How do you add #(x + 4)/(2x +6) +3/(x^2-9)#?

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Answer 1 · 2015-05-23T11:19:00

It's all about using factoring to "whittle down" these guys.

First, 2x + 6 is 2 times x + 3.

#(x+4)/(2(x+3)) + 3/(x^2-9)#

Also, #x^2 - 9# is the difference of squares, so it can be factored into (a+b) and (a-b).

#(x+4)/(2(x+3))+3/((x+3)(x-3))#

The common denominator is 2(x+3)(x-3)

#((x+4)(x-3))/(2(x+3)(x-3))+6/(2(x+3)(x-3))#

Now simplify.

#((x+4)(x-3) + 6)/(2(x+3)(x-3)) = (x^2 + x - 12 + 6)/(2x^2 - 18) = (x^2 + x - 6)/(2x^2-18)#

This might be the final answer, but we need to check for any common factors in the numerator and denominator.

#(x^2+x-6)/(2x^2-18) = ((x+3)(x-2))/(2(x+3)(x-3))#

Aha! The #(x+3)#s can cancel out

#((x-2))/(2(x-3)) = (x-2)/(2x-6)#

Final Answer

Answer 2 · 2015-05-23T11:21:25

#(x+4)/(2x+6) +3/(x^2-9)#

As with simple fractions, the first step is to create a common denominator.

Since #2x+6 = 2(x+3)# and #x^2-9=(x+3)(x-3)#
the obvious choice for a common denominator is
#2(x+3)(x-3)#

and our addition becomes
#((x+4)(x-3) + 3(2))/(2(x+3)(x-3))#

#=(x^2 +x -12 +6)/(2(x+3)(x-3))#

#=((x+3)(x-2))/(2(x+3)(x-3))#

#=(x-2)/(2(x-3))#