Description
Technical Parameters & Specifications
| Parameter | Specification |
|---|---|
| Manufacturer | General Electric (GE) |
| Series | Mark V Speedtronic |
| Full Model | DS200DTBAG1A |
| Board Type | Thermocouple / RTD Input Board |
| Input Channels | 16 differential analog inputs |
| Input Types | Thermocouple (J, K, T, E, R, S, B) or RTD (2-wire, 3-wire) |
| Input Range | Thermocouple: -100°C to +1820°C (type-dependent) / RTD: -200°C to +850°C |
| Resolution | 16-bit (0.1°C typical) |
| Accuracy | ±0.08% of reading + 0.4°C (thermocouple) / ±0.04% + 0.15°C (RTD) |
| Cold Junction Compensation | Integrated (with improved onboard sensor accuracy) |
| Sampling Rate | 10 Hz (all channels simultaneously) |
| Input Filtering | Enhanced low-pass digital filtering (programmable) |
| Isolation | 1500 VAC (channel-to-backplane) |
| Backplane Interface | VME connector for data transfer |
| Operating Temp | -30°C to +65°C |
| Protection | Conformal coating + gold-plated edge connectors |
| Physical Dimensions | 6U VME format (233mm × 160mm) |
| MTBF | > 130,000 hours |
Core Advantages & Key Features
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Multi-Type Input Support – The DS200DTBAG1A accepts both thermocouple and RTD inputs on the same board, eliminating the need for separate modules for different sensor types. Each channel can be independently configured via software for specific sensor type.
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High Channel Density – With 16 input channels on a single 6U board, the DS200DTBAG1A maximizes rack space efficiency, allowing more temperature points to be monitored in a compact footprint.
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Enhanced Cold Junction Compensation – The Revision A includes an improved onboard temperature sensor with better accuracy (±0.3°C vs. ±0.5°C on base version), ensuring precise thermocouple measurements without requiring external reference junctions.
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Programmable Input Filtering – The DS200DTBAG1A adds programmable digital filtering to reduce noise on temperature signals, allowing users to adjust filter settings based on application requirements (e.g., fast response for transient monitoring or heavy filtering for stable process measurements).
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High Accuracy and Resolution – 16-bit resolution and improved accuracy (±0.08% + 0.4°C) provide reliable temperature data for critical applications such as exhaust gas temperature monitoring and turbine inlet temperature control.
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Automatic Linearization – The DS200DTBAG1A provides built-in linearization for all supported thermocouple types, converting raw voltage signals directly to temperature values without requiring external calculation.
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Channel-to-Backplane Isolation – 1500 VAC isolation protects the main processor and other system components from electrical noise and faults on field sensor wiring.
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Diagnostic LEDs – Onboard indicators show channel activity, communication health, and fault conditions for quick troubleshooting.
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Robust Environmental Protection – Conformal coating and gold-plated edge connectors ensure reliable operation in humid, dusty, or corrosive environments.
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Plug-and-Play Compatibility – The DS200DTBAG1A integrates seamlessly with all Mark V main processors, including DS200CPCAG1A, and works alongside driver boards such as DS200DPCAG1ADC and DS200DPCAG1ADB without additional interface hardware.
Typical Applications
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Gas Turbine Exhaust Gas Temperature (EGT) Monitoring – Measures thermocouple signals from multiple exhaust thermocouples for temperature averaging, hot spot detection, and turbine protection.
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Turbine Inlet Temperature Control – Provides high-accuracy temperature feedback for fuel control algorithms to maintain optimal combustion efficiency.
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Bearing Temperature Surveillance – Monitors RTDs or thermocouples installed on turbine and compressor bearings for early warning of overheating or lubrication issues.
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Compressor Discharge Temperature Monitoring – Measures process temperatures for performance calculations and surge protection algorithms.
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Steam Turbine Metal Temperature Monitoring – Monitors casing and rotor temperatures during startup and shutdown for thermal stress management.
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Process Temperature Monitoring – Provides temperature inputs for various balance-of-plant applications in CHP and industrial facilities.
Field Example: A North American gas pipeline compressor station replaced aging temperature modules with DS200DTBAG1A boards. The improved cold junction compensation reduced temperature measurement drift by 50%, enabling more accurate surge protection calculations and reducing unnecessary compressor trips.
Comparison: DS200DTBAG1A vs. Base Version vs. Competitor
| Feature | DS200DTBAG1A | DS200DTBAG1 (Base) | Competitor (Siemens 6ES7 analog input) |
|---|---|---|---|
| Primary Function | TC + RTD input (enhanced) | TC + RTD input | Analog input |
| Input Channels | 16 (mixable) | 16 (mixable) | 8 channels |
| Supported Types | TC (7 types) + RTD (2/3-wire) | TC (7 types) + RTD (2/3-wire) | TC (5 types) or RTD only |
| Resolution | 16-bit | 16-bit | 15-bit |
| Accuracy (TC) | ±0.08% + 0.4°C | ±0.1% + 0.5°C | ±0.15% + 0.8°C |
| Cold Junction Accuracy | ±0.3°C | ±0.5°C | External required |
| Programmable Filtering | Yes | No | No |
| Isolation | 1500 VAC | 1500 VAC | 1000 VAC |
| Hot-Swap Support | Yes | Yes | No |
| Panel Space Required | 1 slot (6U) | 1 slot (6U) | 2 slots |
| MTBF | > 130,000 hours | > 120,000 hours | 85,000 hours |
Selection Guidelines & Precautions
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Verify Sensor Type for Each Channel – Configure each of the 16 channels via software for the correct thermocouple type or RTD configuration (2-wire or 3-wire) before commissioning. Incorrect configuration will result in inaccurate readings.
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Configure Programmable Filtering – For stable process measurements, enable digital filtering to reduce noise. For fast transient monitoring (e.g., startup temperature rises), set filter parameters to minimize response delay. Refer to GE manual GEK-119639 for configuration details.
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Check Input Range Limits – Ensure the expected temperature ranges for each sensor are within the supported range for the configured sensor type. Exceeding limits may cause inaccurate readings or damage.
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Use Proper Thermocouple Wiring – Use extension-grade thermocouple wire with correct polarity and color coding. Avoid copper wire connections between thermocouple and board unless using a thermocouple-to-copper junction block with cold junction compensation.
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RTD Wiring Practices – For 3-wire RTDs, ensure all three connections are properly made to the board to enable lead-wire compensation. Refer to GE manual GEK-119639 for terminal assignment details.
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Shielded Cable – Use shielded twisted-pair cables for all sensor connections to minimize EMI pickup. Connect shields at the board end only to avoid ground loops.
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Cold Junction Compensation – The onboard cold junction sensor measures the board’s terminal block temperature. Ensure adequate airflow around the terminal block area to allow accurate compensation. Avoid mounting heat-generating components adjacent to the DS200DTBAG1A.
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Firmware Compatibility – The DS200DTBAG1A is compatible with all Mark V main processor firmware versions. No special firmware updates are required for basic temperature input functionality.
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Spare Parts Strategy – The DS200DTBAG1A is the preferred replacement for the base DS200DTBAG1 due to its improved accuracy and programmable filtering. Maintain at least one unit as a cold spare, particularly for systems with extensive temperature monitoring requirements.
Summary
The DS200DTBAG1A is an enhanced high-density temperature input board for GE Mark V systems, supporting both thermocouple (7 types) and RTD (2-wire and 3-wire) sensors on 16 channels with 16-bit resolution, improved cold junction compensation accuracy (±0.3°C), programmable digital filtering, and 1500 VAC isolation. It provides reliable temperature data for critical applications including exhaust gas temperature monitoring, bearing surveillance, and turbine inlet temperature control. The board integrates seamlessly with DS200CPCAG1A processors and works alongside driver boards including DS200DPCAG1ADC and DS200DPCAG1ADB. This revision is the recommended replacement for the base DS200DTBAG1. Selection requires attention to sensor type configuration, filter settings, proper wiring practices, cold junction compensation factors, and cable shielding to ensure accurate and reliable temperature measurement in critical turbine and compressor control applications.

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