What is the solution set for $\frac{30}{x^{2} - 9} - \frac{5}{x - 3} = \frac{9}{x + 3}$ $30/(x^2-9) - 5/(x-3) = 9/(x+3)$ ?

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What is the solution set for $\frac{30}{x^{2} - 9} - \frac{5}{x - 3} = \frac{9}{x + 3}$ $30/(x^2-9) - 5/(x-3) = 9/(x+3)$ ?

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Answer 1 · 2015-08-11T22:50:41

I found no real solution!

Explanation:

You can write it as:
$\frac{30}{(x + 3) (x - 3)} - \frac{5}{x - 3} = \frac{9}{x + 3}$ $30/((x+3)(x-3))-5/(x-3)=9/(x+3)$
the common denominator can be: $(x + 3) (x - 3)$ $(x+3)(x-3)$ ; so you get:
$\frac{30 - 5 (x + 3)}{(x + 3) (x - 3)} = \frac{9 (x - 3)}{(x + 3) (x - 3)}$ $(30-5(x+3))/((x+3)(x-3))=(9(x-3))/((x+3)(x-3))$
$(30-5(x+3))/cancel(((x+3)(x-3)))=(9(x-3))/cancel(((x+3)(x-3)))$
$30-5x-15=9x-27$
collect $x$ on the left:
$-14x=-42$
$x=42/14=3$
BUT substituting $x=3$ into the original equation you get a division by zero!!! We have no real solutions.

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What is the solution set for $\frac{30}{x^{2} - 9} - \frac{5}{x - 3} = \frac{9}{x + 3}$ $30/(x^2-9) - 5/(x-3) = 9/(x+3)$ ?

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What is the solution set for 30/(x^2-9) - 5/(x-3) = 9/(x+3)30x2−9−5x−3=9x+330/(x^2-9) - 5/(x-3) = 9/(x+3)?

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What is the solution set for $\frac{30}{x^{2} - 9} - \frac{5}{x - 3} = \frac{9}{x + 3}$ $30/(x^2-9) - 5/(x-3) = 9/(x+3)$ ?