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Electricity From the Wind: The Cube Law and a Rotor on a Dynamo
Volt

Créé par

Volt

27. septembre 2026SE
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Electricity From the Wind: The Cube Law and a Rotor on a Dynamo

For a thousand years windmills ground grain and pumped water. In the winter of 1887–88 Charles F. Brush put one to a new job in the back garden of his house in Cleveland, Ohio: a 17-metre rotor of 144 cedar blades turning a dynamo that charged a cellar full of batteries — electricity from the wind. Everything about a wind generator follows from one relation: the power in the wind goes with the cube of its speed and the square of the rotor's diameter. That is why turbines grew huge and why their sites are chosen with such care. This rung builds a small wind generator from a hobby motor and a printed rotor, measures its power in front of a fan at several wind speeds, and checks the cube law.
Débutant
About 4 hours

Consignes

1

The cube law

Chargement du notebook Jupyter…
2

Build a small wind generator

A small permanent-magnet DC motor is also a generator: turn its shaft and it makes a voltage proportional to speed. Print a three-bladed rotor 300 mm across in PETG, with a hub that presses onto the motor shaft, each blade twisted — steep near the hub, flatter towards the tip — because the tip moves faster through the air than the root. Mount the motor on a dowel mast clamped to a plywood base, with the rotor facing the fan. Wire the motor's terminals to a 330 Ω resistor as a load, with the multimeter across it. Add an LED in series if you want to see it light.

Matériaux pour cette étape :

Hobby Motor - GearHobby Motor - Gear1 pièce
Filament PETGFilament PETG60 g
Goujons de bois durGoujons de bois dur1 jeu
Panneau de contreplaquéPanneau de contreplaqué1 feuille
Résistance de 330 ohmsRésistance de 330 ohms1 pièce
LED 5 mmLED 5 mm1 pièce
Fils de liaisonFils de liaison1 jeu

Outils nécessaires :

Imprimante 3D à filament (FDM)Imprimante 3D à filament (FDM)
Perceuse sans filPerceuse sans fil
Jeu de foretsJeu de forets
Jeu de clés AllenJeu de clés Allen
3

Measure its power at three wind speeds

Stand the box fan 1.5 m away, facing the rotor. Measure the wind speed at the rotor with the anemometer before fitting the rotor, at each fan setting. Fit the rotor, run the fan, and read the voltage across the resistor once it is steady. The electrical power is **V² ÷ R**. Record wind speed and power for each fan setting. Plot power against wind speed cubed. It should be roughly a straight line — not exactly, because a small motor's own losses take a bigger share at low speed. Then divide your power by the notebook's power passing through a 0.3 m disc at the same wind speed. That ratio is your rotor's power coefficient, and the Betz rung shows the most it could ever be.

Outils nécessaires :

Ventilateur caisson (vitesse variable)Ventilateur caisson (vitesse variable)
Anémomètre portatifAnémomètre portatif
MultimètreMultimètre
Mètre rubanMètre ruban
Tachymètre numériqueTachymètre numérique
4

History and context

**Charles F. Brush, Cleveland, Ohio, 1887–88** — a 17 m, 144-bladed rotor on a tower about 18 m (60 ft) high driving a 12 kW dynamo through step-up gearing, charging batteries that lit his house; it ran for some twenty years. Brush had already built the arc-lighting dynamo in this catalogue. No patent number is asserted here. In Denmark from 1891, **Poul la Cour** tested rotors in a wind tunnel of his own and found that fewer blades turning faster made better use of the wind than many slow ones — the direction every modern turbine took. **Honest limits.** The wind stops; a wind generator needs storage or another source behind it. Its output swings with the cube of a quantity that changes by the minute. And a large rotor is a serious hazard: it must be able to stop itself in a storm, as the Halladay windmill's governor in this catalogue already could.

Matériaux

7

Outils requis

9
Total estimé
Ce que le maker a acheté. Les matériaux sans prix se trouvent là où vous les achetez.
€2.22

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