3 open source boards using the TPS26630RGET
Real designs built with the TPS26630RGET, from public GitHub projects: a quick way to see how others power, decouple and connect it. Each board comes with its KiCad files, full parts list and a render — and you can simulate its firmware on HardLabs.
STM32
Bench robotics controller 5eab0a5d
mrcha033
160 × 100 mm42 parts4LApache-2.02STM32
Bench robotics controller b204035a
mrcha033
160 × 100 mm42 parts4LApache-2.02STM32
Quadruped robot controller
mrcha033
160 × 100 mm42 parts4LApache-2.02
The TPS26630RGET in open source designs
The gallery holds 3 open source boards using the TPS26630RGET from 1 GitHub repository; a typical one measures about 160 × 100 mm and carries around 42 components.
100% use four copper layers or more, and 100% carry an open source license.
The most starred is Bench robotics controller 5eab0a5d by mrcha033.
Microcontrollers on boards using the TPS26630RGET
What boards using the TPS26630RGET are built for
TPS26630RGET: common questions
Where can I find a TPS26630RGET reference design?
Each of the 3 boards on this page is a real design using the TPS26630RGET. Open one to see how it is wired up, with the full BOM, a render of the layout and links to its KiCad files.
Which microcontrollers do boards using the TPS26630RGET use?
Most are built on STM32 (3).
How big is a typical board using the TPS26630RGET?
The median is 160 × 100 mm, and 0% are two-layer designs.
What is the most popular open source board using the TPS26630RGET?
By GitHub stars, Bench robotics controller 5eab0a5d by mrcha033, with 2 stars.
Can I simulate one of these boards using the TPS26630RGET before building it?
Yes. HardLabs turns a board's netlist and BOM into a working simulation, so you can boot and test firmware against it with no hardware on your desk.