USB C WiFi BLE Sensor Node

Created 4 project docs
Design Notes — USB-C WiFi BLE Environmental Node
Input: USB-C receptacle J1, 5 V sink-only, USB 2.0 D+/D- routed to ESP32-C3 native USB Serial/JTAG. USB-C configuration: R1/R2 = 5.1 kΩ Rd f...
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Firmware Starter — ESP32-C3-WROOM-02-N4
MCU/module: ESP32-C3-WROOM-02-N4 Framework: Arduino on PlatformIO
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Board Bring-Up Plan — USB-C WiFi BLE Environmental Node
Equipment: current-limited 5 V USB supply or USB power meter, multimeter, oscilloscope, USB-C cable, ESD-safe workstation, PlatformIO firmwa...
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Technical Construction File — USB-C WiFi BLE Environmental Node
Draft, schematic-stage. FCC Part 15 intentional radiator integration using pre-certified module conditions.
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Implemented the schematic for the USB-C powered Wi‑Fi/BLE temperature/humidity node and created the supporting project files:
Open items:
  • PCB layout has not been started yet; airwires are expected until placement/routing.
  • Generic passives/testpoints still need production MPN assignment before manufacturing export.
  • Layout must enforce ESP32 antenna keepout and keep the SHT40 away from heat sources.
Suggested next steps:
  1. Set board size/stackup and antenna/sensor placement constraints.
  2. Place components with the ESP32 antenna at the board edge.
  3. Route USB, buck power, and I2C nets.
  4. Assign production MPNs for generic passives and test pads.
Create layout constraints
Assign passive MPNs
Run schematic review
Start PCB placement
Prepare layout intent
U4
D1
U3
J1
C3
Capacitance
3.3nF
C2 P2 - C3 P2
C2 P2 - C3 P2
U3 GND_6 - U3 GND_7
C9 P2 - C11 P2
GND
C9 P2 - C11 P2
C10 P2 - SW2 2
C8
Capacitance
100nF
GND
C2
Capacitance
1µF
C6 P2 - R7 P2
C2 P2 - C3 P2
U3 GND_10 - U4 VSS
GND
R2 P2 - U1 GND
C10 P2 - SW2 2
GND
C6
Capacitance
10µF
GND
U3 GND_6 - U3 GND_7
C9 P2 - C11 P2
GND
C9
Capacitance
10µF
C9 P2 - C11 P2
C10 P2 - SW2 2
C9 P2 - C11 P2
U3 GND_6 - U3 GND_7
C5
Capacitance
10µF
C2 P2 - C3 P2
U3 GND_10 - U4 VSS
C6 P2 - R7 P2
C9 P2 - C11 P2
C1
Capacitance
100nF
C7
Capacitance
120pF
C2 P2 - C3 P2
R2 P2 - U1 GND
C4
Capacitance
4.7µF
C9 P2 - C11 P2
C2 P2 - C3 P2
C11
Capacitance
100nF
R2 P2 - U1 GND
U3 GND_6 - U3 GND_7
C10
Capacitance
1µF
C2 P2 - C3 P2
GND
C6 P2 - R7 P2
U3 GND_10 - U4 VSS
GND
GND
R2 P2 - U1 GND
R13 P2 - R15 P2
C9 P1 - U4 VDD
U2 PG - R8 P1
U1 IN - TP1 P1
J1 CC1 - R1 P1
C4 P1 - U2 VIN
U3 IO3 - R14 P1
C7 P1 - U3 3V3
U3 IO2 - R11 P2
C9 P1 - U4 VDD
U3 IO3 - R14 P1
U3 IO1 - U4 SCL
U1 ~{FLT} - R15 P1
J1 DN1 - J1 DN2
C9 P1 - U4 VDD
C9 P1 - U4 VDD
U1 ~{FLT} - R15 P1
C9 P1 - U4 VDD
J1 DP1 - J1 DP2
U1 IN - TP1 P1
U3 IO1 - U4 SCL
J1 CC2 - R2 P1
U1 OUT - C2 P1
U1 IN - TP1 P1
U2 PG - R8 P1
C7 P1 - U3 3V3
C7 P1 - U3 3V3
U3 EN - R9 P2
U3 TXD - TP7 P1
U3 IO0 - U4 SDA
J1 DN1 - J1 DN2
U1 EN/UVLO - R4 P2
U1 dVdt - C3 P1
J1 CC1 - R1 P1
C10 P1 - SW2 1
C10 P1 - SW2 1
J1 DP1 - J1 DP2
U3 TXD - TP7 P1
U1 ILM - R3 P1
J1 VBUS__1 - D2 1
U3 IO0 - U4 SDA
J1 CC2 - R2 P1
U3 RXD - TP8 P1
C9 P1 - U4 VDD
J1 DN1 - J1 DN2
U2 PG - R8 P1
C10 P1 - SW2 1
U3 RXD - TP8 P1
R13 P2 - R15 P2
U3 IO1 - U4 SCL
C6 P1 - R6 P1
C6 P1 - R6 P1
U3 IO9 - R10 P2
U3 IO9 - R10 P2
C9 P1 - U4 VDD
J1 DP1 - J1 DP2
U1 ~{FLT} - R15 P1
U3 IO9 - R10 P2
L1 2 - C5 P1
J1 VBUS__1 - D2 1
U1 dVdt - C3 P1
J1 DN1 - J1 DN2
C4 P1 - U2 VIN
J1 VBUS__1 - D2 1
C9 P1 - U4 VDD
U1 IN - TP1 P1
C4 P1 - U2 VIN
U1 ILM - R3 P1
U2 FB - R6 P2
U3 IO0 - U4 SDA
J1 DN1 - J1 DN2
U3 IO0 - U4 SDA
J1 DP1 - J1 DP2
R13 P2 - R15 P2
U3 IO2 - R11 P2
U2 FB - R6 P2
U1 EN/UVLO - R4 P2
U3 IO9 - R10 P2
J1 VBUS__1 - D2 1
J1 DP1 - J1 DP2
U1 OUT - C2 P1
U3 IO1 - U4 SCL
U3 EN - R9 P2
L1 2 - C5 P1
C4 P1 - U2 VIN
R13
Resistance
4.7kΩ
D2
R8
Resistance
100kΩ
R3
Resistance
2.49kΩ
R10
Resistance
10kΩ
R2
Resistance
5.1kΩ
U2
R1
Resistance
5.1kΩ
R15
Resistance
100kΩ
SW1
TP4
TP8
R12
Resistance
4.7kΩ
SW2
TP1
TP3
R11
Resistance
10kΩ
R7
Resistance
100kΩ
R4
Resistance
1MΩ
TP5
R5
Resistance
387kΩ
TP9
TP6
R14
Resistance
1kΩ
R9
Resistance
10kΩ
TP7
TP10
TP2
R6
Resistance
450kΩ
L1
Inductance
470nH
U1
D3

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Design Notes — USB-C WiFi BLE Environmental Node
Architecture Summary
  • Input: USB-C receptacle J1, 5 V sink-only, USB 2.0 D+/D- routed to ESP32-C3 native USB Serial/JTAG.
  • USB-C configuration: R1/R2 = 5.1 kΩ Rd from CC1/CC2 to GND. No USB PD negotiation.
  • Input protection: U1 TPS259530DSGR eFuse between VBUS_RAW and VBUS_PROT.
  • Regulation: U2 TPS62821DLCR synchronous buck from VBUS_PROT to 3V3.
  • MCU/radio: U3 ESP32-C3-WROOM-02-N4, on-board PCB antenna, Wi-Fi 802.11 b/g/n + BLE 5.x.
  • Sensor: U4 SHT40-AD1B-R3 I2C temperature/RH sensor at address 0x44.
Power Budget

Table


RailLoadTypicalPeak / Design CurrentNotes
3V3ESP32-C3-WROOM-02-N480-240 mA active500 mA+ rail capability requiredEspressif recommends external supply can deliver at least 0.5 A
3V3SHT40~0.4-2.2 µA avg0.5 mA measurement; heater up to 100 mA if enabledFirmware should leave heater off unless needed
3V3Status LED0-2 mA intended~1 mA with R14=1 kΩFirmware-controlled, not always on
3V3Pull-ups/feedback/leakage<1 mA<2 mAI2C, boot, reset, PG/FLT pullups
3V3 total~100-250 mA activeDesign target 600 mA; regulator rated 1 ABuck chosen for thermal margin vs LDO
Input current estimate at 5 V with 90% buck efficiency:
  • 600 mA at 3.3 V = 1.98 W output → ~2.2 W input → ~440 mA from 5 V.
  • 1 A at 3.3 V = 3.3 W output → ~3.7 W input → ~730 mA from 5 V.
Protection Settings
  • eFuse U1 current limit: R3 = 2.49 kΩ. TPS2595 equation ILIMIT = 2000 / RILM - 0.04 gives ~0.763 A.
  • eFuse UVLO: R4 = 1 MΩ top, R5 = 387 kΩ bottom. TPS2595 example sets ~4.3 V rising UVLO.
  • eFuse inrush control: C3 = 3.3 nF on dVdt.
  • eFuse caps: C1 = 100 nF input transient cap, C2 = 1 µF output cap.
  • VBUS ESD: D2 ESD5341N, pin 1 to VBUS_RAW, pin 2 to GND.
  • USB data ESD: D1 USBLC6-2P6, I/O1 pair on D+, I/O2 pair on D−, VBUS to VBUS_RAW, GND to GND.
3.3 V Buck Regulator
  • U2 TPS62821DLCR, 1 A adjustable buck.
  • L1 = 0.47 µH Murata DFE252012P-R47M=P2; Isat 5.7 A, temperature-rise current 4.0 A.
  • C4 = 4.7 µF input, C5/C6 = 2 × 10 µF output.
  • FB reference = 0.6 V. R6 = 450 kΩ top, R7 = 100 kΩ bottom gives 3.3 V.
  • C7 = 120 pF feed-forward cap across R6.
  • PG pulled up with R8 = 100 kΩ and routed to ESP32 GPIO5 (BUCK_PGOOD).
ESP32-C3 Pin Map

Table


FunctionNetESP32-C3 pin
USB D−USB_DNGPIO18 / IO18
USB D+USB_DPGPIO19 / IO19
I2C SDAI2C_SDAGPIO0 / IO0
I2C SCLI2C_SCLGPIO1 / IO1
Status LEDLED_STATUS_GPIOGPIO3 / IO3
eFuse faultEFUSE_FLTGPIO4 / IO4
Buck power-goodBUCK_PGOODGPIO5 / IO5
BOOTESP_BOOTGPIO9 / IO9, 10 kΩ pull-up and button to GND
GPIO2 strapESP_GPIO2_STRAPGPIO2 / IO2, 10 kΩ pull-up
UART TX recoveryUART_TXTXD / GPIO21
UART RX recoveryUART_RXRXD / GPIO20
Unused exposed GPIOs IO6, IO7, IO8, and IO10 are marked no-connect.
USB-C Current Strategy
This design intentionally remains below the need for PD negotiation. Passive Rd resistors permit default USB-C 5 V sink operation. The eFuse current limit is set around 0.76 A, which covers expected ESP32 radio bursts while avoiding a default 3 A assumption. If the product must draw above default USB current in a future revision, add CC current-detection or a USB-C sink controller.
Open Engineering Items
  • Assign production MPNs for the generic resistors, capacitors, and test pads before manufacturing export.
  • PCB layout must enforce ESP32-C3 antenna keepout at the board edge.
  • PCB layout must keep the SHT40 away from the buck, ESP32, USB connector, LED, and thermal copper.
  • USB D+/D− should be routed as a short, matched USB FS differential pair with ESD close to J1.
  • Architecture Summary

  • Power Budget

  • Protection Settings

  • 3.3 V Buck Regulator

  • ESP32-C3 Pin Map

  • USB-C Current Strategy

  • Open Engineering Items

Documents

  • Project Specification — USB-C WiFi BLE Environmental Node

  • Design Notes — USB-C WiFi BLE Environmental Node

  • Firmware Starter — ESP32-C3-WROOM-02-N4

  • Board Bring-Up Plan — USB-C WiFi BLE Environmental Node

  • Technical Construction File — USB-C WiFi BLE Environmental Node

Assets

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USB-C WiFi BLE Environmental Node

USB-C WiFi BLE Environmental Node thumbnail
Consumer USB-C 5 V powered low-power temperature and humidity sensor node with ESP32-class Wi-Fi/BLE 5.x connectivity, USB-C sink input, protected 5 V power path, and 3.3 V digital sensor subsystem.

Properties

5

V

Consumer Electronics

RoHS

Arduino

USB

WiFi

Pricing & Availability

Distributor

Qty 1

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$2.17–$3.07

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$0.00

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$4.41–$4.48

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$5.95–$6.13

Mouser

$9.69

TME

$0.54

Verical

$2.92–$5.32

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