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Flag of United StatesSolar PV Analysis of Hyde Park, United States

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

Hyde Park, New York, United States offers a moderate location for solar PV energy generation, with significant seasonal variation throughout the year. This temperate zone location experiences distinct energy production patterns across all four seasons.

Solar panels in Hyde Park produce their highest output during summer months, generating 5.83 kWh per day for each kilowatt of installed capacity. Spring follows closely behind with 5.40 kWh/day per kW. Production drops considerably in autumn to 3.40 kWh/day, and reaches its lowest point in winter with just 1.93 kWh/day per installed kW.

For residents considering solar installation, the optimal months for generation are clearly from late spring through early fall. During these periods, longer days and more direct sunlight significantly boost energy production. The substantial difference between summer and winter outputs (nearly three times higher in summer) highlights the seasonal nature of solar generation at this latitude.

Optimal Panel Positioning

For fixed solar panel installations in Hyde Park, the ideal tilt angle to maximize year-round production is 36 degrees facing South. This carefully calculated angle optimizes annual energy capture by accounting for the location's specific solar path throughout the year.

Environmental Considerations

Several environmental factors may impact solar production in Hyde Park. Snow accumulation during winter months can significantly reduce output by blocking sunlight from reaching panels. Installing panels at the recommended 36-degree tilt helps snow slide off more easily than a flatter installation would allow.

Tree coverage is another consideration in this verdant region. Hyde Park's mature trees can cast shadows across properties, potentially reducing solar efficiency. A thorough shade analysis before installation can identify optimal panel placement to minimize shadowing throughout the year.

The area's occasional severe weather, including heavy snowstorms and summer thunderstorms, may temporarily impact production. Selecting durable, weather-resistant panels and mounting systems designed to withstand local weather conditions helps ensure system longevity and consistent performance.

Note: The Northern Temperate Zone extends from 35° latitude North up to 66.5° 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 Hyde Park

Seasonal solar PV output for Latitude: 41.7848, Longitude: -73.9332 (Hyde Park, 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 5.83kWh/day in Summer.
Autumn
Average 3.40kWh/day in Autumn.
Winter
Average 1.93kWh/day in Winter.
Spring
Average 5.40kWh/day in Spring.

 

Ideally tilt fixed solar panels 36° South in Hyde Park, United States

To maximize your solar PV system's energy output in Hyde Park, United States (Lat/Long 41.7848, -73.9332) throughout the year, you should tilt your panels at an angle of 36° 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: 41.7848, Longitude: -73.9332, the ideal angle to tilt panels is 36° South

Seasonally adjusted solar panel tilt angles for Hyde Park, 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 Hyde Park, United States. As mentioned earlier, for fixed-panel solar PV installations, it is optimal to maintain a 36° South tilt angle throughout the year.

Overall Best Summer Angle Overall Best Autumn Angle Overall Best Winter Angle Overall Best Spring Angle
25° South in Summer 46° South in Autumn 57° South in Winter 35° 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 Hyde Park, United States as follows: In Summer, set the angle of your panels to 25° facing South. In Autumn, tilt panels to 46° facing South for maximum generation. During Winter, adjust your solar panels to a 57° angle towards the South for optimal energy production. Lastly, in Spring, position your panels at a 35° angle facing South to capture the most solar energy in Hyde Park, 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 Hyde Park, 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 Hyde Park, 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 Hyde Park, United States

The area surrounding Hyde Park, New York is characterized by gently rolling terrain typical of the mid-Hudson Valley region. Located on the eastern bank of the Hudson River, Hyde Park sits at an elevation of approximately 200-300 feet above sea level, with the landscape gradually rising as one moves eastward from the river. The topography consists of a series of modest hills and shallow valleys, with several streams and small waterways cutting through the landscape as they make their way toward the Hudson.

Terrain Features

The western portion of Hyde Park directly adjacent to the Hudson River features relatively flat floodplains that quickly give way to moderately sloped terrain. Moving eastward, the land rises into a series of undulating hills with gradual inclines rather than steep slopes. This transition creates a pleasant, varied landscape without extreme elevation changes. The eastern sections of the area reach heights of about 500-600 feet above sea level, creating a subtle but noticeable rise from the riverside areas. Several small valleys formed by streams like the Crum Elbow Creek and the Fall Kill provide natural breaks in the terrain. These waterways have carved shallow depressions throughout the region, creating microclimates and varying soil conditions. The overall drainage pattern flows westward toward the Hudson River, with numerous small tributaries joining these main waterways.

Vegetation and Land Use

The Hyde Park area features a mix of deciduous forests, open fields, and developed land. Patches of woodland cover many of the hillsides, particularly on steeper slopes and along stream corridors. Agricultural fields and former farmlands occupy significant portions of the flatter terrain, while residential and commercial development is concentrated along major roadways and in the central hamlet areas.

Solar PV Potential Areas

For large-scale solar photovoltaic installations, several areas near Hyde Park present favorable conditions. The most suitable locations would be: The gently sloping former agricultural fields east of the town center offer excellent potential for solar development. These areas typically have southern or southwestern exposure, minimal shading from terrain features, and are already cleared of forest cover. Many of these sites also have reasonable proximity to existing electrical infrastructure. The slightly elevated plateaus northeast of Hyde Park proper, extending toward Pleasant Valley, provide another promising zone for solar development. These areas feature relatively flat terrain at higher elevations, reducing concerns about valley fog or shading from surrounding hills. The open character of this landscape would minimize the need for extensive site preparation. Some of the broader valley floors along the eastern portions of Hyde Park also merit consideration. While these areas may experience some morning fog in certain seasons, they typically offer expansive, level sites that would simplify construction and maintenance of large-scale solar installations.

Topographical Limitations

Not all areas around Hyde Park are equally suitable for solar development. The steeper slopes facing north or northeast would receive significantly reduced solar radiation, making them poor candidates for PV installations. Similarly, the densely forested hillsides would require extensive clearing, potentially creating environmental concerns and additional development costs. The immediate riverfront areas, while relatively flat, face limitations from flood risks and potential wetland impacts. Additionally, many of these riverside properties have historical significance or recreational value that would likely preclude industrial-scale solar development. The varied topography of Hyde Park creates a landscape with numerous possibilities for solar development, particularly in the eastern portions where gently sloping or flat terrain with southern exposure can be found in abundance. These areas represent the optimal balance of favorable solar conditions and minimal development challenges.

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 Hyde Park, United States
Author: Aaron Robinson
Publisher: profileSOLAR.com
First Published: Tuesday 20th of May 2025
Last Updated: Wednesday 29th of October 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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