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14 votes
14 votes
a ball is dropped from rest at a height of 89m above the ground. (a)what is it's speed just before it hits the ground? (b) how long does it take to reach the ground?​

User Mygod
by
2.7k points

1 Answer

16 votes
16 votes

Answer:

(a) 41.75m/s

(b) 4.26s

Step-by-step explanation:

Let:

Distance, D = 89m

Gravity,
g = 9.8 m/
s^(2)

Initial Velocity,
u = 0m/s

Final Velocity,
v = ?

Time Taken,
t = ?

With the distance formula, which is

D =
ut +
(1)/(2) gt^2

and by substituting what we already know, we have:

89 =
(1)/(2)×9.8×
t^(2)

With the equation above, we can solve for
t:


t=\sqrt{(89(2))/(9.8)} \\t=\sqrt{(178)/(9.8) } \\t=√(18.16) \\t=4.26 seconds

Now that we have solved
t, we can use the following velocity formula to solve for
v:


v = u + at, where
a is also equals to
g, so we have


v = u + gt

By substituting
u = 0,
g = 9.8, and
t = 4.26,

We have:


v = 0 + 9.8(4.26)\\v = 41.75m/s

User Aleth
by
2.2k points