In triangle A B C, if a=3, b=5, c=4, then find value of sin (B/2)+ cos (B/2).

Question

In triangle A B C, if a=3, b=5, c=4, then find value of sin (B/2)+ cos (B/2). (A)  (B)  (C)  (D)

Tardigrade Admin · Accepted Answer

Given, a=3, b=5, c=4 sin (B/2)+ cos (B/2) =√((s-a)(s-c)/c a)+√(s(s-b)/c a) =√((6-3)(6-4)/4 × 3)+√(6(6-5)/4 × 3) =√(3 × 2/4 × 3)+√(6 × 1/4 × 3) =(1/√2)+(1/√2)=(2/√2)=√2

Q. In △ABC, if a=3,b=5,c=4, then find value of sin2B​+cos2B​.

Given, a=3,b=5,c=4 sin2B​+cos2B​ =ca(s−a)(s−c)​​+cas(s−b)​​ =4×3(6−3)(6−4)​​+4×36(6−5)​​ =4×33×2​​+4×36×1​​ =2​1​+2​1​=2​2​=2​

Q. In $△ A BC$ , if $a = 3, b = 5, c = 4$ , then find value of $sin \frac{B}{2} + cos \frac{B}{2}$ .