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The Variable-Pitch Propeller
Martin

Créé par

Martin

27. août 2026NO
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The Variable-Pitch Propeller

A fixed propeller is carved for one flight condition and is wrong for all the others. The blade angle that lets it bite properly at take-off, when the aircraft is barely moving, is far too fine at cruising speed — the blades are then slicing at too shallow an angle and the engine simply overspeeds. Pitch it for cruise instead and take-off performance collapses, because the blades meet the air at a coarse angle, stall, and thrash rather than pull. Every fixed-pitch aircraft is therefore permanently compromised, and the compromise gets worse the wider the speed range. The variable-pitch propeller rotates each blade about its own long axis so the angle can be reset in flight, and the constant-speed version goes further: a governor adjusts pitch continuously to hold the engine at whatever rpm the pilot selects, turning the propeller into an automatic gearbox for the air.
Avancé
7 hours

Consignes

1

Measure the compromise you are trying to escape

Quantify the loss before engineering it away.

  1. Take two fixed propellers of the same diameter but different pitch — one fine, one coarse.
  2. On the thrust rig, measure static thrust and rpm for each at full power.
  3. Now measure both in the wind tunnel at a simulated cruise airspeed, recording thrust and rpm.
  4. Tabulate all four results.

The fine propeller wins at zero airspeed and overspeeds the motor at cruise; the coarse one is feeble static and efficient at speed. Neither is good at both, and the gap between them is the performance a fixed propeller throws away.

This is exactly the reasoning behind gears on a bicycle, and the analogy is worth keeping: fine pitch is a low gear for accelerating, coarse pitch is a high gear for cruising. The engine, like a cyclist, has one narrow band of speed where it makes its best power, and the propeller’s job is to keep it there.

Matériaux pour cette étape :

Papier millimétréPapier millimétré1 pad

Outils nécessaires :

Peson à ressortPeson à ressort
Tachymètre numériqueTachymètre numérique
Anémomètre portatifAnémomètre portatif
Pied à coulisse numérique 6 poucesPied à coulisse numérique 6 pouces
RapporteurRapporteur
Lunettes de sécurité transparentesLunettes de sécurité transparentes
2

Build a hub whose blades can rotate

The whole mechanism is a blade root that turns in a bearing while transmitting enormous loads.

  1. Turn a cylindrical hub with two radial bores, one per blade.
  2. Machine each blade root as a matching shank with a shoulder that seats against a thrust bearing.
  3. Fit each root with a needle or ball thrust bearing so it can rotate under load.
  4. Attach a short crank pin to the inboard end of each blade root, offset from the rotation axis.
  5. Confirm each blade turns smoothly through at least 30° with no radial play.

The thrust bearing is doing the difficult work: it must let the blade twist freely while carrying the full centrifugal load, which on a real propeller is measured in tonnes. Radial play is unacceptable — any slop becomes a blade angle that varies with load, which is exactly the imprecision the mechanism exists to remove.

Reverse-engineering note: blade roots on real propellers are round and surprisingly thick for their aerodynamic contribution, and this is why. The root is a structural and bearing component first, and the fact that it also has to be an aerofoil is a distant secondary concern.

Matériaux pour cette étape :

Barre ronde en aluminiumBarre ronde en aluminium1 pièce
Butée à aiguillesButée à aiguilles2 pièces
Roulement à billesRoulement à billes2 pièces
Vis à tête cylindrique M5Vis à tête cylindrique M58 pièces

Outils nécessaires :

Tour à métauxTour à métaux
Étau de fraisage 4 poucesÉtau de fraisage 4 pouces
Perceuse à colonnePerceuse à colonne
Comparateur à cadranComparateur à cadran
Pied à coulisse numérique 6 poucesPied à coulisse numérique 6 pouces
MicromètreMicromètre
Clé dynamométriqueClé dynamométrique
Lunettes de sécurité transparentesLunettes de sécurité transparentes
3

Drive both blades together from one actuator

Two blades that disagree about their pitch are worse than two blades that are both wrong.

  1. Make a sliding yoke inside the hub, free to move along the shaft axis.
  2. Cut a slot in the yoke to engage each blade’s crank pin.
  3. Confirm that moving the yoke axially rotates both blades by the same amount, in the same direction.
  4. Measure both blade angles with an angle gauge at three yoke positions and check they agree within a fraction of a degree.

Converting axial motion into synchronised rotation is the mechanical heart of it, and the same slot-and-crankpin arrangement appears in almost every real design. One actuator, one yoke, all blades identical by construction rather than by adjustment.

If the blades disagree, the propeller produces asymmetric thrust and a vibration once per revolution — indistinguishable at first from an imbalance, and traceable only by measuring each blade angle individually. Build the check into the assembly rather than diagnosing it later.

Matériaux pour cette étape :

Barre ronde en aluminiumBarre ronde en aluminium1 pièce
Goupille cylindrique en acierGoupille cylindrique en acier4 pièces
Vis à tête cylindrique M5Vis à tête cylindrique M54 pièces

Outils nécessaires :

Tour à métauxTour à métaux
Étau de fraisage 4 poucesÉtau de fraisage 4 pouces
Comparateur à cadranComparateur à cadran
Rapporteur d'angle numériqueRapporteur d'angle numérique
Pied à coulisse numérique 6 poucesPied à coulisse numérique 6 pouces
Clé dynamométriqueClé dynamométrique
Lunettes de sécurité transparentesLunettes de sécurité transparentes
4

Let centrifugal force fight a spring, and get a governor

Now make it adjust itself, which is where it stops being a mechanism and becomes a control system.

  1. Fit a pair of flyweights to the hub, hinged so that spinning throws them outward.
  2. Link the flyweights to the sliding yoke so that outward movement drives the blades toward COARSE pitch.
  3. Oppose them with a compression spring whose preload you can adjust.
  4. Spin the assembly and observe blade angle against rpm.
  5. Change the spring preload and repeat.

The propeller now holds a roughly constant speed on its own. If rpm rises, the flyweights swing out, pitch coarsens, the blades take a bigger bite, the load on the engine increases and rpm falls back. If rpm drops, the spring wins, pitch fines off, load decreases and rpm recovers. The spring preload sets the target speed — which is exactly what the blue-knobbed propeller lever in the cockpit adjusts.

It is a negative-feedback governor, mechanically identical in principle to the flyball governor on a steam engine. The error signal is rotational speed, the correction is blade angle, and no electronics are involved anywhere.

Watch for hunting: if the response is too aggressive the system overshoots, corrects too far, and oscillates. Real constant-speed units damp this with restricted oil flow. On the bench, more spring preload and more friction in the yoke both help — and diagnosing hunting is itself worth the experiment, because it is the characteristic failure of every feedback loop ever built.

Matériaux pour cette étape :

Assortiment de ressorts de compressionAssortiment de ressorts de compression1 jeu
Goupille cylindrique en acierGoupille cylindrique en acier4 pièces
Plaque d'aluminiumPlaque d'aluminium1 pièce

Outils nécessaires :

Tour à métauxTour à métaux
Étau de fraisage 4 poucesÉtau de fraisage 4 pouces
Tachymètre numériqueTachymètre numérique
Rapporteur d'angle numériqueRapporteur d'angle numérique
Pied à coulisse numérique 6 poucesPied à coulisse numérique 6 pouces
Comparateur à cadranComparateur à cadran
Lunettes de sécurité transparentesLunettes de sécurité transparentes
5

Feather it, and understand the failure it prevents

The most valuable blade angle is the one that produces no thrust at all.

  1. Extend the pitch range so the blades can rotate to roughly 90° — edge-on to the airflow.
  2. With the rig in the tunnel and the motor unpowered, measure the drag at normal pitch.
  3. Now rotate the blades to the feathered position and measure again.

A stopped propeller at normal pitch is a large flat disc of drag; feathered, it is a few knife-edges. The difference is dramatic, and on a twin-engined aircraft it is the difference between flying on one engine and descending on one engine.

Worse than the drag is what an unfeathered propeller does while windmilling: the airflow spins it, it drags the dead engine round with it, and it produces a large asymmetric drag on one wing that must be held off with rudder. Feathering removes the drag and stops the rotation together.

The opposite extreme is equally useful. Rotate the blades past fine into NEGATIVE pitch and the propeller pushes air forward — reverse thrust, which is what turboprops use to stop on short runways, and what lets a floatplane back off a jetty. The same mechanism, asked for an angle outside its normal range, becomes a brake.

Matériaux pour cette étape :

Assortiment de ressorts de compressionAssortiment de ressorts de compression1 jeu
Papier millimétréPapier millimétré1 pad

Outils nécessaires :

Peson à ressortPeson à ressort
Anémomètre portatifAnémomètre portatif
Rapporteur d'angle numériqueRapporteur d'angle numérique
Tachymètre numériqueTachymètre numérique
Pied à coulisse numérique 6 poucesPied à coulisse numérique 6 pouces
Téléphone avec vidéo au ralentiTéléphone avec vidéo au ralenti
Lunettes de sécurité transparentesLunettes de sécurité transparentes

Matériaux

8

Outils requis

14

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