How do you rationalize #sqrt22/sqrt33#?

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How do you rationalize #sqrt22/sqrt33#?

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Answer 1 · 2015-03-30T13:49:22

Write it as:
#sqrt(22)/sqrt(33)=sqrt(22/33)=# divide both by #11# #=sqrt(2/3)#
Now:
#sqrt(2/3)=sqrt(2)/sqrt(3)=sqrt(2)/sqrt(3)*sqrt(3)/sqrt(3)=sqrt(6)/3#

Or:
#sqrt(22)/sqrt(33)*sqrt(33)/sqrt(33)=sqrt(22*33)/33=sqrt((2*11)(3*11))/33=sqrt(6*11^2)/33=11/33sqrt(6)=sqrt(6)/3#

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How do you rationalize #sqrt22/sqrt33#?

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