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Flag of United StatesSolar PV Analysis of Venice, Florida, United States

Graph of hourly avg kWh electricity output per kW of Solar PV installed in Venice, Florida, United States (by season)

Venice, Florida, United States, located in the Northern Sub Tropics, offers a favorable location for solar PV energy generation throughout the year. With its geographical position at 27.0602, -82.3533, this Gulf Coast city experiences substantial solar potential across all seasons.

Seasonal Solar Production

Solar energy production in Venice varies throughout the year, with spring being the most productive season. During spring months, solar panels generate an impressive 7.12 kWh per day for each kilowatt of installed capacity. Summer follows closely with 6.38 kWh/day, while autumn produces 4.98 kWh/day. Winter, while less productive, still delivers a respectable 4.25 kWh/day per kilowatt installed.

This seasonal pattern means Venice solar installations perform well year-round, with particularly strong output during spring and summer months. The relatively small difference between the highest and lowest producing seasons indicates consistent solar potential throughout the year.

Optimal Panel Installation

For fixed panel installations in Venice, the ideal tilt angle to maximize year-round energy production is 24 degrees facing South. This specific angle optimizes solar collection across all seasons, balancing the lower winter sun with the higher summer sun position.

Environmental and Weather Considerations

Several environmental factors in Venice could potentially impact solar production:

  • Hurricane exposure poses a significant risk to solar installations, as Venice is vulnerable to Atlantic hurricane activity, particularly between June and November.
  • Salt air corrosion from the nearby Gulf of Mexico can gradually degrade panel components and mounting hardware.
  • Afternoon thunderstorms are common during summer months, temporarily reducing solar output.
  • Occasional fog and morning humidity can slightly diminish morning production.

Preventative Measures

To optimize solar performance in Venice's specific environment, several installation practices are recommended:

  • Use hurricane-rated mounting systems with enhanced wind resistance ratings (140+ mph)
  • Select marine-grade hardware and corrosion-resistant components
  • Install panels with anti-reflective coatings that perform better in high humidity
  • Consider micro-inverters or power optimizers to minimize production losses during partial shading
  • Implement regular cleaning schedules to remove salt deposits

With these considerations addressed, Venice provides an excellent location for solar PV installations, offering strong year-round production with particularly ideal conditions during spring and summer months.

Note: The Northern Sub Tropics extend from 23.5° latitude North up to 35° latitude.

So far, we have conducted calculations to evaluate the solar photovoltaic (PV) potential in 4253 locations across the United States. This analysis provides insights into each city/location's potential for harnessing solar energy through PV installations.

Link: Solar PV potential in the United States by location

Solar output per kW of installed solar PV by season in Venice, Florida

Seasonal solar PV output for Latitude: 27.0602, Longitude: -82.3533 (Venice, Florida, United States), based on our analysis of 8760 hourly intervals of solar and meteorological data (one whole year) retrieved for that set of coordinates/location from NASA POWER (The Prediction of Worldwide Energy Resources) API:

Summer
Average 6.38kWh/day in Summer.
Autumn
Average 4.98kWh/day in Autumn.
Winter
Average 4.25kWh/day in Winter.
Spring
Average 7.12kWh/day in Spring.

 

Ideally tilt fixed solar panels 24° South in Venice, Florida, United States

To maximize your solar PV system's energy output in Venice, Florida, United States (Lat/Long 27.0602, -82.3533) throughout the year, you should tilt your panels at an angle of 24° South for fixed panel installations.

As the Earth revolves around the Sun each year, the maximum angle of elevation of the Sun varies by +/- 23.45 degrees from its equinox elevation angle for a particular latitude. Finding the exact optimal angle to maximise solar PV production throughout the year can be challenging, but with careful consideration of historical solar energy and meteorological data for a certain location, it can be done precisely.

We use our own calculation, which incorporates NASA solar and meteorological data for the exact Lat/Long coordinates, to determine the ideal tilt angle of a solar panel that will yield maximum annual solar output. We calculate the optimal angle for each day of the year, taking into account its contribution to the yearly total PV potential at that specific location.

The sun
At Latitude: 27.0602, Longitude: -82.3533, the ideal angle to tilt panels is 24° South

Seasonally adjusted solar panel tilt angles for Venice, Florida, United States

If you can adjust the tilt angle of your solar PV panels, please refer to the seasonal tilt angles below for optimal solar energy production in Venice, Florida, United States. As mentioned earlier, for fixed-panel solar PV installations, it is optimal to maintain a 24° South tilt angle throughout the year.

Overall Best Summer Angle Overall Best Autumn Angle Overall Best Winter Angle Overall Best Spring Angle
11° South in Summer 32° South in Autumn 42° South in Winter 20° South in Spring

Assuming you can modify the tilt angle of your solar PV panels throughout the year, you can optimize your solar generation in Venice, Florida, United States as follows: In Summer, set the angle of your panels to 11° facing South. In Autumn, tilt panels to 32° facing South for maximum generation. During Winter, adjust your solar panels to a 42° angle towards the South for optimal energy production. Lastly, in Spring, position your panels at a 20° angle facing South to capture the most solar energy in Venice, Florida, United States.

Our recommendations take into account more than just latitude and Earth's position in its elliptical orbit around the Sun. We also incorporate historical solar and meteorological data from NASA's Prediction of Worldwide Energy Resources (POWER) API to assign a weight to each ideal angle for each day based on its historical contribution to overall solar PV potential during a specific season.

This approach allows us to provide much more accurate recommendations than relying solely on latitude, as it considers unique weather conditions in different locations sharing the same latitude worldwide.

Calculate solar panel row spacing in Venice, Florida, United States

We've added a feature to calculate minimum solar panel row spacing by location. Enter your panel size and orientation below to get the minimum spacing in Venice, Florida, United States.

Our calculation method

  1. Solar Position:
    We determine the Sun's position on the Winter solstice using the location's latitude and solar declination.
  2. Shadow Projection:
    We calculate the shadow length cast by panels using trigonometry, considering panel tilt and the Sun's elevation angle.
  3. Minimum Spacing:
    We add the shadow length to the horizontal space occupied by tilted panels.

This approach ensures maximum space efficiency while avoiding shading during critical times, as the Winter solstice represents the worst-case scenario for shadow length.






Please enter information above to calculate panel spacing.

Topography for solar PV around Venice, Florida, United States

Topography of Venice, Florida

Venice, Florida is situated along the Gulf Coast in Sarasota County, characterized by a predominantly flat, low-lying coastal plain. The elevation throughout the Venice area typically ranges from sea level to approximately 15 feet above sea level, creating a relatively uniform landscape with subtle variations. This coastal city sits on what geologists refer to as the Gulf Coastal Lowlands, a physiographic region defined by its minimal relief and sandy soils. The immediate coastline features beautiful white sand beaches that gradually transition inland to slightly higher ground. Venice itself sits atop what was once an ancient sea bed, which explains its generally level terrain and underlying limestone foundation. The city is intersected by the Intracoastal Waterway, with numerous canals and waterways throughout the urban area, giving Venice its nickname as the "Venice of America."

Natural Features

The natural environment around Venice includes coastal dunes, mangrove swamps, and scattered freshwater wetlands. Moving slightly inland, the landscape transitions to pine flatwoods and palmetto prairies that characterize much of southwest Florida's native ecosystem. The Myakka River flows to the east of Venice, creating additional wetland areas and floodplains that contribute to the region's biodiversity. This flat topography is punctuated by very gentle slopes rather than dramatic changes in elevation. The sandy soils predominant in the region are generally well-drained in developed areas but can retain water in natural depressions, creating seasonal wetlands during Florida's rainy season.

Potential Solar PV Locations

The generally flat terrain around Venice presents favorable conditions for large-scale solar photovoltaic installations. Several areas near Venice offer particular promise for solar development: East Venice Areas: The lands east of Interstate 75, extending toward North Port and the rural portions of Sarasota County, feature larger open tracts with minimal topographic variation. These areas, some of which include former agricultural lands or open rangeland, would require minimal grading for solar installation. North Venice Industrial Zones: Several industrial and commercial zones north of the city center provide potential for large rooftop installations or ground-mounted systems on already-developed land, minimizing new environmental impacts. Reclaimed Land: Former mining sites and reclaimed lands in the wider region offer potential for solar development without displacing natural habitats. These areas often feature cleared, level terrain ideal for solar arrays. The optimal solar PV locations would avoid the immediate coastal areas (which face higher land costs and potential storm surge concerns) while taking advantage of the abundant sunshine that characterizes this part of Florida. The inland areas east of Venice, with their combination of flat terrain, existing access roads, and proximity to transmission infrastructure, represent the most practical locations for large-scale solar development near Venice. The absence of mountains, valleys, or significant hills means that shadow effects from terrain features are minimal throughout the region, allowing for efficient solar collection across large areas. This topographical advantage, combined with Florida's climate, makes the Venice region naturally conducive to solar energy production.

United States solar PV Stats as a country

United States ranks 2nd in the world for cumulative solar PV capacity, with 95,209 total MW's of solar PV installed. This means that 3.40% of United States's total energy as a country comes from solar PV (that's 26th in the world). Each year United States is generating 289 Watts from solar PV per capita (United States ranks 15th in the world for solar PV Watts generated per capita). [source]

Are there incentives for businesses to install solar in United States?

Yes, there are several incentives for businesses wanting to install solar energy in the United States. These include federal tax credits, state and local rebates, net metering policies, and renewable energy certificates (RECs). Additionally, many states have enacted legislation that requires utilities to purchase a certain amount of electricity from renewable sources such as solar.

Do you have more up to date information than this on incentives towards solar PV projects in United States? Please reach out to us and help us keep this information current. Thanks!

Citation Guide

Article Details for Citation

Article: Solar PV Analysis of Venice, Florida, United States
Author: Aaron Robinson
Publisher: profileSOLAR.com
First Published: Monday 12th of May 2025
Last Updated: Monday 21st of July 2025

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Compare this location to others worldwide for solar PV potential

The solar PV analyses available on our website, including this one, are offered as a free service to the global community. Our aim is to provide education and aid informed decision-making regarding solar PV installations.

However, please note that these analyses are general guidance and may not meet specific project requirements. For in-depth, tailored forecasts and analysis crucial for feasibility studies or when pursuing maximum ROI from your solar projects, feel free to contact us; we offer comprehensive consulting services expressly for this purpose.

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