The length of the chord joining the points (4 cosθ, 4 sinθ) and (4 cos(θ + 60°), 4 sin (θ + 60°)) of the circle x2 + y2 = 16 is

Question

The length of the chord joining the points (4 cosθ, 4 sinθ) and (4 cos(θ + 60°), 4 sin (θ + 60°)) of the circle x2 + y2 = 16 is (A) 2 (B) 4 (C) 8 (D) 16

Tardigrade Admin · Accepted Answer

Length of the chord =√[4 cos (θ+60°)-4 cos θ]2+[4 sin (θ+60°)-4 sin θ]2 4√cos2 (θ +60°)+cos2 θ +sin2 (θ +60°)+sin2 θ-2 cos (θ +60°) cos θ -2 sin (θ +60°) sin θ =4 √1+1-2 cos 60°=4

Q. The length of the chord joining the points (4cosθ,4sinθ) and (4cos(θ+60∘),4sin(θ+60∘)) of the circle x2+y2=16 is

2

4

8

16

Length of the chord =[4cos(θ+60∘)−4cosθ]2​+[4sin(θ+60∘)−4sinθ]2 4cos2(θ+60∘)+cos2θ+sin2(θ+60∘)+sin2θ−2cos(θ+60∘)cosθ−2sin(θ+60∘)sinθ​ =41+1−2cos60∘​=4

Q. The length of the chord joining the points $(4 cos θ, 4 sin θ)$ and $(4 cos (θ + 6 0^{\circ}), 4 sin (θ + 6 0^{\circ}))$ of the circle $x^{2} + y^{2} = 16$ is