Newton's laws of motion
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Isaac Newton (1642-1727), the father of the dynamics, – the study of motion – developed three sets of laws that are believed to be true because the results agree with the laws he produced.
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[edit] First Law
If a body is at rest it remains at rest or if it is in motion it moves with uniform velocity until it is acted on by a resultant force. (Duncan, 1995)
In other words, the first law says that an object that is not moving or moving in a constant speed in a straight line, will stay like that until something pushes it or blocks its path. As we all know, nothing in the visual world ever stays in constant speed, but the object itself is moving at constant speed, while a force is stopping it from moving at constant speed, friction.
However, in space, an object can move in a constant speed as long as it does not get close to any other objects, and stays in open space. This is why rockets use less fuel in space than they do getting to it.
Newton’s first law also brings in another new idea, the idea of inertia. The idea of inertia can be seen and felt in every day life. For example, when you pull on a sled the force of the sled pulls you back.
[edit] Second Law
The rate of change of momentum of a body is proportional to the resultant force and occurs in the direction of the force. (Duncan, 1995)
In other words, force equals to mass times acceleration.
- F = ma
This law provides the definition and calculation of force through mass and acceleration.
To help the understanding of this concept, we replace force with weight. Weight is a force that we feel on Earth, caused by gravity and our mass. Since gravity is calculated using the units of , therefore it is an acceleration constant. We could come to the conclusion that:
- W = mg
[edit] Third Law
If body A exerts a force on body B, then body B exerts an equal but opposite force on body A. (Duncan, 1995)
This is also known as the “action and reaction effect” where forces only occur in pairs opposite to each other. For example, when you pull on a sled the force of the sled pulls you back while you pull forward. From this example we also show that this law does not occur on the same body. Another interesting thought is that every time you decide to jump, you are pulling Earth towards you.
[edit] Sources
Duncan, Tom. Advanced Physics for Hong Kong: Volume 1 Mechanics & Electricity. John Murray Ltd, 1995.