Description
Real-World Use & Application Scenarios
The GE DS200LDCCH1AGA drive control and LAN communications board is a key component utilized in industrial automation and turbine control systems where precise motor and drive operations are critical. Found extensively within power generation plants, such as gas and steam turbines managed by GE’s Speedtronic Mark V systems, this board addresses the demanding control tasks necessary to regulate motor speed, position, and operational parameters. Its compatibility with LAN communications ensures that it can integrate seamlessly into modern control networks, facilitating real-time data exchange, remote monitoring, and coordinated drive management. Industries relying on high availability and safety, including energy production and heavy industrial manufacturing, benefit from this board’s ability to maintain stable and accurate drive control under challenging operational conditions.
The DS200LDCCH1AGA is applicable in automation setups that require integration between drive control hardware and local area network communications. It plays an essential role in control architectures where fast, reliable communication between drives and central controllers influences system performance and efficiency. This module is crucial for applications that demand synchronized motor control, fault diagnostics, and predictive maintenance capabilities, making it well-suited for continuous process industries and mission-critical system environments.
Product Introduction & Positioning
The GE DS200LDCCH1AGA is a combined drive control and LAN communication circuit board designed for use in GE’s Speedtronic Mark V and related automation product lines. It functions as an interface between drive control modules and the broader network, providing on-board processing power to manage drive functions while also handling LAN-based communications protocols. This dual-purpose board helps consolidate control and communication functionalities within one module, simplifying system design and reducing hardware complexity.
By integrating LAN communication capabilities, the DS200LDCCH1AGA enables direct networking of drives with central control systems and diagnostic platforms, enhancing system flexibility and remote operational oversight. It fits within the modular architecture of GE’s control platforms and acts as a backbone for drive data exchange and control signal processing. Engineers appreciate this board for its robust integration of drive control precision and network communications, which helps optimize operational responsiveness and system uptime.
Key Technical Features & Functional Benefits
The GE DS200LDCCH1AGA features a microprocessor-controlled LAN communications interface that supports robust, real-time data exchange among networked automation components. This capability facilitates synchronized drive control with low communication latency, essential for turbine and motor applications demanding coordinated speed and position adjustments. The board also integrates advanced drive control functions, supporting precise motor actuation, feedback signal processing, and fault detection.
- DS200LDCCH1AGA
- DS200LDCCH1AGA
- DS200LDCCH1AGA
Physically, the board measures approximately 11 cm by 6 cm by 6.7 cm, compact enough for fitting into existing control cabinets without significant space requirements. It operates reliably across a wide temperature range from -20°C to +60°C, suitable for harsh industrial environments. The typical power consumption is low, around 3 watts, contributing to energy-efficient system design. Its certifications and design adherence to industrial standards ensure compliance with safety and interoperability criteria.
By combining drive control and LAN communications, the DS200LDCCH1AGA reduces system complexity and hardware counts, lowering installation and maintenance costs. Its onboard microprocessor enhances local control processing, minimizing the load on central PLCs or controllers and improving overall system response times. This integration supports predictive diagnostics and fault isolation, enabling preventative maintenance and reducing downtime.
Detailed Technical Specifications
| Parameter | Value |
|---|---|
| Model | DS200LDCCH1AGA |
| Brand | GE |
| Product Type | Drive Control and LAN Communications Board |
| Dimensions | Approximately 11 cm x 6 cm x 6.7 cm |
| Operating Temperature | -20 to +60 degrees Celsius |
| Power Consumption | Approximately 3 Watts |
| Functionality | Drive control, motor processing, LAN communication |
| Weight | Approximately 2 lbs (0.9 kg) |
| Certifications | Industrial safety and interoperability standards compliant |
| Application Platform | GE Speedtronic Mark V and related automation lines |
Related Modules or Compatible Units
DS200LLAQHAAA – Analog output module compatible with Speedtronic systems for control precision.
DS200LCBCCAAGA – Control board complementing drive control functions within the Mark V series.
DS200LDECHAAGA – Digital input/output module designed for integrated control cabinets.
DS200LCDCHAAGA – Communication interface board supporting various network protocols in GE systems.
DS200LCCCHAAGA – Controller module for enhanced automation functionality within Speedtronic platforms.
Installation Notes & Maintenance Best Practices
Ensure the DS200LDCCH1AGA is installed within a control enclosure that provides adequate airflow to maintain ambient temperatures between -20°C and +60°C. Verify that the module is securely mounted in its designated slot with proper electrical grounding to minimize electromagnetic interference. Cable and connector inspections during installation improve signal integrity and reduce future communication faults.
Maintenance involves routine performance monitoring via diagnostic software compatible with Speedtronic systems to identify communication or drive control anomalies early. Visual inspection for dust, corrosion, or physical damage during scheduled shutdowns helps maintain reliable operation. Firmware updates and functional checks should be conducted according to manufacturer recommendations to optimize module longevity and integration with evolving control system architectures.




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