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Question

The general solution(s) of the equation sec4θsec2θ=2 can be

A
(2n+1)π12,nZ
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B
(2n+1)π10,nZ
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C
(2n+1)π2,nZ
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D
(2n+1)π4,nZ
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Solution

The correct option is C (2n+1)π2,nZ
sec4θsec2θ=2
1cos4θ1cos2θ=2
cos2θcos4θ=2cos2θ.cos4θ
cos2θcos4θ=cos6θ+cos2θ
cos6θ+cos4θ=0
2cos5θ.cosθ=0
cos5θ=0 or cosθ=0
5θ,θ=(2n+1)π2θ{(2n+1)π2}{(2n+1)π10},nZ

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