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Simple machine

technology Maturity 9-11 Vital Level 3

Machines help us move things.

Six simple machines.png
Six simple machines.png
They make hard work easy. Some use a long bar. Some use a wheel. They help us lift heavy loads. You can use them too!
BOLT SCREW UBT 199.JPG
BOLT SCREW UBT 199.JPG
Do you see machines at home?

43 words

Simple machines help us move things.

Six simple machines.png
Six simple machines.png
They can make a force stronger. This helps us move heavy loads.
BOLT SCREW UBT 199.JPG
BOLT SCREW UBT 199.JPG
There are six main kinds. They are the lever and the pulley. There is also the wheel and axle. You can use a wedge or a screw. You can also use a sloped plane. These parts build bigger machines. A bicycle is one example.
Kinematics of Machinery - Figure 21.jpg
Kinematics of Machinery - Figure 21.jpg
Machines make hard work much easier.

81 words

A simple machine is a basic tool. It helps us move things more easily.

Six simple machines.png
Six simple machines.png
These tools can change how much force we use. This is called mechanical advantage. This means the machine makes our push or pull feel stronger.
Archimedes lever.png
Archimedes lever.png

There are six classic simple machines. They are the lever, pulley, wheel and axle, inclined plane, wedge, and screw.

BOLT SCREW UBT 199.JPG
BOLT SCREW UBT 199.JPG
You can combine these to make a compound machine. A bicycle is a good example. It uses wheels, levers, and pulleys together.

Simple machines do not create new power. They only change how we use it. When we use a machine, we often move a longer distance. This allows us to move a heavy load with less effort. However, real machines have friction. Friction is a force that rubs between parts. It turns some power into heat. This makes the machine less efficient. Some machines are self-locking. This means friction keeps them from moving backward. A screw is a common self-locking machine.

169 words

A simple machine is a basic tool that helps us do work. It can change the direction of a force or how strong that force feels.

Six simple machines.png
Six simple machines.png
These tools use something called mechanical advantage to multiply force. This means a small push can move a very heavy object. Scientists often call these the building blocks of all machines.
Archimedes lever.png
Archimedes lever.png
You can combine them to make a compound machine. A bicycle is a great example because it uses wheels, levers, and pulleys together.

How these machines work is a matter of trading force for distance.

Kinematics of Machinery - Figure 21.jpg
Kinematics of Machinery - Figure 21.jpg
If a machine makes your push feel stronger, you must move a longer distance. The ratio between the output force and your input force is the mechanical advantage. In an ideal machine, no energy is lost to friction. This means the power you put in equals the power that comes out. However, real machines always have some friction. This rubbing between parts turns some energy into heat and makes the machine less efficient.

People have studied these tools for a very long time.

Archimedes lever.png
Archimedes lever.png
The Greek philosopher Archimedes studied the lever, pulley, and screw around the 3rd century BC. He famously said he could move the Earth if he had a place to stand. Later, Heron of Alexandria listed five mechanisms that could move a load. During the Renaissance, scientists began to study how far a load could be lifted. In 1600, Galileo Galilei showed that these machines are all similar ways to amplify force. He was the first to explain that machines do not create energy, they only change it.

There are six classical simple machines defined by Renaissance scientists. These are the lever, wheel and axle, pulley, inclined plane, wedge, and screw.

BOLT SCREW UBT 199.JPG
BOLT SCREW UBT 199.JPG
In 1586, Simon Stevin helped add the inclined plane to this list. By the late 1800s, a man named Franz Reuleaux identified hundreds of different machine elements. Modern science now looks at machines as kinematic chains. These are groups of links and joints that work together to move things. This is a much more detailed way to look at how tools work.

Some machines have a special trick called being self-locking.

BOLT SCREW UBT 199.JPG
BOLT SCREW UBT 199.JPG
This happens when friction is strong enough to stop the machine from moving backward. A screw is a very common example of this. You can turn a screw to move it forward, but you cannot push it backward to make it turn. The wedge and the inclined plane can also be self-locking. This is very useful when we want a heavy object to stay exactly where we put it. It keeps the machine from sliding or moving when we stop pushing.

458 words

A simple machine is a mechanical device designed to change the direction or the magnitude of a force. These mechanisms are the fundamental building blocks used to create more complex systems. They utilize a principle known as mechanical advantage, which is also called leverage, to multiply an input force. By using a simple machine, a person can move a heavy load by applying a smaller amount of effort.

Six simple machines.png
Six simple machines.png

The way these machines function involves a specific trade-off between force and distance. When a machine increases the amount of output force, it does so at the cost of the distance moved by the load. This means the load moves a shorter distance than the input force moves. The ratio between the output force and the applied force is called the mechanical advantage. In an ideal simple machine, which is a theoretical model with no energy lost to friction or deformation, the work done on the load is exactly equal to the work done by the applied force.

Kinematics of Machinery - Figure 21.jpg
Kinematics of Machinery - Figure 21.jpg

There are six classical simple machines defined by scientists during the Renaissance. These include the lever, the wheel and axle, the pulley, the inclined plane, the wedge, and the screw.

Six simple machines.png
Six simple machines.png
Each machine operates through different mechanical actions, but they are mathematically similar. For example, the mechanical advantage of a lever is determined by the ratio of its lever arms. In a screw, which relies on rotational motion, the input force is expressed as torque. The mechanical advantage and the distance ratio can be calculated using the specific geometric dimensions of the device.

The history of these machines stretches back to ancient Greece. Around the 3rd century BC, the philosopher Archimedes studied the lever, the pulley, and the screw. He discovered the principle of mechanical advantage within the lever. Archimedes famously claimed that if he had a place to stand, he could move the Earth. This remark highlighted his realization that there is no limit to how much force can be amplified.

Archimedes lever.png
Archimedes lever.png
Later, Heron of Alexandria listed five mechanisms in his work, *Mechanics*, that could set a load in motion. These were the lever, windlass, pulley, wedge, and screw.

During the Renaissance, the study of these machines shifted toward dynamics. This meant looking at how far a load could be lifted rather than just the balance of forces. In 1586, the Flemish engineer Simon Stevin derived the mechanical advantage of the inclined plane, adding it to the classical list. In 1600, Galileo Galilei published *On Mechanics*. He proved that all these machines are mathematically similar force amplifiers. Galileo was the first to explain that machines do not create energy; they only transform it.

Archimedes lever.png
Archimedes lever.png

In the real world, machines are never perfectly ideal because of friction. Friction causes some of the input power to be lost as heat. This loss is measured as mechanical efficiency, which is the ratio of power out to power in. Because of these energy losses, the mechanical advantage of a real machine is always less than its theoretical velocity ratio.

BOLT SCREW UBT 199.JPG
BOLT SCREW UBT 199.JPG
When simple machines are connected in a series, they form a compound machine. A bicycle is a common example, as it uses wheels, levers, and pulleys together. The total mechanical advantage of a compound machine is the product of the mechanical advantages of all its parts.

Some machines possess a unique property called being self-locking. This occurs when friction is high enough to prevent the machine from moving backward under a load. A screw is a common example of a self-locking machine.

BOLT SCREW UBT 199.JPG
BOLT SCREW UBT 199.JPG
You can turn a screw to drive it forward, but pushing on the screw will not make it turn backward. This happens because the work lost to friction is greater than the work the load could do to move the machine in reverse. A machine will be self-locking if its efficiency is below 50%. This property is very useful for tools like wedges and inclined planes that must hold a load in place.

Modern science has moved beyond the Renaissance view of simple machines as the ultimate building blocks. During the Industrial Revolution, the development of sophisticated machine linkages changed how we view mechanics. By the late 1800s, Franz Reuleaux identified hundreds of different machine elements. Today, modern machine theory analyzes systems as kinematic chains. These chains are composed of elementary linkages known as kinematic pairs. This allows engineers to study machines as complex systems of actuators, mechanisms, sensors, and controllers.

Kinematics of Machinery - Figure 21.jpg
Kinematics of Machinery - Figure 21.jpg

762 words
🖼️ Images & Media (4)
File:Six simple machines.png
Six simple machines.png
File:Archimedes lever.png
Archimedes lever.png
File:BOLT SCREW UBT 199.JPG
BOLT SCREW UBT 199.JPG
File:Kinematics of Machinery - Figure 21.jpg
Kinematics of Machinery - Figure 21.jpg
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