Description
High-Resolution Incremental Encoder: The MIG Nova+ offers superior resolution and signal stability, making it ideal for precise speed regulation and control in advanced automated systems.
Stainless Steel Construction: Manufactured from high-grade stainless steel, this encoder is exceptionally resistant to corrosion, making it suitable for harsh and demanding environments, such as food processing, chemical, and outdoor installations.
Large Flange and Shaft Dimensions: The Ø250mm flange with 215mm BCD and 42mm shaft diameter ensures compatibility with IEC 160B14 motors, supporting robust mechanical connections in heavy-duty applications.
Extended Cable Length: With up to 100 meters of cable, the encoder easily accommodates remote mounting without compromising signal integrity—ideal for large-scale machinery or installations requiring flexible placement.
Wide Voltage Input Range: Operates reliably on both 5V and 24V DC input, providing adaptability across various control systems and simplifying integration into existing infrastructures.
HTL/TTL Output with Differential Channels: Supports A90°B / A'90°B' outputs for accurate, interference-resistant signal transmission, ensuring compatibility with modern PLCs and drives in complex automation.
Pulse Per Revolution: Provides 1 pulse per channel per revolution, facilitating essential speed feedback for synchronized motion control and monitoring tasks.
Dual IP Rating – IP55/IP67: Offers high protection against dust and water ingress, ensuring long-term reliability even under challenging industrial conditions.
Main Application: Optimized for high-precision motion control, feedback, and regulation in packaging lines, material handling, automated assembly, and processing plants. **Comparison Overview**
MIG Basic – Incremental encoder for standard automation control, cost-effective speed feedback.
MIG Nova+ – Enhanced incremental encoder as described above, excelled signal fidelity and precision feedback.
MIG AST – Absolute encoder for maintaining position data after power loss, crucial for advanced positioning and high-end motion systems.

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