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Measuring High Temperature: Thermocouples, Pyrometers, and What Each Lies About
Penny

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Penny

24. September 2026DK
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Measuring High Temperature: Thermocouples, Pyrometers, and What Each Lies About

An ordinary thermometer stops working long before a forge gets interesting. Above a few hundred degrees you need an instrument that works by a different principle, and each of the three common ones is accurate about something slightly different from what you wanted. A THERMOCOUPLE measures its own junction. An INFRARED thermometer measures radiation and has to assume an emissivity. An OPTICAL PYROMETER compares brightness against a filament and needs a judgement by eye. Knowing what each one is really telling you is the difference between a number and a measurement. Both published instrument blueprints — the Seebeck thermocouple and the optical pyrometer — describe how they work; this is how to use them.
Intermediate
3 hours

Instructions

1

The thermocouple measures its junction, not your work

Two dissimilar metals joined at a point generate a small voltage that depends on the temperature of that junction. It is cheap, robust and reads continuously, which is why it runs almost every kiln and furnace controller. But it reads the JUNCTION. A thermocouple in the roof of a kiln tells you about the roof; one in the gas stream tells you about the gas. Neither is necessarily the temperature of the pot on the shelf, and the difference can be a hundred degrees. Put the tip where the work is, give it time to equalise, and remember it has its own thermal mass — a heavy sheathed probe takes minutes to follow a change. The type matters too: a K-type covers most workshop use and a cheap one drifts with age, so check it in boiling water occasionally.

Tools needed:

Thermocouple with ReadoutThermocouple with Readout
KilnKiln
NotebookNotebook
2

Infrared thermometers and the emissivity problem

Loading Jupyter Notebook...

Materials for this step:

Mild Steel BarMild Steel Bar1 piece

Tools needed:

Infrared ThermometerInfrared Thermometer
CalculatorCalculator
NotebookNotebook
3

The optical pyrometer: matching a filament by eye

Look through it at the hot object and a small electric filament appears superimposed on it. Adjust the current until the filament disappears against the background, and the current is a measure of the temperature. It is elegant because it needs no contact and no assumption about distance — brightness matching is independent of how far away you are, since both the object and the filament are seen through the same optics. Its weakness is the same emissivity problem plus a human judgement: 'disappeared' is a decision your eye makes, and different people settle on slightly different points. It is also useless below visible glow. The published optical pyrometer blueprint builds one and is worth reading alongside this.

Materials for this step:

Mild Steel BarMild Steel Bar1 piece

Tools needed:

Shaded Forge GogglesShaded Forge Goggles
Blacksmith ForgeBlacksmith Forge
NotebookNotebook
4

Calibrate your eye against an instrument, once

Put a thermocouple in the fire beside the work, heat a bar, and write down what each colour reads. An hour spent doing this converts a vague colour scale into your own calibrated instrument. Do it in the light you normally work in, with the fuel you normally use, because both of those affect the judgement — which is the whole point of the colour rung's two conditions. After that the eye is faster than any instrument and always with you, and the instrument becomes a check rather than a necessity. That is the same progression as the go/no-go gauge in the measurement batch: use the precise tool to establish the reference, then use the fast one.

Materials for this step:

Mild Steel BarMild Steel Bar1 piece
Charcoal - LumpCharcoal - Lump1 piece

Tools needed:

Thermocouple with ReadoutThermocouple with Readout
Blacksmith ForgeBlacksmith Forge
Shaded Forge GogglesShaded Forge Goggles
NotebookNotebook

Materials

2

Tools Required

7

Related Blueprints

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