term series of 1984-2012. (i) The coupled modeling framework based on SWAT (Soil and Water Assessment Tool), statistics and fractal theory is a time series analysis method that is particularly suitable for the evaluation of long-range correlation of non-linear time series. The Nash-Sutcliffe Efficiency coefficient (NSE), R and PBIAS during the calibration and verification period proved the reliability and acceptability of the established SWAT model in modeling multi-time scale runoff and NH-N load in the upstream catchment of Ganguyi hydrological station. (ii) Runoffs at all time scales showed positive correlations with rainfall although the significant level had a certain time scale differences. More interestingly, the correlation between NH-N loss and runoff at different time scales was significantly higher than that of rainfall. (iii) Each hydro-environmental variable has different fractal and time variation characteristics at different time scales, and the correlation levels between different hydrological variables are not completely consistent with their own time variability degrees at different time scales. These findings point to a fundamental challenge in managing regions with leading infiltration-excess runoff and uneven nutrient loading because the meteorological and hydrological variables in these regions exhibit the strongest temporal variability, which will affect the effective allocation and implementation in management practices.

摘要

时间尺度是环境水文学中的一个重要关键词,但在流域尺度上,水-环境变量的相关性和时变程度之间的关系信息很少,这使得设计有效的实时管理策略变得困难。在这里,我们以延河流域为例,模拟和盘点不同时间尺度下径流量、降雨量和 NH-N 的相关性和时变程度的分形特征,重点关注 1984-2012 年的长期序列。(i) 基于 SWAT(土壤和水评估工具)、统计和分形理论的耦合建模框架是一种时间序列分析方法,特别适用于评估非线性时间序列的远程相关性。校准和验证期间的纳什-苏特克里夫效率系数(NSE)、R 和 PBIAS 证明了在建模 Ganguyi 水文站上游流域多时间尺度径流量和 NH-N 负荷方面,建立的 SWAT 模型的可靠性和可接受性。(ii) 尽管在一定时间尺度上存在差异,但各时间尺度的径流量均与降雨量呈正相关。更有趣的是,不同时间尺度上 NH-N 损失与径流量之间的相关性明显高于降雨量。(iii) 不同水-环境变量在不同时间尺度上具有不同的分形和时变特征,不同水文变量之间的相关水平与它们在不同时间尺度上的自身时变程度并不完全一致。这些发现表明,在管理具有主导入渗-超渗径流量和不均匀养分负荷的地区存在根本挑战,因为这些地区的气象和水文变量表现出最强的时间变异性,这将影响管理实践中的有效分配和实施。

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