Skip to content

What are you looking for?


You may also like

ABB DI651 3BHT300026R1 S600 Digital Input ModuleABB DI651 3BHT300026R1 S600 Digital Input ModuleABB DI651 3BHT300026R1 S600 Digital Input Module
ABB DI651 3BHT300026R1 S600 Digital Input Module
ABB DI651 3BHT300026R1 S600 Digital Input Module
ABB DI651 3BHT300026R1 S600 Digital Input Module

ABB DI651 3BHT300026R1 S600 Digital Input Module


Only 10 left - Selling fast

PRODUCT SKU : DI651 3BHT300026R1

PRODUCT TYPE : Digital Input Modules

PRODUCT VENDOR : ABB


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

Product Details

The ABB DI651 3BHT300026R1, also cataloged as the DI651 Digital Input Module, operates as a dedicated hardware component for discrete signal acquisition within ABB Advant Master Process Control System platforms. It converts 48 VDC binary field signals from switches, relays, and sensors into internal logic-level data for controller execution.

Hardware Specifications

Parameter Specification
Model DI651 (3BHT300026R1)
Brand ABB
Origin Sweden
Product Type Digital Input Module (S600 I/O)
Input Channels 32 channels
Nominal Voltage 48 VDC
Galvanic Isolation Opto-isolated in 4 independent groups (8 channels per group)
Feature Capabilities Sequence of Events (SOE) or pulse catching capability
Dimensions (W x H x D) 40 mm x 273 mm x 252 mm
Net Weight 1.23 kg
Operating Temperature 0 to +55 deg C (standard enclosure ambient)
Power Consumption System backplane powered via S600 bus
Environmental Compliance Exempt from EU Directive 2011/65/EU (RoHS) per Article 2(4)

Backplane Bus Architecture and I/O Density Scaling

The module handles high-density discrete processing across 32 field channels while limiting electrical noise transmission via group opto-isolation. Structured into four distinct groups of eight channels each, the input architecture provides channel-to-bus electrical separation to prevent field voltage spikes from damaging the controller backplane. The internal backplane interface maintains deterministic signal timing during high-frequency pulse catching and Sequence of Events (SOE) timestamp registration. High I/O density integration within the 40 mm width footprint optimizes rack space efficiency without compromising thermal dissipation or signal integrity.

Frequently Asked Questions

Q: How are the 32 input channels isolated on the module?

A: The 32 channels are opto-isolated into four isolated groups of eight channels each. Isolation prevents ground loops and electrical interference between distinct field voltage potential groups.

Q: Can this module capture fast transient signals or pulses?

A: Yes, the module includes hardware-level pulse catching and Sequence of Events (SOE) capabilities to detect and log rapid state transitions that occur between standard controller scan cycles.

Field Installation Guidelines

  1. Power Disconnection: Ensure all 48 VDC external field supply power and subrack backplane power sources are de-energized prior to inserting or removing the module from the S600 I/O chassis.
  2. Mechanical Alignment: Align the module with the guide rails of the designated subrack slot. Push the unit firmly until the backplane connector fully seats into the motherboard. Tighten top and bottom retaining screws to ensure proper grounding and mechanical retention.
  3. Field Wiring Isolation: Route external 48 VDC field wiring through dedicated cable ducts separate from high-voltage power lines to mitigate electromagnetic interference. Maintain group isolation limits by keeping wiring for distinct isolated groups on separate terminal blocks.
  4. Shielding and Grounding: Terminate field cable shields at the designated cabinet earth bus bar using short, low-impedance ground straps. Do not daisy-chain shield connections across multiple terminal blocks.

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 Marshalling Cabinets in Industrial Control Systems Architecture

Understanding Marshalling Cabinets in Industrial Control Systems Architecture

Industrial control system deployments rely on structured signal distribution to bridge field instrumentation with central processing hardware. A marshalling cabinet serves as the vital intermediate connection point between heavy field home-run multi-pair cables and delicate input/output (I/O) modules housed inside Programmable Logic Controller (PLC) or Distributed Control System (DCS) enclosures. By segregating field cable terminations from control hardware, engineers maintain system flexibility, safeguard controller components, and streamline commissioning workflows.

Read more
FAT vs SAT in Industrial Control Systems: Key Differences and Execution Guide

FAT vs SAT in Industrial Control Systems: Key Differences and Execution Guide

Industrial control system deployment relies on strict verification protocols to guarantee operational safety, system stability, and regulatory compliance. Commissioning complex Programmable Logic Controller (PLC) racks, Distributed Control Systems (DCS), and Safety Instrumented Systems (SIS) requires two critical milestones: the Factory Acceptance Test (FAT) and the Site Acceptance Test (SAT). Both procedures validate that system automation meets design specifications, but they occur at different stages of project execution and target distinct operational risks.

Read more
Hub vs Switch vs Router in Industrial Automation Architecture

Hub vs Switch vs Router in Industrial Automation Architecture

Modern factory automation relies on reliable industrial networking infrastructure to exchange real-time field data across operational technology systems. Engineers often encounter networking hardware like hubs, switches, and routers when integrating Programmable Logic Controllers, Distributed Control Systems, and SCADA monitoring nodes. Although these devices share physical ports, they operate at different layers of the Open Systems Interconnection reference model and deliver distinct traffic management capabilities.

Read more