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Question

If ab=1+1b2andz=eiθ,thenb2a(1+az)(1+az) is

A
1+asinθ
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B
1+bcosθ
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C
bcosθ
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D
asinθ
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Solution

The correct option is C 1+bcosθ
We have (ab1)2=1b2
b(1+a2)=2a
b2a=11+a2
Thus, b2a(1+az)(1+az)=b2a{1+a2+a(z+1z)}
=11+a2{1+a2+2acosθ}
=1+2a1+a2cosθ=1+bcosθ

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