How do you solve $sqrt(6x-3) - 1 = x$ ?

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How do you solve $sqrt(6x-3) - 1 = x$ ?

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Answer 1 · 2018-05-24T09:45:20

$x=2$

Explanation:

$"isolate "sqrt(6x-3)" by adding 1 to both sides"$

$sqrt(6x-3)=x+1$

$color(blue)"square both sides"$

$(sqrt(6x-3))^2=(x+1)^2$

$6x-3=x^2+2x+1$

$"rearrange into "color(blue)"standard form ";ax^2+bx+c=0$

$"subtract "6x-3" from both sides"$

$0=x^2-4x+4$

$0=(x-2)^2rArrx=2$

$color(blue)"As a check"$

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

$"left "=sqrt(12-3)-1=sqrt9-1=3-1=2=" right"$

$x=2" is the solution"$

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How do you solve $sqrt(6x-3) - 1 = x$ ?

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