WiFi & Bluetooth Sensor Node

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Project Specification — USB-C WiFi BLE TH Sensor

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Status: Draft schematic in progress. A consumer USB-C powered temperature and relative humidity sensor node with Wi-Fi and Bluetooth Low Ene...
Architecture review agrees with a USB-C sink plus real VBUS protection and a buck regulator; I’m selecting a low-power certified Wi‑Fi/BLE module rather than a hot LDO-based ESP32-style power tree.
Components are in: Silicon Labs SiWG917 Wi‑Fi/BLE module, SHT41 T/RH sensor
Thought for 33 sec
Thought for 23 sec — Assessing wire connections
Reading schematic details for J1, U1, U2 and 8 more.
Thought for a moment
Considering debug options
I'm thinking about the UART ISP on GPIO_8/9 not being connected for debugging. Maybe we could add test points, but right now we don’t have any. I'm considering using J2 pins 7/8 instead, but I wonder if SWD would be enough as it typically suffices for debugging. Skill suggests including UART updates, and datasheet backs that up. I’ll probably go with J2 pin 7 for UART_TX and pin 8 for UART_RX instead of using TDI, since SWD might cover it.
Evaluating GPIO Connections
I’m considering wiring for the U1 pins and determining which should be set to "no connect." The pins I've used include JTAG_TMS, JTAG_TCK, GPIO_8, and others. I need to list all unused GPIO that should not connect, possibly including the RF pins for the built-in antenna. I’m also thinking about the USB connector pins and whether certain capacitors might be necessary. Should I mark OUT2 as NC and remove C8 if LDO is disabled? I'll need to check the datasheet as well.
Considering pin configuration
I want to avoid a single-pin output, but using a capacitor could be okay. I’m thinking if CTRL4

Demo Complete

The demo is finished. It didn't use any ACUs. You can now continue working with this project like normal.

U2
D1
J1
U1
R1
Resistance
5.1kΩ
C4
Capacitance
10µF
C17
Capacitance
1nF
C7
Capacitance
100nF
C3
Capacitance
10µF
C5
Capacitance
10µF
R13
Resistance
100kΩ
R4
Resistance
400kΩ
R7
Resistance
100kΩ
C13
Capacitance
100nF
C2
Capacitance
10nF
C15
Capacitance
100nF
R10
Resistance
10kΩ
C8
Capacitance
1µF
R3
Resistance
909Ω
R14
Resistance
100Ω
C14
Capacitance
1µF
C9
Capacitance
10µF
R2
Resistance
5.1kΩ
C10
Capacitance
100nF
R8
Resistance
100kΩ
R9
Resistance
10kΩ
R6
Resistance
100kΩ
C1
Capacitance
1µF
R11
Resistance
1kΩ
C16
Capacitance
10nF
C6
Capacitance
10µF
C12
Capacitance
100nF
R12
Resistance
10kΩ
C11
Capacitance
100nF
R5
Resistance
261kΩ
U3
D2
U4
D4
L1
SW1
SW2
LED1
C18
J2
D3

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Project Specification — USB-C WiFi BLE TH Sensor
Project Overview
Status: Draft schematic in progress.
A consumer USB-C powered temperature and relative humidity sensor node with Wi-Fi and Bluetooth Low Energy connectivity. The board uses a protected USB-C 5 V sink input, local 3.3 V regulation, a low-power Wi-Fi/BLE MCU module, and a digital I2C T/RH sensor.
Intended Use
  • Indoor consumer environmental monitoring node.
  • Powered from USB-C 5 V chargers, hubs, or ports.
  • Designed for prototype-to-production learning; not medical, industrial safety, or outdoor/weatherproof use unless later specified.
What the Device Should Do
  • Measure ambient temperature and relative humidity.
  • Connect over 2.4 GHz 802.11 b/g/n Wi-Fi.
  • Support BLE 5.x provisioning or local telemetry.
  • Power from USB-C default 5 V sources.
  • Survive common consumer input faults with reverse-current, overvoltage, undervoltage, and overcurrent protection.
Main Features
  • USB-C receptacle configured as sink-only with independent CC1/CC2 5.1 kΩ Rd resistors.
  • Protected 5 V input sized for 0.5–3 A capable sources, while the node itself is expected to draw well below 500 mA average.
  • 3.3 V logic rail for MCU and sensor.
  • Native USB data/programming path where supported by the selected MCU.
  • Boot/reset controls, debug/programming access, and status LED.
System Architecture

Diagram


I2C USB D+/D- USB-C Receptacle node_5V Sink VBUS Protection OVP UVLO OCP Reverse Blocking 3.3V Regulator WiFi/BLE MCU Module Digital T/RH Sensor Status LED
Hardware Subsystems
  • Power input: USB-C receptacle, CC pull-downs, VBUS ESD/TVS, protected power switch/eFuse or load switch with OVP/UVLO/OCP/reverse-current blocking.
  • Regulation: 5 V to 3.3 V rail sized for Wi-Fi transmit current peaks.
  • Compute/radio: certified ESP32-family module preferred to avoid custom RF matching and simplify regulatory work.
  • Sensor: digital I2C temperature/humidity sensor with local decoupling and one shared I2C pull-up pair.
  • User/debug: reset and boot controls, status LED, USB programming, optional exposed test/debug header.
Interfaces and Connections
  • External: USB-C 5 V power and USB 2.0 D+/D- for programming/debug.
  • Internal: 3.3 V rail, GND, I2C SDA/SCL, boot/reset, status LED GPIO.
  • RF: integrated 2.4 GHz antenna module; PCB layout must provide the module antenna keepout.
Power and Runtime Expectations
  • Source: USB-C 5 V default power only; no battery in this revision.
  • Source capability planning: tolerate 0.5 A, 1.5 A, and 3 A capable USB-C sources. Do not assume the device may draw 3 A unless CC current advertisement is measured/implemented.
  • Low-power behavior: firmware should sleep between samples and radio transmissions, but USB-powered operation makes absolute sleep current less critical than thermal and regulatory behavior.
Power Tree and Power Budget

Table


RailLoadSleepTypical activePeak
3.3 VWi-Fi/BLE MCU module~10–100 µA deep sleep~80–240 mA radio active~500 mA short Wi-Fi TX burst
3.3 VT/RH sensor<1 µA standby~0.5–1 mA measuring~1 mA
3.3 VStatus LED0 mA off~2 mA on~5 mA configured max
3.3 VPull-ups/leakage~1–2 mA worst when lines lownegligible average~1.4 mA for two 4.7 kΩ pull-ups low
Estimated 3.3 V rail sizing target: 250 mA typical active, 510 mA transient peak. For an LDO from 5 V, input current is approximately output current; thermal at 250 mA is about (5.25 V - 3.3 V) × 0.25 A = 0.49 W, so a small SOT-23 LDO may be marginal during sustained Wi-Fi. Preferred choices are a high-current low-Iq regulator in a thermally capable package or a quiet buck regulator if sustained radio current/thermal limits demand it.
Manufacturing and Assembly Expectations
  • Default assembly: SMD, production-intent consumer PCB.
  • Use stocked, non-EOL parts where available.
  • Add test points for 5 V protected rail, 3.3 V, GND, reset/boot, and I2C if space permits.
Firmware-Relevant Hardware Requirements
  • Define actual GPIO pins for I2C SDA/SCL and status LED.
  • Provide USB programming or serial/JTAG path.
  • Support Wi-Fi + BLE provisioning, periodic sensor reads, and telemetry output.
  • Include boot/reset access for field recovery.
Physical Design Expectations
  • ESP32 module antenna must be placed at board edge with no copper/traces/components in the keepout on all layers.
  • Sensor should be isolated from regulator/MCU heat sources and exposed to ambient airflow.
  • USB-C connector should be board-edge mounted and mechanically reinforced.
Important Design Decisions
  • Use an ESP32-family certified module rather than a bare RF SoC.
  • Use a digital I2C humidity/temperature sensor.
  • Use USB-C sink-only 5 V; no USB-PD negotiation in this revision.
  • Include a protected VBUS front end instead of relying on a fuse alone.
Assumptions
  • Indoor consumer use, ambient operating range roughly 0–50 °C unless later expanded.
  • No enclosure dimensions or board size provided yet.
  • No cloud protocol specified; firmware examples will print readings and include Wi-Fi/BLE placeholders.
Change Notes
  • Initial requirements captured from user request on 2026-07-17.
  • Project Overview

  • Intended Use

  • What the Device Should Do

  • Main Features

  • System Architecture

  • Hardware Subsystems

  • Interfaces and Connections

  • Power and Runtime Expectations

  • Power Tree and Power Budget

  • Manufacturing and Assembly Expectations

  • Firmware-Relevant Hardware Requirements

  • Physical Design Expectations

  • Important Design Decisions

  • Assumptions

  • Change Notes

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USB-C WiFi BLE TH Sensor

USB-C WiFi BLE TH Sensor thumbnail
Consumer USB-C powered environmental sensor node with Wi-Fi, BLE 5.x, digital temperature/humidity sensing, protected 5 V input, and a 3.3 V low-power MCU/sensor rail.

Properties

WiFi

USB-C

Consumer IoT

5

V

Bluetooth

Pricing & Availability

Distributor

Qty 1

Arrow

$3.11–$4.74

Digi-Key

$0.00

HQonline

$3.72–$3.82

LCSC

$5.16–$5.33

Mouser

$25.36

TME

$1.00

Verical

$3.91–$5.93

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