Question 1

1/cosec theta + cot theta -1/ sin theta=1/sin theta - 1/ cosec theta -cot
theta

Question 2

Answer:

$\theta =2n\pi, \;\frac{\pi}2+2n\pi \;\;\text{for all}\; n=0,1,2,...$

Explanation:

$\frac 1{\text{cosec} \theta}+\cot \theta-\frac 1{\sin \theta}=\frac 1{\sin \theta}-\frac 1{\text{cosec} \theta}-\cot \theta$

$\Rightarrow \frac 2{\text{cosec} \theta}+2\cot \theta-\frac 2{\sin \theta}=0$

$\Rightarrow \frac 1{\text{cosec} \theta}+\cot \theta-\frac 1{\sin \theta}=0$

$\Rightarrow \sin \theta -\frac 1{\sin \theta}+(\cos \theta)/(\sin \theta)=0$

$\Rightarrow (\sin ^2\theta-1+\cos \theta)/(\sin \theta)=0$

$\Rightarrow (-\cos ^2\theta+\cos \theta)/(\sin \theta)=0\Rightarrow(\cos \theta-\cos ^2\theta)/(\sin \theta)=0$

$\Rightarrow \cot \theta(1-\cos \theta)=0$

$\text{If} \;\;1-\cos \theta=0\Rightarrow \cos \theta=1$

$\Rightarrow \theta=2n\pi\;\; \text{for all}\; n=0,1,2,.....$

$\text{If} \cot \theta=0\Rightarrow (\cos \theta)/(\sin \theta)=0\Rightarrow \cos \theta=0$

$\Righarrow \theta =\frac{\pi}2+2n\pi\;\;\text{for all}\; n=0,1,2,...$

Hence,
$\theta =2n\pi, \;\frac{\pi}2+2n\pi \;\;\text{for all}\; n=0,1,2,...$

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