Skip to content

What are you looking for?


You may also like

GE IS415UCVGH1A VME Controller CardGE IS415UCVGH1A VME Controller CardGE IS415UCVGH1A VME Controller Card
GE IS415UCVGH1A VME Controller Card
GE IS415UCVGH1A VME Controller Card
GE IS415UCVGH1A VME Controller Card

GE IS415UCVGH1A VME Controller Card


Only 10 left - Selling fast

PRODUCT SKU : IS415UCVGH1A

PRODUCT TYPE : CPU Processors

PRODUCT VENDOR : General Electric


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

Product Details

Configured for real-time turbine regulation in Mark VI platforms, the GE IS415UCVGH1A (IS415UCVGH1A VME Controller Card) provides direct physical/electrical execution of logic processing and network communication.

Hardware Specifications

Parameter Specification
Model IS415UCVGH1A
Brand General Electric
Origin USA
Weight Not specified
Dimensions Single-slot VME
Operating Temp 0 deg C to 70 deg C
Power Consumption +5 V DC
Microprocessor Intel Ultra Low Voltage Celeron 650 MHz
Memory 128 MB SDRAM / 128 MB Flash

Profinet / EtherNet/IP Deterministic Networks

The IS415UCVGH1A utilizes dual 10BaseT/100BaseTX Ethernet ports to maintain deterministic communication across the Mark VI rack architecture. The primary port facilitates UDH configuration and peer-to-peer data exchange, while the secondary port enables dedicated EGD networks or Modbus protocols on isolated logical subnets. Firmware flash compatibility is verified at each power cycle, where the controller cross-references the internal toolbox configuration against the detected hardware backplane bus communication velocity and physical I/O density to ensure system-wide synchronicity.

Frequently Asked Questions

Q: Is the IS415UCVGH1A compatible with live firmware updates?

A: Firmware updates require a controlled power cycle of the VME rack. The controller performs a hardware-software match verification upon reboot; unauthorized firmware modifications will inhibit the controller from transitioning to an "Execute" state.

Q: Does the controller support hot-swapping within the VME rack?

A: No. Due to the reliance on backplane bus synchronization and volatile state registers, the IS415UCVGH1A must not be removed or inserted while the rack is energized. Improper removal will disrupt the deterministic network and may trigger a system-wide trip.

Field Installation Guidelines

  1. VME Slot Alignment: Ensure the card is inserted into the correct designated slot for the master controller. Verify the edge connector pins are free of oxidation to prevent high-resistance contact that could impede backplane communication velocity.
  2. Grounding: The VME chassis must be connected to a common earth ground. Secure the front-panel captive screws to ensure the module's conductive faceplate is bonded to the rack chassis, providing an effective shield against electromagnetic interference.
  3. Ethernet Cabling: Utilize shielded Category 5e (or higher) Ethernet cables for all network connections. Ensure the cable bend radius does not exceed the manufacturer’s specification to maintain the integrity of the 100BaseTX data signals.
  4. Toolbox Configuration: After physical installation, use the GE Toolbox application to verify the network IP configuration. The controller will log a mismatch error if the detected physical hardware does not match the parameters stored in the configuration project.

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
Essential Motion Control Commands: A Practical Guide for Engineers

Essential Motion Control Commands: A Practical Guide for Engineers

Automation engineers often rely on precise position and speed control to drive modern factory machinery. Modern industrial systems, such as Programmable Logic Controllers (PLCs) and Distributed Control Systems (DCS), depend heavily on standardized motion instructions. Mastering these commands ensures operational safety, protects mechanical components, and optimizes cycle times across production lines.

Read more
The Role of Intrinsic Safety Barriers in PLC and DCS Architectures

The Role of Intrinsic Safety Barriers in PLC and DCS Architectures

Implementing robust protection in hazardous industrial environments represents a fundamental safety requirement in factory automation. Process facilities often handle volatile gases, dusts, and chemical agents that pose significant combustion risks. Consequently, control system engineers must deploy energy-limiting interfaces to isolate safe-area control cabinets from hazardous-area field instrumentation. This article examines the function, selection, and electrical principles of intrinsic safety barriers within modern PLC and DCS networks.

Read more
Architectural Selection and Scale Classification of PLC Systems in Industrial Automation

Architectural Selection and Scale Classification of PLC Systems in Industrial Automation

Selecting the correct control platform represents a foundational engineering decision in factory automation. System designers must carefully balance technical parameters against long-term operational requirements when implementing a Programmable Logic Controller (PLC). This article examines the critical evaluation metrics, physical scale classifications, and operational architectures of modern control systems.

Read more