How do you solve the rational equation $\frac{4}{x + 2} - \frac{3}{x - 5} = \frac{15}{x^{2} - 3 x - 10}$ $4/(x+2)-3/(x-5)=15/(x^2-3x-10)$ ?

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How do you solve the rational equation $\frac{4}{x + 2} - \frac{3}{x - 5} = \frac{15}{x^{2} - 3 x - 10}$ $4/(x+2)-3/(x-5)=15/(x^2-3x-10)$ ?

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Answer 1 · 2016-01-27T21:17:01

x = 41

Explanation:

Firstly: factor the denominator on the right side.

$x^{2} - 3 x - 10 = (x - 5) (x + 2)$ $x^2 - 3x - 10 = (x - 5 )( x + 2 )$

Equation now becomes :

$\frac{4}{x + 2} - \frac{3}{x - 5} = \frac{15}{(x - 5) (x + 2)}$ $4/(x+2) - 3/(x-5 ) = 15/((x-5)(x+2))$

Multiply each term on both sides by (x-5)(x+2)

$( 4(x-5)cancel(x+2))/cancel(x+2) - (3cancel(x-5)(x+2))/cancel(x-5)$ = $(15cancel(x-5)cancel(x+2))/(cancel(x-5)cancel(x+2))$

which simplified becomes : 4(x-5) -3(x+2) = 15

hence 4x - 20 - 3x - 6 = 15

therefore x = 15+6+20 = 41

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How do you solve the rational equation $\frac{4}{x + 2} - \frac{3}{x - 5} = \frac{15}{x^{2} - 3 x - 10}$ $4/(x+2)-3/(x-5)=15/(x^2-3x-10)$ ?

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How do you solve the rational equation 4/(x+2)-3/(x-5)=15/(x^2-3x-10)4x+2−3x−5=15x2−3x−104/(x+2)-3/(x-5)=15/(x^2-3x-10)?

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Explanation:

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How do you solve the rational equation $\frac{4}{x + 2} - \frac{3}{x - 5} = \frac{15}{x^{2} - 3 x - 10}$ $4/(x+2)-3/(x-5)=15/(x^2-3x-10)$ ?