Given the position of the particle and using interval notation, when is the particle moving left and when is it moving right

Question

asked Aug 26, 2023 104k views

1 Answer

Pranav Singh · Answer 1 · 2023-08-31T02:24:54+0000

we have the expression

Factor (2/3)t

$(2)/(3)t(t^2-(27)/(4)t^{}-27)$

Solve the quadratic equation

using the formula

a=1

b=-27/4

c=-27

$t=\frac{-(-(27)/(4))\pm\sqrt[]{(-(27)/(4))^2-4(1)(-27)}}{2(1)}$
$t=\frac{(27)/(4)\pm\sqrt[]{(2457)/(16)}}{2}$
$t=(27)/(8)\pm\frac{\sqrt[]{2457}}{8}$

The values of t are

t=-2.82 and t=9.57

therefore

the intervals are

(-infinite, -2.82)