Jan Dangerfield, Stuart Haring and, Julian Gilbey Solutions for Exercise 7: END-OF-CHAPTER REVIEW EXERCISE 9

Author:Jan Dangerfield, Stuart Haring & Julian Gilbey

Jan Dangerfield Mathematics Solutions for Exercise - Jan Dangerfield, Stuart Haring and, Julian Gilbey Solutions for Exercise 7: END-OF-CHAPTER REVIEW EXERCISE 9

Attempt the free practice questions from Exercise 7: END-OF-CHAPTER REVIEW EXERCISE 9 with hints and solutions to strengthen your understanding. Cambridge International AS & A Level Mathematics : Mechanics Course Book solutions are prepared by Experienced Embibe Experts.

Questions from Jan Dangerfield, Stuart Haring and, Julian Gilbey Solutions for Exercise 7: END-OF-CHAPTER REVIEW EXERCISE 9 with Hints & Solutions

EASY
AS and A Level
IMPORTANT

A light inextensible rope has a block A of mass 5 kg attached at one end, and a block B of mass 16 kg attached at the other end. The rope passes over a smooth pulley which is fixed at the top of a rough plane inclined at an angle of 30° to the horizontal. Block A is held at rest at the bottom of the plane and block B hangs below the pulley (see diagram). The coefficient of friction between A and the plane is 13. Block A is released from rest and the system starts to move. When each of the blocks has moved a distance of x m each has speed v m s-1.

Question Image

Write down the gain in kinetic energy of the system in terms of v.

EASY
AS and A Level
IMPORTANT

A light inextensible rope has a block A of mass 5 kg attached at one end, and a block B of mass 16 kg attached at the other end. The rope passes over a smooth pulley which is fixed at the top of a rough plane inclined at an angle of 30° to the horizontal. Block A is held at rest at the bottom of the plane and block B hangs below the pulley (see diagram). The coefficient of friction between A and the plane is 13. Block A is released from rest and the system starts to move. When each of the blocks has moved a distance of x m each has speed v m s-1.

Question Image

Find, in terms of x,

the loss of gravitational potential energy of the system,

EASY
AS and A Level
IMPORTANT

A light inextensible rope has a block A of mass 5 kg attached at one end, and a block B of mass 16 kg attached at the other end. The rope passes over a smooth pulley which is fixed at the top of a rough plane inclined at an angle of 30° to the horizontal. Block A is held at rest at the bottom of the plane and block B hangs below the pulley (see diagram). The coefficient of friction between A and the plane is 13. Block A is released from rest and the system starts to move. When each of the blocks has moved a distance of x m each has speed v m s-1.

Question Image

Find, in terms of x,

the work done against the frictional force.

EASY
AS and A Level
IMPORTANT

A light inextensible rope has a block A of mass 5 kg attached at one end, and a block B of mass 16 kg attached at the other end. The rope passes over a smooth pulley which is fixed at the top of a rough plane inclined at an angle of 30° to the horizontal. Block A is held at rest at the bottom of the plane and block B hangs below the pulley (see diagram). The coefficient of friction between A and the plane is 13. Block A is released from rest and the system starts to move. When each of the blocks has moved a distance of x m each has speed v m s-1.

Question Image

Show that 21v2=220x.

EASY
AS and A Level
IMPORTANT

Particle W, of mass 3 kg, and particle X, of mass 5 kg, are attached to the ends of a light, inextensible string of length 4 m. The string passes over a small smooth pulley fixed at the top of a fixed triangular wedge, ABC. The angles BAC and BCA are each 45° and the side AC is fixed to horizontal ground. The distance from A to C is 32 m. Surface AB is smooth and surface BC is rough, with coefficient of friction 18 Particle W is held at the bottom of the slope AB and is then gently released.

Question Image

Find the work done against friction when particle X moves a distance x m.

EASY
AS and A Level
IMPORTANT

Particle W, of mass 3 kg, and particle X, of mass 5 kg, are attached to the ends of a light, inextensible string of length 4 m. The string passes over a small smooth pulley fixed at the top of a fixed triangular wedge, ABC. The angles BAC and BCA are each 45° and the side AC is fixed to horizontal ground. The distance from A to C is 32 m. Surface AB is smooth and surface BC is rough, with coefficient of friction 18 Particle W is held at the bottom of the slope AB and is then gently released.

Question Image

Find the change in the total potential energy when particle X moves a distance x m.

EASY
AS and A Level
IMPORTANT

Particle W, of mass 3 kg, and particle X, of mass 5 kg, are attached to the ends of a light, inextensible string of length 4 m. The string passes over a small smooth pulley fixed at the top of a fixed triangular wedge, ABC. The angles BAC and BCA are each 45° and the side AC is fixed to horizontal ground. The distance from A to C is 32 m. Surface AB is smooth and surface BC is rough, with coefficient of friction 18 Particle W is held at the bottom of the slope AB and is then gently released.

Question Image

Use the work-energy principle to find the speed of the particles when particle X reaches the ground at C.

EASY
AS and A Level
IMPORTANT

Particle W, of mass 3 kg, and particle X, of mass 5 kg, are attached to the ends of a light, inextensible string of length 4 m. The string passes over a small smooth pulley fixed at the top of a fixed triangular wedge, ABC. The angles BAC and BCA are each 45° and the side AC is fixed to horizontal ground. The distance from A to C is 32 m. Surface AB is smooth and surface BC is rough, with coefficient of friction 18 Particle W is held at the bottom of the slope AB and is then gently released.

Question Image

Explain why the work done by the tension does not need to be included in the work-energy calculation.