Address-aware solar context
Resolve a Romanian project address into geographic coordinates and use that location as the context for solar position, sunrise, sunset and regional production assumptions.
Model the roof. Simulate the energy day.
A location-aware photovoltaic configurator connecting roof geometry, panel fit, real solar position, household demand and battery storage in one visual energy model.
Launch full configurator ↗Every deployment is built on the same connected commercial and spatial foundation—even as the product category changes.
The approved visual state resolves into an exact component structure: profiles, panels, glass, hardware, accessories and quantities ready for downstream work.
A location-aware photovoltaic configurator connecting roof geometry, panel fit, real solar position, household demand and battery storage in one visual energy model.
Resolve a Romanian project address into geographic coordinates and use that location as the context for solar position, sunrise, sunset and regional production assumptions.
Scrub time of day, date, season and roof-front bearing while the visible light direction and photovoltaic production profile respond to the same environmental state.
Move between two-slope, four-slope and single-slope roofs, then adjust length, depth and pitch while the building and available panel surfaces rebuild together.
Choose the number of requested modules and roof plane; the preview arranges a real-size residential array and keeps the installed system power tied to panels that actually fit.
Compare household consumption profiles, enable LiFePO₄ storage and tune battery capacity to see how generation, self-consumption and grid exchange change across the day.
Open a focused production-versus-consumption workspace with daily generation, household demand, self-sufficiency, grid import and export presented as one decision-ready view.
The 360Configurator solar tool connects roof geometry, panel fit, geographic context, sun position, household demand and battery storage in one interactive model. It is designed to show not only how a photovoltaic system sits on the roof, but also how system size and consumption assumptions affect the energy picture.
The solar workflow combines spatial fit with energy assumptions so the PV system can be reviewed as both a roof-mounted product and an energy system.
Use the project location and roof-front bearing as the environmental context for sun position and production assumptions.
Choose the supported roof family and adjust its dimensions and pitch so the available photovoltaic surfaces match the building.
Choose the requested module count and roof plane; the configurator arranges residential-size modules on the usable roof surface.
Select a household consumption profile and enable or size LiFePO₄ battery storage to compare how solar production is used through the day.
Inspect installed kWp, production, household demand, self-sufficiency, grid import/export and the daily production-versus-consumption profile.
A useful PV configuration needs more than panel count. Roof fit, orientation, consumption timing and storage all influence the result.
Define the environmental context for the current system.
Build the physical surface on which the PV system has to fit.
Test how household behavior changes the value of the same PV array.
Review the resulting system as a daily energy scenario.
Panel layout and energy performance are often discussed in separate tools. Combining them makes it easier to explain why a system has a certain size, where the modules fit and how consumption or battery assumptions change the result.
See where the array sits on the roof and compare production, consumption and storage assumptions in one understandable view.
Keep roof geometry, panel count, installed power and the energy scenario synchronized during the same proposal conversation.
Use site context, roof fit and PVGIS-backed data where available as a stronger starting point for a more detailed engineering workflow.
The current configurator supports two-slope, four-slope and single-slope residential roof families.
Yes. Roof length, depth and pitch are configurable and the available panel surfaces rebuild with the roof.
Yes. Location is used as context for sun position and site-specific production assumptions; the project also supports PVGIS data through its configured proxy workflow.
Yes. The current preview uses residential module dimensions and keeps installed power tied to modules that fit on the selected roof plane.
Yes. The configurator includes several daytime consumption profiles plus an annual consumption input for the energy model.
Yes. LiFePO₄ storage can be enabled, automatically sized or manually adjusted within the available controls.
The current analysis includes PV production, household demand, self-sufficiency, grid import, grid export, storage and installed system power.
Open the solar configurator to test roof geometry, module fit, sun position, household demand and battery storage, or contact us about a configurator for your own energy product.