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Question

If sinA+sinB+sinC=0 and cosA+cosB+cosC=0, then the value of sin(AB2) is
( where A,B,C[0,2π] )

A
1
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B
12
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C
12
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D
32
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Solution

The correct option is D 32
sinA+sinB+sinC=0sinA+sinB=sinC(1)
cosA+cosB+cosC=0cosA+cosB=cosC(2)
Squaring and adding both the equation (1) and (2),
(sinA+sinB)2+(cosA+cosB)2 =sin2C+cos2C(sinA+sinB)2+(cosA+cosB)2=1sin2A+sin2B+2sinAsinB +cos2A+cos2B+2cosAcosB=11+1+2(cos(AB))=1cos(AB)=12AB=120 or 240AB2=60 or 120sin(AB2)=32

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