Documentation
Onboarding
Getting Started
Power & Battery
Hardware & Components
Build & Assembly
Radio & RF Design
Frequencies & Regulations
Firmware & Software
USB & Connectivity
GPS & Navigation
Morse & Communication
Modes & Operation
Field Operations & Rescue
Building Effectively
Build Variants
Project & Reference
Docs Build & Assembly Wire Gauge Guide

Wire Gauge Guide

Edit on GitHub

Choosing wire sizes for the beacon: the current table, the voltage-drop math, and the gauges the build actually uses.

Wire Gauge Guide

Wire gauge decides three things: how much current the wire can carry, how much voltage it drops, and how well it survives flexing. The beacon uses three gauges for three jobs.

The current table (AWG)

AWGMax current (chassis wiring)Typical use
300.5 ASignal wires
280.8 ASignal, GPS UART
261.5 AButtons, LED
242.5 APower rails
224 ABattery and charger paths
206 ACell leads (overkill, but flexible)

The beacon’s three gauges

PathGaugeWhy
Signal (UART, I2C, buttons)26 - 28 AWGSmall, flexible
Power rails (3.3 V)24 AWG120 mA bursts with margin
Cell and charger22 AWG1 A charging, low drop

The voltage-drop math

Drop = I x R. Ten cm of 26 AWG at 120 mA drops about 4 mV: nothing. Ten cm of 30 AWG at 1 A (charging) drops about 30 mV: still fine. The drop only matters on the cell path under the TX burst, where the Brownout Protection page explains the consequences.

The flex rule

Thin wire breaks with flexing, thick wire is stiff. In a case that opens and closes, use stranded wire and strain relief at every connector (see Wiring Order and Routing). A broken wire inside a case is the most common intermittent fault in the project.

The colour convention

The project uses a fixed colour scheme: red for the cell positive, black for ground, orange for 3.3 V, and any other colour for signals. Consistency is worth more than any single wire choice.