Chapter 1 - Section 1.2 - Quadratic Equations - 1.2 Assess Your Understanding - Page 102: 101

$a.\quad 6$ seconds $b.\quad 5$ seconds

$a.$ On the ground, s=0. $96+80t-16t^{2}=0$ Divide with -16 and write in standard form $-6-5t+t^{2}=0$ $t^{2}-5t-6=0$ Factoring, $-6$ and $+1$ are factors of -6 and their sum is -5, $(t+1)(t-6) =0$ Ignoring the negative solution, $t=6 $ seconds. $b.$ We want to find t when s=96 $96+80t-16t^{2}=96$ $80t-16t^{2}=0$ $16t(5-t)=0$ $t=0$ is the initial time (the ball was initially thrown up...) $t=5$ s (is the time it takes for the ball to fall back down to the height from which it was thrown up)