Skip to content

What are you looking for?


You may also like

Emerson EPRO MMS 6350/DP Digital Overspeed Protection SystemEmerson EPRO MMS 6350/DP Digital Overspeed Protection SystemEmerson EPRO MMS 6350/DP Digital Overspeed Protection System
Emerson EPRO MMS 6350/DP Digital Overspeed Protection System
Emerson EPRO MMS 6350/DP Digital Overspeed Protection System
Emerson EPRO MMS 6350/DP Digital Overspeed Protection System

Emerson EPRO MMS 6350/DP Digital Overspeed Protection System


Only 10 left - Selling fast

PRODUCT SKU : MMS 6350/DP

PRODUCT TYPE : Overspeed Protection Systems

PRODUCT VENDOR : EMERSON


  • 100% Genuine Parts – Risk-Free 30-Day Returns
  • 1-Year Warranty & Expert Support for Every Order

Product Details

Configured for precision turbine speed monitoring and safety-critical protection, the Emerson EPRO MMS 6350/DP (MMS 6350/DP) Digital Overspeed Protection System provides direct physical execution of rotational speed acquisition and safety logic triggers.

Suffix Breakdown & Model Matrix

  • MMS 6350: Base platform for digital overspeed protection.
  • DP: Integrated PROFIBUS-DP communication interface for system-wide data integration.

Hardware Specifications

Parameter Specification
Model MMS 6350/DP
Brand Emerson EPRO
Origin Not specified
Weight 0.2 kg
Dimensions 3.1 cm x 19 cm x 12.9 cm
Operating Temp -40 deg C to +70 deg C
Accuracy +/- 0.1 %
Resolution 0.1 rpm

High-Reliability Safety Control and SIS Characteristics

The MMS 6350/DP is certified to SIL3 standards per DIN EN 61508, ensuring high-integrity operation in safety-critical applications. The system employs fail-safe state execution to detect rotational velocity anomalies and initiate protection sequences. While it integrates PROFIBUS-DP for data transmission, the internal monitoring circuitry maintains galvanic isolation between the sensor input stage and the fieldbus communication path, protecting the system from electromagnetic transients. The architecture is designed to maintain functional safety in demanding environments, providing precise inputs for logic solvers that require validated speed data for turbine trip operations.

Frequently Asked Questions

Q: Can the MMS 6350/DP pulse outputs be used for direct actuator control?

A: The pulse outputs are limited to 48 VDC and 25 mA. They are designed for signal transmission to secondary logic devices; high-current loads must be driven through an intermediary interposing relay to prevent damage to the output stage.

Q: How does the system handle communication loss on the PROFIBUS-DP interface?

A: The system is designed for fail-safe state execution. Loss of communication with the master controller does not affect the local overspeed monitoring and protection logic, which remains operational based on the locally processed pulse frequency inputs.

Field Installation Guidelines

  1. Ensure the module is securely mounted in the designated rack, maintaining clearance for cooling and access to the PROFIBUS-DP port.
  2. Route the sensor input cabling away from high-voltage AC lines to prevent induced interference on the high-impedance (100 kOhm) input terminals.
  3. Verify that the cable shield for the PROFIBUS-DP segment is properly terminated at the system ground to maintain electrical isolation and signal integrity.
  4. Set the PROFIBUS station address correctly before power-up to ensure seamless integration with the host control network.
  5. Perform a functional check by simulating frequency pulses at the input terminals and verifying that the TTL and pulse outputs respond according to the defined trip setpoints.

Additional Information

  • 100% Genuine Parts: All products are original and authentic, ensuring reliable industrial performance.
  • 30-Day Refund Guarantee: Return any in-stock item within 30 days in original, unopened packaging for a full refund (excluding shipping and fees).
  • 12-Month Warranty: Covers defects in materials or workmanship; excludes misuse, normal wear, or unauthorized modifications.
  • Worldwide Shipping: We ship via USPS, UPS, FedEx, and DHL. Delivery times vary by country and may be subject to customs or import fees.
  • Support & Contact: Technical and warranty assistance is available anytime. Contact us here: Contact.
  • Purchase Guidance: Check product specifications and compatibility carefully before ordering to ensure proper application.




Recently Viewed Products

Tech & Buying Guide

Technical Insights, Installation Guides, and Buying Tips
Understanding Modern SCADA Systems: Architecture, Communication Topologies, and Industrial Applications

Understanding Modern SCADA Systems: Architecture, Communication Topologies, and Industrial Applications

Supervisory Control and Data Acquisition (SCADA) systems form the digital backbone of modern industrial automation. They collect critical field data, transmit signals across vast distances, and empower plant operators with real-time process visibility. Across modern infrastructures, SCADA solutions streamline centralized control and maintain continuous operational uptime.

Read more
Understanding OPC Servers in Modern Industrial Automation: Principles, Architecture, and Applications

Understanding OPC Servers in Modern Industrial Automation: Principles, Architecture, and Applications

In industrial automation, connecting physical hardware with high-level software remains a primary operational challenge. Factories utilize programmable logic controllers (PLCs), distributed control systems (DCS), human-machine interfaces (HMIs), and smart sensors from diverse vendors. These devices often speak different proprietary protocols. Open Platform Communications (OPC) servers solve this interoperability challenge by standardizing how data flows across factory networks.

Read more
Industrial Fiber Optic Cables: Principles, Connectors, and Fusion Splicing Techniques

Industrial Fiber Optic Cables: Principles, Connectors, and Fusion Splicing Techniques

Modern factory automation relies heavily on fiber optic cables for high-speed industrial data transmission. Fiber optic cables transmit light pulses instead of electrical signals, eliminating electromagnetic interference (EMI) risks completely. Each optical strand consists of a high-purity glass core surrounded by a protective cladding layer. The difference in refractive index between core and cladding enables total internal reflection. Protective resin buffers, Kevlar strength members, and rugged outer jackets safeguard delicate glass cores in harsh environments. Consequently, automation engineers prefer fiber backbones for reliable noise-free communication in industrial control systems.

Read more