A baseball is thrown with a speed of 40m/s at an angle of 30 degrees. Neglecting

Question

A baseball is thrown with a speed of 40m/s at an angle of 30 degrees. Neglecting 
friction what is the speed of the ball in m/s when it reaches a height of 10 meters?

Anonymous · Accepted Answer

Vy = sqrt(Uy^2 - 2gh); Uy = U sin(theta)
Vx = Ux = U cos(theta)

So |V| = sqrt(Vy^2 + Vx^2) = sqrt(Uy^2 - 2gh + Ux^2) = sqrt(U^2 - 2gh) = sqrt(40^2 - 2*9.8*10) = 37.46998799 = 37.47 ANS B.

Note that U^2 = Uy^2 + Ux^2.