Description
Key Parameters
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Channels: 4 isolated analog inputs
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Sensor Types: Ni100, Ni1000, Ni120, Ni500 (software-selectable per channel)
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Wire Configuration: 2-wire, 3-wire, or 4-wire (software-configurable per channel)
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Resolution: 16-bit ADC
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Accuracy: ±0.1°C (Ni100, 25°C); ±0.3°C over –40°C to +70°C
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Excitation Current: Software-selectable 0.1 mA, 0.5 mA, 1 mA (per channel)
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Lead Resistance Compensation: Automatic for 3-wire and 4-wire configurations
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Measurement Range: –50°C to +250°C (depending on sensor type)
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Diagnostics: Open-circuit detection, short-circuit detection, over-range/under-range detection, per-channel LED status
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Isolation: 1500 V RMS (field-to-backplane); 500 V RMS between channels
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Sampling Rate: Up to 50 Hz per channel (with 50/60 Hz noise rejection)
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Power: 24 V DC backplane power, ≤3 W
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Operating Temperature: –40°C to +70°C
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Terminals: Screw-type (suffix-dependent)
Advantages
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Direct Ni-RTD connection – eliminates external transmitters; saves panel space and cost.
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Per-channel isolation – 500 V between channels; prevents ground loops and cross-channel interference.
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Automatic lead compensation – for 3-wire/4-wire RTDs, cancels lead resistance errors for accurate temperature readings.
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Software-configurable per channel – sensor type, wire configuration, and excitation current independently settable.
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Built-in linearization – provides direct temperature readout in °C or °F; no scaling required.
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Open/short detection – detects broken wires or sensor shorts instantly.
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Hot-swappable – replace without rack power-down.
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High accuracy – ±0.1°C for precise temperature control.
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Wide Ni-RTD support – covers Ni100, Ni1000, Ni120, and Ni500 types.
Applications
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HVAC systems – duct and return air temperature monitoring with Ni1000 sensors
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Pharmaceutical manufacturing – fermenter and storage temperature control
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Food processing – oven and sterilization chamber temperature profiling
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Industrial chillers – cooling water temperature monitoring
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Environmental chambers – temperature control in test chambers
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Building automation – room and zone temperature sensing
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Laboratory equipment – incubator and water bath temperature control
Competitor Comparison
| Feature | DS3820NOTA | Standard Analog AI + External Ni-RTD Transmitter | Competitor Ni-RTD Module |
|---|---|---|---|
| Channels | 4 | 1 per transmitter | 4 |
| Sensor Direct | Yes | No (requires transmitter) | Yes |
| Per-channel Isolation | Yes (500 V) | No | Group only |
| Lead Compensation | 3/4-wire auto | N/A | 3/4-wire auto |
| Configuration | Software per-channel | Hardware (jumpers) | Software per-channel |
| Accuracy | ±0.1°C | ±0.3°C (transmitter adds error) | ±0.1°C |
| Panel Space | Compact | Large | Compact |
| Cost (per channel) | Low | High (transmitter + AI module) | Mid |
The DS3820NOTA is the specialized Ni-RTD input module with per-channel isolation. Compared to using external transmitters with standard analog inputs, it saves significant panel space, reduces wiring, and lowers total installed cost (4 channels in one module vs. 4 separate transmitters + AI module). Against competitor Ni-RTD modules, the DS3820NOTA offers superior diagnostics and per-channel isolation at a competitive price. For Ni-RTD temperature monitoring applications, the DS3820NOTA delivers the most comprehensive and cost-effective solution.
Selection Tips
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Choose DS3820NOTA when you need to measure Ni RTD sensors (Ni100, Ni1000, Ni120, Ni500) with high accuracy and per-channel isolation.
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Ideal for HVAC, pharmaceutical, food processing, and building automation applications.
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Verify the sensor type (Ni100, Ni1000, etc.) and wire configuration (2-wire, 3-wire, 4-wire) – software-configurable per channel.
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For 2-wire sensors, lead resistance adds error – use 3-wire or 4-wire for accurate measurements.
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Not suitable for Pt RTDs – use DS3820AIRA family for Pt sensors.
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Ensure your PLC/DCS can handle the temperature data format from the DS3820NOTA.
Precautions
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Lead resistance: For 2-wire sensors, lead resistance directly adds error – use 3-wire or 4-wire for accurate measurements. The DS3820NOTA compensates for 3-wire/4-wire automatically.
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Excitation current: Higher currents (1 mA) produce self-heating errors in small Ni elements – use 0.1 mA or 0.5 mA for sensitive sensors.
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Wiring: Use shielded twisted-pair cables; ground shield at module end only. For 4-wire, use separate pairs for excitation and sense leads.
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Sensor matching: Ni RTDs have different curves – verify your sensor matches the selected type (Ni100 vs. Ni1000).
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Power sequencing: Apply backplane power before field power.
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Calibration: Perform periodic calibration using precision resistors to maintain accuracy.
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Spare: Keep one spare DS3820NOTA for critical Ni-RTD temperature loops – the specialized feature set may have longer lead times.

FOXBORO P0916FJ
A-B 1747-BA
A-B 1747-BA


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