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The GE DS2020VME0606CBDDDD8 serves as the primary DS2020VME Analog I/O Board utilized to execute high-precision sensor signal conditioning and servo actuator loop controls across Mark V turbine control platforms.
| Parameter | Specification |
|---|---|
| Model | DS2020VME0606CBDDDD8 |
| Brand | General Electric (GE) |
| Origin | USA |
| Weight | Approximately 0.15 kg |
| Dimensions | Standard VME Form Factor |
| Operating Temp | -30 to 65 deg C |
| Storage Temp | -40 to 85 deg C |
| Power Consumption | Backplane-drawn, Not Specified |
| Relative Humidity | 10 to 95% (non-condensing) |
| Shock Resistance | Up to 10G (non-operational) |
| Software Frame Rates | 10 ms, 20 ms, 40 ms (configurable) |
| Analog Inputs | LVDT, servo valve, thermocouple, 4-20 mA, vibration, pulse, voltage |
| Signal Outputs | Relay driver, servo valve driver, generator and line signals |
| Communication Ports | COM1, COM2 (9-pin D-type), 10BaseT/AUI Ethernet |
As a central interface board in the Speedtronic Mark V control topology, this module adapts low-level field sensor signals into digital control registers over high-density paths.
Q: What function do the physical hardware jumpers J5 and J6 perform on the board?
A: Jumpers J5 and J6 configure the analog output current scaling ranges. By shorting these jumpers in specific sequences, the operator sets the maximum output limit to either the 20 mA range (typically for standard field instruments) or the 200 mA range (typically for high-current servo actuators).
Q: Can this module be extracted from the VME rack while the turbine control system is energized?
A: No. The DS2020VME0606CBDDDD8 does not support live hot-swapping. The VME rack backplane must be completely de-energized before removing or inserting this board to prevent electrical transients, current spikes, or diagnostic communications faults.
Q: How is the software task execution rate aligned with external hardware loops?
A: The software frame rate is configurable in the control platform configuration files to operate at 10 ms, 20 ms, or 40 ms cycles. This allows timing alignment with specific turbine dynamic requirements, such as rapid servo loop execution or slower thermocouple temperature monitoring.

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