A long jumper leaves the ground with an initial velocity of 12 m/s at an angle of 28-degrees above the horizontal. Determine the time of flight, the horizontal distance, and the peak height of the long-jumper.

Question

drwls · Answer

The time of flight is T = 2(Vo/g)sin28 The horizontal distance is L = (Vo^2/g)sin56 The peak height is H = Vo^2*sin^2(28)/(2g)

sadasd · Answer

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