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Showing posts with label displacement. Show all posts
Showing posts with label displacement. Show all posts

Tuesday, January 19, 2010

Introduction to circular motion

Circular motion as the name suggest is the motion of an object in a circular path.Examples of circular motion is the motion of a car around a roundabout, a satellite around the earth or a stone tied to a string being whirled by the hand.

Centre of rotation

In fig 1 below you can see a circular path and a person is  moving in that circular path.

clip_image002 

Fig 1

The person would move in such a way that at all time it would remain at the same distance from a point that we call the centre of  rotation. It is usually indicated by the symbol O in a diagram as you can see in fig 1.

clip_image002[5] Fig 2

Radius of circular path

As you can in Fig 2 I have draw the person at a point A and two other points B and C that the person would be during its motion later on. As is shown in the diagram the person would be at the same distance from the centre of rotation O. This distance is known as the radius of the circular path and is denoted by the letter r.

Angular displacement

In linear motion the movement is describe in term of the displacement of the object. In circular motion the movement of the object is describe in term of angular displacement. The angular displacement is simply the angle covered by the object during the circular motion.

angular displacement

Fig 3

In the first diagram of fig 3, you can see a person moves from point A to point B. In so doing it covers and angle θ of 120o or 0.66 Pi rad. Hence the person would have an angular displacement of  120o or 0.66 Pi rad. In the second motion the person starts from point A and moves along the circular path and finally back to A. In so doing the person covers an angle of 120o or 2pi rad. Thus the angular displacement would be 120o or 2pi rad

Tuesday, November 24, 2009

Speed and velocity

After distance and displacement that we have seen earlier, I am now going to talk about speed and velocity. They are quite different and to understand them it is important to understand clearly the difference distance and displacement before going forward.

 

Speed

Speed is a scalar quantity and the unit is the metre per second (m s-1)

A boy moves from point A and walks a distance of 50 m to the point B in a time of 20 s.

clip_image00111_thumb1

Firstly what is the distance travelled in 1 second?

Yes the boy would walk a distance of 2.5 m in a time of 1 second.

The distance travelled in a time of 1 second is called the speed.

The equation to calculate the speed is shown below.

clip_image002

 

 

Can you determine the speed of the boy?

clip_image002[6]

Hence whenever speed is calculated the distance should be used.

Velocity

Velocity is a vector quantity and the unit is also the metre per second(m s-1)

Since it is a vector quantity then when it is determined direction is important and hence displacement should be used.

A boy moves from point A to point B performing a displacement of 50 m towards the right as shown in the diagram below.

clip_image00121_thumb

The following equation is used to determine the velocity.

clip_image002[8]

Hence the velocity of the boy can be calculated as shown below.

clip_image002[12]

Please note the difference between the two. For the speed the distance travelled is used while for the velocity the displacement is used.

Distance and displacement

Distance and displacement are two quantities that are used to describe motion. We are going to have a look at both of them and see how to differentiate between the two.

Distance

Distance is a scalar quantity and the SI unit is the Metre (m)

Example 1

clip_image001[11]

 

Now suppose a person moves from an initial position of A and travels to a final position of B. The line connecting the two points is the path that the person would take. Now the distance travelled is the length of the path taken by the person from the initial position to the final position.

Example 2

clip_image001[9]

Now if the path is not a straight line like in the diagram shown above then the distance travelled is the length of the path  from A to B through all the turns  as measured with a measuring tape.

Example 3

clip_image001[19]

The next example is shown above. The person moves from A to D. The path is a line moving from A to B to C and then finally to D. Then the distance travelled is the length of the path AB+ the length of the path BC + the length of the path CD

Displacement

Displacement is a vector quantity and the SI unit is the metre (m)

The displacement is a vector representing the shortest path from the initial position to the final position. It is thus a vector quantity. Let us have a look at the different motion above and see how the displacement is determined and how it is different from the distance.

Example 4

As we have seen in example 1 above the person moves from the initial position A to the final position B.

clip_image001[21]

As you can see the person moves from the initial position A to the final position B and the vector representing this motion is as shown. And the displacement is represented by this vector. Hence the displacement will have both a magnitude which would be the length of the vector and a direction which would be the direction of the vector.

For example 4 above we can say that the displacement is 10 m to the east.

Displacement = 10 m to the east

or Displacement = 10 m to the right

As you can see the displacement would have both a magnitude and a direction since it is a vector quantity.

Example 5

clip_image001[25]

This is the same motion that we used in example 2. The person moves from the initial position A and travels until he reaches the final position B. As you can see on the diagram above there is a vector from the initial position A to the final position B. This vector represent the displacement of the person where the length of the vector is its magnitude and the direction of the vector the direction of the displacement.

In this case the displacement of the person can be said to be

Displacement = 10 m 15o clockwise from the horizontal,

Where the line AC represent the easterly direction,

Example 6

Now let us look at the same motion example that the person did in example 3. The person walks from A to B to C and finally arrives at D. You can see on the diagram below that I have drawn a vector AD that starts from the point A and ends at the point D. This vector is the displacement vector and as you can see it has a magnitude and a direction.

We can say for example that the displacement is as shown

Displacement = 15 m 150 clockwise from the horizontal

clip_image001[6]

As you have seen displacement and distance are two quantities easy to understand and to differentiate but as usual if you have any question you can leave them here and I would answer then as soon as possible.

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