Question

The equation of path of projectile projected at angle θ with initial velocity u, from horizontal plane is:​

Answer 1

Consider the following equations of a projectile with angle

of projection θ and initial velocity v

0

- here

x=v

ox

t refer to book ;

rearrange the expression for time t ,

t=

v

0x

x

substituted

v

ox

x

for in the expression

y=(v

0

sinθ)t−

2

1

gt

2

y=v

oy

(

v

ox

x

)−

2

1

g(

v

0x

x

)

2

substitute v

o

cosθ for v

ox

sin θ for v

oy

in the above expression.

Y=(v

0

sinθ)(

v

o

cosθ

x

)−

2

1

g(

v

o

cosθ

x

)

2

Hence the obtained equation of the projectile is

Y=(tanθ)x−(

2(v

o

)

2

gsec

2

θ

)x

2

The expression is to be obtained in the form of

Y = ax+bx

2

.

hence it is a parabolic motion so from it we get all the required quantities

( 1 ) T =

g

2v

o

sinθ

( 2 ) H

max

=

2g

v

o

2

sin

2

θ

( 3 ) Range =

g

v

o

2

sin2θ