Question

`sqrt(4x+8)=x+3` ?

`sqrt(4x+8)=x+3`

Answer 1

`x=-1`

Explanation:

Square both sides:

`sqrt(4x+8)^2=(x+3)^2`

Squaring a square root causes the square root to cancel out, IE, `sqrt(a)^2=a`, so the left side becomes `4x+8.`

`4x+8=(x+3)^2`

`4x+8=(x+3)(x+3)`

Multiplying out the right side yields:

`4x+8=x^2+6x+9`

We want to solve for `x.` Let's isolate every term on one side and have the other side equal `0.`

`0=x^2+6x-4x+9-8`

`x^2+2x+1=0` (We can switch around our sides since we're working with an equality here. It won't change anything.)

Factoring `x^2+2x+1` yields `(x+1)^2`, as `1+1=2` and `1*1=1.`

`(x+1)^2=0`

Solve for `x` by taking the root of both sides:

`sqrt(x+1)^2=sqrt(0)`

`sqrt(a^2)=a`, so `sqrt(x+1)^2=x+1`

`sqrt(0)=0`

`x+1=0`

`x=-1`

So, `x=-1` may be a solution. We say may be because we must plug `x=-1` into the original equation to make sure our square root is not negative, because negative square roots return non-real answers:

`sqrt(4(-1)+8)=-1+3`

`sqrt(4)=-1+3`

`2=2`

Our root is not negative, so, `x=-1` is the answer.

Answer 2

`x=-1`

Explanation:

`"square both sides to 'undo' the radical"`

`(sqrt(4x+8))^2=(x+3)^2`

`rArr4x+8=x^2+6x+9`

`"rearrange into "color(blue)"standard form"`

`rArrx^2+2x+1=0`

`rArr(x+1)^2=0`

`rArrx=-1`

`color(blue)"As a check"`

Substitute this value into the original equation and if both sides are equal then it is the solution.

`"left "=sqrt(-4+8)=sqrt4=2`

`"right "=-1+3=2`

`rArrx=-1" is the solution"`