Great Lakes Restoration Initiative Project 49 Fox River Basin 2016 and 2017 Data

The Fox River transports elevated loads of nitrogen and phosphorus to Lake Michigan. The increased concentration of N and P causes eutrophication of the lake, creating hypoxic zones and damaging the lake ecosystem.To decrease loading, best management practices (BMPs) have been implemented in the uplands of the basin. Little work has been done, however, to reduce nutrient concentrations in the river. Rivers are capable of removing nutrients through biotic uptake and sediment burial and are able to remove N through denitrification. Identifying and managing these locations of increased nutrient cycling known as “hot spots” may be another mechanism for nutrient mitigation.Our objective was to identify hot spots of N and P cycling in the Fox River basin. We measured rates of specific biogeochemical processes (e.g. ambient and potential denitrification, and sediment phosphorus uptake and release) at sites that had varying mixed land use. We also measured variables that are known to affect nitrogen and phosphorus cycling. Models were created to estimate how land use type and BMP coverage can effect the capacity of the Fox River and its tributaries to retain and cycle N and P.

Data and Resources

Field Value
accessLevel public
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identifier http://datainventory.doi.gov/id/dataset/usgs-5cd590cce4b0e8a309e46020
metadata_type geospatial
modified 2022-04-28T00:00:00Z
old-spatial -89.8242, 42.5207, -87.8027, 45.3676
publisher U.S. Geological Survey
resource-type Dataset
source_datajson_identifier true
source_hash d55488b86c33f84ff979f855b6a76db541dd9a0d7064090a8c02024570326ccb
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spatial {"type": "Polygon", "coordinates": [[[-89.8242, 42.5207], [-89.8242, 45.3676], [ -87.8027, 45.3676], [ -87.8027, 42.5207], [-89.8242, 42.5207]]]}
theme {geospatial}
Groups
  • AmeriGEOSS
  • National Provider
  • North America
Tags
  • AmeriGEO
  • AmeriGEOSS
  • CKAN
  • GEO
  • GEOSS
  • National
  • North America
  • United States
  • agriculture
  • best-management-practices
  • biota
  • denitrification
  • eastern-wisconsin
  • eutrophication
  • fox-river-basin
  • green-bay
  • lake-michigan
  • nitrogen
  • phosphorus
  • phosphorus-sediment-uptake
  • usgs-5cd590cce4b0e8a309e46020
isopen False
license_id notspecified
license_title License not specified
maintainer Rebecca M Kreiling
maintainer_email rkreiling@usgs.gov
metadata_created 2025-09-24T10:44:57.816006
metadata_modified 2025-09-24T10:44:57.816015
notes The Fox River transports elevated loads of nitrogen and phosphorus to Lake Michigan. The increased concentration of N and P causes eutrophication of the lake, creating hypoxic zones and damaging the lake ecosystem.To decrease loading, best management practices (BMPs) have been implemented in the uplands of the basin. Little work has been done, however, to reduce nutrient concentrations in the river. Rivers are capable of removing nutrients through biotic uptake and sediment burial and are able to remove N through denitrification. Identifying and managing these locations of increased nutrient cycling known as “hot spots” may be another mechanism for nutrient mitigation.Our objective was to identify hot spots of N and P cycling in the Fox River basin. We measured rates of specific biogeochemical processes (e.g. ambient and potential denitrification, and sediment phosphorus uptake and release) at sites that had varying mixed land use. We also measured variables that are known to affect nitrogen and phosphorus cycling. Models were created to estimate how land use type and BMP coverage can effect the capacity of the Fox River and its tributaries to retain and cycle N and P.
num_resources 2
num_tags 21
title Great Lakes Restoration Initiative Project 49 Fox River Basin 2016 and 2017 Data