How do you solve $(4b+2)/(b^2-3n)+(b+2)/b=(b-1)/b$ ?

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How do you solve $(4b+2)/(b^2-3n)+(b+2)/b=(b-1)/b$ ?

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Answer 1 · 2017-10-10T20:40:14

$n=(b*(7b+2))/9$

Explanation:

Given :
$((4b+2)/(b^2-3n))+((b+2)/b)=(b-1)/b$
$((4b+2)/(b^2-3n))=((b-1)/b)-((b+2)/b)$
$(4b+2)/(b^2-3n)=(b-1-b-2)/b=-(3/b)$
Cross multiplying,
$(b)(4b+2)=(-3)(b^2-3n)$
$4b^2+2b=-3b^2+9n$

$9n=7b^2+2b$
$n=(b*(7b+2))/9$

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How do you solve $(4b+2)/(b^2-3n)+(b+2)/b=(b-1)/b$ ?

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How do you solve (4b+2)/(b^2-3n)+(b+2)/b=(b-1)/b(4b+2)/(b^2-3n)+(b+2)/b=(b-1)/b?

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How do you solve $(4b+2)/(b^2-3n)+(b+2)/b=(b-1)/b$ ?