How do you solve $(\frac{40}{x - 2}) = 1 + (\frac{42}{x - 2})$ $(40/(x-2))=1+(42/(x- 2))$ ?

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How do you solve $(\frac{40}{x - 2}) = 1 + (\frac{42}{x - 2})$ $(40/(x-2))=1+(42/(x- 2))$ ?

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Answer 1 · 2016-06-13T04:20:40

$x = 0$ $x=0$

Explanation:

Given,

$\frac{40}{x - 2} = 1 + \frac{42}{x - 2}$ $40/(x-2)=1+42/(x-2)$

Multiply each term on the left and right sides by $x - 2$ $x-2$ to get rid of the denominators.

$(x - 2) (\frac{40}{x - 2}) = 1 (x - 2) + (x - 2) (\frac{42}{x - 2})$ $color(red)((x-2))(40/(x-2))=1color(red)((x-2))+color(red)((x-2))(42/(x-2))$

Simplify.

$(color(red)cancelcolor(black)(x-2))(40/(color(red)cancelcolor(black)(x-2)))=1(x-2)+(color(red)cancelcolor(black)(x-2))(42/(color(red)cancelcolor(black)(x-2)))$

$40=x-2+42$

$40=x+40$

Subtract $40$ from both sides.

$40color(white)(i)color(red)(-40)=x+40color(white)(i)color(red)(-40)$

$x=color(green)(|bar(ul(color(white)(a/a)color(black)0color(white)(a/a)|)))$

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How do you solve $(\frac{40}{x - 2}) = 1 + (\frac{42}{x - 2})$ $(40/(x-2))=1+(42/(x- 2))$ ?

1 Answer

Explanation:

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How do you solve (40/(x-2))=1+(42/(x- 2))(40x−2)=1+(42x−2)(40/(x-2))=1+(42/(x- 2))?

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Explanation:

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How do you solve $(\frac{40}{x - 2}) = 1 + (\frac{42}{x - 2})$ $(40/(x-2))=1+(42/(x- 2))$ ?