Q. 6.36TI

Question

Factor completely using trial and error:

$56 q^{3} + 320 q^{2} - 96 q$

Step-by-Step Solution

Verified

Answer

The factors of $56 q^{3} - 320 q^{2} - 96 q$ are $8 q (7 q - 2) (q + 6)$ .

1Step 1. Given and explanation

We have an equation $56 q^{3} - 320 q^{2} - 96 q$ . We will first take out the greatest common factor from the equation to reduce it to the simplest form.

Then we will find the factors accordingly and will get the factor set for the equation whose product will come out to be the given equation.

2Step 2. Taking the greatest common factor out.

We have the equation and through it, we can see that the greatest common factor here is $8 q$ .

So after taking out the factor, we get a resulting equation as $8 q (7 q^{2} - 40 q - 12)$ .

3Step 3. Finding out the factors.

We have $8 q (7 q^{2} - 40 q - 12)$ .

We will find factors of the first and late terms.

The first term is $7$ and it's factor is $(7 \times 1)$ .

The last term is $- 12$ and it's factors are $(1 \times - 12), (2 \times - 6), (3 \times - 4)$ .

4Step 4. Trying out and finding the correct factor set.

The possible factors are-

Possible factors	Product
$(7 q + 1) (q - 12)$	$7 q^{2} - 76 q - 12$
$(7 q - 12) (q + 1)$	$7 q^{2} - 5 q - 12$
$(7 q + 2) (q - 6)$	$7 q^{2} - 40 q - 12$
$(7 q - 6) (q + 2)$	$7 q^{2} + 8 q - 12$
$(7 q + 3) (q - 4)$	$7 q^{2} - 25 q - 12$
$(7 q - 4) (q + 3)$	$7 q^{2} + 17 q - 12$