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Hydraulic motor

technology Maturity 11-13

This tool uses liquid to spin.

Hydraulikmotor.jpg
Hydraulikmotor.jpg
It pushes oil to make things move. It can turn big wheels. This helps move heavy things. It is very strong. Do you want to see it work?

35 words

This tool uses liquid to spin.

Hydraulikmotor.jpg
Hydraulikmotor.jpg
It uses oil to make parts turn.
Symbol Hydro motor.svg
Symbol Hydro motor.svg
It can turn big wheels. This helps move heavy things.
Gear pump.svg
Gear pump.svg
Some use gears to turn. Others use small parts called vanes. Some use pistons to move. This tool can help a crane lift. It can even help a lawn trimmer. It is very strong and useful. Do you want to see it work?

72 words

A hydraulic motor is a machine that uses liquid to spin.

Hydraulikmotor.jpg
Hydraulikmotor.jpg
It takes the pressure from a liquid, like oil, and turns it into a spinning motion. This is called torque.
Symbol Hydro motor.svg
Symbol Hydro motor.svg

There are many ways to make a motor spin. A gear motor uses two gears. High-pressure oil flows between the teeth of the gears to make them turn.

Gear pump.svg
Gear pump.svg
Gear motors are very tough. They often wear down slowly instead of breaking all at once.

A vane motor uses a rotor with small blades called vanes. The liquid pushes these vanes to make the rotor spin. Other motors use pistons, which are parts that move back and forth. Some pistons push inward toward a center rod. Other pistons push outward against a ring.

These motors are very strong. They help move heavy things in big machines. You can find them in cranes, excavators, and even lawn trimmers. Because the liquid can still push the motor when it is off, many motors need a brake to stay still.

173 words

A hydraulic motor is a clever machine that turns liquid pressure into spinning movement.

Hydraulikmotor.jpg
Hydraulikmotor.jpg
This spinning motion is called torque. While a hydraulic cylinder moves in a straight line, the motor rotates.
Symbol Hydro motor.svg
Symbol Hydro motor.svg
In modern machines, these motors use special hydraulic fluid in closed loops. They are like the opposite of a hydraulic pump. A pump moves liquid to create pressure. A motor takes that pressure and turns it back into motion.
Gear pump.svg
Gear pump.svg

There are many ways these motors work. A gear motor uses two gears that mesh together. High-pressure oil flows around the edges of the gears to make them turn.

Gear pump.svg
Gear pump.svg
This type is very tough because it wears down slowly instead of breaking suddenly. A vane motor uses a rotor with small blades called vanes. The pressurized fluid pushes these vanes to make the rotor spin.
Rotary vane pump.svg
Rotary vane pump.svg
Another type is the gerotor motor. It uses a rotor with one less tooth than the outer part to create movement.
Gerotor anm.gif
Gerotor anm.gif

People have been building these machines for a long time. One of the first rotary motors was made by William Armstrong. He used them for the Swing Bridge over the River Tyne. These early motors used water to move heavy parts of bridges and docks. Later, in 1886, Arthur Rigg patented an engine that could change its stroke. This helped the motor use less water and save energy. This was a big step forward for engineering.

Different motors are made for different jobs. Axial plunger motors are very common in hydraulic systems. They often need a gearbox because they spin much faster than the machines they drive.

Moteur hydraulique staffa.jpg
Moteur hydraulique staffa.jpg
Radial piston motors are also very versatile. Some have pistons that push inward toward a center cam.
Moteur hydraulique staffa.jpg
Moteur hydraulique staffa.jpg
Others have pistons that push outward against a ring. These outward-pushing motors can handle huge amounts of power. They can be very large, ranging from 1 to 250 litres per revolution.

You can find hydraulic motors working in many places every day. They power big machines like excavators, cranes, and drilling rigs.

Hydraulic Motor and flow controller.jpg
Hydraulic Motor and flow controller.jpg
They even help run smaller tools like high-powered lawn trimmers. Because liquid can still push the motor when it is turned off, many machines need a brake. This keeps heavy loads, like a crane's weight, from moving on their own. Without these motors, many of our strongest machines would not be able to work.

420 words

A hydraulic motor is a mechanical actuator designed to convert hydraulic pressure and fluid flow into torque and angular displacement. In simpler terms, it turns the energy from pressurized liquid into rotational motion.

Symbol Hydro motor.svg
Symbol Hydro motor.svg
While a hydraulic cylinder acts as a linear actuator by moving in a straight line, the motor is its rotary counterpart. In modern engineering, these devices are part of closed hydraulic circuits. They are theoretically the opposite of hydraulic pumps. A pump creates flow and pressure, while a motor uses that flow to create spinning movement.
Hydraulikmotor.jpg
Hydraulikmotor.jpg

The mechanism of a hydraulic motor depends on its specific design. In a gear motor, high-pressure oil enters one side of the assembly.

Gear pump.svg
Gear pump.svg
The fluid flows around the outer edges of two meshing gears. This pressure forces the gears to rotate. The gears act as a seal to prevent the oil from flowing back to the inlet. To keep parts moving smoothly, a small amount of oil is bled through hydrodynamic bearings for lubrication. This oil is then sent to a low-pressure side or a dedicated drain port.
Gear pump.svg
Gear pump.svg

Other motors use different internal parts to achieve rotation. A vane motor uses a housing with an eccentric bore. Inside this housing, a rotor contains vanes that slide in and out. The unbalanced force of the pressurized fluid pushes against these vanes, causing the rotor to spin.

Rotary vane pump.svg
Rotary vane pump.svg
A gerotor motor uses a different geometry. It consists of an inner rotor with $n-1$ teeth rotating inside a stator with $n$ teeth. This assembly uses a distributor valve to guide the pressurized fluid. These motors are typically used for medium-to-high torque at low-to-medium speeds.
Gerotor anm.gif
Gerotor anm.gif

History shows how these machines have evolved to become more efficient. One of the earliest rotary hydraulic motors was built by William Armstrong. He used two three-cylinder oscillating engines to power the Swing Bridge over the River Tyne.

Machine Room. Swing Bridge - geograph.org.uk - 486049.jpg
Machine Room. Swing Bridge - geograph.org.uk - 486049.jpg
Early motors were often wasteful because they used the same volume of water regardless of the load. Because water is incompressible, these engines could not be easily throttled. This changed in 1886 when Arthur Rigg patented a variable stroke engine. This design allowed users to adjust the stroke length to control power and fluid consumption. Later, the swashplate engine became a popular way to achieve this variable stroke.

Axial plunger motors are among the most common designs in modern hydraulic systems. These motors are available in both fixed and variable displacement designs. While hydraulic pumps often run between 1200 and 1800 rpm, the machinery they drive usually requires much lower speeds. Because of this, an axial plunger motor often requires a gearbox to manage the speed difference. These motors can operate at rotational speeds ranging from below 50 rpm to over 14,000 rpm.

Moteur hydraulique staffa.jpg
Moteur hydraulique staffa.jpg

Radial piston motors offer even more specialized capabilities. There are two main types: those with pistons pushing inward and those with pistons pushing outward. Inward-pushing crankshaft models, like the Staffa motor, provide extremely high starting torque.

Moteur hydraulique staffa.jpg
Moteur hydraulique staffa.jpg
These can run at "creep" speeds and maintain constant torque up to 1500 rpm. Conversely, outward-pushing multi-lobe cam ring motors can handle massive power. These larger motors can have displacements ranging from 1 litre/rev up to 250 litres/rev. They provide very smooth output, though they are often limited in their top speed.

Because hydraulic motors have internal leakage through a drain connection, they require special safety measures. If a power unit is turned off, an external load might cause the motor to move slowly. This is why machines like cranes or winches must use a brake or locking device to hold a suspended load.

Hydraulic Motor and flow controller.jpg
Hydraulic Motor and flow controller.jpg
Today, hydraulic motors are essential components in many heavy industries. They power everything from excavators and drilling rigs to conveyor drives and plastic injection machines. They are even used in heat transfer applications, proving their versatility across many different fields of technology.

664 words
🖼️ Images & Media (9)
File:Gear pump.svg
Gear pump.svg
File:Hydraulikmotor.jpg
Hydraulikmotor.jpg
File:Symbol Hydro motor.svg
Symbol Hydro motor.svg
File:Machine Room. Swing Bridge - geograph.org.uk - 486049.jpg
Machine Room. Swing Bridge -...
File:Rotary vane pump.svg
Rotary vane pump.svg
File:Gerotor anm.gif
Gerotor anm.gif
File:Moteur hydraulique staffa.jpg
Moteur hydraulique staffa.jpg
File:Moteur Hydraulique Calzoni.jpg
Moteur Hydraulique Calzoni.jpg
File:Hydraulic Motor and flow controller.jpg
Hydraulic Motor and flow controller.jpg
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