Question 1

1: A baseball is hit 4 feet above the ground leaves the bat with an initial speed of 98 ft/sec at an angle of 0 45 is caught by an outfielder at a height of 3 feet.

Question 2

Answer:

299.36 feet

Step-by-step explanation:

$To \ find \ the \ distance \ of \ the \ ball \ from \ the \ home \ plate. \\ \\ From \ the \ given \ information:$

$Height \ h = 4 \ ft$

$Initial \ speed \ V_o = 98 \ ft/s ec$

$The \ angle \ \theta = 45^0$

$Acceleration \ due \ to \ gravity (g)= 32.2 \ ft/s$

$U_x = V_o \ cos 45 = (98)/(√(2))$

$U_y = V_o \ sin 45 = (98)/(√(2))$

So;

S_y = u_y t - (1)/(2)gt^2

-1 =(98)/(√(2))t - (1)/(2)*32*1.85t^2

By solving:

$t_1 = 4.32 \ sec$

Thus;

$horizontal \ distance = U_x t$

= (98)/(√(2))* 4.32

$\mathbf{=299.36 \ feet}$

$\mathbf{Thus \ , the \ distance \ from \ the \ home \ plate \ = \ 299.36 \ feet}$

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