STM32F103-Board-Design
BenWeckend·STM32F103-Board-Design·kicad/PCB Design Übung.kicad_pcb
About the STM32F103-Board-Design
STM32F103-Board-Design is an open source STM32 PCB design by BenWeckend, published on GitHub. It is a 2-layer board measuring 57 × 52 mm, with 60 components from 36 distinct parts.
Its main chip is the STM32F103C8T6, from the STM32 family. Other key parts include the AMS1117-3.3, BME280 and TJA1051T-3. By type, the board carries 18 capacitors, 15 resistors, 10 diodes, 4 ICs, 2 connectors and 2 jumpers.
It belongs with the sensors designs in this gallery.
From the project
STM32 Board Design + Firmware + Desktop App
Hardware-Referenzdesign und Firmware für ein Übungs-Entwicklungsboard auf Basis des STM32F103C8T6 mit CAN, USB, I²C (BME280) und weiterer Peripherie.
KiCad-Schaltplan und PCB-Design Gerber- und Fertigungsdaten Stückliste (BOM) STM32CubeIDE Firmware-Projekt * Tauri Desktop-Anwendung zur Kommunikation mit dem Board
CAN-Bus über TJA1051 USB Micro-B Device Interface
Main components on the STM32F103-Board-Design
STM32F103-Board-Design bill of materials (BOM)
60 components, 36 distinct parts.
| Qty | Part | Footprint | Refs |
|---|---|---|---|
| 1 | STM32F103C8T6 | LQFP-48_7x7mm_P0.5mm | U1 |
| 1 | AMS1117-3.3 | SOT-223-3_TabPin2 | U2 |
| 1 | BME280 | Bosch_LGA-8_2.5x2.5mm_P0.65mm_ClockwisePinNumbering | U3 |
| 1 | TJA1051T-3 | SOIC-8_3.9x4.9mm_P1.27mm | U4 |
| 1 | 16MHz | Crystal_SMD_3225-4Pin_3.2x2.5mm | Y1 |
| 1 | USB_B_Micro | USB_Micro-B_Wuerth_629105150521 | J1 |
| 1 | Conn_01x02_Pin | PinHeader_1x02_P2.54mm_Vertical | J5 |
| 3 | Conn_01x03 | PinHeader_1x03_P2.54mm_Vertical | CAN1, CAN2, CAN3 |
| 1 | Conn_01x07 | PinHeader_1x07_P2.54mm_Vertical | I2C&GPIO |
| 2 | Jumper_2_Bridged | TestPoint_2Pads_Pitch2.54mm_Drill0.8mm | JP1, JP2 |
| 1 | Conn_01x04_Pin | PinHeader_1x04_P2.54mm_Vertical | SPI&UART1 |
| 1 | SW_SPDT | SW_SPDT_PCM12 | SW1 |
| 1 | SW_Push | SW_PUSH_6mm | SW2 |
| 1 | LED-Green | LED_0603_1608Metric | D1 |
| 2 | ESD9B3.3ST5G | D_SOD-923 | D2, D3 |
| 3 | LED_B | LED_0603_1608Metric | D4, D7, D8 |
| 1 | NUP2105LT1G | SOT-23 | D5 |
| 1 | 1N5818 | D_DO-41_SOD81_P10.16mm_Horizontal | D6 |
| 1 | LED_G | LED_0603_1608Metric | D9 |
| 1 | LED_R | LED_0603_1608Metric | D10 |
Show 16 more
| Qty | Part | Footprint | Refs |
|---|---|---|---|
| 1 | 120R | L_0603_1608Metric | FB1 |
| 7 | 100n | C_0402_1005Metric | C1, C2, C3, C4, C9, C16, C17 |
| 1 | 10u | C_0805_2012Metric | C5 |
| 1 | 10n | C_0402_1005Metric | C6 |
| 2 | 1u | C_0603_1608Metric | C7, C8 |
| 2 | 10p | C_0603_1608Metric | C10, C11 |
| 2 | 22u | C_0805_2012Metric | C12, C13 |
| 2 | 100p | C_0402_1005Metric | C18, C19 |
| 1 | 4n7 | C_0603_1608Metric | C20 |
| 2 | 10k | R_0402_1005Metric | R1, R2 |
| 1 | 1k5 | R_0402_1005Metric | R3 |
| 2 | 0.1k | R_0402_1005Metric | R4, R14 |
| 4 | 4k7 | R_0402_1005Metric | R5, R6, R12, R13 |
| 3 | 10ohm | R_0402_1005Metric | R7, R8, R9 |
| 2 | 60ohm | R_0603_1608Metric | R10, R11 |
| 1 | 220ohm | R_0402_1005Metric | R15 |
STM32F103-Board-Design design files
The KiCad project lives in the BenWeckend/STM32F103-Board-Design repository on GitHub; these links point at the commit this page was built from.
STM32F103-Board-Design: common questions
What microcontroller does the STM32F103-Board-Design use?
The STM32F103-Board-Design is built around the STM32F103C8T6, from the STM32 family.
How big is the STM32F103-Board-Design?
The STM32F103-Board-Design measures 57 × 52 mm, has 2 copper layers and is 1.6 mm thick.
How many components are on the STM32F103-Board-Design?
60 components, from 36 distinct parts. The full bill of materials is listed on this page.
Where can I download the STM32F103-Board-Design design files?
From the BenWeckend/STM32F103-Board-Design repository on GitHub, which has the KiCad layout and the schematic; the links under Design files point to each one.
Can I use the STM32F103-Board-Design design in my own project?
The repository has no license, so all rights stay with BenWeckend. Use it as a reference, and ask the author before reusing the design.
Can I test firmware for the STM32F103-Board-Design without the hardware?
Yes. HardLabs builds a simulation of the board from its netlist and BOM, so you can run and debug STM32 firmware against it before you order a PCB.
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