solve the question argent any can solve
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Consider a given triangle ABC
Using la of sines, we know that
a/sinA = b/sinB = c/sinC = 2R
a = 2RsinA, b = 2RsinB, c = 2RsinC
But, in ΔABC, A + B + C = 180,
so A = 180 - B - C
sin A = sin (180 - B - C)
= sin(B + C)
So, a = 2Rsin(B + C)
Similarly, we get b = 2Rsin(A+C)
c = 2Rsin(A + B)
Consider
a³sin(B - C) + b³sin(C - A) + c³sin(A - B)
= a².2Rsin(B + C) sin(B - C)+ b²2rsin(C+A)sin (C - A)
+ c².2Rsin(A + B) sin(A - B)
Using the identity
sin(A + B)*sin(A - B) = sin²A - sin²B, we get
L.H.S
= 2Ra²(sin²B - sin²C) + 2Rb²(sin²C - sin²A) + 2Rc²(sin²A - sin²B)
=But Using sine rule,
asinB = bsinA ,
asinC = c sinA and
csinB = bsinC,
so L.H.S = 0 (Since all terms get cancelled out)
Hope, it helps !
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