Class 9 NCERT Solutions Physics Chapter 7 - Motion

Yes. An object that has moved through a distance can have zero displacement. Displacement is the shortest distance between the initial and the final position of an object. An object which has covered a distance can have zero displacement if it comes back to its starting point i.e., the initial position.

Consider the following situation. A man is walking along the boundary of a square park of side 20 m (as shown in the following figure). He starts walking from point A and after moving along all the sides of the park (AB, BC, CD, DA), he again comes back to the same point i.e., A.

In this case, the total distance covered by the man is 20 m + 20 m + 20 m + 20 m = 80 m. However, his displacement is zero because the shortest distance between his initial and final position is zero.

(i) A body is said to have uniform acceleration if it travels in a straight path in such a way that its velocity changes at a uniform rate, i.e., the velocity of the body increases or decreases by equal amounts in an equal intervals of time. The motion of a freely falling body is an example of uniform acceleration.

(ii) A body is said to have non-uniform acceleration if its velocity changes at a non-uniform rate, i.e., the velocity of the body increases or decreases by unequal amounts in an equal intervals of time. The motion of a car on a crowded city road is an example of non-uniform acceleration.

Final velocity of the train, v = 40 km/h =   

Time taken, t = 10 min =

So, speed acquired by the bus is 12 m/s.
Distance travelled by the bus is 720 m.

For first car:

Initial speed of the car, u₁ = 52 km/h =  = 14.4 m/s

Time taken to stop the car, t₁ = 5 s

Final speed of the car becomes zero after 5s of application of brakes.

For second car:

Initial speed of the car, u₂ = 3 km/h =  = 0.83 m/s

Time taken to stop the car, t₂ = 10 s

Final speed of the car becomes zero after 10 s of application of brakes.

Plot of the speed versus time graph for the two cars is shown in the following figure:

Area of triangle OAB > Area of triangle OCD

Thus, the distance covered by first car is greater than the distance covered by second car.

Hence, the car travelling with a speed of 52 km/h travelled farther after brakes were applied.

(a) The distance travelled by the car in the first 4 seconds is given by the area between the curve and the time axis from t = 0 to t = 4 s. This area has been shaded in the graph below.

Number of squares in the shaded part of the graph = 62

Concept Insight: While counting the number of squares in the shaded part of  the graph, the squares which are half or more than half are counted as complete squares but the squares which are less than half are not counted.

On  X-axis,

5 squares represent 2 s.

1 square represents s.

On Y-axis,

3 squares represent 2 m/s.

1 square represents m/s.

So, area of 1 square on the graph =

Area of the shaded region of the graph =

Therefore, the car travels a distance of 16.53 m in the first 4 seconds.

(b) The uniform motion of the car is represented by the part AB of the graph, which represents constant speed.