A body is thrown with a speed of 20m/s at an angle of 60 with the horizontal find the time gap between the two positions
Answers
Question: A body is thrown with a speed of 20m/s at an angle of 60 with the horizontal find the time gap between the two positions.
Solution:-
Let the horizontal component be x and vertical component be y.
X = v(cos theta)t
Y= v(sin theta)t-1/2 (gt^2)
Initially the slope of the ball to the horizontal =sin theta/cos theta =tan theta
At any time “t” the slope of the ball
=v (cos theta)t/v (sin theta)t-1/2 (gt^2) =dy/dx
If the direction of the ball is perpendicular to the initial direction then:
(dy/dx)*(tan theta) = -1
So,
V(sin^2theta)t-1/2 (gt^2)/V (cos theta )t*(tan theta ) = -1
Hence :-
V (sin^2theta )-(gt*sin theta ) = -(Vcos^2theta )
Thus:-
V (sin^2theta +cos^2theta) =gt (sin theta )
V=gt (sin theta )
So , coming back to the question
Time at which the velocity is perpendicular to the initial velocity is given by T=v/g (sin theta )
Replacing them with numerical values we get:-
T=20/10 × sin 60
T=20/10 × √3/2
T=2 × 0.866 =1.732
Therefore after 1.732 seconds the initialvelocity would be perpendicular to the velocity.