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The Heat Pipe: Evaporation, Condensation and a Wick That Pumps
Emma

Créé par

Emma

27. septembre 2026SE
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The Heat Pipe: Evaporation, Condensation and a Wick That Pumps

A sealed copper tube with the air pumped out, a few millilitres of water, and a wick lining the wall. Heat one end and the water there boils even at room temperature; the vapour rushes to the cool end, condenses and gives up its heat; the wick soaks the liquid back. It carries heat many times better than a solid copper rod of the same size, with nothing moving. Richard Gaugler of General Motors patented the capillary-wick heat transfer device in 1944, for a refrigerator; George Grover at Los Alamos filed the patent that named and developed the heat pipe in 1963, with sodium pipes running near 1,100 K. Today one sits in almost every laptop. This rung works out what a wick can lift, and builds a water heat pipe from copper tube and stainless mesh to race against an empty tube.
Avancé
About 5 hours

Consignes

1

The cycle

Espace de travail Blockly

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2

What the wick can lift, and what copper cannot carry

Chargement du notebook Jupyter…
3

Make the pipe

Cut 300 mm of 10 mm copper tube and two 300 mm strips of fine stainless mesh. Roll the mesh into a sleeve that springs out against the inside wall — two layers — so it touches the wall everywhere and leaves the core open. Crimp one end flat in the vise, fold it, and seal it with solder and plumbing flux. Add about 3 ml of distilled water with a syringe: enough to wet the wick, not to fill the tube. **Purge the air:** clamp the tube upright in the vise, open end up, and heat the bottom gently with the torch until steam jets steadily out of the top for half a minute — the steam carries the air out. Wearing gloves and goggles, crimp the open end shut in the vise while it is still steaming, then solder it. Air left inside is the commonest reason a home-made heat pipe fails (Grover's own sodium pipes had to be baked to drive out hydrogen). Make a second tube identical in every way but empty of water — the control.

Matériaux pour cette étape :

Tube de cuivre 10 mmTube de cuivre 10 mm0.6 mètre
Toile d'acier inoxydable de qualité alimentaireToile d'acier inoxydable de qualité alimentaire0.02 sqm
Eau distilléeEau distillée10 ml
Soudure étain-plombSoudure étain-plomb30 g
Flux de plomberieFlux de plomberie1 pièce

Outils nécessaires :

Coupe-tubeCoupe-tube
Étau d'établiÉtau d'établi
Chalumeau à propaneChalumeau à propane
Gants de travail en cuirGants de travail en cuir
Lunettes de sécurité transparentesLunettes de sécurité transparentes
4

Race it against the empty tube

Tape a temperature probe to the top end of each tube. Stand both tubes upright with their bottom 50 mm in a jug of hot water at about 70 °C — never heat a sealed pipe with a flame again: its pressure climbs steeply above 100 °C. Watch the two top ends. The heat pipe's top rises within seconds to within a few degrees of the water; the empty tube's top barely moves. That is the notebook's comparison, in your hand. Now turn the heat pipe over: hot end at the TOP, dipping the upper end into a shallow tray of hot water, cold end below. The wick must now lift the liquid against gravity. Its performance drops, and if your wick is coarse or poorly seated it stops — the dry-out in the cycle's last line.

Matériaux pour cette étape :

EauEau2 litres

Outils nécessaires :

Bouilloire électrique en verreBouilloire électrique en verre
Verre doseurVerre doseur
Temperature Sensor - Waterproof (DS18B20)Temperature Sensor - Waterproof (DS18B20)
Thermomètre de cuisineThermomètre de cuisine
ChronomètreChronomètre
5

It carries no better than copper: find out why

The usual reasons a heat pipe does not work, in order.

Flow

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6

History and context

**US 2,350,348, 'Heat Transfer Device', Richard S. Gaugler of Dayton, Ohio, assignor to General Motors; filed 21 December 1942, granted 6 June 1944.** A sealed tube with a sintered *"porous capillary structure"* that carries the liquid *"upwardly or in any direction without any forced circulation and without any moving parts"* — proposed to cool the inside of a refrigerator. **US 3,229,759, 'Evaporation-Condensation Heat Transfer Device', G. M. Grover; filed 2 December 1963, granted 18 January 1966.** Grover's specification describes a sodium pipe of 347 stainless steel, 3/4 inch outside and 5/8 inch inside, 12 inches long, with a wick of five layers of 100-mesh 304 screen and 15 g of sodium, run at about 1,100 K; it also sets out the capillary pumping condition the notebook uses. **Honest limits.** A heat pipe works only between the freezing point and the critical point of its fluid, and best in a narrower band. It has a maximum heat load, set by the wick, above which it dries out. It fails silently if it leaks or holds air. And it moves heat; it does not get rid of it — the cold end still needs a fin or a fan.
Étape 6 - Image 1

Matériaux

6

Outils requis

10

CC0 Domaine public

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