Standard 4–20 mA Milestone Values

In a standard linear two-wire transmitter, every milliamp corresponds to exactly 6.25% of the total measurement span. Use this quick reference matrix when testing with a signal generator or calibrator.

Standard 4–20 mA Linear Conversion & Diagnostic Thresholds
Signal Current (mA) Percentage of Span Operating Condition Diagnostic Meaning (NAMUR NE43)
0.00 mA Dead Circuit / Fault Broken loop wire, blown supply fuse, or unpowered transmitter
3.60 mA -2.5% Sensor Downscale Fault Primary element open circuit (thermocouple burn-out, RTD broken)
3.80 mA -1.25% Under-range Process slightly below physical lower range value (LRV)
4.00 mA 0.00% Live Zero (LRV) Process at 0% calibration point (e.g. 0.0 bar, 0.0 °C, 0.0 m³/h)
8.00 mA 25.00% Quarter Scale Process at 25% calibration point
12.00 mA 50.00% Mid Scale Process at 50% calibration point (center of measurement span)
16.00 mA 75.00% Three-Quarter Scale Process at 75% calibration point
20.00 mA 100.00% Full Scale (URV) Process at 100% calibration point (e.g. 10.0 bar, 100.0 °C)
20.50 mA 103.12% Over-range Process slightly above physical upper range value (URV)
21.00 mA 106.25% Sensor Upscale Fault Transmitter hardware failure or shorted sensing element

The Mathematical Scaling Formula

Converting a milliamp measurement to an engineering value is a linear two-point interpolation problem. The mathematical formula implemented by this calculator and standard PLC scaling instructions is:

LINEAR SCALING FORMULA Value = Low_EU + [(I_measured − I_min) / (I_max − I_min)] × (High_EU − Low_EU)

Where:

  • I_measured: The measured current in mA from your digital multimeter or process clamp.
  • I_min: The lower baseline current (typically 4.00 mA).
  • I_max: The upper baseline current (typically 20.00 mA).
  • Low_EU: The process value represented at 4 mA (e.g. -20 °C or 0 PSI).
  • High_EU: The process value represented at 20 mA (e.g. +150 °C or 100 PSI).
Common PLC Configuration Mistake

0–20 mA vs. 4–20 mA Channel Card Mismatch

A frequent error during plant commissioning occurs when a technician wires a 4–20 mA transmitter to an analog input card configured for 0–20 mA mode. At 4.00 mA (0% process), the PLC reads 20% of scale instead of zero. When the transmitter reaches 20.00 mA, the PLC reads 100%, but the entire lower 20% of the input resolution is permanently distorted. Always confirm that both the hardware dip switches (or software channel properties) and the scaling logic are set to 4–20 mA live-zero mode.

Related Field Guides & Troubleshooting Notes

FIELD GUIDE 4–20 mA vs 0–10 V: Practical Difference →

Why current loops dominate long distances and high-noise plant environments.

TROUBLESHOOTING Why Does a Loop Read 0 mA? →

A calm, meter-first sequence for separating power, polarity, and loop breaks.

PLC ANALOG PLC Raw Counts to Engineering Units →

How Siemens 0-27648 and Rockwell 0-32767 convert raw analog registers.