Description
- Product Model: IS215ACLEH1C
- Manufacturer: GE
- System Platform: Mark VIe Gas Turbine Control System
- Communication Protocol: Ethernet, Modbus TCP/IP
- Power Supply: 24V DC
- Operating Temperature: -40°C to +70°C
- Storage Temperature: -40°C to +85°C
- Humidity Range: 5% to 95% (non-condensing)
- Communication Channels: 4 isolated channels
- Data Rate: 100Mbps
- Response Time: ≤ 10ms
- Signal Isolation: 1500V AC
- Mounting Type: DIN rail mountable
- Environmental Protection: IP20
- Compliance Standards: UL, CE, ATEX (where applicable)
- MTBF: 250,000 hours
- Status Indicators: LED indicators for power, communication, and error status
- Firmware: Supports EPROM/BIOS updates
- Diagnostic Features: Built-in self-test functionality
- Electrical Consumption: 5W
Technical Architecture & Functional Positioning
Architecture Analysis
The IS215ACLEH1C module is a communication interface in the Mark VIe system, positioned at the control layer. It is designed to enable reliable data transmission between the central controller and the various field devices, ensuring fast and secure communication across the system. This module serves a critical function, allowing the Mark VIe control system to manage large-scale industrial processes, including gas turbine control, power generation, and plant automation.
Core Technology
The module utilizes Ethernet and Modbus TCP/IP communication protocols, allowing it to integrate easily into modern industrial networks. The four isolated communication channels provide redundancy, which ensures continuous operation even if one channel fails. This module also features signal isolation of 1500V AC, protecting it from electrical interference or surges that may disrupt data integrity.
Engineering Value
By using advanced communication protocols and providing redundant channels, the IS215ACLEH1C minimizes the risk of data loss and communication failure in critical applications. These features are especially vital in industries like power generation, where a failure in data transmission could lead to costly downtime or, worse, system failures. Furthermore, the module’s self-diagnostic features and LED indicators provide instant visibility into the operational status, facilitating proactive maintenance and reducing unexpected breakdowns.
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