Exploring Forces
Chapter 5 · Curiosity — Science Textbook for Grade 8 · Complete Solutions
In-Text Questions
1. Why does it feel harder to pedal a bicycle when going uphill than on flat ground?
2. Why is it easier to slip on a wet surface?
3. Why do we feel 'light' or like we are 'floating' just after our swing reaches its highest point and begins to come down?
Try moving the box in as many different ways as you can think of. Did you move the box in any other way than shown in Fig. 5.1?
What do you conclude from these examples? Does a force cause a moving object to stop? Can it change speed, or direction of motion, or change the shape of an object?
- Stop a moving object or slow it down (e.g., a friend pulling a moving bicycle to a stop).
- Change its speed if it is already moving (increase or decrease it).
- Change its direction of motion (e.g., hitting a moving ball with a bat redirects it).
- Change its shape (e.g., pressing an inflated balloon or stretching a rubber band).
- It can also start the motion of an object that was at rest.
"Does this mean that whenever there is a change in speed or direction, or change in shape, a force is acting on the object?" — "Yes, none of these take place without the action of force."
Is there any other contact force (besides muscular force)?
Gently push a flat-based object and observe. Does it stop after travelling some distance? Is there a force acting on it which brings it to rest?
Does this mean that the force of friction will be greater if the surfaces are rough?
Place the same object on different surfaces (glass, cloth, wood, ceramic tile, sand). Does the object stop after travelling the same distance on all surfaces?
Is it essential for an object applying force on another object to always be in contact with it?
Insert a second ring magnet above the first such that like poles face each other. Does the second magnet stay floating above the first? Reverse the poles — does it still remain floating?
Rub a plastic scale/straw with polythene and bring it close to small pieces of paper. Do you notice something surprising?
Rub both balloons with woollen cloth and release them. What do you observe? Now bring the woollen cloth close to one of the rubbed balloons. What happens?
When the woollen cloth (used for rubbing) is then brought close to one of the rubbed balloons, the balloon moves towards the cloth, as if attracted to it. This is because the balloon and the woollen cloth acquired opposite (unlike) kinds of charge during rubbing, and unlike charges attract each other.
Does this indicate that the charge on the balloon is of a different kind from the charge on the woollen cloth? Does it mean that there are two kinds of electrical charges?
Throw a ball vertically upwards. Does it come down? Throw it again, harder — does it still fall back down to the ground?
Hang different objects one by one from a spring. Is the stretch caused by each object the same?
Look at the spring balance carefully. What is the maximum weight it can measure?
Find the weight difference between two bigger marks, the number of small divisions between them, and the smallest value the spring balance can read.
- The weight difference between two consecutive bigger marks (e.g., between 0 and 01 N, or between 01 N and 02 N) is $1\ \text{N}$.
- The number of small divisions between these two bigger marks is $5$.
- So, the value of one small division is: $$\text{Smallest reading} = \frac{1\ \text{N}}{5} = 0.2\ \text{N}$$
Suspend objects (like a pencil box, partially filled water bottle) from a spring balance one by one and record their weight.
What is the difference between weight and mass?
| Mass | Weight |
|---|---|
| The amount of matter contained in an object. | The gravitational force with which the Earth (or another planet) pulls an object towards itself. |
| Measured in grams (g) or kilograms (kg). | Measured in newton (N), since it is a force. |
| Remains the same everywhere — on Earth, Moon, or any other planet. | Can vary from place to place, since gravitational force differs slightly across locations and significantly across different planets. |
Push an empty bottle (lid closed) into a bucket of water. Do you feel an upward push? Release the bottle — does it bounce up?
Exercise Questions (Keep the Curiosity Alive)
Match items in Column A (Type of force) with the items in Column B (Example).
| Column A | Matches With | Column B |
|---|---|---|
| (i) Muscular force | → | (b) A child lifting a school bag |
| (ii) Magnetic force | → | (e) A compass needle pointing North |
| (iii) Frictional force | → | (a) A cricket ball stopping on its own just before touching the boundary line |
| (iv) Gravitational force | → | (c) A fruit falling from a tree |
| (v) Electrostatic force | → | (d) Balloon rubbed on woollen cloth attracting hair strands |
State whether the following statements are True or False.
(i) A force is always required to change the speed of motion of an object.
(ii) Due to friction, the speed of the ball rolling on a flat ground increases.
(iii) There is no force between two charged objects placed at a small distance apart.
(ii) False — friction always opposes motion, so it causes the speed of a rolling ball to decrease gradually until it stops, not increase.
(iii) False — two charged objects placed near each other (even without touching) exert an electrostatic force on each other (attraction if oppositely charged, repulsion if similarly charged), since electrostatic force is a non-contact force that acts at a distance.
Two balloons rubbed with a woollen cloth are brought near each other. What would happen and why?
When you drop a coin in a glass of water, it sinks, but when you place a bigger wooden block in water, it floats. Explain.
For the coin (made of dense metal), its weight is much greater than the buoyant force the water can exert on it (because of its small size and high density), so the net force is downward and the coin sinks.
For the wooden block, wood is much less dense, so for its size, its weight is relatively small, while it displaces a larger volume of water (especially being bigger), creating a large buoyant force that is equal to or greater than its weight. Hence the net force balances out (or pushes it up), and the wooden block floats.
In short: an object sinks when its weight is greater than the buoyant force acting on it, and it floats when the buoyant force is sufficient to balance its weight.
If a ball is thrown upwards, it slows down, stops momentarily, and then falls back to the ground. Name the forces acting on the ball and specify their directions: (i) During upward motion (ii) During downward motion (iii) At its topmost position.
- (i) During upward motion: The gravitational force acts downward, opposite to the ball's upward motion, continuously decelerating (slowing down) the ball.
- (ii) During downward motion: The gravitational force still acts downward, but now it is in the same direction as the ball's motion, so it accelerates (speeds up) the ball as it falls.
- (iii) At the topmost position: The gravitational force continues to act downward on the ball, even though the ball's speed is momentarily zero at this point — it is this continued downward force that causes the ball to start moving downward again.
A ball released from point P moves along an inclined plane and then a horizontal surface, stopping at point A. Think of a way so that when released from the same point P, the ball stops (i) before point A (ii) after crossing point A.
Why do we sometimes slip on smooth surfaces like ice or polished floors? Explain.
Is any force being applied to an object in a non-uniform motion?
The weight of an object on the Moon becomes one-sixth of its weight on the Earth. What causes this change? Does the mass of the object also become one-sixth of its mass on the Earth?
However, the mass of the object does NOT become one-sixth on the Moon. Mass is the amount of matter contained in an object, and this amount does not change regardless of location — it remains exactly the same on the Earth, the Moon, or anywhere else in space. Only the weight changes, because weight depends on the local gravitational force, while mass is an intrinsic, unchanging property of the object.
Three objects 1, 2, and 3 of the same size and shape but made of different materials are placed in water. They dip to different depths. If the weights of the three objects are $w_1$, $w_2$, $w_3$ respectively, then: (i) $w_1=w_2=w_3$ (ii) $w_1>w_2>w_3$ (iii) $w_2>w_3>w_1$ (iv) $w_3>w_1>w_2$
From the figure, object 1 is submerged the deepest, object 2 is submerged to a medium depth, and object 3 floats with the least depth submerged. Since all three objects have the same size and shape, an object that sinks deeper into the water needs to displace a larger volume of water to generate enough buoyant force to balance its own weight. This means the object that is submerged deepest must be the heaviest (greatest weight), since it requires the most buoyant force (and hence the most water displacement) to stay afloat at equilibrium.
Therefore, weight decreases in the order of depth submerged: object 1 (deepest, heaviest) has the greatest weight, followed by object 2, and object 3 (shallowest, lightest) has the least weight — giving us $w_1 > w_2 > w_3$.
An electroscope is a device used to determine whether an object is electrically charged.