Question

If a baseball player hits a baseball from 4 feet off the ground with an initial velocity of 64 feet per second, how long will it take the baseball to hit the ground? Use the equation h = –16t2 + 64t + 4.

A. 2 plus or minus square root of 17 end root over 2

B. quantity of 2 plus or minus square root of 17 all over 2

C. 2 plus or minus 4 square root of 17

D. quantity of 16 plus or minus square root of 17 all over 2

Answer 1

`t = 2 \pm (√(17))/(2)`

Step-by-step explanation:

As we know that the position of the ball is related with time given as

`h = -16 t^2 + 64 t + 4`

now when ball hit the ground then we have

h = 0

so we will have

`-16 t^2 + 64 t + 4 = 0`

`-4 t^2 + 16 t + 1 = 0`

so here by solving the above equation we have

`t = (-16 \pm √(256 + 16))/(-8)`

`t = 2 \pm (√(17))/(2)`

Answer 2

Answer;

A.
`x = 2 +/- sqrt(17) / 2`

Explanation;

• Using the equation given we can calculate the value of t, time taken by the basket ball to hit the ground.

`h = -16t^2 + 64t + 4 \\0 = -16t^2 + 64t + 4 \\16t^2 - 64t - 4 = 0 \\4(4t^2 - 16t - 1) = 0 \\4t^2 - 16t - 1 = 0 \\t = (-b +/- sqrt(b^2 - 4ac)) / 2a \\t = (16 +/- sqrt(256 + 16)) / 8 \\t = (16 +/- sqrt(272)) / 8 \\t = (16 +/- 4 sqrt(17)) / 8 \\t= 2 +/- sqrt(17) / 2`