Showing posts with label Motion Under Gravity. Show all posts
Showing posts with label Motion Under Gravity. Show all posts

Sunday, June 21, 2026

Motion of an Object Under Free Fall | NEET Physics Notes with Graphs & Formulas

CBSE Class 11 Physics (Motion Under Free Fall) – Question Bank with Answers  

Educational diagram explaining free fall motion with acceleration-time, velocity-time and displacement-time graphs for NEET Physics.
Motion of an object under free fall showing acceleration, velocity, and displacement-time graphs.


- Dr.Sanjaykumar Pawar 

A. Multiple Choice Questions (MCQs)

1. A body is said to be in free fall when:

a) It falls with constant velocity
b) It falls under gravity only
c) It falls in vacuum only
d) It moves downward

Answer: b) It falls under gravity only


2. The acceleration due to gravity near Earth's surface is:

a) 8.9 m/s²
b) 9.8 m/s²
c) 10.8 m/s²
d) 12 m/s²

Answer: b) 9.8 m/s²


3. The velocity-time graph for a freely falling body is:

a) Horizontal line
b) Parabola
c) Straight line
d) Circle

Answer: c) Straight line


4. The slope of a velocity-time graph represents:

a) Velocity
b) Distance
c) Acceleration
d) Momentum

Answer: c) Acceleration


5. Distance travelled in successive equal intervals of time during free fall follows:

a) 1 : 2 : 3 : 4
b) 2 : 4 : 6 : 8
c) 1 : 3 : 5 : 7
d) 1 : 4 : 9 : 16

Answer: c) 1 : 3 : 5 : 7


6. Stopping distance of a vehicle is proportional to:

a) Speed
b) Square of speed
c) Cube of speed
d) Inverse of speed

Answer: b) Square of speed


7. For a freely falling body released from rest:

a) u = g
b) u = 1
c) u = 0
d) u = 10

Answer: c) u = 0


8. Which equation represents free fall motion?

a) v = u + gt
b) v = u − gt
c) v = u/t
d) v = gt²

Answer: b) v = u − gt


9. The SI unit of acceleration due to gravity is:

a) m
b) m/s
c) m/s²
d) kg

Answer: c) m/s²


10. If speed doubles, stopping distance becomes:

a) Double
b) Triple
c) Four times
d) Eight times

Answer: c) Four times


B. Very Short Answer Questions (1 Mark)

1. Define free fall.

Answer: Motion of a body under the influence of gravity alone is called free fall.

2. What is the value of g near Earth's surface?

Answer: 9.8 m/s².

3. What is the acceleration of a freely falling body?

Answer: g downward.

4. Who proposed the law of odd numbers?

Answer: Galileo Galilei.

5. What is stopping distance?

Answer: Distance travelled by a vehicle after brakes are applied until it comes to rest.

6. What is the slope of a v–t graph?

Answer: Acceleration.

7. What is the shape of displacement-time graph in free fall?

Answer: Parabola.

8. What is the initial velocity of a body released from rest?

Answer: Zero.


C. Short Answer Questions (2–3 Marks)

1. Why is acceleration constant during free fall?

Answer: The only force acting on the body is gravity. Near Earth's surface, gravity remains nearly constant. Therefore acceleration remains constant and equal to g.


2. Write the equations of motion for free fall.

Answer:


3. State Galileo's Law of Odd Numbers.

Answer: The distances covered by a freely falling body during successive equal intervals of time are proportional to odd numbers:

1 : 3 : 5 : 7 : 9 ...


4. Why is the displacement-time graph parabolic?

Answer: Displacement in free fall is proportional to the square of time.


s = \frac{1}{2}gt^2

Since displacement depends on , the graph is a parabola.


5. Explain why stopping distance increases with speed.

Answer: Stopping distance is given by:


d_s = \frac{v_0^2}{2a}

Hence stopping distance is proportional to the square of velocity. Therefore higher speed results in much larger stopping distance.


D. Long Answer Questions (5 Marks)

1. Explain the variation of acceleration, velocity and displacement with time during free fall.

Answer:

(i) Acceleration-Time Graph

  • Acceleration remains constant.
  • Value = –g.
  • Graph is a horizontal straight line.

(ii) Velocity-Time Graph

  • Velocity changes uniformly with time.
  • Equation:

v = u - gt
  • Graph is a straight line with negative slope.

(iii) Displacement-Time Graph

  • Displacement increases as square of time.

s = ut - 1/2gt²
  • Graph is parabolic.

Thus acceleration is constant, velocity changes uniformly, and displacement changes non-uniformly.


2. Prove Galileo's Law of Odd Numbers.

Answer:

For free fall:


s=1/2gt²

After time t:


s_1=1/2gt²

After 2t:


s_2=4s_1

After 3t:


s_3=9s_1

Distance in successive intervals:

First interval:


s_1

Second interval:


s_2-s_1=3s_1

Third interval:


s_3-s_2=5s_1

Fourth interval:


s_4-s_3=7s_1

Hence ratio:


1:3:5:7

Thus proved.


E. Assertion and Reason Questions

1.

Assertion (A): A freely falling body has constant acceleration.

Reason (R): Gravity acts uniformly near Earth's surface.

Answer: Both A and R are true, and R is the correct explanation of A.


2.

Assertion (A): Stopping distance depends on velocity.

Reason (R): Stopping distance is proportional to velocity squared.

Answer: Both A and R are true, and R is the correct explanation of A.


3.

Assertion (A): Velocity-time graph in free fall is a straight line.

Reason (R): Acceleration remains constant.

Answer: Both A and R are true, and R correctly explains A.


4.

Assertion (A): Displacement-time graph in free fall is linear.

Reason (R): Displacement is proportional to time squared.

Answer: Assertion is false but Reason is true.


F. Fill in the Blanks

  1. Motion under gravity alone is called free fall.

  2. The value of acceleration due to gravity is approximately 9.8 m/s².

  3. The slope of a velocity-time graph gives acceleration.

  4. Galileo's law follows the ratio 1 : 3 : 5 : 7.

  5. Stopping distance is proportional to the square of velocity.

  6. The SI unit of acceleration is m/s².

  7. The displacement-time graph of free fall is a parabola.

  8. A body released from rest has initial velocity zero.


G. Case Study Questions

Case Study

A ball is dropped from the top of a tower. It falls freely under gravity. The acceleration remains constant throughout the motion. The velocity increases uniformly while displacement increases rapidly with time.

Questions

1. What is the acceleration acting on the ball?

Answer: g = 9.8 m/s² downward.


2. Which force acts on the ball during free fall?

Answer: Gravitational force.


3. What is the shape of the velocity-time graph?

Answer: Straight line.


4. What is the shape of the displacement-time graph?

Answer: Parabola.


5. Which law explains distances covered in successive seconds?

Answer: Galileo's Law of Odd Numbers.


H. Statement-Based Questions

Statement 1

Acceleration due to gravity remains constant during free fall.

Statement 2

Velocity changes uniformly with time.

a) Both statements are true.
b) Both statements are false.
c) Statement 1 true, Statement 2 false.
d) Statement 1 false, Statement 2 true.

Answer: a) Both statements are true.


Statement 1

Stopping distance is proportional to speed.

Statement 2

Stopping distance is proportional to square of speed.

Answer: Statement 1 is false and Statement 2 is true.


I. Match the Columns

Column A Column B
1. Free Fall a. Gravity only
2. g b. 9.8 m/s²
3. v–t graph slope c. Acceleration
4. Galileo d. Odd number law
5. Stopping Distance e. Depends on v²

Answers

1 → a

2 → b

3 → c

4 → d

5 → e


CBSE Exam Important Questions

1. Define free fall and explain its characteristics.

2. Draw and explain acceleration-time, velocity-time and displacement-time graphs for free fall.

3. State and prove Galileo's Law of Odd Numbers.

4. Derive the formula for stopping distance.

5. Explain why stopping distance increases with speed.

6. Write equations of motion for a freely falling body.

7. Differentiate between velocity and acceleration during free fall.

These questions cover MCQs, competency-based questions, assertion-reason, case study, fill in the blanks, statement-based questions, match the columns, short answers, and long answers as per the latest CBSE Class 11 examination pattern


 Internal Links

Motion in a Straight Line Notes

Acceleration and Velocity Concepts

Kinematics Formula Sheet

Free Fall Concepts

Acceleration Due to Gravity Notes

Newton's Law of Universal Gravitation

Projectile Motion Basics

Graph Section

Velocity-Time Graph Explained

Acceleration-Time Graph Problems

Position-Time Graph Interpretation

Galileo Law Section

Motion Under Constant Acceleration

Important NEET Kinematics Questions

NCERT Kinematics Solutions

Stopping Distance Section

Newton's Laws of Motion

Friction Notes Class 11

Braking Force and Retardation Problems

Revision Section

NEET Physics Formula Handbook

Most Important Kinematics Numericals

NEET Physics Previous Year Questions

Motion of an Object Under Free Fall - NEET Notes

Motion of an Object Under Free Fall

NEET Physics Easy Notes

1. Free Fall – Basic Idea

  • When an object falls under the effect of gravity only, the motion is called free fall.
  • Air resistance is neglected in free fall problems.
  • Acceleration due to gravity is represented by g.

Near Earth’s surface:

g ≈ 9.8 m/s²
  • Direction of gravity is always downward.
  • If upward direction is taken positive, then acceleration becomes negative.

Fig. 2.7 : Motion of Object Under Free Fall

(a) Variation of Acceleration with Time

  • Acceleration remains constant throughout the motion.
  • The graph is a horizontal straight line.
  • Value of acceleration is always:
a = -g

Important NEET Point

Constant acceleration means velocity changes uniformly with time.

(b) Variation of Velocity with Time

  • Initial velocity for a freely falling body released from rest:
u = 0
  • Velocity increases linearly with time.
  • Equation of velocity:
v = u - gt

Since (u = 0),

v = -gt

Graph Understanding

  • Straight line with negative slope.
  • Slope of v–t graph = acceleration = (-g).

Important NEET Concepts

  • Velocity becomes more negative with time.
  • Body gains speed while falling downward.

(c) Variation of Distance (Position) with Time

  • Distance covered in free fall is proportional to square of time.
  • Equation of motion:
y = ut - 1/2 gt²

For (u = 0),

y = -1/2 gt²

Graph Understanding

  • Graph is a parabola.
  • Distance increases rapidly with time.
  • Motion is non-uniform because velocity changes continuously.

Galileo’s Law of Odd Numbers

Statement

  • “The distances travelled during successive equal intervals of time by a freely falling body are in the ratio of odd numbers.”

Ratio is:

1 : 3 : 5 : 7 : 9 : ...

Proof in Simple Steps

Step 1: Position after Different Times

For free fall:

y = -1/2 gt²

After time (t):

y₁ = 1/2 gt²

After time (2t):

y₂ = 1/2 g(2t)² = 4y₁

After time (3t):

y₃ = 1/2 g(3t)² = 9y₁

After time (4t):

y₄ = 16y₁

Step 2: Distance in Successive Intervals

First Interval

y₁ = 1y₁

Second Interval

y₂ - y₁ = 4y₁ - y₁ = 3y₁

Third Interval

y₃ - y₂ = 9y₁ - 4y₁ = 5y₁

Fourth Interval

y₄ - y₃ = 16y₁ - 9y₁ = 7y₁

Hence ratios become:

1 : 3 : 5 : 7

Important Result for NEET

For a body starting from rest under gravity:

sₙ ∝ (2n - 1)

where:

  • (sₙ) = distance travelled in nth second.

Example 2.6 – Stopping Distance of Vehicles

Definition

  • Distance travelled by a vehicle before coming to rest after brakes are applied is called stopping distance.

Derivation

Using equation of motion:

v² = u² + 2as

For stopping:

  • Final velocity (v = 0)
  • Initial velocity (u = v₀)

So,

0 = v₀² + 2adₛ

Therefore,

dₛ = -v₀² / 2a

Conclusions

  • Stopping distance is proportional to square of initial velocity.
dₛ ∝ v₀²

NEET Important Points

  • If speed doubles → stopping distance becomes 4 times.
  • Stronger brakes mean larger retardation and smaller stopping distance.

Quick Revision Formula Sheet

Concept Formula
Velocity-Time Relation v = u - gt
Position-Time Relation s = ut - 1/2 gt²
Velocity-Position Relation v² = u² - 2gs

One-Line NEET Tricks

  • Acceleration due to gravity is constant.
  • v–t graph slope gives acceleration.
  • Distance in nth second follows odd number rule.
  • Stopping distance depends on square of speed.
  • Free fall graphs are very important for NEET numericals.
NEET Physics Easy Notes © 2026

Motion Under Gravity (Vertical Motion) NEET Notes with Solved Examples

Motion Under Gravity - Easy NEET Notes

Motion Under Gravity (Vertical Motion)

Easy NEET Notes

1. Situation in Figure

A ball is thrown vertically upward from the top of a building.

  • Height of building = 25 m
  • Initial velocity of ball = 20 m/s upward
  • Acceleration due to gravity acts downward
  • Take upward direction as positive

Therefore:

  • Initial velocity → u = +20 m/s
  • Acceleration → a = -10 m/s²
Gravity is always downward.

PART 1: Motion from A to B (Upward Motion)

At highest point B:

  • Final velocity becomes zero
  • Because the ball stops for a moment before coming down

Use first equation of motion:

v = u + at

Substitute values:

0 = 20 + (-10)t
0 = 20 - 10t
10t = 20
t = 2 s

Conclusion

t₁ = 2 s

Time taken to go upward = 2 seconds

PART 2: Motion from B to C (Falling Down)

Now the ball falls from highest point to ground.

At point B:

  • Initial velocity = 0
  • Acceleration = -10 m/s²

Maximum height above ground:

25 + 20 = 45 m

(25 m building + 20 m rise)

Use second equation of motion:

y = y₀ + v₀t + 1/2 at²

Substitute values:

0 = 45 + 0 + 1/2(-10)t²
0 = 45 - 5t²
5t² = 45
t² = 9
t = 3 s

Conclusion

t₂ = 3 s

Time to fall downward = 3 seconds

Total Time of Flight

T = t₁ + t₂
T = 2 + 3
T = 5 s

Final Answer

5 s

Total time taken by the ball to hit ground.

SECOND METHOD (Shortcut Method)

Use whole motion directly.

Given:

  • Initial height = 25 m
  • Final height = 0
  • Initial velocity = 20 m/s
  • Acceleration = -10 m/s²

Use:

y = y₀ + ut + 1/2 at²

Substitute:

0 = 25 + 20t + 1/2(-10)t²
0 = 25 + 20t - 5t²
5t² - 20t - 25 = 0

Solve quadratic equation:

t = 5 s
Same answer obtained.

Important NEET Concepts

1. Sign Convention

If upward is positive:

  • Upward velocity → positive
  • Downward velocity → negative
  • Gravity → negative

2. At Maximum Height

v = 0

Velocity becomes zero only for an instant.

3. Acceleration Due to Gravity

Near Earth:

g = 9.8 m/s²

For NEET numericals often take:

g = 10 m/s²

Free Fall Notes (Example 2.4)

Definition of Free Fall

When an object moves only under gravity (air resistance neglected), it is called free fall.

Important Equations of Free Fall

Velocity-Time Relation

v = u - gt

If object released from rest:

u = 0

Then:

v = -gt

Position-Time Relation

y = y₀ + ut - 1/2 gt²

If released from rest and origin at starting point:

y = -1/2 gt²

Velocity-Position Relation

v² = u² - 2gy

If released from rest:

v² = -2gy

NEET Quick Tips

  • Gravity always acts downward
  • At highest point velocity becomes zero
  • Acceleration never becomes zero
  • Time going up ≠ time coming down if starting and ending heights are different

Most Important Formula Sheet

Equation Formula
First Equation v = u + at
Second Equation s = ut + 1/2 at²
Third Equation v² = u² + 2as

NEET Memory Trick

“UVS”

Remember:

  • (u) → initial velocity
  • (v) → final velocity
  • (s) → displacement
  • (a) → acceleration
  • (t) → time
Use any equation depending on missing quantity.
NEET Physics Easy Notes © 2026

 Motion Under Gravity Class 11 Physics Notes for NEET & JEE 

Physics diagram illustrating motion under gravity with a ball projected vertically upward from a building, showing velocity, acceleration due to gravity, maximum height, and time of flight calculations.
Motion under gravity showing a ball thrown upward from a building with velocity, height, and time calculations.


CBSE Class 11 Physics: Motion Under Gravity Important Questions and Answers

These exam-oriented questions and answers cover MCQs, very short answer questions, short answer questions, long answer questions, assertion-reason questions, fill in the blanks, case study questions, statement-based questions, and match the columns.

Multiple Choice Questions (MCQs)

Question 1

A ball is thrown vertically upward with an initial velocity of 20 m/s. What is its velocity at the highest point?

Options:

  • A) 20 m/s
  • B) 10 m/s
  • C) 0 m/s
  • D) -20 m/s

Answer: C) 0 m/s

Question 2

What is the value of acceleration due to gravity near the Earth's surface?

Options:

  • A) 0 m/s²
  • B) 9.8 m/s² upward
  • C) 9.8 m/s² downward
  • D) 20 m/s² downward

Answer: C) 9.8 m/s² downward

Question 3

At the highest point of vertical motion, the acceleration of the body is:

Options:

  • A) Zero
  • B) 9.8 m/s² upward
  • C) 9.8 m/s² downward
  • D) Infinite

Answer: C) 9.8 m/s² downward


Very Short Answer Questions

Question 1

What is free fall?

Answer: The motion of an object under the influence of gravity alone is called free fall.

Question 2

What is the velocity of a body at the highest point of its motion?

Answer: The velocity becomes zero at the highest point.

Question 3

What is the SI unit of acceleration?

Answer: metre per second squared (m/s²).

Question 4

Does acceleration become zero at the highest point?

Answer: No. Acceleration remains equal to acceleration due to gravity and acts downward.


Short Answer Questions

Question 1

Why does a ball thrown upward slow down as it rises?

Answer: A ball thrown upward slows down because gravity acts downward, opposite to the direction of motion. This downward acceleration continuously decreases the velocity until it becomes zero at the highest point.

Question 2

Write the equations of motion under gravity.

Answer:

For upward positive direction:

v = u − gt

s = ut − ½gt²

v² = u² − 2gs

where:

  • u = initial velocity
  • v = final velocity
  • g = acceleration due to gravity
  • s = displacement
  • t = time

Question 3

Differentiate between velocity and acceleration at the highest point.

Answer:

Velocity Acceleration
Velocity becomes zero. Acceleration remains 9.8 m/s² downward.
Changes direction after reaching the top. Direction remains downward throughout the motion.

Long Answer Questions

Question 1

A ball is thrown vertically upward from the top of a building 25 m high with an initial velocity of 20 m/s. Calculate the total time taken to reach the ground. Take g = 10 m/s².

Answer:

For upward motion:

v = u − gt

0 = 20 − 10t

t = 2 s

Therefore, time to reach the highest point = 2 seconds.

Maximum height gained above the building:

h = u² / 2g

h = (20)² / (2 × 10)

h = 400 / 20

h = 20 m

Total height above ground:

25 + 20 = 45 m

For downward motion:

s = ½gt²

45 = 5t²

t² = 9

t = 3 s

Time of descent = 3 seconds.

Total time of flight:

T = 2 + 3

T = 5 s

Final Answer: The ball reaches the ground after 5 seconds.


Assertion and Reason Questions

Question 1

Assertion (A): Velocity becomes zero at the highest point.

Reason (R): Gravity stops acting at the highest point.

Answer: Assertion is true, but Reason is false because gravity acts continuously throughout the motion.

Question 2

Assertion (A): Acceleration due to gravity remains constant during vertical motion.

Reason (R): Gravity acts continuously downward.

Answer: Both Assertion and Reason are true, and Reason is the correct explanation of Assertion.


Fill in the Blanks

Question 1: The acceleration due to gravity always acts __________.

Answer: downward

Question 2: At the highest point of motion, velocity becomes __________.

Answer: zero

Question 3: Motion under gravity alone is called __________.

Answer: free fall

Question 4: The SI unit of acceleration is __________.

Answer: m/s²


Case Study Questions

A student throws a ball vertically upward from the top of a building with an initial velocity of 20 m/s. The height of the building is 25 m. Assume g = 10 m/s².

Question 1

How much time does the ball take to reach the highest point?

Answer: 2 seconds.

Question 2

What is the maximum height gained above the building?

Answer: 20 metres.

Question 3

What is the total height above the ground at the highest point?

Answer: 45 metres.

Question 4

What is the velocity at the highest point?

Answer: 0 m/s.

Question 5

What is the total time of flight?

Answer: 5 seconds.


Match the Columns

Column A Column B
Highest Point Velocity becomes zero
Free Fall Motion under gravity alone
Acceleration Due to Gravity 9.8 m/s²
SI Unit of Acceleration m/s²

Answers:

  • Highest Point → Velocity becomes zero
  • Free Fall → Motion under gravity alone
  • Acceleration Due to Gravity → 9.8 m/s²
  • SI Unit of Acceleration → m/s²

Important Exam Tip

Remember that at the highest point of vertical motion, velocity becomes zero but acceleration due to gravity remains constant and acts downward. This is one of the most frequently asked concepts in CBSE Class 11 Physics examinations. 


 Internal Links

Motion in a Straight Line Notes

Kinematics Complete Revision Notes

Difference Between Speed and Velocity

Free Fall Numerical Problems

Acceleration Due to Gravity Explained

Vector Basics for NEET

Projectile Motion Notes

NCERT Solutions – Motion in a Straight Line

Important Kinematics Formula Sheet

Previous Year NEET Kinematics Questions

Example 3.4 Solution Explained for Beginners

Block and Trolley System NEET Solution

Newton's Laws of Motion Notes

Work, Energy and Power Notes

Fundamental Forces in Nature Guide

Uniformly Accelerated Motion Class 11 Physics Notes | NEET & JEE MCQs

 - Dr.Sanjaykumar Pawar   Uniformly Accelerated Motion (1-D) Physics Notes, Formulas & NEET Questions  Uniformly Accelerated Motion (1-D...