Motion in a Circle
98 questions· page 1 of 10
Show that the distance moved by point X on the chain during one full rotation of the small cog is .
Use the information in (b)(iii) to determine the angle through which the large cog rotates during one full rotation of the small cog.
angle = ______
The chain of the bicycle in (b) is moved onto a smaller cog fixed to the rear wheel. The speed of the bicycle does not change.
Explain, without calculation, the effect of this change on the angular speed of the pedals.
Determine the magnitude of the resultant force that acts to cause the circular motion of the student.
= ______
On Fig. 1.2, draw an arrow to show the direction of the resultant force that acts on the student.
On Fig. 1.3, draw labelled arrows from the student to show the directions of the forces that act on the student to cause the resultant force in (b)(ii).
an arrow, labelled A, showing the direction of the acceleration of the modelling clay.
A second piece of modelling clay is attached to the disc in the position shown in Fig. 1.2.
The second piece of modelling clay has a larger mass than the first piece.
By placing one tick () in each row, complete Table 1.1 to show how the quantities indicated compare for the two pieces of modelling clay.
Table 1.1
| quantity | less for second piece than first piece | same for both pieces | greater for second piece than first piece |
|---|---|---|---|
| angular speed | |||
| linear speed | |||
| acceleration |
The minute hand of a clock revolves at constant angular speed around the face of the clock, completing one revolution every hour. A small piece of modelling clay is attached to the hand with its centre of gravity at a distance from the fixed end of the hand, as shown in Fig. 1.1.
Calculate the angular speed of the minute hand.
= ______
Calculate the angle through which the minute hand moves in this time interval.
angle = ______
Calculate the magnitude of the centripetal acceleration of the piece of modelling clay.
centripetal acceleration = ______
Use your answer in (c)(iii) to explain why the variation with time of the magnitude of the force exerted by the minute hand on the piece of modelling clay is negligible as the minute hand undergoes one full revolution.
The maximum speed at which the car on path X can move around the track without sliding is .
Calculate .
= ______
Both cars move around the track. Each car has the maximum speed at which it can move without sliding.
Complete Table 1.1, by placing one tick in each row, to indicate how the quantities indicated for the car on path Y compare with the car on path X.
Table 1.1
| Y less than X | Y same as X | Y greater than X | |
|---|---|---|---|
| centripetal acceleration | |||
| maximum speed | |||
| time taken for one lap of the track |
State what happens to the magnitude of the centripetal acceleration of the car as it moves around the loop from X to Y.
Explain, if the car remains in contact with the track, why the centripetal acceleration of the car at point Y must be greater than .
The initial speed at which the car in (b) moves along the track is .
Determine whether the car is in contact with the track at point Y. Show your working.
Suggest, with a reason but without calculation, whether your conclusion in (c) would be different for a car of mass moving with the same initial speed.
The maximum speed at which the car on path X can move around the track without sliding is .
Calculate .
= ______
Both cars move around the track. Each car has the maximum speed at which it can move without sliding.
Complete Table 1.1, by placing one tick in each row, to indicate how the quantities indicated for the car on path Y compare with the car on path X.
Table 1.1
| Y less than X | Y same as X | Y greater than X | |
|---|---|---|---|
| centripetal acceleration | |||
| maximum speed | |||
| time taken for one lap of the track |
The Moon is approximately from Earth.
Estimate the minimum diameter of a circular crater on the Moon’s surface that can be seen using the telescope.
diameter = ______
Suggest why craters of the same diameter as that calculated in (i) but on the surface of Mars are not visible using this telescope.