A baseball is popped straight up into the air and has a hang-time of 6

1.	A baseball is popped straight up into the air and has a hang-time of 6.25s. Determine the height to which the ball rises before it reaches its peak.(Hint : the time to rise to the peak is one half the total hang time )
Answer» 48 Meters Given: Acceleration = - 9.8 meter / sec^2 Final Velocity = 0 m/sec t = 3.13 SECONDS To Find: d = ? Solving: FIRST USING: Final Velocity = Initial Velocity + acceleration * time Now substituting the values in the formula: 0 meter/sec = VI + (-9.8 meter/ second^2) * (3.13 seconds) 0 m/sec = Vi - 30.674 m/sec Vi = 30.674 m/sec Rounding we get = 30.7 m/sec Now using the formula: vf^2 = vi^2 + 2ad Substituting the values in this formula: (0 m/sec)^2 = (30.7 m/sec)^2 + 2(-9.8 m/s^2)(d) 0 m^2/sec^2 = (940 m^2/sec^2) + (-19.6 m/sec^2)(d) -940 m^2/s^2 = (-19.6 m/s^2) d d = (-940 m^2/sec^2)/(-19.6 m/sec^2) d = 48.0 meters Therefore, the distance traveled is 48 meters.

A baseball is popped straight up into the air and has a hang-time of 6.25s. Determine the height to which the ball rises before it reaches its peak.(Hint : the time to rise to the peak is one half the total hang time )

Answer»

48 Meters

Given:

Acceleration = - 9.8 meter / sec^2

Final Velocity = 0 m/sec

t = 3.13 SECONDS

To Find:

d = ?

Solving:

FIRST USING:

Final Velocity = Initial Velocity + acceleration * time

Now substituting the values in the formula:

0 meter/sec = VI + (-9.8 meter/ second^2) * (3.13 seconds)

0 m/sec = Vi - 30.674 m/sec

Vi = 30.674 m/sec

Rounding we get = 30.7 m/sec

Now using the formula:

vf^2 = vi^2 + 2*a*d

Substituting the values in this formula:

(0 m/sec)^2 = (30.7 m/sec)^2 + 2*(-9.8 m/s^2)*(d)

0 m^2/sec^2 = (940 m^2/sec^2) + (-19.6 m/sec^2)*(d)

-940 m^2/s^2 = (-19.6 m/s^2) * d

d = (-940 m^2/sec^2)/(-19.6 m/sec^2)

d = 48.0 meters

Therefore, the distance traveled is 48 meters.

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