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The A06B-0653-B303 is a DC servo motor developed by FANUC, primarily utilized in robot joint drive applications. With a rated speed of approximately 1,200 RPM and a rated torque of roughly 56 N·m, this motor is designed for high-performance tasks.
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| Manufacturer | FANUC |
|---|---|
| Product Type | DC servo motor |
| Product Line | A06B |
| Part Number | A06B-0653-B303 |
| Weight | 175.00 lbs (79.38 kg) |
| Role | Robot joint drive |
| Feedback Method | Tachometer |
| Shaft Option | ST & SLK |
| Rated Speed | ~1,200 RPM |
| Rated Torque | ~56 N·m |
| Peak Torque | > continuous |
| Electrical Type | DC servo |
| Position Feedback | Encoder (assumed) |
| Mounting | Flange |
| Connectors | Multi-pin |
| Inertia | Low rotor inertia |
| System Fit | 30M/30MH axes |
The A06B-0653-B303 motor from FANUC is designed as a DC servo motor, specifically engineered to drive robotic joints. It achieves a rated speed of approximately 1,200 RPM, providing robust performance for various robotic applications. The motor's output torque reaches around 56 N·m, delivering sufficient force for effective joint operation.
Tachometer feedback is employed for precise monitoring of the motor's speed and position, ensuring accurate movements. It is equipped with shaft options, including ST and SLK configurations, to suit different robotic setups. The product features a flange mounting style, allowing for straightforward integration into robotic systems.
Utilizing multi-pin connectors enhances connectivity options for installation and reduces setup time. This motor features low rotor inertia, which enhances its responsiveness and overall agility during operation, making it ideal for high-speed applications.
Designed for compatibility with 30M and 30MH axes, the A06B-0653-B303 fits seamlessly within FANUC's robotic framework and is tailored for effective performance in demanding environments. Its ability to deliver peak torque beyond continuous ratings makes it suitable for bursts of required power during operation, making this motor a reliable choice in the automation domain.