A body of mass 200gm is projected at angle of 30° with horizontal with velocity 40m/s calculate net velocity one second after projection
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Answered by
0
Answer:
R.E.F image
u=40m/s
θ=30
∘
g=9.81
Time of flight, T=
g
2usinθ
Maximum Height, H=
2g
u
2
sin
2
θ
Horizontal Range, R=
g
u
2
sin2θ
Time taken to reach the
max.height, t =
2
T
4=
2×9.8
(40)
2
(sin30
∘
)
2
=20.408m
=20.41m
R=
9.8
(40)
2
sin2×30
∘
=141.4m
t=
2
I
=
g
usin3θ
=2.041s
Ans =141.4m,20.41m,2.041s (C)
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