The sum of all values of x in [0,2 π], for which sin x+ sin 2 x+ sin 3 x+ sin 4 x=0, is equal to

Question

The sum of all values of x in [0,2 π], for which sin x+ sin 2 x+ sin 3 x+ sin 4 x=0, is equal to (A) 8 π (B) 11 π (C) 12 π (D) 9 π

Tardigrade Admin · Accepted Answer

( sin x+ sin 4 x)+( sin 2 x+ sin 3 x)=0 ⇒ 2 sin (5 x/2) cos (3 x/2)+ cos (x/2) =0 ⇒ 2 sin (5 x/2) 2 cos x cos (x/2) =0 2 sin (5 x/2)=0 ⇒ (5 X/2)=0, π, 2 π, 3 π, 4 π, 5 π ⇒ x=0, (2 π/5), (4 π/5), (6 π/5), (8 π/5), 2 π cos (x/2)=0 ⇒ (x/2)=(π/2) ⇒ x=π cos x=0 ⇒ x=(π/2), (3 π/2) So Sum =6 π+π+2 π=9 π

Q. The sum of all values of $x$ in $[0, 2 π]$ , for which $sin x + sin 2 x + sin 3 x + sin 4 x = 0$ , is equal to

$8 π$

$11 π$

$12 π$

$9 π$

Q. The sum of all values of x in [0,2π], for which sinx+sin2x+sin3x+sin4x=0, is equal to

8π

11π

12π

9π

(sinx+sin4x)+(sin2x+sin3x)=0 ⇒2sin25x​{cos23x​+cos2x​}=0 ⇒2sin25x​{2cosxcos2x​}=0 2sin25x​=0⇒25X​=0,π,2π,3π,4π,5π ⇒x=0,52π​,54π​,56π​,58π​,2π cos2x​=0⇒2x​=2π​⇒x=π cosx=0⇒x=2π​,23π​ So Sum =6π+π+2π=9π

Q. The sum of all values of $x$ in $[0, 2 π]$ , for which $sin x + sin 2 x + sin 3 x + sin 4 x = 0$ , is equal to

$8 π$

$11 π$

$12 π$

$9 π$