The location at Halstenbek, Schleswig-Holstein, Germany is in the Northern Temperate Zone and can be used to generate energy via solar photovoltaic (PV) systems throughout the year. However, the effectiveness of this varies depending on the season.
During summer, you can expect around 5.32 kilowatt-hours (kWh) of electricity per day for each kilowatt (kW) of installed solar power. This makes it an ideal time for generating solar energy due to longer daylight hours and more direct sunlight.
In autumn, this decreases significantly to about 2.04 kWh/day per kW due to shorter days and less intense sunlight as a result of the sun's lower position in the sky.
Winter sees further reduction with only around 0.95 kWh/day per kW being generated because of even shorter daylight hours and often overcast skies that limit sunlight exposure.
Spring sees an increase again up to approximately 4.16 kWh/day per kW as days start getting longer again and there is more direct sunlight.
For a fixed panel installation at this location, tilting panels at an angle of 45 degrees towards south would maximize total year-round production from solar PV by ensuring that panels face directly towards the sun when it is highest in sky during midday which is when they can generate most electricity.
As far as local factors are concerned that could hinder solar production at this location: Schleswig-Holstein experiences relatively mild but cloudy winters which might reduce output during these months; its flat topography means there's no natural elevation advantage for capturing more sunlight; also being close to coast means potential for marine layer fog or sea mist which could further obstruct sunshine especially during mornings or late afternoons/evenings.
To counter these issues: using high-efficiency panels can help capture more light under low-light conditions; installing tracking systems so panels follow sun's path across sky might improve output; and regular cleaning of panels to remove any sea-spray or other debris will ensure maximum light absorption. Regular maintenance to check for any damage from coastal weather conditions would also be advisable.
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 919 locations across Germany. This analysis provides insights into each city/location's potential for harnessing solar energy through PV installations.
Link: Solar PV potential in Germany by location
Solar output per kW of installed solar PV by season in Halstenbek
Seasonal solar PV output for Latitude: 53.6277, Longitude: 9.8517 (Halstenbek, Germany), 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:
 
Ideally tilt fixed solar panels 45° South in Halstenbek, Germany
To maximize your solar PV system's energy output in Halstenbek, Germany (Lat/Long 53.6277, 9.8517) throughout the year, you should tilt your panels at an angle of 45° 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.
Seasonally adjusted solar panel tilt angles for Halstenbek, Germany
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 Halstenbek, Germany. As mentioned earlier, for fixed-panel solar PV installations, it is optimal to maintain a 45° South tilt angle throughout the year.
| Overall Best Summer Angle | Overall Best Autumn Angle | Overall Best Winter Angle | Overall Best Spring Angle |
|---|---|---|---|
| 37° South in Summer | 56° South in Autumn | 67° South in Winter | 46° South in Spring |
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 Halstenbek, Germany
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 Halstenbek, Germany.
Our calculation method
- Solar Position:
We determine the Sun's position on the Winter solstice using the location's latitude and solar declination. - Shadow Projection:
We calculate the shadow length cast by panels using trigonometry, considering panel tilt and the Sun's elevation angle. - 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.
Topography for solar PV around Halstenbek, Germany
Halstenbek, Germany is located in the northern part of the country. The topography of Halstenbek and its surrounding areas is relatively flat with slight undulations, typical for Northern Germany. The region has a maritime climate with moderate to heavy rainfall throughout the year.
The area's flatness makes it potentially suitable for large-scale solar PV installations. However, considering the climatic conditions (moderate sunlight due to cloud cover and rainfall), efficiency could be an issue. Nevertheless, advancements in solar technology have made it possible to generate electricity even under less sunny conditions.
In terms of specific nearby areas that would be most suited for large-scale solar PV installations, open fields or farmlands with minimal shading would be ideal. For instance, rural areas around Halstenbek such as those towards Seester or Kummerfeld could potentially host such projects.
However, any decision about installing large-scale solar PV should also consider other factors such as local regulations and permissions, proximity to power grids for easy transmission of generated electricity and potential impact on local ecosystems or agricultural activities.
Germany solar PV Stats as a country
Germany ranks 4th in the world for cumulative solar PV capacity, with 58,461 total MW's of solar PV installed. This means that 9.70% of Germany's total energy as a country comes from solar PV (that's 3rd in the world). Each year Germany is generating 702 Watts from solar PV per capita (Germany ranks 3rd in the world for solar PV Watts generated per capita). [source]
Are there incentives for businesses to install solar in Germany?
Yes, there are a few incentives for businesses wanting to install solar energy in Germany. These include feed-in tariffs, which guarantee businesses a price per kilowatt hour of electricity produced from their solar system; tax incentives such as the reduction of corporate income taxes; and subsidies from regional governments or utilities. Additionally, Germany's Renewable Energy Sources Act (EEG) provides additional support for projects that involve renewable energies.
Do you have more up to date information than this on incentives towards solar PV projects in Germany? Please reach out to us and help us keep this information current. Thanks!
Citation Guide
Article Details for Citation
Author: Aaron Robinson
Publisher: profileSOLAR.com
First Published: Thursday 14th of March 2024
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.
Helping you assess viability of solar PV for your site
Calculate Your Optimal Solar Panel Tilt Angle: A Comprehensive Guide
Enhance your solar panel's performance with our in-depth guide. Determine the best tilt angle using hard data, debunk common misunderstandings, and gain insight into how your specific location affects solar energy production.




