Solar Pole Lights

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Solar pole lights combine heavy-duty LiFePO4 lithium iron phosphate batteries and monocrystalline panels, delivering 100% autonomous traffic illumination in any location.


Illuminating remote settlements, forestry roads, large-scale public parks, and regional intersections is often prohibitively expensive due to the complex construction of power supply networks. Cheap market alternatives equipped with unstable solar panels fail completely in sub-zero temperatures and completely cease functioning during the dark winter season. To resolve this critical issue, our VIDEX SLSO series solar pole lights are equipped with industrial-grade SMD5050 modules and high-capacity (up to 45000 mAh) thermostable batteries. This engineering synthesis effectively captures even highly diffused solar energy, ensuring stable and brilliant illumination for up to 12 hours every single night. Furthermore, the intelligent control units integrated into the systems completely prevent overcharging or deep discharging of the battery, maintaining maximum reliability and reducing ongoing maintenance expenses to absolute zero.


Solar energy infrastructure and advanced technologies:

  • Thermostable battery units: Lithium iron phosphate power cells can flawlessly endure up to 2000 charge cycles without capacity loss, operating reliably even under harsh winter conditions and severe night frosts.
  • Automated motion and twilight control: Integrated sensors detect the onset of darkness and accurately react to the presence of pedestrians or motor vehicles, conserving stored electrical energy during moments when primary illumination of the object is not required.
  • Gold-plated contacts and conversion: The highest quality panel connections resist oxidation in aggressive humidity, converting every available sun ray into genuine operational power with maximum achievable efficiency.

Deploy high-quality illumination precisely where electrical grid connection is impossible, enjoying true engineering excellence and permanently forgetting about monthly electricity consumption bills. For locations with existing power supplies and continuous surveillance, you may also consider solar LED floodlights.



Q: How do LiFePO4 batteries ensure the operation of solar luminaires in harsh winter conditions?

A: The chemistry of lithium iron phosphate (LiFePO4) cells retains the ability to efficiently discharge current even at -20°C without losing a critical amount of capacity (mAh). Unlike regular Li-Ion batteries, they offer over 2000 full charge-discharge cycles and are structurally protected from thermal runaway in case of deep discharge.


Q: How do VIDEX integrated monocrystalline panels compensate for the lack of sun in the Baltic autumn?

A: solar modules use high-density monocrystalline silicon cells capable of generating voltage and charging current (A) even in scattered, cloudy light. This allows maximizing the accumulation of photovoltaic charge during the short daylight window, guaranteeing lighting continuity throughout the long night cycle.


Q: How do motion and twilight sensors affect the energy reserve of a solar luminaire at night?

A: The twilight sensor in the photoresistor automatically activates the luminaire only when darkness falls, initially maintaining 20-30% background illumination. Upon detecting infrared (PIR) heat from a human or car, the microcontroller instantaneously supplies 100% power, but after 20-30 seconds reduces the current again, strictly conserving the battery until dawn.


Q: What is the main financial and technical benefit of choosing 100% autonomous (Off-Grid) pole luminaires?

A: Complete independence from the 230V grid physically eliminates any costs for digging cable trenches, laying conduits, and building electrical distribution boards. Installation only requires mechanical fixation of the pole in the ground, making this solution technologically justified for remote rural areas, forest roads, and parks.


Q: How does the panel positioning angle affect the photovoltaic charging speed of a solar pole luminaire?

A: To achieve maximum current yield (W), in the Northern Hemisphere the panel must face precisely south at a 35° to 45° angle to the horizon. This ensures that photons fall perpendicular to the surface of the silicon cells exactly during peak sun hours, accelerating charging by 30-40% compared to an incorrect, horizontal mounting.