Question

An arrow is shot vertically upward from a platform 19ft high at a rate of 163ft/sec. When will the arrow hit the ground? Use the formula: h=−16t2+v0t+h0. (Round your answer to the nearest tenth.)

Answer 1

Answer: 10.3 s

Explanation:

Given

The height of the arrow is given by
`h=-16t^2+v_ot+h_o`

At
`t=0, h=19\ ft`and
`v_o=163\ ft/s`

When arrow hits ground, h becomes 0 i.e.

`\Rightarrow 0=-16t^2+163t+19\\\Rightarrow 16t^2-163t-19=0\\\\\Rightarrow t=(163\pm √((-163)^2+4(16)(19)))/(2(16))\\\\\Rightarrow t=-0.115,10.30\ s`

Neglecting the negative value of t

So, the arrow hits the ground after 10.30 s