12) In ∆ABC, A+B+C= then sin(B+C/2) =
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Answered by
1
Answer:
A + B + C = 180°
Therefore ,
B + C = 180 - A
(B + C) / 2 = (180 - A ) / 2
(B + C) / 2 = 90 - (A / 2)
Hence R.H.S. :- cos (A / 2) = sin [ 90 - (A / 2) ]
= sin [ (B+C) / 2 ] ----- As 90 - (A / 2) = 2 (B+C) / 2 ]
Therefore ,
cos (A / 2) = sin [ (B+C) / 2 ]
Hence proved.
Answered by
1
Answer:
sin(90-a/2)=cos a/2
Step-by-step explanation:
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