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How do you evaluate #Sin 120#?

1 Answer

Konstantinos Michailidis

Jun 26, 2016

We have that

#sin(120)=sin(2*60)=2sin60*cos60=2*sqrt3/2*1/2=sqrt3/2#

Also

#sin(120)=sin(180-60)=sin60=sqrt3/2#

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