Question

How do you solve `\frac { 1} { c + 3} = \frac { 7} { c ^ { 2} - 9}`?

Answer 1

`c=10`

Explanation:

`c^2-9 = 7(c+3)` `->` cross-multiply

`c^2-9 = 7c + 21` `->` distribute

`c^2 - 9 - 7c - 21 = 0` `->` bring all terms to one side

`c^2 - 7c - 30 = 0` `->` gather like terms

`(c-10)(c+3) = 0` `->` factor

We now have two possibilities:

`c - 10 = 0` and `c + 3 = 0`

`c = 10` and `c = -3`

We can check our answers by substituting them back into the original problem.

`1/(c+3) = 7/(c^2 - 9)`

`1/(color(blue)10+3) = 7/(color(blue)10^2 - 9)`

`1/13 = 7 / (100 - 9)`

`1/13 = 7/91`

`1/13 = 1/13`

`underlinecolor(white)(xxxxxxxx)`

`1/(color(blue)(-3) + 3) = 7/(color(blue)((-3))^2-9`

`1/0 = 7/0`

This is undefined, so `c=-3` is not a solution.

Thus, `c = 10` is our only solution.