ART
BEAUTY & WELLNESS
CRAFT
CULTURE & HISTORY
ENTERTAINMENT
ENVIRONMENT
FOOD & DRINKS
REVERSE ENGINEERING
SCIENCES
SPORTS
TECHNOLOGY
WEARABLES
Autogiro
English
SeñorMartillo

Ṣẹ́dá nipasẹ̀

SeñorMartillo

29. Oṣù Keje 2026MX
0
0
0
0
0

Autogiro

When an aeroplane's engine stops, it stops flying. The wing needs air moving over it, and if there is no thrust to produce that, the aeroplane falls. Many early pilots died that way: not from the engine failure itself, but from what happened next.

The autogiro solves this by spinning its wing. The rotor has no engine. It turns on its own, driven by air flowing up through it as the machine moves forward or descends. This is called autorotation, and it means the rotor keeps lifting even with the engine off — the machine comes down slowly instead of falling.

But a spinning rotor creates a problem of its own. The blade advancing into the wind gets more airflow than the one retreating, and that imbalance rolls the machine over. Juan de la Cierva's first three autogiros crashed for exactly this reason. The answer was flapping hinges: each blade left free to rise and fall, so it corrects the difference by itself.

US Patent 1,590,497, "Aeroplane with rotating wings", filed 31 March 1923 and granted 29 June 1926 to Juan de la Cierva.

Olùbẹ̀rẹ̀
45 minutes

Ìlànà

1

Read the patent and find the hinge

De la Cierva claims a freely turning wing, with no engine, whose blades are articulated to move up and down. The hinge is what makes it work.

Tools needed:

Notebook and PencilNotebook and Pencil
2

Drop a maple seed and watch it

Let a maple seed fall, or a strip of paper folded into a blade. It comes down spinning, slowly. Nothing drives it: the air moving up through it makes it turn.

3

Cut four balsa blades

Cut 4 balsa strips 120 × 15 mm. They must weigh the same — if one is heavier the rotor shakes and is useless.

Materials for this step:

Balsa Wood SheetsBalsa Wood Sheets1 pack
4

Give each blade a little pitch

Sand each strip so it sits at about 4° to the plane of rotation, all tilted the same way. Without that angle the rotor will not start turning.

5

Make a rigid hub

Glue the four blades to a balsa disc, fixed, with no articulation at all. This is the rotor of De la Cierva's first three autogiros.

6

Mount the hub on a free axle

Pin the hub to a rod so it spins without friction. Do not fit a motor of any kind.

Materials for this step:

Dowel RodDowel Rod1 piece
7

Drop it from two metres

Hold it up and release it straight. The rotor spins up by itself and descends turning. That is autorotation, and nothing more is needed to get it.

8

Time the descent

Time the fall three times and average. Compare with the bare rod dropped without a rotor. The difference is the lift the rotor is producing.

9

Now blow across it from one side

With the rotor spinning, aim a fan at it from the side to simulate forward flight. The rotor tilts and the whole assembly rolls over.

10

Work out why it rolls

The blade moving into the wind meets more air and lifts more; the one moving away meets less. The rotor rises on one side and drops on the other. That is dissymmetry of lift.

11

Build a second hub with hinges

Mount four identical blades, but hold each with a small strip of cloth tape acting as a hinge. Every blade must be free to rise and fall.

Tools needed:

Flat-Nose PliersFlat-Nose Pliers
12

Repeat the fan test

Same side wind, same spinning rotor. Now the blades flap — rising and falling once per revolution — and the assembly stays level.

13

Watch one blade closely as it turns

Follow a single blade. It rises as it advances into the wind and drops as it retreats. Rising sheds lift, so it corrects itself.

14

Compare the two drops in wind

Release both rotors with the fan running. The rigid one rolls over; the hinged one comes down straight. That is the whole distance between three crashes and a patent.

15

History & Context — the wing that turns by itself

The patent. US 1,590,497, "Aeroplane with rotating wings", filed 31 March 1923 and granted 29 June 1926 to Juan de la Cierva y Codorníu, a Spanish engineer. He called the machine the Autogiro, capitalised, because it was his trademark; that is why the name is kept here.

The first-flight dates, carefully. It is widely repeated that the C.4 flew on 9 January 1923. That was the day testing began at Getafe aerodrome. The first real flight was on 17 January 1923, made by Captain Alejandro Gómez Spencer — the first person ever to fly a rotary-wing aircraft. Both dates are true and they do not mean the same thing.

The three failures it took. The C.1, C.2 and C.3 did not fly. All had the same fault: as soon as the machine gathered forward speed, the rotor lifted more on the advancing side than the retreating one, and rolled over. De la Cierva tried counter-rotating rotors and other fixes before arriving at the right one, which is also the simplest: if each blade can rise and fall freely, it balances itself. A blade producing too much lift rises, and in rising it changes its effective angle and stops producing too much. Nothing has to be measured or controlled. Step 12 of this guide is precisely that discovery.

An autogiro is not a helicopter, and the two should not be confused. An autogiro's rotor has no engine: it turns because air passes up through it. So an autogiro cannot hover or take off vertically the way a helicopter can — it has to move forward. In exchange, it cannot stall the way an aeroplane does, and if the engine quits it keeps descending under control. That was De la Cierva's obsession after one of his own trimotors crashed in 1919 from a stall.

What it left behind. The flapping hinge did not stay with autogiros: it is an essential part of nearly every helicopter that followed, because dissymmetry of lift is the same problem wherever there is a rotor and forward flight. Igor Sikorsky patented his helicopter in 1935 (US 1,994,488), twelve years after the C.4's first flight, and blade articulation already came from here. And autorotation is still the procedure by which a helicopter lands when its engine fails — the same thing your rotor does in step 7. De la Cierva died in 1936 in the crash of a commercial airliner at Croydon; he was not flying it.

Àwọn ohun-èlò

2

Àwọn irinṣẹ́ tó nílò

2

CC0 Àgbègbè Gbogbogbò

Blueprint yìí ti jáde lábẹ́ CC0. O lè ṣe àdàkọ, yí padà, pín, àti lò láìsí ìyọ̀ǹda.

Ṣàtìlẹ́yìn Olùṣẹ́dá nípa rírà àwọn ọjà nipasẹ̀ Blueprint wọn Ẹ̀san Olùṣẹ́dá tí àwọn Olùtajà gbé kalẹ̀, tàbí ṣẹ̀dá àtúnṣe tuntun ti Blueprint yìí kí o sì fi sínú Blueprint rẹ gẹ́gẹ́ bí ìsopọ̀ láti pín owó-wíwọlé.

Ìfọ̀rọ̀wérọ̀

(0)

Wọlé láti dara pọ̀ mọ́ ìfọ̀rọ̀wérọ̀

Loading comments...