In a Δ A B C, Sigma(b+c) tan (A/2) tan ((B-C/2)) is equal to

Question

In a Δ A B C, Sigma(b+c) tan (A/2) tan ((B-C/2)) is equal to (A) a (B) b (C) c (D) 0

Tardigrade Admin · Accepted Answer

Sigma(b+c) tan (A/2) tan ((B-C/2)) ∴ (b+c) tan (A/2) tan ((B-C/2)) =(b+c) ⋅ ((b-c)/(b+c)) cot (A/2) tan (A/2) =b-c ∴ Sigma(b+c) tan (B-C/2) tan (A/2) = b-c+c-a+a-b=0

Q. In a $Δ A BC, Σ (b + c) tan \frac{A}{2} tan (\frac{B - C}{2})$ is equal to

a

b

c

0

$Σ (b + c) tan \frac{A}{2} tan (\frac{B - C}{2})$
$∴ (b + c) tan \frac{A}{2} tan (\frac{B - C}{2})$
$= (b + c) \cdot \frac{( b - c )}{( b + c )} cot \frac{A}{2} tan \frac{A}{2}$
$= b - c$
$∴ Σ (b + c) tan \frac{B - C}{2} tan \frac{A}{2}$
$= b - c + c - a + a - b = 0$

Q. In a ΔABC,Σ(b+c)tan2A​tan(2B−C​) is equal to

a

b

c

0

Σ(b+c)tan2A​tan(2B−C​) ∴(b+c)tan2A​tan(2B−C​) =(b+c)⋅(b+c)(b−c)​cot2A​tan2A​ =b−c ∴Σ(b+c)tan2B−C​tan2A​ =b−c+c−a+a−b=0

Q. In a $Δ A BC, Σ (b + c) tan \frac{A}{2} tan (\frac{B - C}{2})$ is equal to

$Σ (b + c) tan \frac{A}{2} tan (\frac{B - C}{2})$
$∴ (b + c) tan \frac{A}{2} tan (\frac{B - C}{2})$
$= (b + c) \cdot \frac{( b - c )}{( b + c )} cot \frac{A}{2} tan \frac{A}{2}$
$= b - c$
$∴ Σ (b + c) tan \frac{B - C}{2} tan \frac{A}{2}$
$= b - c + c - a + a - b = 0$