1. WHAT IS GRAVITATION?
ENGLISH
Gravitation is the force of attraction between objects. It explains why objects fall toward Earth, why the Moon moves around Earth and why planets move around the Sun.
HINGLISH
Gravitation objects ke beech attraction force hai. Isi ki wajah se objects Earth ki taraf fall karti hain, Moon Earth ke around aur planets Sun ke around move karte hain.

2. NEWTON’S IDEA OF GRAVITATION
ENGLISH
Newton wondered: If Earth can attract an apple, can Earth also attract the Moon? He concluded that the same type of gravitational force acts in both cases.
HINGLISH
Newton ne socha: Agar Earth apple ko attract kar sakti hai, toh kya Earth Moon ko bhi attract karti hai? Unhone conclude kiya ki dono cases mein gravitational force responsible hai.

3. CENTRIPETAL FORCE
ENGLISH
A stone tied to a thread and moved in a circle continuously changes direction. The force acting toward the centre and keeping it in circular motion is called centripetal force. If the thread is released, the stone moves along a tangent.
HINGLISH
Thread se tied stone ko circle mein ghumane par direction continuously change hoti hai. Centre ki taraf act karne wali force ko centripetal force kehte hain. Thread release karne par stone tangent ki straight line mein move karta hai.

4. UNIVERSAL LAW OF GRAVITATION
ENGLISH
Every object in the universe attracts every other object. The force increases with mass, decreases with distance, and acts along the line joining the centres.
HINGLISH
Universe ki har object doosri object ko attract karti hai. Mass badhne par force increase hoti hai, distance badhne par decrease hoti hai, aur force centres ko join karne wali line ke along act karti hai.

5. EFFECT OF MASS
ENGLISH
F ∝ M × m. More mass means more gravitational force. If one mass is doubled, force becomes 2 times; if both masses are doubled, force becomes 4 times.
HINGLISH
Mass badhega toh gravitational force badhegi. Ek mass double karne par force 2 times aur dono masses double karne par force 4 times ho jaati hai.

6. EFFECT OF DISTANCE
ENGLISH
F ∝ 1/d². If distance becomes 2 times, force becomes 1/4; 3 times → 1/9; 6 times → 1/36. If distance becomes half, force becomes 4 times.
HINGLISH
Distance badhne par gravitational force rapidly decrease hoti hai. 2 times distance → 1/4 force; 3 times → 1/9; 6 times → 1/36. Distance half → force 4 times.

7. IMPORTANCE OF GRAVITATION
ENGLISH
The law of gravitation explains why we remain attached to Earth, the Moon’s motion around Earth, planets’ motion around the Sun and tides caused by the Moon and Sun.
HINGLISH
Gravitation explain karta hai ki hum Earth par kyun rehte hain, Moon Earth ke around kyun move karta hai, planets Sun ke around kyun move karte hain aur tides kyun aati hain.

8. FREE FALL
ENGLISH
When an object falls toward Earth under the influence of gravitational force alone, it is called free fall.
HINGLISH
Jab object sirf gravitational force ki wajah se Earth ki taraf fall karti hai, use free fall kehte hain.

9. ACCELERATION DUE TO GRAVITY
ENGLISH
The acceleration produced by Earth’s gravitational force is called acceleration due to gravity. It is represented by g. Near Earth, g = 9.8 m/s²; for simple calculations, g = 10 m/s² may be used.
HINGLISH
Earth ki gravitational force ki wajah se jo acceleration produce hota hai use acceleration due to gravity kehte hain. Symbol g hai. Earth ke near g = 9.8 m/s²; simple numericals mein 10 m/s² liya ja sakta hai.

10. VALUE OF g
ENGLISH
g = GM/R², where G is the universal gravitational constant, M is Earth’s mass and R is Earth’s radius. Near Earth, g = 9.8 m/s².
HINGLISH
g = GM/R². G universal gravitational constant hai, M Earth ka mass aur R Earth ka radius hai. Earth ke near g = 9.8 m/s².

11. AIR RESISTANCE — PAPER VS STONE
ENGLISH
A paper sheet falls slower than a stone because air resistance affects the paper more. If air is removed, both fall at the same rate.
HINGLISH
Paper stone se slowly fall karta hai because air resistance paper ko zyada affect karti hai. Air remove karne par paper aur stone same rate se fall karenge.

12. EQUATIONS OF MOTION UNDER GRAVITY
ENGLISH
Near Earth, g is approximately constant. Therefore:
- v = u + gt;
- s = ut + ½gt²;
- v² = u² + 2gs.
Here u is initial velocity, v final velocity, s displacement and t time.
HINGLISH
Earth ke near g approximately constant hota hai, isliye a ki jagah g use karte hain:
- v = u + gt;
- s = ut + ½gt²;
- v² = u² + 2gs.

13. OBJECT THROWN VERTICALLY UPWARD
ENGLISH
When an object is thrown upward, gravity acts downward and slows it. At the highest point, final velocity v = 0. The object then falls back.
HINGLISH
Object upward throw karne par gravity downward act karti hai aur speed decrease hoti hai. Highest point par v = 0 hota hai, phir object neeche fall karta hai.

14. SIGN CONVENTION
ENGLISH
For upward motion, a = –g because gravity is opposite to motion. If downward is taken as positive, falling motion has a = +g.
HINGLISH
Upward motion mein gravity opposite direction mein hoti hai, isliye a = –g. Downward ko positive lene par falling motion mein a = +g.

15. MASS
ENGLISH
Mass is a measure of inertia. Greater mass means greater inertia. Mass remains constant on Earth, Moon and in space. SI unit is kilogram (kg).
HINGLISH
Mass inertia ka measure hai. Zyada mass → zyada inertia. Mass Earth, Moon aur space mein same rehta hai. SI unit kg hai.
16. WEIGHT
ENGLISH
Weight is the force with which Earth attracts an object. W = mg. SI unit is Newton (N). Weight acts vertically downward.
HINGLISH
Weight woh force hai jisse Earth object ko attract karti hai. W = mg. SI unit Newton (N) hai. Weight downward act karta hai.
17. MASS VS WEIGHT
ENGLISH
Mass is constant, measured in kg and related to inertia. Weight is gravitational force, measured in N, and can change with g.
HINGLISH
Mass constant rehta hai aur kg mein measure hota hai. Weight gravitational force hai, N mein measure hota hai aur g ke saath change ho sakta hai.

18. WEIGHT ON THE MOON
ENGLISH
The Moon has weaker gravity than Earth. An object’s weight on the Moon is approximately 1/6 of its Earth weight. Wmoon = Wearth/6. Example: 60 N on Earth → 10 N on Moon.
HINGLISH
Moon ki gravity Earth se weak hai. Object ka Moon par weight approximately Earth weight ka 1/6 hota hai. Wmoon = Wearth/6. 60 N → 10 N.

19. g CHANGES FROM PLACE TO PLACE
ENGLISH
g is greater at the poles, smaller at the equator and decreases with altitude. Therefore, weight can change from place to place.
HINGLISH
g poles par greater, equator par smaller hota hai aur altitude badhne par decrease hota hai. Isliye weight place ke saath change ho sakta hai.


🧠 COMPLETE CHAPTER MIND MAP
GRAVITATION → Universal Law → Free Fall → Acceleration due to Gravity → Equations of Motion → Mass → Weight → Moon → Buoyancy → Density → Float/Sink

CHAPTER 4 — GRAVITATION EXERCISE QUESTIONS — COMPLETE ANSWERS
Question: How does the force of gravitation between two objects change when the distance between them is reduced to half?
Answer: According to the universal law of gravitation:
F ∝ 1/d²
If the distance becomes half:
d′ = d/2
Therefore:
F′ = GMm/(d/2)²
F′ = 4GMm/d²
So, F′ = 4F
Therefore, the gravitational force becomes 4 times the original force.
Question: Gravitational force acts on all objects in proportion to their masses. Why then, does a heavy object not fall faster than a light object?
Answer: The acceleration due to gravity is independent of the mass of the falling object.
For a freely falling object:
F = mg
Also: F = ma
Therefore: ma = mg
a = g
Thus, in the absence of air resistance, all objects fall with the same acceleration due to gravity, irrespective of their masses.
Question: What is the magnitude of the gravitational force between the Earth and a 1 kg object on its surface?
Answer: Given:
Mass of Earth, M = 6 × 10²⁴ kg
Mass of object, m = 1 kg
Radius of Earth, R = 6.4 × 10⁶ m
G = 6.7 × 10⁻¹¹ N m² kg⁻²
Using:
F = GMm/R²
F = (6.7 × 10⁻¹¹ × 6 × 10²⁴ × 1)/(6.4 × 10⁶)²
F ≈ 9.8 N
Therefore, the gravitational force is approximately 9.8 N.
Question: The Earth and the Moon are attracted to each other by gravitational force. Does the Earth attract the Moon with a force that is greater or smaller or the same as the force with which the Moon attracts the Earth? Why?
Answer: The Earth and Moon attract each other with equal gravitational forces.
According to Newton’s third law of motion, every action has an equal and opposite reaction.
Therefore:
Force of Earth on Moon = Force of Moon on Earth
The forces are equal in magnitude but opposite in direction.
Question: If the Moon attracts the Earth, why does the Earth not move towards the Moon?
Answer: The Moon and Earth attract each other with equal force. However, the mass of Earth is much greater than the mass of the Moon.
From:
F = ma
For the same force, acceleration is smaller when mass is larger. Therefore, the acceleration of Earth is extremely small compared with that of the Moon. Hence, the movement of Earth towards the Moon is not noticeable.
Question: What happens to the force between two objects if:
(i) the mass of one object is doubled?
(ii) the distance between the objects is doubled and tripled?
(iii) the masses of both objects are doubled?
Answer: Using:
F = Gm₁m₂/d²
(i) If one mass is doubled: Force becomes 2 times.
(ii) If distance is doubled: Force becomes 1/4 times.
If distance is tripled: Force becomes 1/9 times.
(iii) If both masses are doubled: The product of masses becomes 4 times.
Therefore, force becomes 4 times.
Question: What is the importance of the universal law of gravitation?
Answer: The universal law of gravitation explains:
1. The force that binds us to the Earth.
2. The motion of the Moon around the Earth.
3. The motion of planets around the Sun.
4. The tides caused by the Moon and the Sun.
Question: What is the acceleration of free fall?
Answer: The acceleration produced in an object due to the gravitational force of Earth is called acceleration due to gravity.
It is represented by g. Near the surface of Earth:
g = 9.8 m/s².
Question: What do we call the gravitational force between the Earth and an object?
Answer: The gravitational force with which Earth attracts an object is called the weight of the object.
W = mg
The SI unit of weight is newton (N).
Question: Amit buys a few grams of gold at the poles as instructed by his friend. He hands over the same gold when he meets his friend at the equator. Will the friend agree with the weight of the gold bought? If not, why?
Answer: No, the friend will not agree with the weight.
The mass of the gold remains the same, but the value of g is greater at the poles than at the equator.
Since: W = mg
the weight of the gold is greater at the poles and slightly smaller at the equator.
Therefore, the gold has slightly less weight at the equator.
Question: Why will a sheet of paper fall slower than one that is crumpled into a ball?
Answer: A flat sheet of paper has a larger surface area and therefore experiences more air resistance. A crumpled paper ball has a smaller surface area and experiences less air resistance. Therefore, the crumpled paper falls faster.
If air resistance is removed, both would fall at the same rate.
Question: Gravitational force on the surface of the Moon is only 1/6 as strong as gravitational force on Earth. What is the weight in newtons of a 10 kg object on the Moon and on Earth?
Answer: Given:
Mass = 10 kg
g on Earth = 9.8 m/s²
Weight on Earth:
W = mg
W = 10 × 9.8
W = 98 N
Weight on Moon:
Wmoon = Wearth/6
Wmoon = 98/6
Wmoon ≈ 16.3 N
Therefore: Weight on Earth = 98 N and Weight on Moon ≈ 16.3 N.
Question: A ball is thrown vertically upwards with a velocity of 49 m/s. Calculate: (i) the maximum height to which it rises (ii) the total time it takes to return to the surface of the Earth.
Answer: Given:
u = 49 m/s
v = 0 m/s at maximum height
g = 9.8 m/s²
(i) Maximum height
Using: v² = u² − 2gh
0 = 49² − 2 × 9.8 × h
h = 122.5 m
(ii) Time to reach maximum height:
v = u − gt
0 = 49 − 9.8t
t = 5 s
Total time: T = 2 × 5 = 10 s
Therefore: Maximum height = 122.5 m
Total time = 10 s.
Question: A stone is released from the top of a tower of height 19.6 m. Calculate its final velocity just before touching the ground.
Answer: Given:
u = 0 m/s
s = 19.6 m
g = 9.8 m/s²
Using: v² = u² + 2gs
v² = 0 + 2 × 9.8 × 19.6
v² = 384.16
v = 19.6 m/s
Therefore, the final velocity is 19.6 m/s downward.
Question: A stone is thrown vertically upward with an initial velocity of 40 m/s. Taking g = 10 m/s², find the maximum height reached by the stone. What is the net displacement and the total distance covered by the stone?
Answer: Given:
u = 40 m/s
v = 0 m/s at maximum height
g = 10 m/s²
Maximum height: v² = u² − 2gh
0 = 40² − 2 × 10 × h
h = 80 m
The stone returns to the same point from which it was thrown.
Net displacement = 0 m
Total distance: = 80 + 80 = 160 m
Therefore: Maximum height = 80 m
Net displacement = 0 m
Total distance = 160 m.
Question: Calculate the force of gravitation between the Earth and the Sun, given that the mass of the Earth = 6 × 10²⁴ kg and the mass of the Sun = 2 × 10³⁰ kg. The average distance between the two is 1.5 × 10¹¹ m.
Answer: Given:
Mass of Earth, M = 6 × 10²⁴ kg
Mass of Sun, m = 2 × 10³⁰ kg
Distance, d = 1.5 × 10¹¹ m
G = 6.7 × 10⁻¹¹ N m² kg⁻²
Using: F = GMm/d²
F = [(6.7 × 10⁻¹¹)(6 × 10²⁴)(2 × 10³⁰)]/(1.5 × 10¹¹)²
F ≈ 3.57 × 10²² N
Therefore, the gravitational force between Earth and Sun is approximately 3.57 × 10²² N.
Question: A stone is allowed to fall from the top of a tower 100 m high and at the same time another stone is projected vertically upwards from the ground with a velocity of 25 m/s. Calculate when and where the two stones will meet.
Answer: Let the stones meet after t seconds. For the stone falling from the top:
u = 0
Distance travelled: s₁ = ½gt²
For the stone projected upward:
u = 25 m/s
Distance travelled:
s₂ = 25t − ½gt²
At the meeting point:
s₁ + s₂ = 100
½gt² + 25t − ½gt² = 100
25t = 100
t = 4 s
Distance travelled by the falling stone:
s₁ = ½ × 9.8 × 4²
s₁ = 78.4 m
Height above ground: 100 − 78.4 = 21.6 m
Therefore, the stones meet after 4 s at a height of 21.6 m above the ground.
Question: A ball thrown up vertically returns to the thrower after 6 s. Find: (a) the velocity with which it was thrown up (b) the maximum height it reaches (c) its position after 4 s.
Answer: Total time = 6 s
Time to reach maximum height:
t = 6/2 = 3 s
Take g = 9.8 m/s².
(a) Initial velocity
At maximum height, v = 0.
v = u − gt
0 = u − 9.8 × 3
u = 29.4 m/s
(b) Maximum height
h = u²/2g
h = (29.4)²/(2 × 9.8)
h = 44.1 m
(c) Position after 4 s
The ball reaches maximum height after 3 s.
After 4 s, it has been falling for:
4 − 3 = 1 s
Distance fallen in 1 s:
s = ½gt²
s = ½ × 9.8 × 1²
s = 4.9 m
Position above ground:
44.1 − 4.9 = 39.2 m
Therefore: Initial velocity = 29.4 m/s
Maximum height = 44.1 m
Position after 4 s = 39.2 m above the ground.
Question: In what direction does the buoyant force on an object immersed in a liquid act?
Answer: The buoyant force acts in the vertically upward direction. The liquid pushes the immersed object upward.
Question: Why does a block of plastic released under water come up to the surface of water?
Answer: Two main forces act on the plastic block:
• Gravitational force acts downward.
• Buoyant force acts upward.
The plastic block has lower density than water, so the upward buoyant force is greater than its weight.
Therefore, the block moves upward and comes to the surface of water.
Question: The volume of 50 g of a substance is 20 cm³. If the density of water is 1 g cm⁻³, will the substance float or sink?
Answer: Given:
Mass = 50 g
Volume = 20 cm³
Density = Mass/Volume
Density = 50/20
Density = 2.5 g/cm³
Density of water = 1 g/cm³.
Since the density of the substance is greater than the density of water, the substance will sink.
Answer: The substance will sink.
Question: The volume of a 500 g sealed packet is 350 cm³. Will the packet float or sink in water if the density of water is 1 g cm⁻³? What will be the mass of the water displaced by this packet?
Answer: Given:
Mass of packet = 500 g
Volume = 350 cm³
Density = Mass/Volume
Density = 500/350
Density ≈ 1.43 g/cm³
Density of water = 1 g/cm³.
Since 1.43 g/cm³ > 1 g/cm³, the packet will sink.
Volume of water displaced = 350 cm³.
Mass of displaced water:
Mass = Density × Volume
Mass = 1 × 350
Mass = 350 g
Therefore: The packet will sink.
Mass of displaced water = 350 g.
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