In this section
2014 Water quality status and trends report
- Summary table
- Summary table
- Surface water
- Summary tables
LMAC (Lake Monroe)
Location: latitude 28°50’05.839”, longitude 81°16’15.275”, GPS datum—WGS-1984 Station LMAC is located at the center of Lake Monroe.
Point sources: Sanford/North wastewater treatment facility and Deltona Lakes wastewater treatment facility are within a five-mile radius and within the drainage basin of this water quality site.
Lake Monroe is located in central Florida and straddles the Volusia County and Seminole County line. The city of Sanford is on the southern shore of the lake, and the city of Deltona on the northern shore. The area around Lake Monroe is highly developed with residential, commercial, and industrial interests. Interstate 4 skirts the west end of Lake Monroe. The St. Johns River flows through the center of the lake from the east to the west.
There are two power plants located on Lake Monroe. One on the north shore is a training facility and one to the west is an actual producer of electricity. A very nice public boat ramp is located on the southern shore at Sanford. It is capable of handling multiple boats launching and loading at the same time.
Lake Monroe has an abundance of alligators, some more than 10 feet long. They can often be seen as you drive along the shoreline. There are also bald eagles and ospreys that can be seen taking fish from the lake. The Central Florida Zoo is located in Sanford if you’d like to see more exotic animals. Lake Monroe offers many recreational activities to the public, from boating to fishing to sailing. It is a popular location throughout the year, especially in the summer.
All of the maps and charts shown below were created using a customized GIS data summary tool, with the watershed generated by Arc Hydro for this monitoring station. More information about Arc Hydro can be found by going to the Technical background page. From that page, a description of the customized GIS data summary tool can be accessed.
Spatial data summaries
2000 population density
Population data is collected by the Census Bureau every 10 years and is used to show the distribution of population in a number of ways. Population density has a direct impact on land use, which effects water quality in areas around or near water bodies. This map displays the 2000 population density per square kilometer within this surface water catchment. The legend shows the area for each class in square kilometers and the percentage of area in descending order. More complete metadata can be found by clicking on the metadata link for the 2000 population density.
General land use 2000
Land use, which is usually derived from aerial photography by photo interpreters, shows the distribution of land and how it is used. Land use affects the water quality of water bodies through water runoff within a surface water catchment. This map displays the distribution of eight categories of general land use within this surface water catchment. The legend shows the area for each category in square kilometers and the percentage of area in descending order. More complete metadata can be found by clicking on the metadata link for general land use 2000.
The geology of the state of Florida was delineated by the Florida Geological Survey. Water quality is impacted by the underlying geology of streams and lakes. This map displays the underlying geological formations within this surface water catchment. The legend shows the area for each type of formation in square kilometers and the percentage of area in descending order. More complete metadata can be found by clicking on the metadata link for geology.
Physiography describes the earth’s exterior physical features. These are divided into general groups and then subgroups containing features such as uplands, hills, ridges, plains, valleys, karst, etc. Water quality is affected through water runoff by physiography. This map displays the more detailed physiographic subdistricts within this surface water catchment. The legend shows the area for each subdistrict in square kilometers and the percentage of area in descending order. More complete metadata can be found by clicking on the metadata link for physiographic divisions.
Rainfall data comes from radar imaging as well as rainfall gauge surveys. Rainfall affects water quality through runoff within the surface water drainage basins. This map displays the total daily rainfall in inches for each pixel for 2004 within each surface water catchment. The legend shows the area for each rainfall range in square kilometers and the percentage of area in descending order. More complete metadata can be found by clicking on the metadata link for 2004 rainfall.
St. Johns River Water Management District and other public lands
The St. Johns River Water Management District (SJRWMD) purchases lands that are in environmentally sensitive areas to protect the water resources on, beneath or adjoining the property. Water quality is affected in water bodies adjacent to these protected lands. This map displays the lands owned, jointly owned, being considered for purchase, or lands through which SJRWMD has an easement. The legend shows the area of these lands in acres and the percentage of area in descending order. More complete metadata can be found by clicking on the metadata link for SJRWMD and public lands.
Soils drainage characteristics can also impact surface water runoff, a source of nonpoint pollution for adjacent water bodies, which effects water quality. This map displays water bodies and soil drainage characteristics. The legend shows the area of these soils in square kilometers and the percentage of area in descending order. More complete metadata can be found by clicking on the metadata link for soils drainage.
5-foot elevation — DEM
Land elevation influences rainfall runoff, which effects the surface water quality, as water moves through the landscape to the rivers, streams, and lakes. This map with accompanying legend displays the maximum (MAX), minimum (MIN), range, standard deviation (STD) and mean of 5-foot elevations within the surface water drainage area (watershed). More complete metadata can be found by clicking on the metadata link for 5-foot elevation-DEM (Digital Elevation Model).
In some areas of SJRWMD, the Floridan aquifer is at or near land surface and is vulnerable to pollutants that threaten our drinking water supply. It is especially important to preserve surface water quality in these areas. This map displays recharge to the Floridan aquifer in inches per year (in/yr) within this surface water drainage catchment. Discharge, where the potentiometric surface is greater than the land surface elevation, is also shown. The area for each class is shown in square kilometers and the percentage of area in descending order. More complete metadata can be found by clicking on the metadata link for recharge 1995.
Arc Hydro model
The map below contains selected features from the St. Johns River Water Management District (SJRWMD) Arc Hydro geodatabase. The introduction of the SJRWMD Arc Hydro geodatabase made the creation of these fact pages possible, by providing improved geographic information system (GIS) data that has been combined into a GIS network. This hydrologically based network does for water resources what the commonly used mapping websites (such as MapBlast, MapQuest and GoogleMaps) have done for travel planning, except that instead of interstates, highways and roads, this hydrologic network shows streams, rivers, lakes and wetlands. Similar to transportation mapping sites, information about water resources has been related, or linked, to the GIS network and can be easily accessed. The legend to the right of the map includes the Arc Hydro network, Arc Hydro Polygon Feature Classes and HydroPoints. The features included in the Arc Hydro Network exist to establish relationships based on surface water flow. The lines (HydroEdges) may represent streams or rivers, which are commonly displayed as lines on maps. The lines may also represent, in a “shorthand” way, the concept of surface water flow through a lake or a wetland, which are not routinely displayed as lines. The features in the Arc Hydro Polygon Feature Classes and HydroPoints represent some of the water resources information that has been linked to the Arc Hydro GIS network. HDS in the map legend below refers to the District’s Water Resource Information program and NWIS refers to the National Water Information System, which is part of the United States Geological Survey (USGS). See Technical Background for a more detailed explanation of the SJRWMD Arc Hydro technology and its features.
Clicking on the Methodology link will direct you to information about how water quality samples were collected, analyzed, and summarized for this fact page. View the most recent Water Quality Status and Trends Report.
Lake Monroe is located in northern Seminole County and is sampled every other month, at the lake’s center, as part of the ambient monitoring program. The lake is about 2.4 meters deep at the sample site and has a typical temperature range. When compared to other lakes, conductivity and major ion concentrations are high, resulting in hard water. The median dissolved oxygen concentration is fairly typical for lakes in the District. The lake has fair buffering capacity and a neutral pH. Total organic carbon concentrations are typical, although color is high. The Secchi depth is elevated, though this indicates hypereutrophic condition, according to Forsberg–Ryding criteria. Total suspended solids and turbidity are at lower concentrations than typically found. Total nitrogen and total phosphorus are at typical concentrations, but indicate hypereutrophic and eutrophic conditions, respectively, under the Forsberg–Ryding criteria. The chlorophyll concentration is typical, but indicates a eutrophic condition, according to the Forsberg–Ryding criteria. The lake has fair water quality, according to the trophic state index.
|Analytes||Data Yrs||N Data||Min||Q1||Median||Q3||Max||Range|
|Water temperature (°C)||15||87||11.00||19.08||23.80||28.60||33.34||mid|
|Secchi disc transparency (meters)||15||83||0.30||0.45||0.55||0.70||1.15||mid-hi|
|Color (platinum-cobalt units)||15||87||30.00||80.00||150.00||250.00||500.00||high|
|Specific conductance (µhmhos/cm @ 25° C)||15||86||350.00||594.00||979.00||1522.00||2230.00||high|
|Sample collection depth (meters)||15||86||0.20||0.50||0.50||0.50||0.50||mid-hi|
|Dissolved oxygen analysis by probe (mg/L)||15||85||1.90||6.13||7.73||9.29||11.53||mid-lo|
|pH (standard units)||15||86||6.33||7.13||7.65||8.32||9.59||mid-lo|
|Total alkalinity (mg/L as CaCO3)||15||85||2.00||44.70||52.59||61.25||88.62||mid-lo|
|Total nonfiltrable residue (mg/L)||15||87||0.00||5.00||8.00||16.00||52.00||mid-lo|
|Total nitrogen (mg/L as N)||15||87||0.39||1.41||1.61||1.93||3.37||mid|
|Total phosphorus (mg/L as P)||15||87||0.02||0.07||0.08||0.11||0.58||mid|
|Total organic carbon (mg/L as C)||15||87||13.37||18.50||21.85||25.70||32.55||mid|
|Total calcium (mg/L as Ca)||15||87||18.49||27.30||40.73||59.30||92.11||mid-hi|
|Total magnesium (mg/L as Mg)||15||87||5.51||9.25||15.12||25.79||40.39||mid-hi|
|Total sodium (mg/L as Na)||15||87||0.00||70.00||116.10||190.30||309.03||high|
|Total potassium (mg/L as K)||15||87||2.09||4.06||5.94||8.10||12.53||mid-hi|
|Total chloride (mg/L)||15||86||69.08||138.39||230.25||341.76||572.54||high|
|Total sulfate (mg/L as SO4)||15||86||1.00||28.77||53.09||107.00||210.00||high|
|Trichromatic uncorrected chlorophyll-a (µg/L)||15||85||0.01||6.61||20.51||41.60||166.70||mid-lo|
|Hardness (mg/L Ca+Mg)||15||87||68.88||107.84||163.73||262.68||396.00||mid-hi|
|Total filtrable residue (mg/L dried at 180° C)||15||87||101.00||351.00||576.00||885.00||1630.00||high|
|Lab turbidity (NTU)||15||87||0.90||2.00||4.50||7.80||20.10||mid-lo|
|Sample site depth (meters)||15||86||1.20||2.20||2.40||2.90||5.70||mid|