Machines · codex · engineering

Inventions by Leonardo da Vinci

An illustrated list, from plans to mechanisms: how his machines work, which ones were feasible and what the legend added.

Leonardo da Vinci's flying machine plans
Flight studies attributed to Leonardo: the machine is first born on paper, through observation, cutting and repetition of the gesture.
20projects explained
7technical families
1,119codex Atlanticus sheets
0modern patent

The right answer

Leonardo didn't "invent the future" alone

His notebooks bring together thousands of studies: observations of existing machines, improvements, new combinations, yard projects, theoretical research and solutions intended for a sponsor. A drawing is therefore neither a prototype nor proof of a construction.

His genius lies above all in his method: isolating each organ, representing the forces, opening the machine by cutting, comparing several variants and linking mechanics, anatomy, water and movement. This guide uses the word "invention" in the broad sense, but each time specifies the true status of the project.

What is a "complete list"?

There is no closed list: the same sheet can contain ten mechanisms, and the codices have been dispersed and then reassembled. We present here the twenty most identifiable projects, then the main secondary families: pumps, winches, looms, measuring instruments, weapons, automata and architecture.

Reasoned index

The complete list at a glance

The manuscript indicated allows you to find the original plan or the study group to which the machine belongs.

Project Domain Date Main source
1 The aerial screw Vol around 1487 -1490 Codex Paris B
2 The Ornithopter Vol around 1485 -1505 Codex Atlanticus and Codex on the flight
3 The glider Vol around 1505 Codex on bird flight
4 The pyramid parachute Vol around 1485 Codex Atlanticus, f. 1058v
5 The self-propelled cart Mechanics around 1478 -1480 Codex Atlanticus, f. 812r
6 The mechanical knight Automaton around 1495 Anatomical and mechanical sheets
7 The armored vehicle War around 1487 -1490 British Library, Codex Arundel
8 The multi-gun machine gun War around 1480 -1482 Codex Atlanticus
9 The freestanding bridge Bridge around 1485 -1487 Codex Atlanticus, f. 71r
10 The swing bridge Bridge around 1480 -1490 Codex Atlanticus
11 The diving suit Navigation around 1500 Codex Atlanticus, f. 909v and 1069r
12 The lifeline Navigation around 1487 -1490 Codex Atlanticus
13 The paddlewheel boat Navigation around 1487 -1490 Technical manuscripts
14 The hydraulic pump and Archimedes' screw Water around 1480 -1510 Codex Atlanticus and Codex Leicester
15 The distance counter Measurement around 1480 -1500 Codex Atlanticus, f. 1r
16 The ball bearing Mechanics around 1490 -1500 Codex Madrid I
17 The automatic loom and textile machines Industry around 1495 -1505 Codex Atlanticus, f. 1105r
18 The ring crane and lifting equipment Construction site around 1478 -1490 Codex Atlanticus
19 The ideal city Urban planning around 1487 -1490 Manuscript B, Institut de France
20 The camera obscura and optical instruments Optics around 1490 -1515 Codex Atlanticus and optical manuscripts

Commented plans

How the twenty machines work

Designs are displayed in full. Each sheet separates the observable mechanism from modern interpretation.

01Plan or model of Leonardo da Vinci's aerial screwEnlarge image ↗
Codex Paris B
Volaround 1487 -1490

The aerial screw

How it works

Four men had to push bars around an axis to turn a large helical sail made of starched canvas. Leonardo understands that a spiral surface can "screw" air, but the human weight-to-power ratio makes takeoff impractical.

02Plan or model of Leonardo da Vinci's The OrnithopterEnlarge image ↗
Codex Atlanticus and Codex on the flight
Volaround 1485 -1505

The Ornithopter

How it works

The pilot operates wings articulated by arms, legs, pulleys and cables. Leonardo studied the anatomy of birds in detail, then gradually understood that man could not provide the power necessary for beating.

03Plan or model of Leonardo da Vinci's The GliderEnlarge image ↗
Codex on bird flight
Volaround 1505

The glider

How it works

Fixed wings carry the machine while the pilot moves his body and governs moving surfaces. This principle is much more realistic than the swing wing: lift, center of gravity and control become the real problems.

04Plan or model of Leonardo da Vinci's pyramidal parachuteEnlarge image ↗
Codex Atlanticus, f. 1058v
Volaround 1485

The pyramid parachute

How it works

A linen canvas stretched over a pyramidal frame greatly increases drag and slows down the fall. Leonardo even gives proportions: twelve fathoms wide and twelve high.

05Plan or model of Leonardo da Vinci's self-propelled cartEnlarge image ↗
Codex Atlanticus, f. 812r
Mechanicsaround 1478 -1480

The self-propelled cart

How it works

Two leaf springs store energy. Gears transmit it to the wheels and a programmable steering mechanism allows the trajectory to be adjusted before departure.

06Plan or model of Leonardo da Vinci's The Mechanical KnightEnlarge image ↗
Anatomical and mechanical sheets
Automatonaround 1495

The mechanical knight

How it works

Cables, pulleys and joints reproduce certain body movements: sitting, standing up, moving your arms or opening your jaw. The project combines anatomy and scenography.

07Plan or model of Leonardo da Vinci's armored vehicleEnlarge image ↗
British Library, Codex Arundel
Wararound 1487 -1490

The armored vehicle

How it works

A conical hull protects the crew and a crown of cannons fires in all directions. Inside, men operate cranks connected to the wheels.

08Plan or model of Leonardo da Vinci's multi-gun machine gunEnlarge image ↗
Codex Atlanticus
Wararound 1480 -1482

The multi-gun machine gun

How it works

Several rows of small cannons are mounted on a rotating mount. While one row fires, another cools and the third is recharged: the innovation concerns the cadence and organization of the fire.

09Plan or model of Leonardo da Vinci's Freestanding BridgeEnlarge image ↗
Codex Atlanticus, f. 71r
Bridgearound 1485 -1487

The freestanding bridge

How it works

Notched beams lock by their own weight, without nails or rope. The load reinforces the compression of the whole; the bridge can be assembled quickly by an army.

10Plan or model of Leonardo da Vinci's The Swing BridgeEnlarge image ↗
Codex Atlanticus
Bridgearound 1480 -1490

The swing bridge

How it works

A lightweight deck pivots around an axis using winches and counterweights. It allows you to cross a ditch then fold back to protect the bank or clear the way.

11Plan or model of Leonardo da Vinci's diving suitEnlarge image ↗
Codex Atlanticus, f. 909v and 1069r
Navigationaround 1500

The diving suit

How it works

A mask and leather garment are connected to the surface by reinforced pipes; floats hold the air intakes. Leonardo also provides an air pocket and accessories for the diver.

12Plan or model of Leonardo da Vinci's lifelineEnlarge image ↗
Codex Atlanticus
Navigationaround 1487 -1490

The lifeline

How it works

A floating ring keeps the head and upper body above water. The drawing is part of a series of studies on swimming, boats and rescue.

13Plan or model of Leonardo da Vinci's The Paddlewheel BoatEnlarge image ↗
Technical manuscripts
Navigationaround 1487 -1490

The paddlewheel boat

How it works

Cranks drive gears then two wheels with side blades. Continuous rotation replaces the alternating movement of the trains and allows effort to be better transmitted.

14Plan or model of Leonardo da Vinci's hydraulic pump and Archimedes screwEnlarge image ↗
Codex Atlanticus and Codex Leicester
Wateraround 1480 -1510

The hydraulic pump and Archimedes' screw

How it works

Wheels, screws, valves and pistons raise or move water. Leonardo analyzes losses, vortices and forces in order to supply canals, fountains, mills and construction sites.

15Plan or model of Leonardo da Vinci's The Distance CounterEnlarge image ↗
Codex Atlanticus, f. 1r
Measurementaround 1480 -1500

The distance counter

How it works

The wheel of a cart drives a gear train. After a determined number of rotations, a ball falls into a container: counting the balls gives the distance traveled.

16Plan or model of Leonardo da Vinci's ball bearingEnlarge image ↗
Codex Madrid I
Mechanicsaround 1490 -1500

The ball bearing

How it works

Balls or rollers separate two moving surfaces. Sliding becomes rolling, which reduces friction and makes axes, wheels and turntables more efficient.

17Plan or model of Leonardo da Vinci's The Automatic Trade and Textile MachinesEnlarge image ↗
Codex Atlanticus, f. 1105r
Industryaround 1495 -1505

The automatic loom and textile machines

How it works

Shafts, cams, gears and rollers coordinate the advance of the fabric and the movement of the tools. Other sheets describe machines for making ropes, filing, polishing or producing glitter.

18Plan or model of Leonardo da Vinci's ring crane and lifting equipmentEnlarge image ↗
Codex Atlanticus
Construction sitearound 1478 -1490

The ring crane and lifting equipment

How it works

Winches, endless screws, pulleys and adjustable platforms multiply the force and position the loads. Leonardo observes the machines from Florentine shipyards before proposing his variants.

19Plan or model of The Ideal City by Leonardo da VinciEnlarge image ↗
Manuscript B, Institut de France
Urban planningaround 1487 -1490

The ideal city

How it works

The city is organized on several levels: noble traffic at height, services and goods at the bottom, canals for transport and sanitation, wider and better ventilated streets.

20Plan or model of Leonardo da Vinci's camera obscura and optical instrumentsEnlarge image ↗
Codex Atlanticus and optical manuscripts
Opticsaround 1490 -1515

The camera obscura and optical instruments

How it works

Light passing through a small orifice projects an inverted image of the outside world onto the opposite wall. Leonardo uses it to think about vision, perspective and the rectilinear propagation of rays.

True or false

Attributions to be handled with caution

Contested attribution

The bicycle

The famous Codex Atlanticus design is generally considered a late addition or falsification, not an authentic Leonardo project.

Misleading formula

The helicopter

The aerial screw explores an idea of lift, but has no engine, no articulated rotor, no control comparable to a helicopter.

Previous technology

The diving suit

This is surface-powered diver equipment, not a modern scuba diving suit.

Known before him

The scissors

Leonardo designed and mechanized shears, but scissors had existed since ancient times.

Known before him

Archimedes' screw

He studies, combines and perfects the hydraulic screw; its name is precisely reminiscent of a much earlier invention.

Modern reconstruction

The robot

The "mechanical knight" is a scholarly interpretation of several notes, not a complete preserved machine.

In the notebooks

Other machine families

In addition to these twenty projects, there are excavators, dredgers, mills, presses, bellows, automatic rotisseries, rope machines, rolling mills, cam hammers, clocks, compasses, perspectographs, fortification systems, bombards, scythe tanks and theater sets.

The common engine: transforming movement

Gear, worm screw, cam, connecting rod, crank, pulley, spring and counterweight are Leonardo's true alphabet. His most important "inventions" are sometimes not spectacular objects, but ways of transmitting, slowing down, reversing or programming a movement.

FAQs

Frequently asked questions

What is Leonardo da Vinci's most famous invention?

The aerial screw is the most iconic, often called "Leonardo's helicopter". The parachute and the self-propelled cart are, however, closer to reconstructable devices.

Were his inventions built during his lifetime?

Some construction machines, sets and mechanical devices may have been, but there is no evidence that the large flying machines or armored vehicle were made on a real scale.

Why was he writing backwards?

His specular writing naturally went from right to left, probably linked to his left-handedness. She is not proof that all his plans were secret.

Where to see the original plans?

Mainly at the Biblioteca Ambrosiana in Milan, at the Royal Collection in Windsor, at the Institut de France, at the British Library, in Turin and in other institutions retaining its codices.

From plan to painting: exploring all of Leonardo

His machines and paintings stem from the same curiosity for light, body, water and movement.

See the Leonardo da Vinci collection

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