Kjaerulf Pedersen a/s
Pt100 resistance table (IEC 60751)
A Pt100 resistance table lists the resistance of a platinum RTD at each temperature according to IEC 60751: 100.00 ohm at 0 °C, rising by roughly 0.385 ohm per °C — 138.51 ohm at 100 °C and 18.52 ohm at −200 °C.
Move the pointer along the curve to read the resistance at any temperature.
The table gives the resistance of a Pt100 element every 10 °C from −200 °C to 850 °C, calculated from the IEC 60751 characteristic. Find the temperature, read the resistance — and interpolate between rows for values in between.
| °C | +0 | +10 | +20 | +30 | +40 | +50 | +60 | +70 | +80 | +90 |
|---|---|---|---|---|---|---|---|---|---|---|
| -200 | 18.52 | 22.83 | 27.10 | 31.34 | 35.54 | 39.72 | 43.88 | 48.00 | 52.11 | 56.19 |
| -100 | 60.26 | 64.30 | 68.33 | 72.33 | 76.33 | 80.31 | 84.27 | 88.22 | 92.16 | 96.09 |
| 0 | 100.00 | 103.90 | 107.79 | 111.67 | 115.54 | 119.40 | 123.24 | 127.08 | 130.90 | 134.71 |
| 100 | 138.51 | 142.29 | 146.07 | 149.83 | 153.58 | 157.33 | 161.05 | 164.77 | 168.48 | 172.17 |
| 200 | 175.86 | 179.53 | 183.19 | 186.84 | 190.47 | 194.10 | 197.71 | 201.31 | 204.90 | 208.48 |
| 300 | 212.05 | 215.61 | 219.15 | 222.68 | 226.21 | 229.72 | 233.21 | 236.70 | 240.18 | 243.64 |
| 400 | 247.09 | 250.53 | 253.96 | 257.38 | 260.78 | 264.18 | 267.56 | 270.93 | 274.29 | 277.64 |
| 500 | 280.98 | 284.30 | 287.62 | 290.92 | 294.21 | 297.49 | 300.75 | 304.01 | 307.25 | 310.49 |
| 600 | 313.71 | 316.92 | 320.12 | 323.30 | 326.48 | 329.64 | 332.79 | 335.93 | 339.06 | 342.18 |
| 700 | 345.28 | 348.38 | 351.46 | 354.53 | 357.59 | 360.64 | 363.67 | 366.70 | 369.71 | 372.71 |
| 800 | 375.70 | 378.68 | 381.65 | 384.60 | 387.55 | 390.48 | — | — | — | — |
Read the row for the tens of degrees and the column for the units: the row −200 and the column +90 give −110 °C.
Every value in the table comes from one formula, defined in IEC 60751.
Above 0 °C: R(t) = R0 · (1 + A·t + B·t²)
Below 0 °C: R(t) = R0 · (1 + A·t + B·t² + C·(t − 100)·t³)
with R0 = 100 Ω, A = 3.9083 × 10−3 °C−1, B = −5.775 × 10−7 °C−2 and C = −4.183 × 10−12 °C−4.
A Pt100 reads 109.73 Ω. The table places the value between 100.00 Ω (0 °C) and 138.51 Ω (100 °C); the row at 20 °C reads 107.79 Ω and the row at 30 °C reads 111.67 Ω. The formula gives the exact answer: 25.0 °C.
Type a value in either field — the other follows the IEC 60751 curve.
The table is the nominal IEC 60751 characteristic — the curve a Pt100 is built to follow. A real element deviates from it within its tolerance class: at 100 °C, a Class B element may deviate up to ±0.80 °C, which is roughly ±0.3 Ω. The classes and their formulas are covered under Pt100 tolerance classes.
109.73 Ω according to IEC 60751. Around room temperature the sensitivity is close to 0.39 Ω per °C, so each tenth of a degree moves the reading by roughly 0.04 Ω.
Pt is the chemical symbol for platinum, and 100 is the element's resistance in ohms at 0 °C — exactly 100.00 Ω. Pt500 and Pt1000 follow the same curve with 500 Ω and 1,000 Ω at 0 °C.
Both follow the same IEC 60751 characteristic and the same tolerance classes — a Pt1000 simply has ten times the resistance at every temperature: 1,000 Ω at 0 °C. The higher base resistance makes lead resistance ten times less significant, which is why Pt1000 elements are usually connected with two wires.
The Callendar-Van Dusen formula — the same one behind this table. Above 0 °C it is a quadratic equation that can be solved directly for temperature; below 0 °C the table or an iterative calculation is used.