A projectile is shot at a velocity of $1 m/s$ and an angle of $pi/6$ . What is the projectile's peak height?

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Answer 1 · 2017-11-06T06:10:48

H=1/8g m

Let us consider only the vertical motion of the projectile .Let it's velocity be v then it's velocity along the vertical direction is vsin $theta$

where $theta$ is the angle made by the velocity of the projectile along the horizontal direction .

The only acceleration along the vertical direction is the acceleration due to gravity g.

At the peak point the velocity of the projectile becomes zero . therefore the final velocity of the projectile is zero .

Let us use the kinematic equation $v^2=u^2-2gH$

where u is the initial velocity v is the final velocity and H is the maximum height reached by the projectile .

$0=(usintheta)^2-2gH$

$H=((usin(pi/6))^2)/(g*2)$
$H=1/(8g) m$ is the maximum height reached by the projectile

A projectile is shot at a velocity of 1 m/s 1 m/s and an angle of pi/6 pi/6 . What is the projectile's peak height?