If in a triangle A B C, a, b, c and angle A are given and c sin A

Question

If in a triangle A B C, a, b, c and angle A are given and c sin A< a < c, then (A) b1+b2=2 c cos A (B) b1+b2=c cos A (C) b1+b2=3 c cos A (D) b1+b2=4 c sin A

Tardigrade Admin · Accepted Answer

From cosine rule, cos A=(b2+c2-a2/2 b c) or b2-(2 c cos A) ⋅ b+(c2-a2)=0 which is a quadratic equation in b. Since, c sin A< a< c two triangles will be obtained, but this is possible when two values of third side are also obtained. Clearly two values of side b will be b1 and b2. Let these be roots of above equation. ∴ Sum of roots =b1+b2=2 c cos A

Q. If in a triangle $A BC, a, b, c$ and angle $A$ are given and $c sin A < a < c$ , then

$b_{1} + b_{2} = 2 c cos A$

$b_{1} + b_{2} = c cos A$

$b_{1} + b_{2} = 3 c cos A$

$b_{1} + b_{2} = 4 c sin A$

Q. If in a triangle ABC,a,b,c and angle A are given and csinA<a<c, then

b1​+b2​=2ccosA

b1​+b2​=ccosA

b1​+b2​=3ccosA

b1​+b2​=4csinA

Q. If in a triangle $A BC, a, b, c$ and angle $A$ are given and $c sin A < a < c$ , then

$b_{1} + b_{2} = 2 c cos A$

$b_{1} + b_{2} = c cos A$

$b_{1} + b_{2} = 3 c cos A$

$b_{1} + b_{2} = 4 c sin A$