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Title: Next toppers 2025
Description: This will Help you in class 11 to understand topics Thanks,
Description: This will Help you in class 11 to understand topics Thanks,
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Projectile Motion
DISCLAIMER
“The content provided herein are created and owned by various authors and licensed
to Sorting Hat Technologies Private Limited (“Company”)
...
The author of the content shall be solely
responsible towards, without limitation, any claims, liabilities, damages or suits which
may arise with respect to the same
...
Projectile motion is an
example of 2-D motion
...
Oblique or angular projectile motion
...
Horizontal projectile motion
...
Definitions
When a body is thrown at an
angle from horizontal then
motion under gravity is known
as oblique projectile motion
Concept Reminder
The shape of the trajectory
of motion of an object is not
determined by acceleration alone
but also on initial conditions (like
initial velocity)
...
1
...
Projectile Motion
Projectile Motion
2
...
For x-axis:
1
x ux t a x t 2
2
KEY POINTS
ax 0
x ucos t t
x
u cos
...
(ii)
Rack your Brain
From equation (i) and (ii)
y u sin
x
1 x
g
u cos 2 ucos
y x tan
gx2
2u2 cos2
2
The equation of projectile is
5x2
...
Let tan A and
g
2
2u cos2
B
So, y Ax Bx2
3
...
y x tan
gx2
2u2 cos2
x
y x tan 1
R
Concept Reminder
Vertical component of velocity
is zero when particle moves
horizontally i
...
, at the highest
point of trajectory
...
O
...
O
...
ucos ˆi u sin ˆj
(ii)
Rack your Brain
Two seconds after projection
a projectile is travelling in a
direction inclined at 30° to the
horizontal after one more sec,
it is travelling horizontally, what
are the magnitude and direction
of its velocity ?
At T
...
P
...
O
...
u cos ˆi 0ˆj
4
...
O
...
(Point of Impact)
Concept Reminder:
At highest point of projectile
av
vP
...
I
...
Time of Flight:
The time taken by projectile between point of
projection and point of impact is known as time
of flight
...
Find its velocity of point of
impact
...
5
...
If time taken is T during motion between points
A to B
1
So, Sy uy T a y T2
2
g
0 uy T T2
2
T
2uy
g
2u sin
T
g
Definitions
During
projectile
motion
maximum height attained by
object on vertical axis is known
as maximum height
...
Rack your Brain
For a projectile, what is the ratio
of maximum height reached to
the square of flight time?
At maximum height
vy 0
so, v 2y u2y 2a y Sy
0 u2y 2gH
H
H
u2y
2g
u2 sin2
2g
at 90
H becomes maximum, so greatest height
6
...
Concept Reminder
For oblique projectile
* T
* H
2uy
g
u2y
2g
* R U T
2u uy
g
Time taken to reach at point from point A is T
(time of flight)
...
Find the angle of
projection
...
Projectile Motion
R ux
Keywords
R
u2 sin 2
g
Concept Reminder
at = 45° range becomes maximum so,
Rmax
u2 sin 2 45 u2
u2
Rmax
g
g
g
Value of height when range is maximum,
h
It was Gallileo who first stated the
principle of physical independence
of the horizontal and vertical
motion of a projectile in his book
“Dialogue on the great world
system” in 1632
u2 sin2 45 u2
2g
4g
Relation between R and H:
R
u2 sin 2
g
...
(ii)
From (i) and (ii)
u2 sin 2
g
R
H u2 sin2
2g
Concept Reminder:
Relation between R and H:
R tan 4H
R
4
H tan
Projectile Motion
R tan 4H
8
...
A1
According to question
R nH
u2 sin 2 n u2 sin2
g
2g
tan
4
n
4
tan1 (Angle of projection)
n
if R = 4H
4
Then angle of projection is tan1 1
n
tan 1
45
If R = 2H
4
tan
2
tan1 2
2
5
, sin
1
5
9
...
The
equation of trajectory is y 3x
gx 2
...
Angle of projection
2
...
Time of flight
4
...
Range
6
...
A2
Equation of trajectory
y x tan
y 3x
1
...
u2 cos2 1
u2 cos2 60 1
1
u2 1
4
u 2m s
Projectile Motion
3
...
2 3 sec
...
H
u2 sin2
43
0
...
x
gx
2 3
y 3x
3 1
2
g
2
R
2 3
0
...
6
...
Find (i) Angle of projection
(iii) Range
(v) Maximum height
A3
(ii) Time of flight
(iv) Initial speed
Initial velocity
u uxˆi uyˆj 6iˆ 8ˆj
u cos 6
1
...
Time of flight
T
3
...
6 sec
...
6 m
10
4
...
Hmax
u2y
2g
82
3
...
Projectile Motion
Q3
3
3m s
2
Q4
A body of mass m is thrown at angle with horizontal from ground with
initial velocity v
...
Velocity is half of initial velocity
...
Velocity is
A4
3
times of initial velocity
2
Velocity at highest point = u cos
1
...
u cos
Þ
30
u
2
3u
2
Q5
A body is thrown at angle from horizontal with initial velocity u
...
1
...
2
...
Let at point P, velocity becomes perpendicular to initial velocity
So, u vp 0
u cos ˆi u sin ˆj ucos ˆi u sin gt ˆj 0
u2 cos2 u2 sin2 u sin gt 0
Projectile Motion
u2 cos2 sin2 u sin gt 0
2
...
Important Concept
Comparisons of Two Projectiles of Equal Range:
When two projectile are thrown with equal speeds
at angle and 90 then their ranges are equal
but maximum height attained are di erent and
time of flight are also di erent
...
q
90 –
R1 and R2
30°
60°
R 1 = R2
60°
30°
R 1 = R2
16°
74°
R 1 = R2
74°
16°
R 1 = R2
Definitions
According to Galileo, in his book
“Two New Sciences” stated
that for elevations by which
exceed or fall short of 45° by
equal amounts, the ranges are
equal
...
H1
H2
H1
H2
sin2
cos2
tan2
Concept Reminder:
At angle and 90 – :
tan2
H1 H2
4
R1 R2
2
2
u sin cos
4g 2
2
2u2 sin cos
1 1 R2
g
4 4 16
H1H2
R2
16
u2 sin2 u2 cos2 u2
2g
2g
2g
H1 H2
u2
2g
(Maximum height when thrown vertically upward
from ground)
Time of Flight of Projectiles at (q) and (90–):
T2
Projectile Motion
2u sin 90
2u sin
2ucos
, T2
g
g
g
T1
T2
sin
tan
cos
tan
R2
16
H1 H2
u2
2g
T1
tan
T2
T1 T2 R
H1 H2
T1
H1H2
R 4 H1H2
T1
H1
tan2
H2
Rack your Brain
Two stones are projected with
the same magnitude of velocity,
but making di erent angles
with horizontal
...
T1T2
4u2 sin cos
g
2
2R
g
T1 T2 R
Concept Reminder
AIl projectile will go upto the
maximum horizontal distance,
if it is projected at 45° with the
horizontal
...
u2 sin 2 45 u2
g
g
Rmax
u2
g
15
...
A6
Range is maximum at 45
H
R
u2 sin2 u2 sin2 45 u2
max
2g
2g
4g
4
Q7
A person can throw a body to attains maximum range
...
Then what is relation
between maximum height and maximum range
...
(ii)
...
Q8
Find the relation between -
(1) RA, RB and RC
(3) HA, HB and HC
A8
1
...
H
3
...
(2) TA, TB and TC
(4) uA, uB and uC
u u u
y A
y B
y C
u2y
2g
2uy
g
RC RB RA
R
2uxuy
g
ux C ux B ux A
17
...
Find1
...
Initial speed
T=
2u sin
10
g
u sin
10 10
50 m s
2
Range R 200
200
2 u sin
tan
2
u2 sin 2 2u2 sin cos
g
g
cos
g sin
2 50
2
10 200
5000 5
2000 2
2
50
u2 sin2
H
125m
2g
2 10
Projectile Motion
sin
5
29
T
2u sin
g
u
gT
2 sin
u
10 10
29 10 29
25
18
...
Find, angle of projection and initial speed
...
gx 2
y x tan
2u2 cos2
x
y x tan 1
R
4
4 4 tan 1
18
14
1 tan
18
18 9
14 7
9
tan1
7
tan
2
...
Change in Linear Momentum:
We know that change in momentum
P m vF vI
Now we discuss about change in momentum
between di erent points on a projectile path
...
2
...
4
...
O
...
O
...
O
...
O
...
Between P
...
P and T
...
P:
P mu sin ˆj
Rack your Brain
A particle of mass 100 g is
fired with a velocity 20 m sec–1
making an angle of 30° with the
horizontal
...
Concept Reminder
Change in momentum of projectile
during its half journey and full
journey is
-Musin ĵ and -2 musin ĵ
respectively
...
Between P
...
P and P
...
I :
P 2mu sin ˆj
3
...
O
...
O
...
u sin
P mu sin ˆj
g
2u sin
tT
P 2mu sin ˆj
g
Angular Momentum j :t top
It is moment of linear momentum
...
Concept Reminder
If in case of projectile motion range
R is n times of maximum height H
i
...
, R = nH
Then angle of projection
4
tan1
n
Keywords
Linear momentum
Angular momentum
d
sin
R
d R sin
J P d PR sin
J RP
J R,
J P,
JR 0
JP 0
Rack your Brain
A particle is projected from
ground with speed 80m/s at
an angle 30 with horizontal
from ground
...
21
...
Find angular momentum about point of projection
1
...
In above is question if angle of projection are (a) 45°
(b) 60°
3
...
O
...
A11
1
...
(a)
v 2 sin2
mv 3 sin2 cos
mv cos
2g
2g
J0
J0
(b)
3
...
Q12
Projectile of mass m is thrown with initial velocity u at an angle with
horizontal from ground
...
O
...
A12
tan
tan
tan
2H
R
2 u2 sin2 g
2g 2u2 sin cos
tan
2
Kinetic energy, gravitational, potential energy and total mechanical energy
when projectile thrown from grown:-
(i)
G
...
E mgh
(ii)
KE
1
mu2
2
23
...
E K
...
E
A
...
O
...
G
...
E = 0
1
2
...
Total M
...
T
...
P (H = H)
mgu2 sin2
E0 sin2
2g
1
...
P
...
K
...
Total M
...
P
...
E
C
...
O
...
G
...
E 0
2
...
E
1
mu2 E0
2
3
...
E = E0
Total M
...
at every point (P
...
P, T
...
P and P
...
I) is same
...
O
...
A13
1
mv 2 E0 4J
2
KE TOP E0 cos2
Projectile Motion
4
1
2J
2
P
...
O
...
Q14
Find angle of projection when kinetic of energy at topmost point is
3
times
4
of initial kinetic energy
...
ET
...
P 3 K
...
O
...
Projectile Motion
1
3 1
u2 cos2 mu2
2
4 2
3
cos2
4
Direction of velocity of projectile when thrown
by making angle q with horizontal from ground:-
v
v
p y
tan
v
v
p x
p y
1
...
O
...
P
...
I t T
2u sin
= Time of flight
g
Concept Reminder
In terms of H :tan
v
v
p y
p x
h
tan tan tan
u2 sin2 2gh
,
u cos
u2 sin2
2g
At T
...
P
v 2y u2y 2a y sy ,
tan 0
26
...
P
...
P and T
...
P
2
...
O
...
O
...
v =
Total displacement
Total time
2
R
2
H
2
T
v =
2
v
2u2 sin cos
u2 sin2
2g
2g
u sin
g
v
u4 sin2
4 cos2 sin2
2
4g
u sin
g
u2 sin
2g
v
u sin
g
2
...
Projectile Motion
Q15
Horizontal Projectile:When a projectile thrown from certain height H
horizontal direction then
ux u ,
ax 0
uy 0 ,
a y g
1
...
sy uy t a y t 2
2
x2
1
so, sv g 2
2 v
t
1
...
e
...
When a projectile is thrown from height H
horizontally and dropped from same height
strike to the ground in same time
...
Concept Reminder
In Horizontal projectile
T
2H
g
R uT u
2H
g
1
sx ux t a x t 2
2
R uT u
2H
g
3
...
A
bullet pierces A and them B
...
If the bullet is travelling
horizontally at A calculate the
velocity of bullet at A
...
Concept Reminder
The path of a projectile as seen
from another projectile is a
straight line
...
30
...
when it is at height 19
...
standing on ground a bomb will strike to the person
...
A16
1
...
T
3
...
6
2 sec
...
8
31
...
If the steps are 0
...
Find
value of n
...
Q17
A person is throwing a ball in horizontal direction from a 18m height building
...
2m
height from ground
...
Then calculate
initial velocity of ball
...
2
H 9
...
2m
Ru
2H
g
6
...
8
9
...
2
2
6
...
4 m s
1
...
When bullets are fired with same velocity u from
stair give in di erent direction then maximum
area covered by any bullet
...
Time of flight (T):
1
sy uy t a y t 2
2
H u sin T
Concept Reminder
If an object is dropped from
horizontally
flying
aeroplane
the object falls in a straight line
vertically down with respect to
pilot/plane
...
1 2
gT
2
2H 2u sin T gT2
gT2 2u sin T 2H 0
T
u sin u2 sin2 2gH
g
Range:
1
R sx ux t a x t 2 , R u cos T
2
Maximum time when strike to the ground
...
t2
2h
g
2 Hh
g
T t 1 t2
2h
g
2 Hh
g
dT
d 2h d 2 H h
dh dh g dh
g
dT
dh
2
g
d h d Hh
dh
dh
dT
dh
2
g
1
1 1
2 h 2 Hh
dT
0
dh
35
...
2 1
1
g 2 h 2 H h
0
2
2
1 2
1
2
2 gh
2 g Hh
2
2
gh g H h
Hh h
2h H
h
H
2
Collision of two projectile :Check:1
...
Step - II:
(i)
x R 1 R2
(ii)
x R 1 R2
(iii)
x R 1 R2
Both called the v and V:-
UA y UB y
Projectile Motion
v sin60 V sin 90
3
V
v
2
v
2
V
3
Keywords
Collision
36
...
uA y uB y
10 sin 30 5 2 sin 45
10 5 2
2
2
55
R1
2u2 sin cos
g
R2
2 u2 sin cos
g
R1 2
R2
100 1
3
10 2 2
2 25 2
1
1
10
2
2
R1 5 3
R2
50
5
10
R1 1
...
660
R1 R2 8
...
6
R 1 R2 x
Collision not occur
...
Projectile Motion
2
...
The observer B sitting on road
will see the ball moving in a parabolic path
...
Case (2) : When a ball is thrown at some angle ‘’ in the direction of motion
of the truck horizontal & vertical component of ball’s velocity w
...
t
...
Horizontal &
vertical component of ball’s velocity w
...
t
...
Case (3) : When a ball is thrown at some angle ‘’ in the opposite direction
of motion of the truck horizontal & vertical component of ball’s velocity
w
...
t
...
Horizontal & vertical component of ball’s velocity w
...
t
...
38
...
r
...
observer A standing on the moving platform is ucos and usin respectively
...
r
...
observer B sitting on
the ground is ux = ucos and uy = usin + v respectively
...
r
...
observer A standing on the moving platform is ucos and usin respectively
...
r
...
observer B sitting on
the ground is ux = ucos and uy = usin – v respectively
...
Projectile Motion on an Inclined Plane:Let a particle be projected up with a speed u from an inclined plane which
makes an angle with the horizontal velocity of projection makes an angle
with the inclined plane
...
Hence the component of initial velocity parallel and perpendicular to the
plane are equal to ucos and usinrespectively
...
e
...
e
...
Time of flight :
We know for oblique projectile motion T
or we can say T
2u sin
g
2u
a
Time of flight on an inclined plane T
2u sin
g cos
Projectile Motion
Maximum height :
We know for oblique projectile motion H
or we can say H
u2 sin2
2g
u2
2a
40
...
Projectile Motion
(iii)
u2
g(1 sin )
EXAMPLE
Q1
Sol:
A particle will project with 20 m/s at angle 53° with horizontal find out time
at which its velocity will make an angle 45° will horizontal
...
Sol:
R= u
Projectile Motion
40 = u
2h
g
2 80
10
40 = 4 u
u = 10
42
...
Find out height
of the tower
...
Sol:
| v | 40
= 30°
43
...
Find out change in momentum from t = 0 to t
...
It speed of bullet at the instant of firing is 500 m/sec
...
Q7
Particle will project for parabolic path then find out relation between elevation angle at top most point observed from projection point and angle of
projection
...
[i
...
magnitude of velocity]
i
...
component of a along v
non consider
a v
av
ˆ
v
,
only magnitude v |v|
v
23
|a|
10
5
10
5
m / s2
2
45
...
Find out ratio of range for both if ratio
of minimum kinetic energy is 1 : 2 and ratio of Hmax is 3 : 1
...
cos
Rµ
Kmin Hmax
R
R
1 3
2 1
R1
R
Projectile Motion
(i)
Kmin µ cos2
cos µ
(ii)
Kmin
Hmax µ sin2
sin Hmax
3
2
46
...
Projectile Motion
48
...
Title: Next toppers 2025
Description: This will Help you in class 11 to understand topics Thanks,
Description: This will Help you in class 11 to understand topics Thanks,