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Graph of hourly avg kWh electricity output per kW of Solar PV installed in Parasznya, Hungary (by season)

Solar Energy Potential in Parasznya, Hungary

Parasznya, Hungary, located at coordinates 48.1633, 20.653 in the Northern Temperate Zone, shows significant seasonal variation in its solar energy production potential. This location experiences moderate solar generation capabilities that fluctuate considerably throughout the year. The solar energy production at this location follows a predictable seasonal pattern. During summer months, solar panels generate their highest output at 6.19kWh per day for each kilowatt of installed capacity. Spring represents the second-most productive season with 4.45kWh daily production per installed kilowatt. Autumn sees a significant drop to 2.86kWh per day, while winter experiences the lowest production at just 1.27kWh per day per kilowatt of installed capacity.

Optimal Panel Installation

For fixed solar panel installations in Parasznya, the ideal tilt angle to maximize year-round energy production is 40 degrees facing South. This angle optimizes the balance between summer and winter solar exposure, accounting for the Earth's elliptical orbit and the specific latitude of this location.

Environmental and Weather Considerations

Several environmental factors could potentially impact solar production at this location:
  • Winter snow accumulation can temporarily reduce panel efficiency if not cleared regularly
  • Occasional fog and low cloud cover in valley areas, particularly during autumn and winter mornings
  • Moderate dust and pollen during spring and summer agricultural seasons
  • Potential for hail damage during severe summer thunderstorms
To mitigate these challenges, solar installations in Parasznya should incorporate several preventative measures. These include installing panels at the recommended 40-degree angle to facilitate natural snow sliding, implementing automated cleaning systems or regular maintenance schedules to address dust accumulation, and selecting hail-resistant panel models with appropriate certification for the region's weather patterns.

Seasonal Considerations

The substantial difference between summer and winter production (nearly 5 times more energy in summer) indicates that this location is most suitable for solar applications that can accommodate seasonal variation. The spring and summer months (approximately April through September) represent the prime solar generation period, when the system will produce significantly above its annual average. Winter months will require supplementary energy sources or storage solutions to maintain consistent energy availability. However, the relatively strong spring performance suggests that the productive season extends longer than in more northern European locations.

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 59 locations across Hungary. This analysis provides insights into each city/location's potential for harnessing solar energy through PV installations.

Link: Solar PV potential in Hungary by location

Solar output per kW of installed solar PV by season in Parasznya

Seasonal solar PV output for Latitude: 48.1633, Longitude: 20.653 (Parasznya, Hungary), 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 6.19kWh/day in Summer.
Autumn
Average 2.86kWh/day in Autumn.
Winter
Average 1.27kWh/day in Winter.
Spring
Average 4.45kWh/day in Spring.

 

Ideally tilt fixed solar panels 40° South in Parasznya, Hungary

To maximize your solar PV system's energy output in Parasznya, Hungary (Lat/Long 48.1633, 20.653) throughout the year, you should tilt your panels at an angle of 40° 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: 48.1633, Longitude: 20.653, the ideal angle to tilt panels is 40° South

Seasonally adjusted solar panel tilt angles for Parasznya, Hungary

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 Parasznya, Hungary. As mentioned earlier, for fixed-panel solar PV installations, it is optimal to maintain a 40° South tilt angle throughout the year.

Overall Best Summer Angle Overall Best Autumn Angle Overall Best Winter Angle Overall Best Spring Angle
31° South in Summer 51° South in Autumn 62° South in Winter 41° 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 Parasznya, Hungary as follows: In Summer, set the angle of your panels to 31° facing South. In Autumn, tilt panels to 51° facing South for maximum generation. During Winter, adjust your solar panels to a 62° angle towards the South for optimal energy production. Lastly, in Spring, position your panels at a 41° angle facing South to capture the most solar energy in Parasznya, Hungary.

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 Parasznya, Hungary

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 Parasznya, Hungary.

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 Parasznya, Hungary

Parasznya, nestled in northeastern Hungary, is characterized by a diverse and undulating topography that reflects the broader geographical features of the Borsod-Abaúj-Zemplén county. The village sits at an elevation of approximately 200 meters above sea level, positioned on the eastern foothills of the Bükk Mountains, a significant range within the North Hungarian Mountains system. The landscape around Parasznya presents a transition zone between the higher elevations of the Bükk Mountains to the west and the flatter Sajó River valley to the east. This transitional character creates a gently rolling terrain with moderate slopes and small plateaus. The western parts of the area rise more steeply toward the mountains, while the eastern sections gradually descend toward the river valley.

Geographical Context

The immediate surroundings of Parasznya feature a mix of forested hills, agricultural fields, and small valleys carved by seasonal streams. The Bükk Mountains influence provides a backdrop of wooded slopes that become increasingly prominent as one moves westward from the village. These forests are primarily deciduous, with oak and hornbeam being common species. Small watercourses flow through the area, generally moving eastward toward the Sajó River, which lies approximately 10 kilometers east of Parasznya. These streams have created shallow valleys that break up the otherwise rolling landscape, adding complexity to the local topography.

Potential for Solar PV Development

When considering large-scale solar photovoltaic installations, the eastern and southeastern areas surrounding Parasznya offer the most promising conditions. These regions feature more open terrain with gentler slopes that receive substantial solar exposure throughout the day. The gradual decline toward the Sajó River valley creates favorable conditions with minimal shadowing effects. Specifically, the areas between Parasznya and neighboring settlements like Varbó and Radostyán contain agricultural lands and clearings that would be well-suited for solar development. These locations combine relatively flat terrain with good exposure to the southern sky – critical factors for optimal solar panel placement. The northern and western regions near Parasznya present more challenges for large-scale solar installations due to increased forest cover, steeper slopes, and potential shading from the higher elevations of the Bükk foothills. These areas would require more extensive land clearing and grading, making them less economically viable for solar development.

Soil and Land Considerations

The soil composition around Parasznya varies, with more fertile agricultural soils in the flatter eastern areas and thinner, rockier soils on the western slopes. The agricultural lands east of the village, particularly those with minimal current cultivation value, would present fewer land-use conflicts for solar development while offering suitable ground conditions for mounting systems. Some former agricultural areas that have experienced decreased productivity might be particularly appropriate for solar conversion, providing an alternative economic use for these lands while minimizing impact on current food production.

Access and Infrastructure

The topography also influences accessibility, with the eastern and southern areas around Parasznya having better existing road infrastructure that follows the natural contours of the land. This network of roads would facilitate construction and maintenance of solar facilities. The more rugged western terrain would require significant infrastructure development, further favoring the eastern lowlands for large-scale solar projects. In summary, the transitional landscape around Parasznya offers several promising locations for solar PV development, with the eastern and southeastern sectors presenting the optimal balance of favorable topography, suitable land characteristics, and accessibility. These areas combine gentle slopes, good southern exposure, and minimal competing land uses – creating conditions conducive to efficient and economically viable large-scale solar energy production.

Hungary solar PV Stats as a country

Hungary ranks 30th in the world for cumulative solar PV capacity, with 2,131 total MW's of solar PV installed. Each year Hungary is generating 218 Watts from solar PV per capita (Hungary ranks 22nd in the world for solar PV Watts generated per capita). [source]

Are there incentives for businesses to install solar in Hungary?

Yes, there are incentives for businesses wanting to install solar energy in Hungary. The Hungarian government offers a range of financial incentives and subsidies for businesses that install solar energy systems. These include grants, tax credits, and other forms of support. Additionally, the government has implemented a feed-in tariff system which guarantees a fixed price for electricity generated from renewable sources such as solar energy.

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

Citation Guide

Article Details for Citation

Article: Solar PV Analysis of Parasznya, Hungary
Author: Aaron Robinson
Publisher: profileSOLAR.com
First Published: Wednesday 30th of April 2025
Last Updated: Friday 19th of September 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.

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Calculate Your Optimal Solar Panel Tilt Angle