Raccoon Mountain is a 1,714 MW hydro power plant located in United States of America. View location, capacity, and technical details.
Installed
Year online
Operator
Coordinates
Insights
Location
Technical Details
- Fuel Type
- Hydroelectric
- Capacity
- 1,714 MW
- Commissioned
- 1979
- Status
- Operational
- Owner
- Tennessee Valley Authority
- Country
- United States
- Coordinates
- 35.056, -85.388
Estimated Carbon Footprint
tonnes / year
over ~80 yrs
gCO₂ per kWh
Annual emissions equal to
Renewable source — life-cycle emissions only (materials/construction), no direct combustion. Open calculator
Nearby Stations
Bowen
United States of America · Coal
Jack McDonough
United States of America · Natural Gas
Watts Bar Nuclear Plant
United States of America · Nuclear
Watts Bar Nuclear Generating Station
United States of America · Nuclear
Sequoyah
United States of America · Nuclear
Sequoyah Nuclear Generating Station
United States of America · Nuclear
About this plant
Raccoon Mountain is a significant pumped-storage hydroelectric power plant located in the United States, specifically in Tennessee. Owned and operated by the Tennessee Valley Authority (TVA), this facility has a total capacity of 1,713.6 megawatts (MW) and was commissioned in 1979. It plays a crucial role in the energy sector of the region, providing both electricity generation and grid stability, particularly during peak demand periods.
As a pumped-storage hydroelectric facility, Raccoon Mountain utilizes the principles of gravitational potential energy. Water is pumped from the Tennessee River to a reservoir located at the top of Raccoon Mountain during periods of low electricity demand, typically when energy prices are lower. This process stores energy in the form of elevated water. When electricity demand peaks, the stored water is released back down through turbines, generating electricity. This method of energy production is highly efficient and allows for quick response to fluctuations in energy demand, making it an essential part of the TVA’s overall energy management strategy.
The use of hydroelectric power at Raccoon Mountain helps to reduce reliance on fossil fuels, thereby contributing to a cleaner energy mix. Hydro energy is considered a renewable resource, as it harnesses the natural flow of water without depleting it. The facility’s operation has a significantly lower carbon footprint compared to traditional coal or natural gas power plants, as its emissions are substantially reduced. However, like all large hydro projects, Raccoon Mountain does have some environmental impacts. The construction and operation of the facility have altered local ecosystems, affected wildlife habitats, and necessitated changes in water levels in the Tennessee River. Nevertheless, the TVA implements various environmental management practices to mitigate adverse effects and promote ecological health in the surrounding areas.
Regionally, Raccoon Mountain serves not only as a power generation facility but also as a vital resource for the Tennessee Valley’s electrical grid. It provides services such as frequency regulation and load balancing, which are essential for maintaining grid stability. The plant’s ability to quickly ramp up power generation helps prevent blackouts during peak usage times, especially in hot summer months when air conditioning demand surges. In addition to its operational significance, Raccoon Mountain is also a recreational area, attracting visitors for outdoor activities like hiking and sightseeing, which further enhances its importance to the local community.
In summary, Raccoon Mountain stands as a pivotal asset in the United States’ energy landscape. Its capacity to generate and store hydroelectric power efficiently contributes to a more sustainable energy future while addressing the challenges of energy demand and environmental stewardship in the Tennessee Valley region.
More Hydroelectric plants
Spotted an error?
Our data is community-verified. If any detail looks wrong or out of date, suggest a correction below — our team reviews and applies approved changes across all languages.