Impacts of Land Cover Change on the Spatial Distribution of Nonpoint Source Pollution Based on SWAT Model

Author:

Zhang Zeshu1ORCID,Montas Hubert1,Shirmohammadi Adel2,Leisnham Paul T.2ORCID,Negahban-Azar Masoud2

Affiliation:

1. Fischell Department of Bioengineering, University of Maryland, College Park, MD 20742, USA

2. Department of Environmental Science and Technology, University of Maryland, College Park, MD 20742, USA

Abstract

Nonpoint source (NPS) pollution is a pressing issue worldwide, especially in the Chesapeake Bay, where sediment, nitrogen (N), and phosphorus (P) are the most critical water quality concerns. Despite significant efforts by federal, state, and local governments, the improvement in water quality has been limited. Investigating the spatial distribution of NPS hotspots can help understand NPS pollutant output and guide control measures. We hypothesize that as land cover changes from natural (e.g., forestland) and agricultural to suburban and ultra-urban, the distribution of NPS pollution source areas becomes increasingly spatially uniform. To test this hypothesis, we analyzed three real watersheds with varying land cover (Greensboro watershed for agriculture, Watts Branch watershed for suburban, and Watershed 263 for ultra-urban) and three synthetic watersheds developed based on the Watts Branch watershed, which ranged from forested and agricultural to ultra-urban but had the same soil, slope, and weather conditions. The Soil and Water Assessment Tool (SWAT) was selected as a phenomenological model for the analysis, and SWAT-CUP was used for model calibration and validation. The hydrologic responses of the three real and synthetic watersheds were simulated over ten years (1993–2002 or 2002–2011), and calibration and validation results indicated that SWAT could properly predict the export of runoff and three target NPS pollution constituents (sediment, total nitrogen, and total phosphorus). The results showed that the distribution of NPS pollutant outputs becomes increasingly uniform as land cover changes from agriculture to ultra-urban across watersheds. This research suggests that the spatial distribution of NPS pollution source areas is a function of the major land cover category of study watersheds, and control strategies should be adapted accordingly. If NPS pollution is distributed unevenly across a watershed, hotspot areas output a disproportionate amount of pollution and require more targeted and intensive control measures. Conversely, if the distribution of NPS pollution is more uniform across a watershed, the control strategies need to be more widespread and encompass a larger area.

Funder

the National Science Foundation-Coupled Natural Human Systems

Publisher

MDPI AG

Subject

Water Science and Technology,Aquatic Science,Geography, Planning and Development,Biochemistry

Reference45 articles.

1. USEPA (2017). National Water Quality Inventory: Report to Congress, USEPA, Office of Water.

2. Chesapeake Bay Policy: 34 Years and Counting;Schlimm;Stream Conscious.,2018

3. Eutrophication of Chesapeake Bay: Historical trends and ecological interactions;Kemp;Mar. Ecol. Prog. Ser.,2005

4. USEPA (2010). Guidance for Federal Land Management in the Chesapeake Bay Watershed, USEPA.

5. Nutrient management and the Chesapeake Bay;Beegle;J. Contemp. Water Res. Educ.,2013

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