(sin θ /cos θ )+(sin 2 θ /cos2 θ )+(sin 3 θ /cos2 θ )+ ldots +(sin 6 θ /cos6 θ ) is equal to

Question

(sin θ /cos θ )+(sin 2 θ /cos2 θ )+(sin 3 θ /cos2 θ )+ ldots +(sin 6 θ /cos6 θ ) is equal to (A) cotθ +(cos 7 θ /sinθ cos6 θ ) (B) cotθ -(cos 7 θ /sin θ cos6 θ ) (C) (cos 7 θ /sin θ cos6 θ )-cotθ  (D) 21tanθ

Tardigrade Admin · Accepted Answer

cotθ -(sin θ /cos θ )=(cos 2 θ /sin θ cos θ )⇒ (cos 2 θ /sin θ cos θ )-(sin 2 θ /cos2 θ )=(cos 3 θ /cos2 θ sin θ ) Similarly, (cos 6 θ /cos5 θ sin θ )-(sin 6 θ /cos6 θ )=(cos 7 θ /cos6 θ sin θ )

Q. $\frac{s in θ}{cos θ} + \frac{s in 2 θ}{co s ^{2} θ} + \frac{s in 3 θ}{co s ^{2} θ} + \dots + \frac{s in 6 θ}{co s ^{6} θ}$ is equal to

$co tθ + \frac{cos 7 θ}{s in θ co s ^{6} θ}$

$co tθ - \frac{cos 7 θ}{s in θ co s ^{6} θ}$

$\frac{cos 7 θ}{s in θ co s ^{6} θ} - co tθ$

$21 t an θ$

Q. cosθsinθ​+cos2θsin2θ​+cos2θsin3θ​+…+cos6θsin6θ​ is equal to

cotθ+sinθcos6θcos7θ​

cotθ−sinθcos6θcos7θ​

sinθcos6θcos7θ​−cotθ

21tanθ

cotθ−cosθsinθ​=sinθcosθcos2θ​⇒sinθcosθcos2θ​−cos2θsin2θ​=cos2θsinθcos3θ​ Similarly, cos5θsinθcos6θ​−cos6θsin6θ​=cos6θsinθcos7θ​

Q. $\frac{s in θ}{cos θ} + \frac{s in 2 θ}{co s ^{2} θ} + \frac{s in 3 θ}{co s ^{2} θ} + \dots + \frac{s in 6 θ}{co s ^{6} θ}$ is equal to

$co tθ + \frac{cos 7 θ}{s in θ co s ^{6} θ}$

$co tθ - \frac{cos 7 θ}{s in θ co s ^{6} θ}$

$\frac{cos 7 θ}{s in θ co s ^{6} θ} - co tθ$

$21 t an θ$