A triangle has side lengths of (x-8) (4x2 – 3) and (4x2 + 4). If the perimeter is 650 units, what is the value of x?

Question

asked Jan 8, 2022 163k views

1 Answer

Albeiro · Answer 1 · 2022-01-14T13:03:37+0000

Given:

The three sides of a triangle are:

(x-8),(4x^2-3),(4x^2+4)

The perimeter of the triangle 650 units.

To find:

The value of x.

Solution:

Perimeter of a triangle is the sum of all three sides of the triangle. So,

Perimeter=(x-8)+(4x^2-3)+(4x^2+4)

Perimeter=8x^2+x-7

The perimeter of the triangle 650 units.

8x^2+x-7=650

8x^2+x-7-650=0

8x^2+x-657=0

Splitting the middle term, we get

8x^2+73x-72x-657=0

x(8x+73)-9(8x+73)=0

(x-9)(8x+73)=0

Using zero product property, we get

$(x-9)=0\text{ and }(8x+73)=0$

$x=9\text{ and }x=-(73)/(8)$

For negative value of x, the side
(x-8) will be negative, which is not possible because the side of a triangle cannot be negative.

Therefore, the only value of x is 9.