Thermocouples — All Types and Grades (B, E, J, K, N, R, S, T)

A thermocouple consists of two dissimilar metal wires joined at one end (the measurement junction) — the Seebeck effect generates a small voltage at the open ends (the reference junction) that is proportional to the temperature difference between the two junctions. Eight standard thermocouple types (IEC 60584) cover −270°C to +1,820°C: Type K (NiCr/NiAl) is the most widely used (-270 to +1,260°C); Type J (Fe/CuNi) for reducing atmospheres; Type T (Cu/CuNi) for cryogenic; Type N (NiCrSi/NiSi) for high-temperature; Types R, S, B (Pt-Rh alloys) for the highest temperatures up to +1,820°C.

Challenges

Reference Junction Temperature Compensation Error (Cold Junction Drift)

Ambient temperature at the transmitter or indicator terminal changes — if CJC is inaccurate, measurement error follows.

Extension Lead EMF Error from Using Wrong Thermocouple Extension Cable Type

Using Type K extension cable on a Type J thermocouple generates an additional parasitic EMF — measurement error of 10–50°C.

Thermocouple Drift at High Temperature from Grain Boundary Diffusion (Type K Hysteresis)

Type K positive leg oxidises and develops inhomogeneous EMF along its length above 700°C — calibration drift of ±5–10°C over months.

Grounded Junction Short Circuit to Sheath from Insulation Failure

Moisture or mechanical damage causes insulation breakdown between conductors and sheath — signal shortcircuit; incorrect reading.

Electromagnetic Pickup on Long Thermocouple Extension Cables Near VFDs

Long extension cables in high-EMI environments act as antennae — noise superimposed on µV signal; erratic temperature display.

Solutions

Applications

Models & Capacities

Thermocouples — All Types: Temperature Range, Accuracy, and Application

Type / Alloy Pair

Temp Range [°C]

Sensitivity [µV/°C]

IEC Accuracy Class 1 [°C]

Atmosphere Compatibility

Probe OD [mm]

Sheath Material

Output

Typical Application

Type K (NiCr / NiAl)

−270 to +1,260

40 µV/°C

±1.5°C (−40 to +375) / ±0.4%

Oxidising; NOT reducing or vacuum above 500°C

1–12

SS 316L; Inconel 600; ceramic

mV; 4–20 mA via head transmitter

Most common; general industrial; −270 to +1,260°C

Type J (Fe / CuNi)

−210 to +750

52 µV/°C

±1.5°C (−40 to +375) / ±0.4%

Reducing; vacuum; NOT oxidising above 550°C

1–12

SS 304; Iron sheath

mV; 4–20 mA

Reducing atmospheres; annealing; chemical reactors

Type T (Cu / CuNi)

−270 to +400

42 µV/°C

±0.5°C (−40 to +125) / ±0.4%

Oxidising and reducing; vacuum; wet environments

1–8

SS 316L; Cu

mV; 4–20 mA

Cryogenics; food; pharmaceutical; accurate below 0°C

Type E (NiCr / CuNi)

−270 to +1,000

58 µV/°C

±1.5°C (−40 to +900)

Oxidising (best sensitivity)

1–12

SS 316L; Inconel

mV; 4–20 mA

Highest sensitivity of all thermocouples; sub-zero

Type N (NiCrSi / NiSi)

−270 to +1,300

36 µV/°C

±1.5°C / ±0.4%

Oxidising; more stable than K above 600°C

1–12

Inconel 600; ceramic

mV; 4–20 mA

High-temperature stable alternative to K; >600°C continuous

Type R (Pt13%Rh / Pt)

−50 to +1,768

8 µV/°C

±1°C / ±0.25% (Class 1)

Oxidising only; NEVER reducing or contaminating

3–12

High-purity alumina; Pt sheath

mV; 4–20 mA

1,400–1,700°C; ceramics; glass; noble metal measurement

Type S (Pt10%Rh / Pt)

−50 to +1,768

8 µV/°C

±1°C / ±0.25%

Oxidising only

3–12

High-purity alumina

mV; 4–20 mA

1,400–1,700°C; primary temperature standard; glass melting

Type B (Pt30%Rh / Pt6%Rh)

+100 to +1,820

< 1 µV/°C at low T

±0.25% (Class 1 >600°C)

Oxidising only

3–12

High-purity alumina

mV; 4–20 mA

1,600–1,820°C; steel, furnace, glass — highest temperature

Type C (W5%Re / W26%Re)

0 to +2,320

16 µV/°C

±1%

Vacuum or inert gas only — oxidises above 230°C

3–6

Molybdenum; graphite

mV; specialised amplifier

Vacuum furnaces; nuclear; tungsten melting — extreme temp

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