Gravitation

71 Questions
2026 NEET MCQ
NEET 2026

The amount of work done to raise a mass ' $m$ ' from the surface of the Earth to a height equal to the radius of the Earth ' $R$ ' will be

A.

$2 m g R$

B.

$m g \frac{R}{4}$

C.

$m g R$

D.

$m g \frac{R}{2}$

2025 NEET MCQ
NEET 2025

The radius of Martian orbit around the Sun is about 4 times the radius of the orbit of Mercury. The Martian year is 687 Earth days. Then which of the following is the length of 1 year on Mercury?

A.
172 earth days
B.
124 earth days
C.
88 earth days
D.
225 earth days
2025 NEET MCQ
NEET 2025

A body weighs 48 N on the surface of the earth. The gravitational force experienced by the body due to the earth at a height equal to one-third the radius of the earth from its surface is:

A.
32 N
B.
36 N
C.
16 N
D.
27 N
2024 NEET MCQ
NEET 2024 (Re-Examination)

The escape velocity for earth is $v$. A planet having 9 times mass that of earth and radius, 16 times that of earth, has the escape velocity of:

A.
$\frac{v}{3}$
B.
$\frac{2 v}{3}$
C.
$\frac{3 v}{4}$
D.
$\frac{9 v}{4}$
2024 NEET MCQ
NEET 2024 (Re-Examination)

An object of mass $100 \mathrm{~kg}$ falls from point $A$ to $B$ as shown in figure. The change in its weight, corrected to the nearest integer is ($R_E$ is the radius of the earth)

NEET 2024 (Re-Examination) Physics - Gravitation Question 4 English

A.
49 N
B.
89 N
C.
5 N
D.
10 N
2024 NEET MCQ
NEET 2024

The mass of a planet is $\frac{1}{10}$th that of the earth and its diameter is half that of the earth. The acceleration due to gravity on that planet is:

A.
$19.6 \mathrm{~m} \mathrm{~s}^{-2}$
B.
$9.8 \mathrm{~m} \mathrm{~s}^{-2}$
C.
$4.9 \mathrm{~m} \mathrm{~s}^{-2}$
D.
$3.92 \mathrm{~m} \mathrm{~s}^{-2}$
2024 NEET MCQ
NEET 2024

The minimum energy required to launch a satellite of mass $m$ from the surface of earth of mass $M$ and radius $R$ in a circular orbit at an altitude of $2 R$ from the surface of the earth is:

A.
$\frac{5 G m M}{6 R}$
B.
$\frac{2 G m M}{3 R}$
C.
$\frac{G m M}{2 R}$
D.
$\frac{G m M}{3 R}$
2023 NEET MCQ
NEET 2023 Manipur

The escape velocity of a body on the earth surface is $11.2 \mathrm{~km} / \mathrm{s}$. If the same body is projected upward with velocity $22.4 \mathrm{~km} / \mathrm{s}$, the velocity of this body at infinite distance from the centre of the earth will be:

A.
$11.2 \sqrt{2} \mathrm{~km} / \mathrm{s}$
B.
Zero
C.
$11.2 \mathrm{~km} / \mathrm{s}$
D.
$11.2 \sqrt{3} \mathrm{~km} / \mathrm{s}$
2023 NEET MCQ
NEET 2023 Manipur

If $\mathrm{R}$ is the radius of the earth and $\mathrm{g}$ is the acceleration due to gravity on the earth surface. Then the mean density of the earth will be :

A.
$\frac{\pi \mathrm{RG}}{12 \mathrm{~g}}$
B.
$\frac{3 \pi R}{4 g G}$
C.
$\frac{3 g}{4 \pi R G}$
D.
$\frac{4 \pi \mathrm{G}}{3 g R}$
2023 NEET MCQ
NEET 2023

Two bodies of mass $m$ and $9 m$ are placed at a distance $R$. The gravitational potential on the line joining the bodies where the gravitational field equals zero, will be ($G=$ gravitational constant) :

A.
$-\frac{12 G m}{R}$
B.
$-\frac{16 G m}{R}$
C.
$-\frac{20 G m}{R}$
D.
$-\frac{8 G m}{R}$
2023 NEET MCQ
NEET 2023

A satellite is orbiting just above the surface of the earth with period $T$. If $d$ is the density of the earth and $G$ is the universal constant of gravitation, the quantity $\frac{3 \pi}{G d}$ represents :

A.
$T^{2}$
B.
$T^{3}$
C.
$\sqrt{T}$
D.
$T$
2022 NEET MCQ
NEET 2022 Phase 2

A gravitational field is present in a region and a mass is shifted from A to B through different paths as shown. If W1, W2 and W3 represent the work done by the gravitational force along the respective paths, then :

NEET 2022 Phase 2 Physics - Gravitation Question 13 English

A.
W1 < W2 < W3
B.
W1 = W2 = W3
C.
W1 > W2 > W3
D.
W1 > W3 > W2
2022 NEET MCQ
NEET 2022 Phase 2

In a gravitational field, the gravitational potential is given by, $V = - {K \over x}$ (J/Kg). The gravitational field intensity at point (2, 0, 3) m is

A.
$ + {K \over 4}$
B.
$ + {K \over 2}$
C.
$ - {K \over 2}$
D.
$ - {K \over 4}$
2022 NEET MCQ
NEET 2022 Phase 1

A body of mass 60 g experiences a gravitational force of 3.0 N, when placed at a particular point. The magnitude of the gravitational field intensity at that point is

A.
0.05 N/kg
B.
50 N/kg
C.
20 N/kg
D.
180 N/kg
2022 NEET MCQ
NEET 2022 Phase 1

Match List - I with List - II

List - I List - II
(a) Gravitational constant (G) (i) $[{L^2}{T^{ - 2}}]$
(b) Gravitational potential energy (ii) $[{M^{ - 1}}{L^3}{T^{ - 2}}]$
(c) Gravitational potential (iii) $[L{T^{ - 2}}]$
(d) Gravitational intensity (iv) $[M{L^2}{T^{ - 2}}]$

Choose the correct answer from the options given below

A.
(a)-(ii), (b)-(i), (c)-(iv), (d)-(iii)
B.
(a)-(ii), (b)-(iv), (c)-(i), (d)-(iii)
C.
(a)-(ii), (b)-(iv), (c)-(iii), (d)-(i)
D.
(a)-(iv), (b)-(ii), (c)-(i), (d)-(iii)
2021 NEET MCQ
NEET 2021
The escape velocity from the Earth's surface is v. The escape velocity from the surface of another planet having a radius, four times that of Earth and same mass density is :
A.
4$\upsilon $
B.
$\upsilon $
C.
2$\upsilon $
D.
3$\upsilon $
2021 NEET MCQ
NEET 2021
A particle of mass 'm' is projected with a velocity $\upsilon $ = kVe = (k < 1) from the surface of the earth. (Ve = escape velocity)

The maximum height above the surface reached by the particle is :
A.
${{R{k^2}} \over {1 - {k^2}}}$
B.
$R{\left( {{k \over {1 - {k^2}}}} \right)^2}$
C.
$R{\left( {{k \over {1 + {k^2}}}} \right)^2}$
D.
${{{R^2}k} \over {1 + k}}$
2020 NEET MCQ
NEET 2020 Phase 1
A body weighs 72 N on the surface of the earth. What is the gravitational force on it, at a height equal to half the radius of the earth?
A.
32 N
B.
30 N
C.
24 N
D.
48 N
2019 NEET MCQ
NEET 2019
The work done to raise a mass m from the surface of the earth to a height h, which is equal to the radius of the earth, is :
A.
mgR
B.
2mgR
C.
${1 \over 2}$mgR
D.
${3 \over 2}$mgR
2019 NEET MCQ
NEET 2019
A body weight 200 N on the surface of earth. How much will it weight half way down to the centre of the earth?
A.
200 N
B.
250 N
C.
100 N
D.
150 N
2019 AIIMS MCQ
AIIMS 2019

Find gravitational field at a distance of $2000 \mathrm{~km}$ from the centre of earth. (Given $R_{\text {earth }}=6400 \mathrm{~km}, r=2000 \mathrm{~km} \text {, } M_{\text {earth }}=6 \times 10^{24} \mathrm{~kg} \text { ) }$

A.
$1.53 \mathrm{~m} / \mathrm{s}^2$
B.
$7.12 \mathrm{~m} / \mathrm{s}^2$
C.
$3.06 \mathrm{~m} / \mathrm{s}^2$
D.
$1.8 \mathrm{~m} / \mathrm{s}^2$
2018 NEET MCQ
NEET 2018
The kinetic energies of a planet in an elliptical orbit about the Sun, at positions A, B and C are KA, KB and KC, respectively. AC is the major axis and SB is perpendicular to AC at the position of the Sun S as shown in the figure. Then NEET 2018 Physics - Gravitation Question 20 English
A.
KA < KB < KC
B.
KA > KB > KC
C.
KB < KA < KC
D.
KB > KA > KC
2018 NEET MCQ
NEET 2018
If the mass of the Sun were ten times smaller and the universal gravitational constant were ten times larger in magnitude, which of the following is not correct?
A.
Raindrops will fall faster.
B.
Walking on the ground would become more difficult.
C.
Time period of a simple pendulum on the Earth would decrease.
D.
g on the Earth will not change.
2018 AIIMS MCQ
AIIMS 2018

Two satellites $A$ and $B$ revolve round the same planet in coplanar circular orbits lying in the same plane. Their periods of revolutions are $1 \mathrm{~h}$ and $8 \mathrm{~h}$, respectively. The radius of the orbit of $A$ is $10^4 \mathrm{~km}$. The speed of $B$ is relative to $A$. When they are closed in $\mathrm{km} / \mathrm{h}$ is

A.
$3 \pi \times 10^4$
B.
zero
C.
$2 \pi \times 10^4$
D.
$\pi \times 10^4$
2018 AIIMS MCQ
AIIMS 2018

A planet is revolving around the sun in a circular orbit with a radius $r$. The time period is $T$. If the force between the planet and star is proportional to $r^{-3 / 2}$, then the square of time period is proportional to

A.
$r^{3 / 2}$
B.
$r^2$
C.
$r$
D.
$r^{5 / 2}$
2018 AIIMS MCQ
AIIMS 2018

The weight of a body on the surface of the earth is 63 N. What is the gravitational force on it due to the earth at a height equal to half the radius of the earth?

A.
35 N
B.
28 N
C.
18 N
D.
40 N
2017 NEET MCQ
NEET 2017
The acceleration due to gravity at a height at a height 1 km above the rearth is the same as at a depth d below the surface of earth. Then
A.
d = 1 km
B.
d = ${3 \over 2}$ km
C.
d = 2 km
D.
d = ${1 \over 2}$ km
2017 NEET MCQ
NEET 2017
Two astronauts are floating in gravitational free space after having lost contact with their spaceship. The two will
A.
move towards each other.
B.
move away from each other.
C.
will become stationary.
D.
keep floating at the same distance between them.
2017 AIIMS MCQ
AIIMS 2017

A space ship is launched into a circular orbit close to earth’s surface. What additional velocity has now to be imparted to the spaceship in the orbit to overcome the gravitational pull?

(Radius of earth = 6400 km, g = 9.8 m/s$^2$)

A.
3.28 km/s
B.
12 km/s
C.
10 km/s
D.
40 km/s
2017 AIIMS MCQ
AIIMS 2017

What is the maximum height attained by a body projected with a velocity equal to one-third of the escape velocity from the surface of the earth? (Radius of the earth $=R$ )

A.
$R / 2$
B.
$R / 3$
C.
$R / 5$
D.
$R / 8$
2017 AIIMS MCQ
AIIMS 2017

Two satellites $S_1$ and $S_2$ are revolving round a planet in coplanar circular orbits of radii $r_1$ and $r_2$ in the same direction, respectively. Their respective periods of revolution are $1 \mathrm{~h}$ and $8 \mathrm{~h}$. The radius of orbit of satellite $S_1$ is equal to $10^4 \mathrm{~km}$. What will be their relative speed (in $\mathrm{km} / \mathrm{h}$) when they are closest?

A.
$\pi / 2 \times 10^4$
B.
$\pi \times 10^4$
C.
$2 \pi \times 10^4$
D.
$4 \pi \times 10^4$
2016 NEET MCQ
NEET 2016 Phase 2
Starting from the centre of the earth having radius R, the variation of g (acceleration due to gravity) is shown by
A.
NEET 2016 Phase 2 Physics - Gravitation Question 62 English Option 1
B.
NEET 2016 Phase 2 Physics - Gravitation Question 62 English Option 2
C.
NEET 2016 Phase 2 Physics - Gravitation Question 62 English Option 3
D.
NEET 2016 Phase 2 Physics - Gravitation Question 62 English Option 4
2016 NEET MCQ
NEET 2016 Phase 2
A satellite of mass m is orbiting the earth (of radius R) at a height h from its surface. The total energy of the satellite in terms of g0, the value of acceleration due to gravity at the earth's surface, is
A.
${{m{g_0}{R^2}} \over {2\left( {R + h} \right)}}$
B.
$ - {{m{g_0}{R^2}} \over {2\left( {R + h} \right)}}$
C.
${{2m{g_0}{R^2}} \over {R + h}}$
D.
$ - {{2m{g_0}{R^2}} \over {R + h}}$
2016 NEET MCQ
NEET 2016 Phase 1
The ratio of escape velocity at earth (ve) to the escape velocity at a planet (vp) whose radius and mean density are twice as that of earth is
A.
1 : 4
B.
1 : $\sqrt 2 $
C.
1 : 2
D.
1 : 2$\sqrt 2 $
2016 NEET MCQ
NEET 2016 Phase 1
At what height from the surface of earth the gravitation potential and the value of g are $-$5.4 $ \times $ 107 J kg$-$1 and 6.0 m s$-$2 respectively? Take the radius of earth as 6400 km.
A.
1400 km
B.
2000 km
C.
2600 km
D.
1600 km
2015 NEET MCQ
AIPMT 2015
A remote-sensing satellite of earth revolves in a circular orbit at a height of 0.25 $ \times $ 106 m above the surface of earth. If earth's radius is 6.38 $ \times $ 106 m and g = 9.8 ms$-$2, then the orbital speed of the satellite is
A.
9.13 km s$-$1
B.
6.67 km s$-$1
C.
7.76 km s$-$1
D.
8.56 km s$-$1
2015 NEET MCQ
AIPMT 2015
A satellite S is moving in an elliptical orbit around the earth. The mass of the satellite is very small compared to the mass of the earth. Then,
A.
the linear momentum of S remains constant in magnitude.
B.
the acceleration of S is always directed towards the centre of the earth.
C.
the angular momentum of S about the centre of the earth changes in direction, but its magnitude remains constant.
D.
the total mechanical energy of S varies periodically with time.
2015 NEET MCQ
AIPMT 2015 Cancelled Paper
Kepler's third law states that square of period of revoluation (T) of a planet around the sun, is proportional to third power of average distance r between sun and planet i.e. T2 = Kr3 here K is constant. If the masses of sun and planet are M and m respectively then as per Newton's law of gravitation force of attraction between them is F = ${{GMm} \over {{r^2}}}$, here G is gravitational constant. The relation between G and K is described as
A.
K = G
B.
K = ${1 \over G}$
C.
GK = 4$\pi $2
D.
GMK = 4$\pi $2
2014 NEET MCQ
AIPMT 2014
Dependence of intensity of gravitational field (E) of earth with distance (r) from centre of earth is correctly represented by
A.
AIPMT 2014 Physics - Gravitation Question 54 English Option 1
B.
AIPMT 2014 Physics - Gravitation Question 54 English Option 2
C.
AIPMT 2014 Physics - Gravitation Question 54 English Option 3
D.
AIPMT 2014 Physics - Gravitation Question 54 English Option 4
2014 NEET MCQ
AIPMT 2014
A black hole is an object whose gravitational field is so strong that even light cannot escape from it. To what approximate radius would earth (mass = 5.98 $ \times $ 1024 kg) have to be compressed to be a black hole?
A.
10$-$9 m
B.
10$-$6 m
C.
10$-$2 m
D.
100 m
2013 NEET MCQ
NEET 2013 (Karnataka)
A particle of mass 'm' is kept at rest at a height 3R from the surface of earth, where 'R' is radius of earth and 'M' is mass of earth. The minimum speed with which it should be projected , so that it does not return back, is
(g is acceleration due to gravity on the surface of earth)
A.
${\left( {{{GM} \over {2R}}} \right)^{1/2}}$
B.
${\left( {{{gR} \over 4}} \right)^{1/2}}$
C.
${\left( {{{2g} \over R}} \right)^{1/2}}$
D.
${\left( {{{GM} \over R}} \right)^{1/2}}$
2013 NEET MCQ
NEET 2013 (Karnataka)
The radius of a planet is twice the radius of earth. Both have almost equal average mass densities. VP and VE are escape velocities of the planet and the earth, respectively, then
A.
VP = 1.5 VE
B.
VP = 2 VE
C.
VE = 3 VP
D.
VE = 1.5 VP
2013 NEET MCQ
NEET 2013
A body of mass 'm' is taken from the earth's surface to the height equal to twice the radius (R) of the earth. The change in potential energy of body will be
A.
3mgR
B.
${1 \over 3}$mgR
C.
mg2R
D.
${2 \over 3}$ mgR
2013 NEET MCQ
NEET 2013
Infinite number of bodies, each of mass 2 kg are situated on x-axis at distance 1 m, 2 m, 4 m, 8 m, . . . , respectively, from the origin. The resulting gravitational potential due to this system at the origin will be
A.
$ - {4 \over 3}$ G
B.
$-$ 4G
C.
$-$ G
D.
$ - {8 \over 3}$ G
2012 NEET MCQ
AIPMT 2012 Mains
If ${v_e}$ is escape velocity and ${v_o}$ is orbital velocity of a satellite for orbit close to the earth's surface, then these are related by
A.
${v_o} = \sqrt {2{v_e}} $
B.
vo $=$ ve
C.
${v_e} = \sqrt {2{v_o}} $
D.
${v_e} = \sqrt 2 {v_o}$
2012 NEET MCQ
AIPMT 2012 Mains
Which one of the following plots represents the variation of gravitiational field on a particle with distance r due to a thin spherical shell of radius R? (r is measured from the centre of the spherical shell)
A.
AIPMT 2012 Mains Physics - Gravitation Question 45 English Option 1
B.
AIPMT 2012 Mains Physics - Gravitation Question 45 English Option 2
C.
AIPMT 2012 Mains Physics - Gravitation Question 45 English Option 3
D.
AIPMT 2012 Mains Physics - Gravitation Question 45 English Option 4
2012 NEET MCQ
AIPMT 2012 Prelims
The height at which the weight of a body becomes ${\left( {{1 \over {16}}} \right)^{th}}$, its weight on the surface of earth (radius R), is
A.
5R
B.
15R
C.
3R
D.
4R
2012 NEET MCQ
AIPMT 2012 Prelims
A spherical planet has a mass MP and diameter DP. A particle of mass m falling freely near the surface of this planet will experience an acceleration due to gravity, equal to
A.
${{4G{M_P}} \over {D_P^2}}$
B.
${{G{M_P}m} \over {D_P^2}}$
C.
${{G{M_P}} \over {D_P^2}}$
D.
${{4G{M_P}m} \over {D_P^2}}$
2012 NEET MCQ
AIPMT 2012 Prelims
A geostationary satellite is orbiting the earth at a height of 5R above the surface of the earth, R being the radius of the earth. The time period of another satellite in hours at a height of 2R from the surface of the earth is
A.
5
B.
10
C.
6$\sqrt 2 $
D.
${6 \over {\sqrt 2 }}$
2011 NEET MCQ
AIPMT 2011 Mains
A particle of mass m is thrown upwards from the surface of the earth, with a velocity u. The mass and the radius of the earth are, respectively, M and R. G is gravitational constant and g is acceleration due to gravity on the surface of the earth. The minimum value of u so that the particle does not return back to earth, is
A.
$\sqrt {{{2GM} \over {{R^2}}}} $
B.
$\sqrt {{{2GM} \over R}} $
C.
$\sqrt {{{2gM} \over {{R^2}}}} $
D.
$\sqrt {2g{R^2}} $