CoreWing F405 WING V2 APP Fixed-Wing Flight Controller
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Beschreibung
The CoreWing F405 WING V2 APP is a modular flight-controller kit for fixed-wing aircraft. It combines a flight-controller board, WING PDB PLUS power board, top board, and Wireless USB Expansion Board PRO. Three independent BECs, extensive peripheral connections, and wired or wireless configuration make it a practical foundation for fixed-wing FPV builds. Supported VTOL configurations require suitable firmware and correct aircraft setup.
Key Features
- 🔋 Three independent BECs: Separate power rails for the flight-control system, VTX/camera, and servos, with selectable outputs where specified.
- 📱 Wired and wireless configuration: Wireless USB Expansion Board PRO supports BLE, Wi-Fi AP, Wi-Fi STA, and wired USB-C connections.
- 🎛️ VTX power control: Disable video-transmitter power during bench setup to reduce unnecessary heating.
- 🧩 Layered modular construction: Separate power, flight-control, and wireless modules simplify installation and maintenance.
- 🔌 Peripheral expansion: Connections for GPS, receivers, video systems, airspeed sensors, and custom wiring via reserved solder pads.
- 🛠️ INAV and ArduPilot: Factory INAV firmware, with a matching ArduPilot target available as described in the product documentation.
Four Version Options
BMI270 IMU with pin headers left unsoldered for a custom installation.
BMI270 IMU with straight pin headers pre-soldered.
ICM-42688-P IMU with pin headers left unsoldered.
ICM-42688-P IMU with straight pin headers pre-soldered.
The confirmed differences are IMU model and header-soldering status. Neither IMU option is presented as a guarantee of better flight performance. The soldered versions do not include the 90° PWM header.
BMI270 vs ICM42688 Comparison
Swipe left or right on smaller screens to compare both sensors.
| Item | BMI270 (Bosch) | ICM-42688-P (TDK InvenSense) |
|---|---|---|
| Type | 6-axis IMU (gyro + accelerometer) | 6-axis IMU (gyro + accelerometer) |
| Market Positioning | Consumer-grade (smartphones, wearables) | Flagship industrial-grade |
| Gyroscope Range | ±2000 dps | ±2000 dps |
| Accelerometer Range | ±16g | ±16g |
| Max Gyro Output Data Rate (ODR) | 6.4 kHz (cannot run full 8K mode) | 32 kHz (runs 8K mode with ease) |
| Noise / Vibration Immunity | Average; higher noise in high-vibration setups | Lowest noise in the FPV market; better vibration and EMI immunity |
| Cost | Lower | Higher |
| Best For | Fixed-wing, low-vibration builds | Quadcopters, high-vibration builds |
| Fixed-Wing Performance | Virtually identical to ICM-42688-P | Virtually identical to BMI270 |
| Firmware Support | INAV/ ArduPilot / Betaflight | INAV / ArduPilot / Betaflight |
Bottom line: For fixed-wing use, the BMI270 version performs the same — save the money. For multirotors or high-vibration builds, the ICM-42688-P is worth the extra cost.
CoreWing vs SpeedyBee Comparison
The original comparison graphic below compares CoreWing F405 WING V2 with SpeedyBee F405 WING APP. It is retained as supplied reference material, not an independently verified competitor specification sheet.
The supplied chart lists 10–28 V (3–6S) input for CoreWing versus 7–36 V (2–6S) for SpeedyBee. It lists CoreWing continuous FC/video/servo BEC outputs of 4 A / 2 A / 8 A versus 2.4 A / 1.8 A / 4.5 A respectively for SpeedyBee. These rail ratings should not be treated as a guarantee of better flight performance.
The chart shows different firmware targets and UART assignments. For CoreWing it lists USART1 for the wireless board, USART6 for the receiver, USART3 for VTX, and USART5 for GPS; for SpeedyBee it lists USART6, USART1, USART5, and USART3 respectively. Do not copy another board's wiring or firmware settings without checking its manual.
The chart lists VTX power switching for CoreWing and not for the compared SpeedyBee board. It shows a wireless USB expansion board for CoreWing and a top-plate wireless module for SpeedyBee. Wireless mode and feature availability must be checked against current hardware and firmware documentation; the distance figures shown are not guaranteed ranges.

Original CoreWing vs SpeedyBee comparison image. Competitor specifications have not been independently verified; do not treat performance or range statements as guarantees.
Specifications
Flight Controller
MCU: STM32F405, 168 MHz, 1 MB Flash.
IMU: BMI270 or ICM-42688-P, according to version.
Barometer: SPA06-003.
Analog OSD: AT7456E.
UARTs: Six: USART1 connects to the wireless board; USART2, USART3, UART4, UART5, and USART6 provide the remaining serial connections.
I²C: One interface for compatible compass and digital airspeed sensors.
ADC: Four inputs for voltage, current, RSSI, and analog airspeed.
PWM: 12 outputs: 11 routed to pin headers and one shared with the LED signal output.
ELRS/CRSF: Supported on USART6.
SBUS: Onboard inverter connected to USART2 RX.
RSSI: Dedicated solder pad.
Status LEDs: Blue and green status LEDs plus a 3.3 V power LED.
Firmware: INAV and ArduPilot, using the matching CoreWing F405 WING V2 target.
Blackbox Storage
MicroSD: SDSC and SDHC supported; SDXC not supported. The specification image lists 4–32 GB capacity with FAT16/FAT32 formatting, but explicitly states that INAV recognizes only 4 GB cards and does not support larger capacities. Follow this firmware-specific restriction rather than assuming every listed capacity works in INAV.
WING PDB PLUS
Input: 10–28 V, 3–6S LiPo.
Voltage monitoring: Connected to FC VBAT; listed divider ratio 10K:100K.
Current monitoring: 90 A continuous, 215 A peak; listed calibration values are 158 in INAV and 64 A/V in ArduPilot. Verify calibration after installation.
Transient protection: TVS diode.
FC BEC: 5.2 V ±0.1 V, 4 A continuous / 5 A peak.
VTX/camera BEC: Default 9 V ±0.1 V; selectable 5/9/12 V via solder jumper, 2 A continuous / 3 A peak.
Servo BEC: Default 5 V ±0.1 V; selectable 5/6/7.2 V via solder jumper, 8 A continuous / 14 A peak.
Wireless USB Expansion Board PRO
The specification image lists CoreWing App, SpeedyBee App, and INAV Configurator for BLE; SpeedyBee App, INAV Configurator, Mission Planner, and QGroundControl for Wi-Fi AP/STA. Hold BOOT for approximately six seconds to change wireless mode. Four RGB LEDs indicate battery level.
Supported functions depend on firmware, app version, and connection mode. A detail image reports a tested wireless tuning distance exceeding 30 m; the comparison graphic separately states tuning within 50 m. Actual range varies with installation and surroundings, and neither figure is a guaranteed operating distance.
Dimensions & Weight
52 × 32 mm footprint; approximately 17 mm body thickness and 18 mm including protruding parts, as shown in the dimensional drawing. Weight: 40 g including Wireless USB Expansion Board PRO.
Package Contents
- CoreWing F405 WING V2 flight controller ×1
- CoreWing WING PDB PLUS ×1
- CoreWing F405 WING V2 top board ×1
- CoreWing Wireless USB Expansion Board PRO ×1
- 90° PWM right-angle header (3×12) ×1, unsoldered versions only
- Straight pin headers (1×12) ×3; pre-soldered on soldered versions
- ELRS pin header (1×4) ×1
- M2×12 brass standoffs ×5
- M2×4 Phillips screws ×10
- M3×4 silicone grommets ×5
- USB extension cable, VTX cable, GPS cable, DJI cable, camera cable, and 4-pin Dupont cable
- Capacitor and double-sided adhesive pad
Cable, capacitor, and adhesive-pad quantities are not specified in the packing image. GPS, receivers, cameras, VTX units, and ESCs shown in wiring illustrations are connection examples, not included items.
Installation Notes
Before powering the system, verify battery voltage, wiring polarity, pin order, and each BEC output. Set voltage-selection jumpers to match the connected equipment. Matching connector shapes do not guarantee matching pinouts.
Wireless tuning is for ground configuration, not a replacement for the RC control link. Before the first flight, complete sensor calibration, control-surface direction checks, output assignment, and failsafe setup. VTOL requires a compatible aircraft, firmware, and configuration; it is not an automatic plug-and-fly function.
Product Detail Images

F405 WING V2 product overview.

Power, connection, and configuration feature overview.

FC, video-system, and servo BEC rails.

VTX power control for bench setup.

Wireless and USB-C configuration expansion board.

Desktop and mobile software shown in the product material.

Reported wireless tuning test; actual range depends on conditions.

Mobile firmware-flashing workflow shown for INAV and ArduPilot.

Wireless modes and UART/OTG communication paths.

ArduPilot configuration interface example.

Expansion-board battery-level indicators.

VTOL application example requiring appropriate aircraft and configuration.

Output headers and peripheral expansion.

Peripheral wiring example; external devices shown are not included.

Analog and digital video connection options; verify voltage and pinout.

Updated connector arrangement.

Layered power, flight-control, and wireless modules.

Cable-length update illustrated for larger airframes.

Package contents; 90° header excluded from soldered versions.

Dimensions and weight including the wireless expansion board.

Specification sheet including the INAV SD-card restriction.
Official User Guide
CoreWing F405 WING V2 user guide
Use the official guide to verify wiring and firmware selection before installation.
Choose the IMU and header option for your fixed-wing build.
Check peripheral power requirements and complete ground testing before flight.
Versandinformationen
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| Art | Bedingung | Kosten |
|---|---|---|
| Kostenloser Versand | Bestellungen über 100 $ | Kostenlos |
| Standardversand | Bestellungen unter 100 $ | Basierend auf Gewicht & Adresse |
| Internationaler Versand | Alle internationalen Bestellungen | Basierend auf Bestimmungsort & Gewicht |
⏱️ Versand- & Lieferzeiten
| Region | Geschätzte Lieferung |
|---|---|
| National (USA) | 5–10 Werktage |
| International | 10–15 Werktage |
* Die Zollabfertigung kann die internationalen Lieferzeiten beeinflussen.
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| Plattform | Link |
|---|---|
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