If \[ 0\le x\le \pi \] and \(x\) lies in the IInd quadrant such that \[ \sin x=\frac14 \] find the values of \[ \cos\frac{x}{2},\quad \sin\frac{x}{2},\quad \tan\frac{x}{2} \]
Solution:
Given,
\[
\sin x=\frac14
\]
Using
\[
\sin^2x+\cos^2x=1
\]
we get
\[
\cos^2x
=
1-\left(\frac14\right)^2
\]
\[
=
1-\frac1{16}
\]
\[
=
\frac{15}{16}
\]
\[
\cos x=\pm\frac{\sqrt15}{4}
\]
Since \(x\) lies in the IInd quadrant,
\[
\cos x<0
\]
Therefore,
\[
\cos x=-\frac{\sqrt15}{4}
\]
Now,
\[
\cos\frac{x}{2}
=
\pm\sqrt{\frac{1+\cos x}{2}}
\]
Substituting the value of \(\cos x\):
\[
=
\pm\sqrt{
\frac{1-\frac{\sqrt15}{4}}{2}
}
\]
\[
=
\pm\sqrt{
\frac{4-\sqrt15}{8}
}
\]
Since \(x\) lies in the IInd quadrant,
\[
\frac{x}{2}
\]
lies in the Ist quadrant, where cosine is positive.
Therefore,
\[
\boxed{
\cos\frac{x}{2}
=
\sqrt{\frac{4-\sqrt15}{8}}
}
\]
Now,
\[
\sin\frac{x}{2}
=
\pm\sqrt{\frac{1-\cos x}{2}}
\]
Substituting:
\[
=
\pm\sqrt{
\frac{1+\frac{\sqrt15}{4}}{2}
}
\]
\[
=
\pm\sqrt{
\frac{4+\sqrt15}{8}
}
\]
Since \(\frac{x}{2}\) lies in the Ist quadrant, sine is positive.
Hence,
\[
\boxed{
\sin\frac{x}{2}
=
\sqrt{\frac{4+\sqrt15}{8}}
}
\]
Now,
\[
\tan\frac{x}{2}
=
\frac{\sin\frac{x}{2}}{\cos\frac{x}{2}}
\]
\[
=
\sqrt{
\frac{4+\sqrt15}{4-\sqrt15}
}
\]
Rationalizing:
\[
=
\sqrt{
\frac{(4+\sqrt15)^2}{16-15}
}
\]
\[
=
4+\sqrt15
\]
Therefore,
\[
\boxed{
\tan\frac{x}{2}
=
4+\sqrt15
}
\]