Description
- Product Model: IS215AEPAH1A 109W3911P001
- Manufacturer: GE
- System Platform: GE Mark VIe DCS
- Voltage: 24V DC (Nominal)
- Current: 10mA (Nominal Output)
- Power Consumption: 2.5W
- Signal Range: 0-10V DC / 4-20mA output
- I/O Type: Analog Output
- Response Time: < 1ms
- Isolation: 1500V DC between channels
- Communication Interface: High-speed backplane communication
- Operating Temperature: -40°C to 70°C
- Humidity Range: 5% to 95% non-condensing
- MTBF: 100,000 hours
- Certifications: CE, UL, ATEX (for hazardous environments)
- Response Accuracy: ±0.1%
- Signal Resolution: 16-bit
- Mounting Type: Rack-mounted for easy installation in a DCS frame
- Redundancy: Supports redundant configurations for high availability
- Environmental Rating: Industrial-grade, suitable for harsh environments
- Firmware Version: Verified compatibility with Mark VIe firmware versions up to V5.x
Technical Architecture & Functional Positioning
Architecture Analysis
The IS215AEPAH1A 109W3911P001 is a high-precision analog output module designed for GE’s Mark VIe Distributed Control System. It serves as a key component within the I/O layer, providing a critical link between the control system’s processing core and field equipment such as actuators, motors, and valves. Its role is to convert digital control signals into precise analog outputs, ensuring accurate signal transmission for automated industrial processes.
Core Technology:
This module utilizes advanced signal conditioning and high-speed analog-to-digital conversion technologies to deliver high-accuracy outputs for both voltage and current signals. The use of electrical isolation (1500V DC) between channels is essential for protecting sensitive equipment from electrical noise and surges in harsh industrial environments.
Engineering Value:
The high isolation and precision of this module are especially crucial for industries such as oil and gas, chemical processing, and power generation, where safe and stable operation of field devices is a top priority. It helps minimize the risks associated with signal distortion and interference, ensuring operational reliability even in electrically noisy environments.
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