An Integrated Agriculture, Atmosphere, and Hydrology Modeling System for Ecosystem Assessments
Abstract We present a regional‐scale integrated modeling system (IMS) that includes Environmental Policy Integrated Climate (EPIC), Weather Research and Forecast (WRF), Community Multiscale Air Quality (CMAQ), and Soil and Water Assessment Tool (SWAT) models. The centerpiece of the IMS is the Fertil...
Main Authors: | , , , , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
American Geophysical Union (AGU)
2019-12-01
|
Series: | Journal of Advances in Modeling Earth Systems |
Subjects: | |
Online Access: | https://doi.org/10.1029/2019MS001708 |
id |
doaj-0c634efe24224060a6cbaf0998fc6951 |
---|---|
record_format |
Article |
spelling |
doaj-0c634efe24224060a6cbaf0998fc69512020-11-24T22:07:34ZengAmerican Geophysical Union (AGU)Journal of Advances in Modeling Earth Systems1942-24662019-12-0111124645466810.1029/2019MS001708An Integrated Agriculture, Atmosphere, and Hydrology Modeling System for Ecosystem AssessmentsL. Ran0Y. Yuan1E. Cooter2V. Benson3D. Yang4J. Pleim5R. Wang6J. Williams7U.S. Environmental Protection Agency NC USAU.S. Environmental Protection Agency NC USAU.S. Environmental Protection Agency NC USA (retired)Benson Consulting Columbia MO USAUniversity of North Carolina at Chapel Hill Chapel Hill NC USAU.S. Environmental Protection Agency NC USADepartment of Land, Air, and Water Resources University of California Davis CA USABlackland Research and Extension Center Texas A&M University Temple TX USAAbstract We present a regional‐scale integrated modeling system (IMS) that includes Environmental Policy Integrated Climate (EPIC), Weather Research and Forecast (WRF), Community Multiscale Air Quality (CMAQ), and Soil and Water Assessment Tool (SWAT) models. The centerpiece of the IMS is the Fertilizer Emission Scenario Tool for CMAQ (FEST‐C), which includes a Java‐based interface and EPIC adapted to regional applications along with built‐in database and tools. The SWAT integration capability is a key enhanced feature in the current release of FEST‐C v1.4. For integrated modeling demonstration and evaluation, FEST‐C EPIC is simulated over three individual years with WRF/CMAQ weather and N deposition. Simulated yearly changes in water and N budgets along with yields for two major crops (corn grain and soybean) match those inferred from intuitive physical reasoning and survey data given different‐year weather conditions. Yearlong air quality simulations with an improved bidirectional ammonia flux modeling approach directly using EPIC‐simulated soil properties including NH3 content helps reduce biases of simulated gas‐phase NH3 and NH4+ wet deposition over the growing season. Integrated hydrology and water quality simulations applied to the Mississippi River Basin show that estimated monthly streamflow and dissolved N near the outlet to the Gulf of Mexico display similar seasonal patterns as observed. Limitations and issues in different parts of the integrated multimedia simulations are identified and discussed to target areas for future improvements.https://doi.org/10.1029/2019MS001708FEST‐CEPICWRF‐CMAQSWATnitrogen cycling |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
L. Ran Y. Yuan E. Cooter V. Benson D. Yang J. Pleim R. Wang J. Williams |
spellingShingle |
L. Ran Y. Yuan E. Cooter V. Benson D. Yang J. Pleim R. Wang J. Williams An Integrated Agriculture, Atmosphere, and Hydrology Modeling System for Ecosystem Assessments Journal of Advances in Modeling Earth Systems FEST‐C EPIC WRF‐CMAQ SWAT nitrogen cycling |
author_facet |
L. Ran Y. Yuan E. Cooter V. Benson D. Yang J. Pleim R. Wang J. Williams |
author_sort |
L. Ran |
title |
An Integrated Agriculture, Atmosphere, and Hydrology Modeling System for Ecosystem Assessments |
title_short |
An Integrated Agriculture, Atmosphere, and Hydrology Modeling System for Ecosystem Assessments |
title_full |
An Integrated Agriculture, Atmosphere, and Hydrology Modeling System for Ecosystem Assessments |
title_fullStr |
An Integrated Agriculture, Atmosphere, and Hydrology Modeling System for Ecosystem Assessments |
title_full_unstemmed |
An Integrated Agriculture, Atmosphere, and Hydrology Modeling System for Ecosystem Assessments |
title_sort |
integrated agriculture, atmosphere, and hydrology modeling system for ecosystem assessments |
publisher |
American Geophysical Union (AGU) |
series |
Journal of Advances in Modeling Earth Systems |
issn |
1942-2466 |
publishDate |
2019-12-01 |
description |
Abstract We present a regional‐scale integrated modeling system (IMS) that includes Environmental Policy Integrated Climate (EPIC), Weather Research and Forecast (WRF), Community Multiscale Air Quality (CMAQ), and Soil and Water Assessment Tool (SWAT) models. The centerpiece of the IMS is the Fertilizer Emission Scenario Tool for CMAQ (FEST‐C), which includes a Java‐based interface and EPIC adapted to regional applications along with built‐in database and tools. The SWAT integration capability is a key enhanced feature in the current release of FEST‐C v1.4. For integrated modeling demonstration and evaluation, FEST‐C EPIC is simulated over three individual years with WRF/CMAQ weather and N deposition. Simulated yearly changes in water and N budgets along with yields for two major crops (corn grain and soybean) match those inferred from intuitive physical reasoning and survey data given different‐year weather conditions. Yearlong air quality simulations with an improved bidirectional ammonia flux modeling approach directly using EPIC‐simulated soil properties including NH3 content helps reduce biases of simulated gas‐phase NH3 and NH4+ wet deposition over the growing season. Integrated hydrology and water quality simulations applied to the Mississippi River Basin show that estimated monthly streamflow and dissolved N near the outlet to the Gulf of Mexico display similar seasonal patterns as observed. Limitations and issues in different parts of the integrated multimedia simulations are identified and discussed to target areas for future improvements. |
topic |
FEST‐C EPIC WRF‐CMAQ SWAT nitrogen cycling |
url |
https://doi.org/10.1029/2019MS001708 |
work_keys_str_mv |
AT lran anintegratedagricultureatmosphereandhydrologymodelingsystemforecosystemassessments AT yyuan anintegratedagricultureatmosphereandhydrologymodelingsystemforecosystemassessments AT ecooter anintegratedagricultureatmosphereandhydrologymodelingsystemforecosystemassessments AT vbenson anintegratedagricultureatmosphereandhydrologymodelingsystemforecosystemassessments AT dyang anintegratedagricultureatmosphereandhydrologymodelingsystemforecosystemassessments AT jpleim anintegratedagricultureatmosphereandhydrologymodelingsystemforecosystemassessments AT rwang anintegratedagricultureatmosphereandhydrologymodelingsystemforecosystemassessments AT jwilliams anintegratedagricultureatmosphereandhydrologymodelingsystemforecosystemassessments AT lran integratedagricultureatmosphereandhydrologymodelingsystemforecosystemassessments AT yyuan integratedagricultureatmosphereandhydrologymodelingsystemforecosystemassessments AT ecooter integratedagricultureatmosphereandhydrologymodelingsystemforecosystemassessments AT vbenson integratedagricultureatmosphereandhydrologymodelingsystemforecosystemassessments AT dyang integratedagricultureatmosphereandhydrologymodelingsystemforecosystemassessments AT jpleim integratedagricultureatmosphereandhydrologymodelingsystemforecosystemassessments AT rwang integratedagricultureatmosphereandhydrologymodelingsystemforecosystemassessments AT jwilliams integratedagricultureatmosphereandhydrologymodelingsystemforecosystemassessments |
_version_ |
1725819788155944960 |