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Question

If 4sin2θ+2(3+1)cosθ=4+3, then the general solution is

A
nπ±π3, nZ
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B
nπ±π6, nZ
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C
2nπ±π3, nZ
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D
2nπ±π4, nZ
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Solution

The correct option is C 2nπ±π3, nZ
Given: 4sin2θ+2(3+1)cosθ=4+3
44cos2θ+2(3+1)cosθ=4+34cos2θ2(3+1)cosθ+3=04cos2θ2cosθ23cosθ+3=0(2cosθ3)(2cosθ1)=0(2cosθ3)(2cosθ1)=0cosθ=32 or cosθ=12θ=2nπ±π6 or θ=2nπ±π3, nZ

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