Remote power

Solar Power for Remote LTE/5G Gateways, Wi-Fi Bridges, and Telemetry

Design autonomous solar power systems for remote mountain-top Wi-Fi bridges, LTE/5G cellular routers, and weather stations. 24V passive PoE, ultra-low idle design, and surge protection.

Field guide Remote Power 24V system context

Establishing high-speed internet links across miles of rugged terrain often requires installing solar-powered relay towers on mountain ridges, grain silos, or remote hilltops. These solar repeater nodes host point-to-point (PtP) wireless bridges, LTE/5G cellular modems, meteorological telemetry sensors, and automated irrigation controllers.

Because site access may require snowmobiles or four-wheel drive vehicles, maintenance visits must be kept to zero. The power system must be engineered for continuous year-round autonomy, transient lightning suppression, and ultra-low quiescent power draw.


1. Why 24V DC is the Telemetry & Wireless Standard

In the wireless internet service provider (WISP) and telemetry industry, the overwhelming majority of outdoor radios—including Ubiquiti Networks (airMAX, airFiber, UISP) and MikroTik RouterBOARDs—operate natively on 24-Volt Passive PoE (positive voltage on pins 4 & 5, negative ground on pins 7 & 8).

[2x 200W Solar Panels] ──► [24V MPPT Controller] ──► [24V 100Ah LiFePO4 Battery]


                                               [24V Passive PoE Injector / Switch]

                                      ┌───────────────────────┴───────────────────────┐
                                      ▼                                               ▼
                         [PtP 5GHz Wireless Bridge]                      [Industrial LTE/5G Modem]
                         (e.g., Ubiquiti NanoBeam: ~6W)                  (e.g., Teltonika RUTX50: ~7W)

By standardizing on a 24V battery architecture, incoming battery voltage connects directly into passive PoE midspans and radios with zero DC-DC conversion steps. This eliminates conversion inefficiencies, reduces circuit component counts, and maximizes mean time between failures (MTBF).


2. Telemetry Node Power Budget Analysis

Hardware ComponentNominal Operating Draw24-Hour Duty CycleDaily Energy Overhead
5 GHz High-Throughput PtP Wireless Dish6.5 Watts100% Continuous156 Wh
Industrial Cat 4 / 5G Cellular Gateway7.0 Watts100% Continuous168 Wh
Ultrasonic Weather Station / LoRaWAN Hub1.5 WattsPolling 1x per min36 Wh
MPPT Charge Controller Quiescent Draw0.8 Watts24 Hours19 Wh
Total Continuous Station Power~15.8 Watts~379 Wh per day

A continuous load of 15.8 Watts translates to ~0.66 Amperes at 24V. Over a 24-hour day, the node consumes roughly 380 Watt-hours.


3. Battery Bank & Winter Solar Dimensioning

Because remote telemetry stations are frequently situated on windy, cloud-prone peaks, a 5-day autonomy reserve is mandatory to survive extended winter storm fronts:

  • Usable Battery Capacity: 379 Wh/day × 5 = 1,895 Usable Watt-hours.

  • Nominal Bank (at 80% DoD): 1,895 ÷ 0.80 = 2,369 Nominal Wh (~100Ah at 24V LiFePO4).

  • Array Sizing (at 2.5 Winter Peak Sun Hours):

    Required Array = 379 Wh/day ÷ (2.5 PSH × 0.64) = 237 Watts

    Specifying two 200W or two 250W panels (400W–500W total) provides double the baseline winter generation, ensuring the battery bank fully recovers within a single sunny afternoon after a multi-day storm.


4. Lightning & Static Dissipation (Motorola R56 Standard)

Mounted at high elevations on metal towers or masts, telemetry nodes are prime targets for atmospheric electrostatic accumulation and nearby lightning strikes:

  1. Gas-Discharge Tube (GDT) Ethernet Surge Protectors: Install an outdoor-rated RJ45 lightning arrestor (such as a Ubiquiti ETH-SP-G2) at the base of the mast before cables enter the equipment box, clamping transients to ground in nanoseconds.
  2. Dedicated Tower Ground Rod: Bond the mast to an 8-foot copper ground rod using heavy 2 AWG bare copper wire, keeping bend radii smooth and wide (minimum 8-inch radius) to provide a low-impedance path to earth.

Calculate your remote node’s exact battery runtime using our Battery Runtime Calculator.

References

Sources used in this guide

  1. IEEE Recommended Practice for Surge Voltages in Low-Voltage AC Power Circuits — IEEE Standards Association IEEE C62.41
  2. Environmental Engineering Considerations and Laboratory Tests for Outdoor Wireless Hardware — U.S. Department of Defense MIL-STD-810H
Technical Editorial Team

About Clean Power Guide Editorial Team

The Clean Power Guide Editorial Team researches practical solar, battery, off-grid, wind, hydro, and electrical-system topics using manufacturer documentation, government resources, technical references, and transparent engineering calculations. Content is educational and does not replace site-specific design or advice from a qualified professional.

Editorial profile →