Product Description
PIX 2.4.8 Compatible Open-Source Flight Controller
✔ One-Key Return to Home (RTH)
✔ Automatic Cruise
✔ One-Key Landing
✔ Stabilized Mode
✔ Altitude Hold
✔ Position Hold
✔ Loiter Mode
✔ Waypoint Autonomous Flight
✔ Automatic Circle Flight
This flight controller is a Pixhawk® 2.4.8–compatible, open-source UAV control system designed for multi-rotor, fixed-wing, and VTOL aircraft.
Based on a high-performance 32-bit ARM Cortex-M4 processor, it supports ArduPilot (APM) firmware and provides stable flight control, autonomous navigation, and flexible expansion for research, education, and industrial applications.
With rich interfaces, redundant power design, and compatibility with multiple GNSS modules, it is ideal for both beginners and advanced developers seeking a reliable open-source autopilot platform.
Functional Features
Robust Flight Stability with Advanced Sensor Design

Built-in vibration-resistant design eliminates the need for external damping in most applications. The controller integrates high-quality accelerometers, gyroscopes, and an onboard compass, ensuring stable and reliable flight even in complex environments.
Open-Source Autopilot System with PX4 & ArduPilot Support

Fully compatible with ArduPilot firmware, enabling waypoint missions, position hold, return-to-home, and autonomous flight modes. The open-source ecosystem allows users to customize parameters, develop new functions, and integrate third-party modules.
Redundant Power & Fail-Safe Architecture

Features redundant power inputs, backup power supply, and failover protection. In the event of a primary power failure, the system can safely switch to backup control to enhance flight safety.
Flexible I/O Interfaces for Expansion

Supports a wide range of external devices via UART, I2C, SPI, and CAN interfaces. Easily integrates GPS/GNSS modules, telemetry radios, optical flow sensors, LiDAR, and onboard computers such as Raspberry Pi or NVIDIA Jetson.
Comprehensive Data Logging & Diagnostics

Equipped with Micro SD card support for detailed flight data logging. Logs enable performance analysis, troubleshooting, and post-flight data review for development and optimization.
GNSS Compatibility with High-Performance GPS Options

Supports multiple GNSS modules including u-blox 6M, 7M, M8N, and genuine imported M8N modules. Higher-end GNSS options offer faster satellite acquisition, more satellites, and improved return-to-home accuracy.
Product parameters
Processor | 32-bit STM32F427 ARM Cortex-M4 processor, With hardware floating-point unit (FPU) |
32-bit STM32F103 backup co-processor, Used for failsafe and redundancy control | |
Onboard Sensors | 1. L3GD20 3-axis 16-bit digital gyroscope |
2. LSM303D 3-axis 14-bit accelerometer & magnetometer | |
3. MPU6000 6-axis accelerometer & gyroscope | |
4. MS5611 high-precision barometric pressure sensor | |
Operating Voltage & Environmental Requirements | Operating temperature: −5℃ to +55℃ |
Physical Dimensions | Main controller size: 81 × 47 × 16 mm |
Interfaces & I/O | 1、14 PWM outputs for servos or ESCs |
Supported Firmware & Vehicle Types | Supports firmware for: |
Dimensions




GNSS Module Details
Model: u-blox M8N GNSS Module (Genuine Imported Version)
Advantages:
High positioning accuracy
Large number of supported satellites
Fast satellite acquisition
Stable and reliable performance


Appilication
This flight controller is suitable for multi-rotor UAVs, fixed-wing aircraft, VTOL platforms, and FPV training drones. It is widely used in aerial photography, waypoint navigation, UAV education and research, competition platforms, and open-source autopilot development, offering flexible integration and reliable performance for various unmanned system applications.
Warm Tips
ArduPilot, PX4, and related firmware are open-source projects.
While powerful and flexible, they require basic hands-on skills and self-learning ability.Due to diverse user requirements, advanced configuration and development may require prior experience with UAV systems, embedded development, or programming.
Extensive tutorials, setup guides, and configuration videos are available.
Please contact us to receive free access to documentation and video resources.
Development & Customization
Secondary Development Support?
Yes, secondary development and custom programming are fully supported.
Flight Control Development:
Based on the ArduPilot open-source project (C++), suitable for users with experience in embedded systems, control theory, and algorithm development.
External Expansion Development:
Expand system capabilities using onboard interfaces to connect telemetry radios, optical flow sensors, LiDAR, onboard computers (Raspberry Pi, NVIDIA Jetson), and AI vision modules via DroneKit or ROS.
This makes the platform ideal for research, competitions, and advanced unmanned system development.










