Description
Produced by BEGE, renowned for high-quality industrial drive solutions with a focus on precision, reliability, and innovation, ensuring optimal performance for demanding automation applications.
Encoder Type: The MIG Nova+ is an incremental encoder with high resolution and enhanced signal stability, suitable for precise speed and position feedback in advanced automated systems.
Key Feature: Provides 128 pulses per revolution per channel, delivering accurate and fine-grained incremental position and speed information crucial for sophisticated motion control and synchronization tasks.
Signal Output: Dual-channel output (A 90° B / A' 90° B'), supporting both HTL and TTL logic levels for flexible integration with a wide variety of controllers, PLCs, and industrial drives.
Input Voltage: Wide range input of 5-24VDC, ensuring compatibility with most industrial power environments and simplifying system integration.
Mechanical Fit: Designed for IEC 132B5 motors, with a robust Ø300mm flange (BCD 265mm), 12mm flange thickness, and a 38mm shaft diameter, suiting large-scale and heavy-duty applications.
Material & Durability: Constructed from rugged aluminium for optimal strength-to-weight ratio and corrosion resistance, supporting use in demanding industrial environments.
Cable Length: 50m pre-assembled cable, allowing easy installation in sprawling automated setups and long-distance connections between encoder and controlling units.
Ingress Protection: Rated IP55/IP67, ensuring reliable operation against dust and water jets or temporary immersion, ideal for harsh production, processing, and manufacturing settings.
Application Flexibility: MIG Nova+ excels in conveyor systems, robotics, automated packaging, textile machinery, and other precision-critical industries that demand high-resolution feedback and process consistency.
BEGE’s range includes MIG Basic incremental encoders—ideal for basic speed feedback in standard automation tasks—and MIG AST absolute encoders, which retain position information after power loss for advanced, safety-critical positioning control.

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