Optimal Baseflow Separation Through Chemical Mass Balance: Comparing the Usages of Two Tracers, Two Concentration Estimation Methods, and Four Baseflow Filters

Author:

Mei Yiwen12ORCID,Wang Dagang1ORCID,Zhu Jinxin1ORCID,Tang Guoping1ORCID,Cai Chenkai3,Shen Xinyi4,Hong Yi5ORCID,Zhang Xinxuan6ORCID

Affiliation:

1. Carbon‐Water Observation and Research Station in Karst Regions of Northern Guangdong School of Geography and Planning Sun Yat‐sen University Guangzhou China

2. Connecticut Institute of Resilience and Climate Adaptation University of Connecticut Groton CT USA

3. Zhejiang Institute of Hydraulics and Estuary Hangzhou China

4. School of Freshwater Sciences University of Wisconsin‐Milwaukee Milwaukee WI USA

5. Cooperative Institute for Great Lakes Research University of Michigan Ann Arbor MI USA

6. Department of Civil and Environmental Engineering University of Connecticut Storrs CT USA

Abstract

AbstractOptimizing empirical baseflow filters using environmental tracers (e.g., specific electrical conductance (SEC), turbidity) is an effective and efficient way to quantify the contribution of baseflow to total flow. To execute this baseflow separation, three key components are needed: The tracer, the method to estimate tracer concentration in different flow components, and the empirical baseflow filter. However, a comprehensive evaluation of the various combinations of these components, especially with a large sample of catchments, is currently lacking in the literature. Therefore, our study assembles 16 hybrid baseflow filters from two tracers, two concentration estimation methods, and four empirical baseflow filters, and evaluated their performance in baseflow separation and producing two long‐term baseflow signatures for 1,100 catchments in the Contiguous United States. Our results suggest that SEC is a superior tracer to turbidity for baseflow separation. Additionally, using monthly maximum and minimum values to represent tracer concentration in flow components produces better separation than using a power function relationship between flow rate and concentration. The four empirical baseflow filters offer a similar level of performance, regardless of the other options used. Yet, some of these filters produce inconsistent results in calculating the baseflow signatures for the catchments. Our analysis shed light on the optimization of hybrid baseflow filters for the accurate quantification of baseflow contribution.

Funder

Young Teacher Foundation of Sun Yat-sen University

National Natural Science Foundation of China

Publisher

American Geophysical Union (AGU)

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