By the end of this chapter you'll be able to…

  • 1Define force as a push or pull arising from an object's interaction with another object, and give its SI unit as newton (N)
  • 2List the effects a force can have — starting motion, changing speed, changing direction, changing shape, or several at once
  • 3Explain why at least two objects must interact for a force to act, and name both objects in any given situation
  • 4Explain why an object at rest may still have forces acting on it, without going further than the chapter does
  • 5Distinguish contact from non-contact forces, and classify muscular force, friction, magnetic, electrostatic and gravitational force correctly
  • 6Define muscular force and give examples from humans, animals and the body's own internal processes
  • 7Define friction, state that it always opposes motion, and explain that it arises from irregularities in the surfaces in contact
  • 8Predict how far an object slides on different surfaces, and use that to answer questions about making it stop sooner or later
  • 9Describe the ring-magnet, plastic-scale and two-balloon activities and state what each establishes
  • 10State that like charges repel and unlike attract, and that the two kinds of static charge are positive and negative
  • 11State that gravitational force is always attractive, unlike magnetic and electrostatic force
  • 12Define weight as the Earth's pull on an object, give its unit as newton, and read a spring balance including its range and smallest division
  • 13Distinguish mass from weight on four counts — meaning, unit, whether it changes, and how it is measured
  • 14Define upthrust, state when an object floats or sinks, and apply Archimedes' Principle to coins, wooden blocks, ships and pumice
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Why this chapter matters
The chapter that builds one idea carefully enough to carry the rest of physics. It starts by getting you to move a cardboard box every way you can and noticing that every single way was a push or a pull. It then adds the part most definitions leave out — a force needs TWO objects interacting — and uses that to discover a force nobody can see: a rolling ball slows down, and since speed never changes without a force, friction must be there. Five forces are named and sorted into contact (muscular, friction) and non-contact (magnetic, electrostatic, gravitational), each with its own activity. The last third turns the abstract into the measurable: weight is a force, so it is read in newton off a spring balance whose range and smallest division you work out yourself, and mass is carefully separated from it. The chapter closes underwater, with an upward push that explains why coins sink, ships float and rock can float. There is not one formula anywhere in it.

Exploring Forces — Class 8 Science (Curiosity)

"It's thrilling! It seems something is pulling us downhill, what could it be?" — Sonali, Curiosity, Grade 8, page 63

1. About the Chapter

This is Chapter 5 of Curiosity (pages 62–79, Reprint 2026-27). It opens with Sonali and Ragini cycling out of their village on a windy day — pushing pedals, fighting the wind, finding some stretches of road rougher than others, and then racing downhill without pedalling at all. Almost every force in the chapter is already in that first page, unnamed.

SectionQuestion it answers
5.1What is a force?
5.2What can a force do to the objects it acts on?
5.3Are forces an interaction between two or more objects?
5.4What are the different types of forces?
5.5Weight and its measurement
5.6Floating and sinking

Two things to know before you start.

  • There is not one formula in this chapter. No F = ma, no W = mg, no value of g. Everything is qualitative, and that is deliberate.
  • Where the chapter reaches the edge of what Class 8 can handle, it says so and stops — balanced forces, why some metals charge positively, and the density that buoyant force depends on are all named and openly deferred. A good answer stops where the book stops.

2. What a Force Is

Activity 5.1 — the box

Take a large cardboard box and move it in as many ways as you can invent. Fig. 5.1 shows pushing (a), pulling (b), and lifting — which the book calls pulling up — and carrying (c). Slide it, tip it, roll it, drag it with a rope, get a friend to help.

In all the ways that you might have used to move the box, you had to apply a push or pull to the box. Generally, the push or pull applied on an object is called force in science.

The point is not the length of the list. It is that however inventive you are, you cannot find a way that is neither a push nor a pull.

What a force can do

The chapter's list, from Activity 5.2 and Table 5.1:

EffectExample
Make an object move from restKicking a stationary football; opening a drawer
Change the speed of a moving objectPedalling harder; applying brakes
Change the direction of motionHitting a moving ball with a bat; turning a steering handle
Change the shape of an objectPressing a balloon; stretching a rubber band; rolling a chapati
Cause some or all of theseA fielder stops a ball and throws it back

The fifth item is not a fifth effect — it is there to stop you thinking the first four are a menu from which exactly one is chosen.

The rule, read backwards

The chapter's characters ask whether every change in speed, direction or shape means a force is acting. The answer given is:

Yes, none of these take place without the action of force.

This is the more powerful direction. It turns an observed change into evidence for a force — even one you cannot see. The whole discovery of friction, a few pages later, rests on it.


3. A Force Needs Two Objects

When you push a table, your hand is one object and the table is the other. Run through every row of Table 5.1 and you never find a force with only one object in it.

A force is a push or pull on an object resulting from the object's interaction with another object. The SI unit of force is newton (written with a small 'n') and its symbol is N.

The habit worth forming now: before answering any force question, write down both objects. "The fruit has gravity" is not an answer; "the Earth pulls the fruit" is. Questions that look hard usually collapse the moment both names are on paper.

Two boxes that matter

An object at rest is not force-free. It means that the forces acting on the object are balancing one another. A book on a table is pulled down exactly as a falling fruit is — slide it off the edge and it drops at once. The chapter then stops: You will learn about balanced forces in higher grades.

Both objects feel it. Whenever two objects interact, each object experiences a force from the other. As soon as the interaction ceases, the two objects no longer experience the force. Push a table and you feel it in your hand too.


4. Contact Forces

Forces of this type which act only when there is physical contact between the objects are called contact forces. Contact may be direct (a hand) or indirect (a bat, a rope) — what matters is that the chain of touching is unbroken.

Muscular force

The force resulting due to the action of muscles is known as muscular force. It occurs when muscles contract and elongate while doing any activity.

Walking, running, lifting, jumping, stretching. Animals, birds, fish and insects use it for movement and survival. Humans have long used the muscular force of animals — bullocks at a plough, camels under a load.

And a great deal of it happens without your deciding anything: chewing, pushing food along the alimentary canal, and the heart expanding and contracting so that blood circulates.

Friction — a force discovered by argument

A ball rolling on flat ground stops by itself. A bicycle slows when you stop pedalling. No force appears to be acting on the objects, yet their speed gradually decreases.

But speed never changes without a force. So one must be acting — and the chapter goes looking for it.

Activity 5.3. Push a flat-based object across a table. It stops. Push it the opposite way. It stops again. A sloping table or a draught could not do that; a force that always opposes the motion could.

The force that comes into play when an object moves or tries to move over another surface is called the force of friction or simply friction. Friction always acts in a direction opposite to the direction in which the object is moving or trying to move.

Do not drop the words "or tries to move". Push a heavy almirah that does not budge and friction is acting all the same.

Where it comes from. Friction arises due to the irregularities in the two surfaces in contact. Even surfaces which appear smooth, have a large number of minute irregularities (Fig. 5.6). Those bumps lock into each other and resist sliding.

The surprising part: no surface is actually smooth. Smooth and rough are two ends of a scale, which is why friction is never zero — only smaller or larger.

Activity 5.4. Slide the same object over glass, cloth, wood, ceramic tile and sand. It travels a different distance on each. The force of friction depends upon the nature of the surfaces in contact. Friction is greater on rough surfaces.

Liquids and gases too. Air, water, and other liquids also exert force of friction on the objects moving through them, which is why aeroplanes, ships, boats and high-speed trains are designed with specific shapes to reduce it. Ragini fighting the wind on page 63 was meeting this force before it had a name.


5. Non-Contact Forces

There are forces whose effect can be experienced even if the objects are not in contact.

Magnetic force

Activity 5.5. Slide one ring magnet onto an upright wooden stick, then a second above it with like poles facing. The second one floats, with a visible gap. Push it down and you feel it push back. Reverse both magnets and it still floats — like poles are still facing.

The stick is not holding it up. Wood is not magnetic; it only stops the rings sliding off sideways.

The force exerted by a magnet on another magnet or a magnetic material is called magnetic force. It acts from a distance, so it is a non-contact force.

Electrostatic force

Activity 5.6. Rub a plastic scale vigorously with polythene — without touching the rubbed part, or the charge escapes and nothing happens. Bring it near small paper pieces and they jump up to meet it.

When two objects of certain materials are rubbed together, electrical charges build up on their surfaces. These charges are called static charges as they do not move by themselves.

Activity 5.7. Hang two balloons so they do not touch, rub both with a woollen cloth, release them — they move apart. Now bring the cloth near one — they attract.

The inference, step by step:

  1. Both balloons were charged the same way, so they carry similar charges.
  2. They repelled → like charges repel.
  3. Both the rubbing object and the rubbed object get charged but they acquire opposite kind of charges.
  4. The cloth attracted a balloon → unlike charges attract.
  5. The two kinds of static charges are said to be 'positive' and 'negative'.

That there are exactly two kinds of charge is not something anyone can see. It is deduced from a balloon being pushed away by one object and pulled towards another.

The force exerted by a charged body on another charged body or an uncharged body is called electrostatic force.

And the link back to Chapter 4: When the charges move, they constitute an electric current. Static charges give you this section; moving charges give you the last chapter. Same thing, two states.

Gravitational force

Activity 5.8. Throw a ball up. It comes down. Throw it harder — it goes higher and still comes down. That second throw is the point of the activity: this is not a pull you can beat by trying harder.

The force with which the Earth attracts objects towards itself is called the gravitational force, also called the force of gravity or simply gravity. It is a non-contact force.

The sharpest fact in the chapter, and easy to read past:

Gravitational force is always an attractive force, unlike magnetic force or electrostatic force, which can either be attractive or repulsive.

Magnets have north and south; charges have positive and negative; gravity has no opposite kind at all. There is nothing to turn over and no way to make it push.

Vertical motion (Fig. 5.11). Thrown straight up, an object moves up straight, slows down, stops momentarily at the top, and then takes a straight vertical path downwards. One steady downward force produces three of the four effects from section 5.2 — and it does not stop acting at the top. If it did, the ball would stay there.


6. Weight, and How to Measure It

Activity 5.9. Hang different objects from the same spring. The stretch differs each time, so the Earth pulls different objects with different forces.

That single idea — an invisible force turned into a visible length — is the whole basis of the spring balance.

The force with which the Earth pulls an object towards itself is called the weight of the object. And since the weight is a force, it is measured in the same unit as that of force. Therefore, SI unit of weight is also newton (N).

Reading the instrument

The chapter makes you examine the balance before using it, exactly as it made you examine a thermometer in Grade 6.

ActivityQuestionAnswer for Fig. 5.13
5.10What is the maximum it can measure?10 N — range 0 to 10 N
5.11Weight between two bigger marks?1 N
5.11Divisions between them?5
5.11So one small division reads1 ÷ 5 = 0.2 N

The method is what you are learning, not the number — your school laboratory may have spring balances for which the range and the value of the smallest division may be different.

Activity 5.12 adds the safety rule: never hang an object heavier than the maximum, otherwise it may get damaged. An over-stretched spring does not just fail on that object — every later reading it gives is wrong, and nothing about its appearance says so.

Mass is not weight

MassWeight
What it isThe amount of matter in an objectThe gravitational force pulling it
UnitGram (g), kilogram (kg)Newton (N)
Changes with place?No — the same everywhereYes
Measured withBeam balance (by comparison)Spring balance

The chapter's table for a 1 kg object:

EarthMoonMarsVenusJupiter
Mass1 kg1 kg1 kg1 kg1 kg
Weight10 N1.6 N3.8 N9 N25.4 N

The top row never moves; the bottom row varies by a factor of more than fifteen.

Why we confuse them and get away with it. Since the weight of an object remains almost the same everywhere on the Earth, so for all practical purposes it is acceptable to weigh an object to find its mass. The shopkeeper's balance works because both of you are standing on the same planet.

But the weight of the wheat bag is 10 kg borrows the unit of mass and the word for weight. The chapter is blunt: in scientific use, this is not correct.


7. Floating and Sinking

Activity 5.13. Push a tightly closed empty bottle down into a bucket of water. You feel an upward push. Let go and it springs back to the surface.

The force applied by a liquid on an object in the upward direction is known as upthrust or buoyant force.

The rule. When an object is placed in a liquid, the gravitational force due to the Earth acts on it downwards. But a buoyant force is applied on it by the liquid in the upward direction.

ComparisonResult
Gravitational force more than buoyant forceSinks
The two forces equalFloats

Archimedes' Principle makes it sharper: when an object is fully or partially immersed in a liquid, it experiences an upward force which is equal to the weight of the liquid it displaces. So a floating object has pushed aside water weighing exactly as much as itself.

What decides it is not size. A coin sinks and a much bigger wooden block floats. A large stone sinks and a small matchstick floats. Compare each object with the water it displaces — never with the other object.

Pumice makes the point unforgettably: a rock that floats. Lava full of gas cools quickly, traps the bubbles, and the result is a light, porous rock — filled with air pockets which is less dense than water. A steel ship floats for the same reason: it is mostly air.

The chapter notes that buoyant force depends on the density of the liquid — and immediately adds You will learn about density in a later chapter of this book. Everything in this chapter can be answered by comparing two forces, without density at all.


8. Summary

Snapshots, as the chapter gives them:

  • A force is a push or pull resulting from an object's interaction with another object. SI unit: newton (N).
  • Forces act with or without contact. Muscular force and friction are contact forces; magnetic, electrostatic and gravitational forces are non-contact.
  • Force can change an object's speed, its direction, or both — and can change its shape.
  • Friction acts when an object moves or tries to move over another surface, always opposite to that motion.
  • Magnetic force is exerted by a magnet on another magnet or a magnetic material.
  • Electrostatic force is exerted by a charged body on another charged or uncharged body.
  • Gravitational force is the Earth's pull, and it is always an attractive force.
  • Weight is the force with which the Earth pulls an object; SI unit newton (N).
  • The mass of an object remains unchanged whereas its weight may vary from place to place.
  • Upthrust (buoyant force) is the upward force a liquid applies on an object placed in it.

Appendix — What Belongs to Other Years, Not This Chapter

An earlier version of this page taught a great deal of material that is not in Curiosity Grade 8 Chapter 5. It is listed here so you know where it belongs, and so you do not use it in a Class 8 answer.

TopicWhere it actually belongs
Newton's three laws of motion; inertia; action–reactionClass 9 Science — Force and Laws of Motion
F = m × aClass 9 Science
Law of universal gravitation, F = Gm₁m₂/r², the value of GClass 9 Science — Gravitation
W = m × g and the value of gClass 9 Science
Balanced and unbalanced forces; equilibriumClass 9 — and explicitly deferred by this chapter: "You will learn about balanced forces in higher grades"
Friction classified as static, sliding and rollingNot in this book at all
Tension, normal force, applied force, nuclear forcesNot in this book — it names exactly five forces
Lubrication and methods of reducing frictionBeyond this chapter, which only mentions shaping vehicles to reduce fluid friction

Also removed: unsourced claims. The earlier page carried specific historical assertions about who discovered gravity and when, and a list of modern achievements, none of it sourced. The chapter itself names only Archimedes, for the principle about displaced liquid. If you want to write about the history of these ideas, take it from a cited source rather than from memory.

What this chapter genuinely does say about going further is worth repeating, because it is a model of honest limits: balanced forces come later; why copper is a positive electrode and zinc a negative one comes later; density comes later in this same book. Naming the boundary is part of the science.

Key formulas & results

Everything you need to memorise, in one card. Screenshot this for revision.

Force
a push or pull from an object's INTERACTION with another object
At least two objects are always involved
SI unit of force
newton — small 'n' when spelled out, symbol N
The book stops to say so
What a force can do
start motion · change speed · change direction · change shape · several at once
And none of these happens without a force
Contact forces
muscular force · friction
Contact may be direct (hand) or indirect (stick, rope)
Non-contact forces
magnetic · electrostatic · gravitational
Effect felt even when the objects are not in contact
Friction
acts when an object moves OR TRIES TO MOVE over another surface
Always opposite to the direction of motion; greater on rough surfaces
Why friction arises
irregularities in the two surfaces lock into each other
Even surfaces that look smooth have them
Charges
like charges repel · unlike charges attract
The two kinds are called positive and negative
Gravitational force
the Earth attracts every object towards itself
ALWAYS attractive — unlike magnetic and electrostatic force
Weight
the force with which the Earth pulls an object
A force, so its SI unit is newton (N) — never kilogram
Mass vs weight
mass is the same everywhere · weight can change
1 kg weighs 10 N on Earth, 1.6 N on the Moon
Smallest division of a scale
(value between two big marks) ÷ (number of small divisions)
Fig. 5.13: 1 N ÷ 5 = 0.2 N. Check YOUR instrument, not this one
Upthrust (buoyant force)
the upward force a liquid applies on an object
A contact force — the liquid touches the object
Float or sink
gravitational force > buoyant force → sinks · equal → floats
Size decides nothing on its own
Archimedes' Principle
upward force = weight of the liquid displaced
Applies whether the object is fully or partially immersed
⚠️

Common mistakes & fixes

These are the exact errors that cost students marks in board exams. Read them once, save yourself the trouble.

WATCH OUT
Using F = ma, W = mg, F = Gm₁m₂/r² or a value of g in an answer
There is no formula anywhere in this chapter. Curiosity Grade 8 treats forces entirely qualitatively. Newton's laws of motion, universal gravitation and the value of g are all later-grade material and none of them appears in this book.
WATCH OUT
Writing 'the weight of the bag is 10 kg'
Weight is a FORCE, so it is measured in newton. The kilogram measures MASS. The chapter has a whole box on this: everyday language borrows the unit of mass and the word for weight, and 'in scientific use, this is not correct'.
WATCH OUT
Saying no force acts on a ball at the topmost point of its flight
The BALL stops; the force does not. Gravitational force acts vertically downwards throughout — going up, at the top, and coming down. If it stopped acting at the top, the ball would stay there. Exercise 5(iii) is built on this.
WATCH OUT
Saying an object at rest has no force acting on it
'It means that the forces acting on the object are balancing one another.' A book on a table is still pulled by the Earth — slide it off the edge and it falls at once. Stop there, though: the chapter defers balanced forces to higher grades.
WATCH OUT
Answering exercise 4 with 'the wooden block floats because it is bigger'
Size decides nothing. A large stone sinks and a small matchstick floats. What matters is whether the object displaces water weighing as much as itself. The word 'bigger' is in the question as a trap.
WATCH OUT
Answering exercise 10 with (i), all weights equal
'Same size and shape' does not mean same weight — they are made of DIFFERENT materials, which is why they float at different depths. Deeper dip → more water displaced → larger buoyant force → larger weight. The answer is (ii), w₁ > w₂ > w₃.
WATCH OUT
Classifying friction into static, sliding and rolling friction
Those categories are not in this book. The chapter defines one force of friction, states that it always opposes motion, and shows that it depends on the nature of the surfaces in contact. That is the whole treatment.
WATCH OUT
Leaving 'or tries to move' out of the definition of friction
Friction is 'the force that comes into play when an object moves OR TRIES TO MOVE over another surface'. Push a heavy almirah that does not budge and friction is still acting. Dropping those three words changes the meaning.
WATCH OUT
Naming tension, normal force, applied force or nuclear force
The chapter names exactly five forces: muscular and friction (contact), and magnetic, electrostatic and gravitational (non-contact). Introducing other categories is answering a different syllabus.
WATCH OUT
Saying gravity can repel, or that magnetic force only attracts
The reverse of both. 'Gravitational force is always an attractive force, unlike magnetic force or electrostatic force, which can either be attractive or repulsive.' Magnets repel at like poles; charges repel when alike; gravity never repels.
WATCH OUT
Saying the wooden stick holds the ring magnet up in Activity 5.5
Wood is not magnetic and plays no part in the force. The stick only keeps the rings from sliding off sideways. What holds the upper magnet up is repulsion between like poles, acting across an air gap.
WATCH OUT
Explaining floating and sinking with density
Density is not defined until a later chapter of this same book, and the chapter deliberately does not use it. Compare the two forces — the Earth's downward pull and the liquid's upward push. That answers exercises 4 and 10 completely.
WATCH OUT
Naming 'the ball and the air' as the two objects when a rolling ball slows down
Friction acts between two surfaces IN CONTACT — here the ball and the ground it is rolling on. Air friction is real and the chapter mentions it, but it is not what Activity 5.3 is about.

NCERT exercises (with solutions)

Every NCERT exercise from this chapter — what it covers and how many questions to expect.

Practice problems

Work through this chapter's problems as a readiness check — reveal each solution, mark yourself honestly, and get your gap report at the end.

Readiness check

Are you exam-ready for Exploring Forces?

8 problems from this chapter. Try each one, reveal the worked solution, mark yourself honestly — get your gap report at the end.

8 questions~6 min

5-minute revision

The whole chapter, distilled. Read this the night before the exam.

  • A force is a push or pull on an object resulting from its interaction with another object
  • At least two objects must interact for a force to come into play — always name both
  • The SI unit of force is newton, written with a small 'n', symbol N
  • A force can start motion, change speed, change direction, change shape, or do several of these at once
  • None of these changes takes place without a force — so an observed change is evidence that a force acts
  • An object at rest may still have forces on it; they are balancing one another (deferred to higher grades)
  • Whenever two objects interact, each experiences a force from the other, and both vanish when the interaction ceases
  • Contact forces act only on physical contact — direct (hand) or indirect (stick, rope)
  • The two contact forces named are muscular force and friction
  • Muscular force results from muscles contracting and elongating — in people, animals, and inside the body
  • Friction acts when an object moves OR TRIES TO MOVE over another surface
  • Friction always acts opposite to the direction of motion, and is a contact force
  • Friction arises from irregularities in the surfaces that lock into each other; it is greater on rough surfaces
  • Air, water and other liquids also exert friction, which is why aeroplanes, ships and fast trains are shaped to reduce it
  • Non-contact forces are felt even when the objects are not in contact: magnetic, electrostatic, gravitational
  • Magnetic force is exerted by a magnet on another magnet or a magnetic material
  • Rubbing certain materials together builds up static charges; a charged object attracts uncharged paper pieces
  • Like charges repel, unlike charges attract; the two kinds are positive and negative
  • Both the rubbing object and the rubbed object get charged, with opposite kinds of charge
  • When charges move they constitute an electric current — the link to Chapter 4
  • Gravitational force is the Earth's pull on an object; it is non-contact and ALWAYS attractive
  • An object thrown up slows, stops momentarily, changes direction, and speeds up coming down — one force, three effects
  • Weight is the force with which the Earth pulls an object; its SI unit is newton
  • A spring balance measures weight from how far the spring stretches; check its range and smallest division before use
  • Fig. 5.13: range 0-10 N, 1 N between big marks, 5 divisions between them, so least count = 0.2 N
  • Mass is the amount of matter, measured in g or kg, and is the same everywhere; weight can change
  • A 1 kg object weighs 10 N on Earth, 1.6 N on the Moon, 3.8 N on Mars, 9 N on Venus, 25.4 N on Jupiter
  • Saying 'the weight of the bag is 10 kg' mixes the unit of mass with the word for weight
  • Upthrust (buoyant force) is the upward force a liquid applies on an object placed in it
  • Gravitational force greater than buoyant force → the object sinks; equal → it floats
  • Archimedes' Principle: the upward force equals the weight of the liquid displaced, fully or partially immersed
  • Pumice floats because trapped gas bubbles make it porous and less dense than water

Rajasthan (RBSE) marks blueprint

Where the marks come from in this chapter — so you can plan your prep.

Typical chapter weightage: High weightage — forces, friction, weight and buoyancy are examined every year

Question typeMarks eachTypical countWhat it tests
MCQ / Very Short12-3Contact versus non-contact; SI unit of force and weight; which force can only attract; matching forces to everyday examples
Short Answer2-32-3Definition and direction of friction; why like charges repel; range and least count of a spring balance; mass versus weight; why a mug feels lighter under water
Long Answer4-51-2Forces on a ball thrown upwards at three stages; making a ball stop before or after a point; why a coin sinks and a wooden block floats; the three floating objects of Fig. 5.17; weight on the Moon
Prep strategy
  • Learn the chapter as three blocks: what a force IS (5.1-5.3), the five KINDS of force (5.4), and forces you can MEASURE (5.5-5.6)
  • For every situation, write down the TWO interacting objects before answering. Most questions become easy once both are named
  • Memorise the classification as a table — muscular and friction are contact; magnetic, electrostatic and gravitational are non-contact. It is asked directly every year
  • For friction questions, always say which direction it acts in, and include the words 'or tries to move' in the definition
  • Never write a formula in this chapter. If your answer has F = ma or W = mg in it, you are answering a Class 9 or 10 question
  • For floating and sinking, compare the two forces on ONE object at a time — never compare two objects with each other
  • Practise reading a spring balance scale: value between two big marks, number of small divisions, then divide

Where this shows up in the real world

This chapter isn't just an exam topic — it lives in the world around you.

Walking, braking, holding a pen or a cricket ball, writin…

Walking, braking, holding a pen or a cricket ball, writing, tying a knot, striking a match — all of them depend on friction between surfaces in contact

Rough-soled shoes, doormats, and sand or ash spread on an…

Rough-soled shoes, doormats, and sand or ash spread on an icy path — all put back the irregularities that make a surface grip

Aeroplanes, ships, boats and high-speed trains shaped to …

Aeroplanes, ships, boats and high-speed trains shaped to reduce the friction of the air or water around them — and a racing cyclist crouching low for the same reason

Bullocks drawing a plough or a cart and other animal labour

Bullocks drawing a plough or a cart and other animal labour — muscular force put to human tasks

Chewing, digestion and the beating of the heart

Chewing, digestion and the beating of the heart — muscular force at work inside the body without your deciding it

The spring balance in a laboratory or a shop

The spring balance in a laboratory or a shop, measuring a force and reporting it as a mass

Ships built of steel that float because their hulls are b…

Ships built of steel that float because their hulls are broad and hollow, displacing water weighing as much as the whole vessel

Pumice

Pumice — a volcanic rock full of trapped gas bubbles, light enough to float on water

Exam strategy

Battle-tested tips from teachers and toppers for this chapter.

1
Name the TWO interacting objects before answering any force question — 'the Earth and the fruit', not 'the fruit's gravity'
2
State the direction of every force you name; questions on a ball thrown upwards are marked on the directions as much as the names
3
Quote the chapter's definitions verbatim — force, friction, magnetic force, electrostatic force, gravitational force, weight, upthrust. Each is one sentence
4
Include 'or tries to move' in the friction definition and 'resulting from the object's interaction with another object' in the force definition
5
In True/False questions, check the direction of any comparison before answering — reversed statements are the standard trap
6
For floating and sinking, compare one object with the water it displaces. Never compare the two objects in the question with each other
7
In project answers, report what you actually observed, including pairs of materials that produced no charge and ratios that scattered
8
Watch your units: newton for force and weight, kg or g for mass. A weight in kilograms loses the mark even if the reasoning is right

Going beyond the textbook

For olympiad aspirants and curious learners — topics that build on this chapter.

STRETCH
Activity 5.3 pushes the object in two opposite directions. Design a third trial that would distinguish friction from a sloping table, and say what result each explanation predicts
STRETCH
The chapter says friction depends on the nature of the surfaces. Design a fair test of whether it also depends on how heavily the object presses down, and list what you would hold fixed
STRETCH
Volta-style reasoning applied here: Activity 5.7 charges two balloons the same way. Devise a follow-up that would test whether the cloth really carries the opposite charge, rather than merely no charge
STRETCH
A spring balance reads 10 N for a 1 kg object on Earth. Predict what the SAME balance would read on Mars from the chapter's table, and say which of its two scales would then be misleading and why
STRETCH
Exercise 6 fixes the release point P. Find a second way, other than changing the surface, to make the ball stop before A, and say honestly whether it is within the rules of the question
STRETCH
Pumice floats and granite sinks, though both are rock. Design an experiment using only a balance and a measuring jar that would show why, without using the word density
STRETCH
Imagine the two ring magnets of Activity 5.5 replaced by three. Predict the arrangement of gaps and explain your prediction before testing it

Where else this chapter is tested

CBSE board isn't the only one — other exams test this chapter too.

CBSE Class 8 Science annual and periodic tests (Curiosity, Chapter 5)
NCERT-based Olympiads — NSO, SOF and state-level science talent searches
NTSE-style aptitude and science reasoning at Class 8 level
Foundation courses for JEE and NEET, where this chapter is the qualitative base for Class 9 motion and Class 10 mechanics
Navodaya and Sainik School entrance science sections

Questions students ask

The real ones — pulled from the Q&A community and tutor sessions.

No. There is not a single formula in Curiosity Grade 8 Chapter 5. Forces are treated entirely qualitatively — a force can change speed, direction or shape, and weight is the Earth's pull measured in newton, with no equation relating it to mass. Newton's laws of motion, the law of universal gravitation and the value of g all belong to later grades and appear nowhere in this book. An answer containing them is answering a different syllabus.

Yes. The Earth pulls it downwards just as it pulls a falling fruit — slide the book off the edge and it falls at once, though nothing about the book or the Earth changed in that instant. The chapter's answer is that 'the forces acting on the object are balancing one another'. Stop there: the box ends with 'You will learn about balanced forces in higher grades', so do not draw force diagrams or name a normal force.

All three objects are floating, and for a floating object the buoyant force equals the weight. By Archimedes' Principle the buoyant force equals the weight of the liquid displaced, so an object sitting deeper has displaced more water, has a larger buoyant force, and therefore weighs more. Object 1 is submerged most and object 3 least, so w₁ > w₂ > w₃. 'Same size and shape' is stated only so that depth is a fair measure of water displaced — the objects are made of different materials, which is exactly why their weights differ.

Because size is not what decides it. Compare each object with the water IT pushes aside, never with the other object. The wooden block sinks in until it has displaced water weighing as much as itself, and then stops — the two forces are equal, so it floats. The coin, even fully under water, has displaced water weighing less than the coin, so the Earth's pull wins and it sinks. A large stone sinks and a small matchstick floats, which is the same point made the other way round.

Neither, and that is why the chapter sets it as a class debate rather than a question with an answer. Friction is what lets you walk, brake, hold a pen and write; it is also what wears out machines, wastes fuel, and makes cycling into the wind exhausting. The same friction between tyre and road that slows a cyclist on the flat is what lets that cyclist stop safely at the bottom of a hill. The useful question is not whether there should be friction but how much is wanted, and where.

Mass is the amount of matter in an object, measured in grams or kilograms, and it is the same everywhere. Weight is the gravitational force with which the Earth or another body pulls the object, measured in newton, and it changes with where you are — a 1 kg object weighs 10 N on Earth but 1.6 N on the Moon, while its mass stays 1 kg. Weight depends on two things, the object and whatever is pulling it; mass depends on the object alone.

Because a single observation usually has more than one explanation, and the second trial removes one of them. If the object stopped only when pushed one way, a sloping table or a draught could explain it. Stopping in both directions rules that out and reveals something sharper — the force reverses when the motion reverses, which is written into the definition of friction. The same discipline appears in Activity 5.8, where throwing the ball harder tests whether a stronger throw could escape the pull.
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