How do you solve $\frac{1}{x + 3} + \frac{1}{x + 5} = 1$ $1/(x+3)+1/(x+5)=1$ ?

Question

How do you solve $\frac{1}{x + 3} + \frac{1}{x + 5} = 1$ $1/(x+3)+1/(x+5)=1$ ?

2 Answers

Impact of this question

7163 views around the world

You can reuse this answer
Creative Commons License

Answer 1 · 2018-04-26T05:21:21

There are two values of $x$ $x$ that make this equation true. They are $x = - 3 - \sqrt{2}$ $x=-3-sqrt(2)$ and $x = - 3 + \sqrt{2}$ $x=-3+sqrt(2)$ .

Explanation:

$\frac{1}{x + 3} + \frac{1}{x + 5} = 1$ $1/(x+3)+1/(x+5)=1$

Lots of ways to solve this. I'm going to try to do it the easiest way I know how.

First subtract $\frac{1}{x + 5}$ $1/(x+5)$ from both sides.

$\frac{1}{x + 3} = 1 - \frac{1}{x + 5}$ $1/(x+3)=1-1/(x+5)$

Now combine the two terms on the right-hand side of the equation.

$\frac{1}{x + 3} = \frac{x + 5 - 1}{x + 5}$ $1/(x+3)=(x+5-1)/(x+5)$

Simplify the numerator on the right-hand side.

$\frac{1}{x + 3} = \frac{x + 4}{x + 5}$ $1/(x+3)=(x+4)/(x+5)$

Multiply both sides by $x - 5$ $x-5$ .

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

Multiply both sides by $x + 3$ $x+3$ .

$x + 5 = (x + 4) (x + 3)$ $x+5=(x+4)(x+3)$

Now expand the right hand side.

$x + 5 = x^{2} + 7 x + 12$ $x+5=x^2+7x+12$

Put this quadratic equation in standard form.

$x^{2} + 6 x + 7 = 0$ $x^2+6x+7=0$

Use the quadratic formula to determine $x$ $x$ .

$x = \frac{- 6 \pm \sqrt{6^{2} - 4 (1) (7)}}{2 (1)} = \frac{- 6 \pm \sqrt{8}}{2} = - 3 \pm \sqrt{2}$ $x=(-6pmsqrt(6^2-4(1)(7)))/(2(1))=(-6pmsqrt(8))/2=-3pmsqrt(2)$

So there are two values of $x$ $x$ that make this equation true. They are $x = - 3 - \sqrt{2}$ $x=-3-sqrt(2)$ and $x = - 3 + \sqrt{2}$ $x=-3+sqrt(2)$ .

Answer 2 · 2018-04-26T05:29:54

$x = - 3 \pm \sqrt{2}$ $x = -3+-sqrt(2)$

Explanation:

Given: $\frac{1}{x + 3} + \frac{1}{x + 5} = 1$ $1/(x+3) + 1/(x+5) = 1$

One way to solve is to eliminate the denominators by multiplying both sides of the equation by the common denominator.

The common denominator = $(x + 3) (x + 5)$ $(x+3)(x+5)$

$(x + 3) (x + 5) (\frac{1}{x + 3} + \frac{1}{x + 5} = 1)$ $(x+3)(x+5)(1/(x+3) + 1/(x+5) = 1)$

Distribute and cancel:
$(cancel(x+3)(x+5))/cancel(x+3) + ((x+3)cancel(x+5))/cancel(x+5) = (x+3)(x+5)$
:
Add like terms and use FOIL
$x+5 + x + 3 = (x+3)(x+5)$

$2x + 8 = x^2 + 5x + 3x + 15$

$2x + 8 = x^2 + 8x + 15$

Subtract $2x$ and $8$ from both sides:
$x^2 + 6x + 7 = 0$

Use the quadratic formula to solve for $x$ :

$x = (-B +- sqrt(B^2 - 4AC))/(2A)$ ,

where the equation is in the form $Ax^2 + Bx + C = 0$

$x = (-6 +- sqrt(36 - 4*1*7))/2$

$x = -3 +-sqrt(8)/2 = -3 +- (sqrt(4) sqrt(2))/2$

$x = =-3 +- (cancel(2) sqrt(2))/cancel(2)$

$x = -3 +- sqrt(2)$

Science

Math

Humanities

... and beyond

How do you solve $\frac{1}{x + 3} + \frac{1}{x + 5} = 1$ $1/(x+3)+1/(x+5)=1$ ?

2 Answers

Explanation:

Explanation:

Related questions

Impact of this question

Science

Math

Humanities

... and beyond

How do you solve 1/(x+3)+1/(x+5)=11x+3+1x+5=11/(x+3)+1/(x+5)=1?

2 Answers

Explanation:

Explanation:

Related questions

Impact of this question

How do you solve $\frac{1}{x + 3} + \frac{1}{x + 5} = 1$ $1/(x+3)+1/(x+5)=1$ ?