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How do you solve #5/y-2=y+2#?

1 Answer

Oct 3, 2016

#y= -1 " or " y=-5#

Explanation:

#5/y-2 = y+2" "larr# move the -2 to the RHS

#5/y = y+4" "larrxxy # to get rid of the fractions.

#5 = y^2 + 4y" "larr# make = 0.

#y^2 +4y -5 =0#

#(y-1)(y+5)=0" "larr# solve for y.

#y-1 =0 rarr y=1#

#y+5=0rarr y=-5#

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