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Optical Pyrometer
Penny

Ṣẹ́dá nipasẹ̀

Penny

26. Oṣù Kẹjọ 2026DK
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Optical Pyrometer

Every temperature instrument so far has to touch the thing it measures, and above about 1500 °C nothing survives contact for long. The optical pyrometer never touches anything. Look through it at a furnace and you see a fine electric filament superimposed on the glowing interior; turn a knob to change the filament's current until it vanishes against the background, and read the temperature off the dial. The filament disappears when it is radiating at exactly the same brightness as the target, so the measurement is a null comparison — you are not measuring light at all, you are matching two brightnesses and reading a current you can calibrate. Holborn and Kurlbaum built the disappearing-filament instrument in 1901, and it made molten steel measurable from across the room.
Ilọsíwájú
4 hours 30 minutes

Ìlànà

1

Build the optical path with the filament in the image plane

The filament and the target must appear at the same focus, or you cannot compare them.

  1. Fit an objective lens at one end of a blackened tube, focusing the target onto a plane inside.
  2. Mount a small tungsten filament lamp at exactly that plane, so the filament sits IN the focused image.
  3. Add an eyepiece behind it, focused on the filament.
  4. Look through and confirm you see the filament sharply, superimposed on a sharp image of whatever the objective is pointed at.

Both must be sharp together. If the filament is in focus and the target is not, you are comparing a bright wire against a blur and the match point becomes vague. Getting the two into one plane is the whole optical design, and it is why the instrument has a fixed working distance range.

Blacken the tube's interior thoroughly. Stray light reaching the eyepiece raises the apparent background brightness and makes the filament vanish too early, reading low.

Materials for this step:

Acrylic RodAcrylic Rod1 ẹyọ
Brass Tube 1/2" ODBrass Tube 1/2" OD1 ẹyọ
LED - Basic 5mmLED - Basic 5mm1 ẹyọ

Tools needed:

Cordless Drill/Driver (20V)Cordless Drill/Driver (20V)
Drill Bit Set (29-Piece, HSS)Drill Bit Set (29-Piece, HSS)
File SetFile Set
Digital Caliper 6-InchDigital Caliper 6-Inch
Hacksaw Frame with Blades (10-Pack)Hacksaw Frame with Blades (10-Pack)
2

Wire the filament current control and read it

Filament current is the measurement. Everything else is optics.

  1. Power the filament from an adjustable supply through a fine potentiometer.
  2. Put an ammeter in series so the current is read precisely.
  3. Turn the knob and watch the filament go from black through dull red to bright yellow.
  4. Note the current at several visible colours.

The dial reads current and is LABELLED in temperature. There is no thermal sensor anywhere in the instrument — the scale is a calibration, established once by pointing the pyrometer at sources of known temperature. That is the same arrangement as the airspeed indicator in the pitot blueprint: a pressure gauge with a velocity scale printed on it.

Use a fine potentiometer and a stable supply. The match point is judged by eye and the eye is very sensitive to brightness differences, so a coarse control that jumps past the match makes the instrument far less precise than it could be.

Materials for this step:

1/4W Resistor Kit (600pcs, 30 Values)1/4W Resistor Kit (600pcs, 30 Values)1 ohun èlò
Adjustable Bench Power Supply (30V/5A)Adjustable Bench Power Supply (30V/5A)1 ẹyọ
Copper Wire (20 Gauge)Copper Wire (20 Gauge)1 ìyípo

Tools needed:

Digital Multimeter (Lab Grade)Digital Multimeter (Lab Grade)
Analog MultimeterAnalog Multimeter
Digital Caliper 6-InchDigital Caliper 6-Inch
3

Add the red filter — and understand why it is essential

Comparing brightness across different colours is unreliable. Remove the colour.

  1. Fit a deep red filter between the filament and the eyepiece.
  2. Look again: both the filament and the target now appear in the same narrow band of red.
  3. Compare the ease of judging the match with and without the filter.

Without the filter you are comparing an orange filament against a yellow furnace and guessing. With it, both are red and only their BRIGHTNESS differs, which the eye judges far better than it judges colour. There is a second reason too: the physics relating brightness to temperature depends on wavelength, so the calibration is only valid if the instrument always looks at the same wavelength. The filter enforces that.

This is a general instrumentation move — remove every variable except the one you are measuring. The filter throws away most of the light and makes the instrument better.

Materials for this step:

Acrylic Sheet (Clear, 1/4 inch, 12x12)Acrylic Sheet (Clear, 1/4 inch, 12x12)1 ewé
Food ColouringFood Colouring1 ìgò

Tools needed:

File SetFile Set
Digital Caliper 6-InchDigital Caliper 6-Inch
Coping SawCoping Saw
4

Calibrate, then find the emissivity error

The instrument assumes the target radiates like a perfect black body. Real surfaces do not.

  1. Point it at a kiln with a known thermocouple reading and set your scale against it.
  2. Now heat two objects to the same temperature: one dull black oxidised steel, one bright polished steel.
  3. Read both with the pyrometer.
  4. Compare against a thermocouple touching each.
The polished surface reads far too LOW, because it emits less radiation at the same temperature — its emissivity is lower. This is the fundamental limitation of every non-contact temperature measurement, including modern infrared thermometers. The standard workaround is to sight into a deep cavity or a furnace port, because a small opening into a large enclosure behaves almost exactly like a black body regardless of what the walls are made of.

Materials for this step:

Aluminum Flat Bar (1x1/4 inch, 36-inch)Aluminum Flat Bar (1x1/4 inch, 36-inch)1 ẹyọ
Graph PaperGraph Paper1 pad

Tools needed:

Infrared ThermometerInfrared Thermometer
Digital Multimeter (Lab Grade)Digital Multimeter (Lab Grade)
KilnKiln
Digital Caliper 6-InchDigital Caliper 6-Inch
5

The null method, and history

Ludwig Holborn and Ferdinand Kurlbaum published the disappearing-filament pyrometer in 1901 at the Physikalisch-Technische Reichsanstalt, the German national standards laboratory. Earlier optical pyrometers compared brightness against a standard lamp side by side; putting the filament INTO the image so it visually disappears is what made the judgement easy and the instrument practical.

Null methods are the most accurate kind of measurement, and this is a fine example. You are not asking the observer to judge how bright something is — a hopeless task — but only whether two things are the SAME brightness, which the eye does extremely well. The Wheatstone bridge in the resistance thermometer works identically: it does not measure resistance, it detects when a difference is zero. Whenever you can turn a measurement into the detection of a null, do it.

Where it sits in the chain: Wedgwood's pyrometer read a permanent effect after the fact. The thermocouple gave a live signal but had to be inserted into the process and eventually degrades there. The optical pyrometer removes contact entirely, so it can read a steel ladle, a glass furnace or a filament in a vacuum tube — anything visible and hot enough to glow.

Its honest limits: it only works above roughly 700 °C, where objects glow visibly; it depends on emissivity, which is often unknown; smoke, dust and dirty windows between instrument and target all read low; and the classic version depends on an observer's eye, so two operators may differ slightly. Modern radiation pyrometers replace the eye with a detector but inherit the emissivity problem completely.

Àwọn ohun-èlò

10

Àwọn irinṣẹ́ tó nílò

10
Estimated Total
$1.00

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