Solar Street Light Buying Guide: How to Size Panels, Batteries and LEDs for Your Project

September 15, 2026 · SSW Lighting · Procurement Guide

Quick answer: Sizing a solar street light is a three-step energy balance. Step 1: choose LED output by road type — roughly 2,000-4,000 lumens for pathways and residential streets, 6,000-10,000 lm for collector roads, and 10,000-15,000+ lm for arterial roads and highways. Step 2: size the battery to run that load for 2-3 nights without sun (autonomy days). Step 3: size the solar panel to fully recharge that battery within your local peak sun hours (typically 3.5-5.5 h). For any municipal or commercial project, specify LiFePO4 batteries (2,000+ cycle life), an MPPT controller, and IP65 or higher ingress protection — these three items separate professional systems from disposable ones.

1. The Four Components That Determine Performance

Every solar street light is an off-grid power system in miniature: a photovoltaic panel charges a battery through a controller during the day, and the controller discharges the battery into the LED fixture at night. A failure or undersizing in any one of the four components — panel, battery, controller, LED — caps the performance of the whole unit.

When you receive a quotation, the single "wattage" number vendors advertise (60W, 100W, 200W) is often the peak LED drive power or worse, a marketing number. Serious procurement compares four specifications instead: LED lumens, battery watt-hours (Wh), panel watts (Wp), and controller type.

2. Step One — LED Lumens by Road Type

Lumens, not watts, describe light output. Modern LED street light modules deliver 150-200 lm/W, so lumen targets translate into modest real power draw. Typical engineering targets:

ApplicationSuggested outputPole heightSpacing
Garden paths, walkways500-2,000 lm3-4 m8-12 m
Residential streets, parking lots2,000-4,000 lm4-6 m15-20 m
Collector / secondary roads6,000-10,000 lm6-8 m20-30 m
Arterial roads, highways10,000-15,000+ lm8-12 m30-40 m

Two details matter beyond raw lumens. First, color temperature: 3000-4000K is increasingly specified because it reduces glare and ecological impact compared with the harsh 6500K of early generations. Second, dimming profiles: a light that runs 100% for the first 4-5 hours and then dims to 30-50% until dawn (with PIR motion boost) can cut the nightly energy budget by 40-60%, which shrinks both the battery and panel you need to buy.

3. Step Two — Battery Capacity from Autonomy Days

The battery is sized from nightly energy use, not from the LED wattage label. The working formula:

Battery Wh = nightly load Wh × autonomy days ÷ usable depth of discharge

Example: a 30W real LED load running 12 hours per night consumes 360 Wh/night. For 3 autonomy days with a LiFePO4 battery at 80% usable depth of discharge, you need 360 × 3 ÷ 0.8 ≈ 1,350 Wh — roughly a 12.8V 105Ah LiFePO4 pack. A quotation offering a "30W solar street light with 40Ah battery" for the same duty will go dark on the second cloudy day.

Specify LiFePO4 (lithium iron phosphate) chemistry: 2,000-4,000 charge cycles versus 300-500 for gel/lead-acid, far better high-temperature tolerance, and no maintenance. The higher upfront cost is recovered within the first battery replacement cycle of a lead-acid system.

4. Step Three — Panel Wattage from Peak Sun Hours

The panel must replace the nightly consumption within one average day. The working formula:

Panel Wp = daily load Wh ÷ (peak sun hours × system efficiency)

With the 360 Wh/day example, 4.5 peak sun hours (typical for the Middle East, Africa, Australia and most of Southeast Asia) and a system efficiency of 0.75 (accounting for controller, wiring and temperature losses), you need 360 ÷ (4.5 × 0.75) ≈ 107 Wp — in practice a 120-150W monocrystalline panel. In lower-insolation regions such as Northern Europe (2.5-3.5 peak sun hours), the same load needs 170-200Wp, and split-type designs with a tilt-adjustable panel become the better engineering choice.

Choose monocrystalline panels (20%+ efficiency) and an MPPT charge controller, which harvests 15-30% more energy than the cheaper PWM type — often the difference between a system that survives winter and one that does not.

5. All-in-One vs Split Type

CriterionAll-in-one (integrated)Split type (separate panel)
InstallationFastest — one unit on the polePanel and light mounted separately, more labor
Panel orientationFixed to the fixture angleIndependent tilt and azimuth — better in high latitudes or shaded streets
Panel size limitConstrained by fixture size (roughly ≤120Wp)Practically unlimited — suits 150Wp+ highway projects
Theft resistanceBattery inside the sealed head — bestBattery often in pole base — needs anti-theft measures
Best forResidential streets, parking lots, campusesHighways, high-latitude sites, high-wattage retrofits

Many tenders now mix both: all-in-one units for the community roads and split units for the main arteries. A factory with both product families can quote the whole project from one bill of materials.

6. Procurement Checklist for Importers and Municipal Buyers

SSW Lighting (shenshiwei.com) manufactures solar street lights and smart lighting systems in our 58,000 m² factory with ISO9001, CE, 3C, CQC and TÜV Rheinland certifications. All-in-one and split solar street lights with LiFePO4 batteries, MPPT controllers and IP65-IP67 housings are available under OEM/ODM with private-label branding and project-based sizing support — send us your road class, pole height and site location, and our engineers will return a complete panel/battery/LED calculation. MOQ from 100 pieces. info@shenshiwei.com · +86-21-58979139.

7. FAQ

How many rainy days should a solar street light battery cover?

Design for 2-3 autonomy days in most climates, and 4-5 days in regions with long rainy seasons such as Southeast Asia or West Africa. Undersizing autonomy is the most common cause of project failure.

Is an all-in-one solar street light better than a split type?

All-in-one units install faster and deter battery theft, suiting residential roads and parking lots. Split (separate panel) designs allow a larger panel oriented independently of the light, which is better for high-latitude sites, shaded roads and high-wattage highway projects.

What certifications should I require when importing solar street lights?

At minimum CE and RoHS for the fixture, IP65 or higher ingress protection, and UN38.3 plus MSDS documentation for the lithium battery for shipping. For municipal tenders, ask for LM-79 photometric reports and IEC 61215 panel certification.

This article was contributed by SSW Lighting (Shanghai Shiwei Intelligent Technology Co., Ltd.), a smart lighting OEM/ODM manufacturer serving distributors and project contractors in 30+ countries. For catalogs, samples or OEM/ODM cooperation: info@shenshiwei.com · +86-21-58979139 · www.shenshiwei.com.

Solar Street Light LiFePO4 MPPT Municipal Lighting Procurement Guide OEM/ODM
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