Description
Product Parameters
| Parameter | Specification |
|---|---|
| Brand / Series | GE Mark VIe Speedtronic |
| Model | IS200SRTDH2A |
| Input Channels | 24 RTD inputs (3-wire or 4-wire, software-selectable per channel) — upgraded from 16 on IS200SRTDH1A |
| RTD Types | Pt100 (α = 0.00385), Ni120 (DIN 43760), Pt50, Cu10 |
| Input Range | 0–400 Ω (Pt100: –200°C to +850°C; Ni120: –60°C to +250°C) |
| Excitation Current | 0.5 mA / 1.0 mA / 2.0 mA (programmable per channel) |
| ADC Resolution | 24-bit delta-sigma with programmable sampling rate (2–250 SPS) |
| Accuracy | ±0.05% of reading + ±0.2°C — upgraded from ±0.1% + ±0.3°C |
| Lead-Wire Compensation | Automatic (3-wire and 4-wire) with imbalance detection and correction |
| Isolation | 2000 VAC (field-to-system) — upgraded from 1500 VAC |
| Common Mode Rejection | >110 dB @ 50/60 Hz — upgraded from >100 dB |
| Diagnostics | Open-circuit detection, short-circuit detection, lead-wire resistance imbalance monitoring, sensor drift tracking, reference resistor validation |
| Status Indication | 24 green LEDs (channel active), 1 red LED (diagnostic fault summary), 1 yellow LED (calibration status) |
| Operating Temperature | –30°C to +65°C |
| Storage Temperature | –55°C to +85°C |
| Mounting | VME rack-mount terminal board with front-panel I/O connector |
| Backplane Interface | VME64x (A24/A32, D16/D32/D64) |
| EMC Compliance | Enhanced EMI filtering per IEC 61000-4-2, -4, -5 (Level 4) |
Advantages & Key Features
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Higher Channel Density: IS200SRTDH2A provides 24 RTD inputs in a single VME slot, representing a 50% increase over the IS200SRTDH1A and significantly outperforming competing RTD modules that typically offer 4–8 channels. This high density is particularly valuable for large turbines with extensive bearing and winding temperature monitoring requirements (e.g., HA-class with 40+ temperature points).
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Multi-RTD Type Support: In addition to Pt100 and Ni120, IS200SRTDH2A supports Pt50 and Cu10 RTD types, providing flexibility for legacy sensors and specialized applications. Each channel is independently configurable via GE ToolboxST.
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Programmable Excitation Current: Three excitation current options (0.5 mA, 1.0 mA, 2.0 mA) per channel allow optimization for different RTD types and sensor self-heating characteristics. Lower currents (0.5 mA) minimize self-heating for small-diameter sensors; higher currents (2.0 mA) improve signal-to-noise ratio for long cable runs.
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Enhanced Accuracy: With ±0.05% reading + ±0.2°C accuracy, IS200SRTDH2A provides superior measurement precision for critical temperature monitoring applications where tight tolerances are required (e.g., turbine inlet temperature trending, bearing differential temperature calculations).
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Advanced Sensor Diagnostics: In addition to open-circuit and short-circuit detection, IS200SRTDH2A includes sensor drift tracking (monitoring long-term resistance changes) and reference resistor validation (self-checking ADC accuracy). These advanced diagnostics enable predictive maintenance and early warning of sensor degradation—features not available on IS200SRTDH1A or competitor products.
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Improved CMRR & Isolation: >110 dB CMRR and 2000 VAC isolation provide superior protection from electrical noise and field wiring faults, ensuring stable readings in high-EMI environments such as generator switchyards and VFD-equipped plants.
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Lead-Wire Imbalance Detection & Correction: The board detects lead-wire resistance imbalances and applies correction algorithms to maintain accuracy even when field wiring is not perfectly matched—a significant advantage over IS200SRTDH1A, which only detects imbalance without correction.
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ToolboxST Integration: Full configuration, calibration, and diagnostics via GE ToolboxST software, enabling online channel monitoring, sensor health trending, automated drift alerts, and fault logging.
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Drop-In Replacement: Direct replacement for earlier GE RTD boards such as IS200SRTDH1, IS200SRTDG1A, and IS200SRTDH1A, with identical mounting holes, connectors, and backplane addressing.
Application Fields
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Gas & Steam Turbines (GE Frame 6B/7EA/9E/HA): Monitors bearing metal temperature (up to 16 bearings), generator stator winding temperature (6–12 points), turbine casing temperature, inlet air temperature, lube oil temperature, and cooling water temperature.
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Combined Cycle Plants: Used in HRSG for superheater outlet temperature monitoring, feedwater temperature, reheat steam temperature, and steam turbine bearing temperature arrays.
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Compressor Stations: Monitoring gas turbine compressor inlet temperature (multiple stages), discharge temperature, intercooler performance, and lubrication oil temperature.
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Aeroderivative Turbines (LM series): Monitors engine oil temperature, inlet guide vane temperature, exhaust casing temperature, and fuel gas preheat temperature.
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Nuclear Power Plants: Used for turbine auxiliary system temperature monitoring where 24-channel density reduces rack space and extensive diagnostics satisfy regulatory requirements.
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Hydropower Plants: Used for generator bearing temperature (up to 12 sensors) and transformer winding temperature monitoring.
Comparison with Competing Products
| Feature | GE IS200SRTDH2A | GE IS200SRTDH1A (Previous Gen) | Competitor A (Emerson RTD Module) | Competitor B (Siemens RTD Module) |
|---|---|---|---|---|
| Input Channels | 24 (3-wire or 4-wire) | 16 (3-wire or 4-wire) | 8 (3-wire only) | 8 (3-wire or 4-wire) |
| RTD Types | Pt100, Ni120, Pt50, Cu10 | Pt100, Ni120 | Pt100 only | Pt100, Ni100, Ni120 |
| Excitation Current | 0.5/1.0/2.0 mA (programmable) | 1 mA (programmable) | 0.5 mA (fixed) | 1 mA (fixed) |
| ADC Resolution | 24-bit delta-sigma | 24-bit delta-sigma | 16-bit SAR | 16-bit sigma-delta |
| Accuracy | ±0.05% reading + ±0.2°C | ±0.1% reading + ±0.3°C | ±0.2% reading + ±0.5°C | ±0.15% reading + ±0.5°C |
| Lead-Wire Imbalance | Detection + correction | Detection only | No | No |
| Sensor Drift Tracking | Yes | No | No | No |
| CMRR | >110 dB | >100 dB | >80 dB | >85 dB |
| Isolation | 2000 VAC | 1500 VAC | 1000 VAC | 500 VDC |
| EMC Filtering | IEC Level 4 | Level 2 | Level 2 | Level 1 |
| Operating Temp | –30°C to +65°C | –30°C to +65°C | 0°C to 50°C | 0°C to 60°C |
Key Advantage: IS200SRTDH2A provides the highest channel density (24 inputs), superior accuracy, and the most comprehensive diagnostic suite in the Mark VIe RTD family—including sensor drift tracking and lead-wire correction. These features, combined with enhanced CMRR, isolation, and EMC filtering, make it the preferred choice for large turbines with extensive temperature monitoring requirements. Competitor products cannot match the channel density, accuracy, or diagnostic sophistication of IS200SRTDH2A.
Selection Guidelines & Recommendations
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Sensor Type Verification: Confirm whether your application uses Pt100, Ni120, Pt50, or Cu10 RTDs. IS200SRTDH2A supports all types—configure the correct sensor type per channel in GE ToolboxST before commissioning. For legacy sensors, select the appropriate linearization curve.
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Excitation Current Selection: Select the lowest excitation current that provides adequate signal-to-noise ratio for your cable length. For short cable runs (< 10 m) and small-diameter sensors, use 0.5 mA to minimize self-heating. For long cable runs (> 50 m), use 2.0 mA to improve noise immunity but monitor self-heating effects.
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Wiring Configuration: For 3-wire RTDs, ensure the two current-carrying leads are of identical gauge and length to maintain lead-wire compensation accuracy. IS200SRTDH2A can correct imbalances up to 50 Ω; beyond this, a diagnostic alert is generated. For 4-wire RTDs, the board provides maximum accuracy by eliminating lead-wire resistance entirely.
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Sampling Rate Selection: For steady-state temperature monitoring (bearings, windings), use 2–10 SPS for maximum accuracy. For dynamic temperature tracking (e.g., transient thermal response), use 50–100 SPS. The 250 SPS maximum rate reduces resolution but provides fastest response.
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Controller Firmware: Ensure your Mark VIe main processor (e.g., IS420UCSBH1A, IS420UCSCH1A, IS200SPROH2ADD) is running firmware v8.0 or later for full diagnostic support on IS200SRTDH2A, including sensor drift tracking and lead-wire correction algorithms.
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ToolboxST Configuration: In GE ToolboxST, configure each channel’s RTD type, wiring mode (3-wire/4-wire), excitation current, and sampling rate. Enable sensor drift tracking for critical bearing temperature channels (thresholds configurable as % deviation over time). Enable lead-wire imbalance correction to automatically compensate for field wiring variations.
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Wiring Guidelines: Use shielded twisted-pair cables for RTD wiring. Maintain shield grounding only at the Mark VIe cabinet end to prevent ground loops that degrade CMRR. For long cable runs (> 50 m), use 4-wire configuration to eliminate lead-wire resistance effects.
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Spare Strategy: For critical plants with TMR configurations, maintain at least two spare IS200SRTDH2A units per turbine system. Lead times typically 8–12 weeks due to specialized calibration and testing.
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Retrofit: Direct replacement for IS200SRTDH1, IS200SRTDG1A, and IS200SRTDH1A—no chassis or cable changes required. However, configuration files must be regenerated in GE ToolboxST to access the enhanced diagnostics and expanded channel mapping. The new configuration enables sensor drift tracking and lead-wire correction not available on earlier models.
Important Cautions
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No Hot-Swap: IS200SRTDH2A is not hot-swappable. Always de-energize the Mark VIe rack before insertion/removal to prevent backplane damage and protect sensitive analog circuits.
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RTD Wiring Polarity: For 3-wire RTDs, the two current-carrying leads must be connected to the correct terminals—incorrect wiring will produce offset errors. Refer to GE wiring diagram IS200SRTDH2A-DWG for proper terminal assignments.
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Excitation Current Self-Heating: Higher excitation currents (2.0 mA) increase self-heating errors in RTD sensors. For small-diameter or slow-response sensors, use 0.5 mA to minimize measurement drift. Monitor temperature readings for self-heating effects (indicated by slow upward drift after power-up).
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Lead-Wire Imbalance Limits: Lead-wire imbalance correction is effective up to 50 Ω difference between the two current-carrying leads. For imbalances exceeding 50 Ω, IS200SRTDH2A generates a diagnostic alert. Ensure field wiring uses matching cable lengths and gauges to avoid false diagnostics.
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Sensor Drift Tracking Thresholds: Set drift tracking thresholds appropriately for your application. For bearing temperature sensors, a 2% deviation over 12 months may indicate normal aging; for critical turbine inlet temperature sensors, a 1% threshold is recommended. Consult sensor manufacturer specifications for expected drift rates.
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Grounding: The board’s analog ground (AGND) must connect to the Mark VIe system ground at a single star point. Multiple ground paths introduce 50/60 Hz noise and degrade the >110 dB CMRR specification.
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Shield Termination: RTD cable shields must be grounded only at the Mark VIe cabinet end. Grounding at both ends creates ground loops that degrade measurement accuracy and may trigger false diagnostic alerts.
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ESD Handling: Use grounded wrist straps during handling; the 24-bit ADC, analog front-end, and diagnostic circuits are ESD-sensitive. Field repair is not possible due to conformal coating.
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Sampling Rate Trade-Off: Higher sampling rates (250 SPS) reduce measurement resolution and increase noise. For steady-state temperature monitoring (bearings, windings), use 2–10 SPS for maximum accuracy. For dynamic temperature tracking, use 50–100 SPS. Do not exceed 100 SPS unless dynamic response is absolutely required.
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Calibration Validation: IS200SRTDH2A includes an internal reference resistor for self-validation. If the yellow calibration status LED illuminates, schedule a recalibration via GE service center—do not attempt field calibration as this requires specialized equipment and certified reference sensors.

ABB UPC090AE01
BENTLY 330850-90-05
A-B 1783-US16T
WESTINGHOUSE 1C31227G01


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