Let us draw a picture to make the things more clear.
Attached is the image.
We have been given that
[tex]\angle acd = 60 ^{\circ}[/tex]
Therefore, we have
[tex]\angle dcb =90- 60= 30 ^{\circ}[/tex]
Now, in triangle bcd, we have
[tex]\tan30 = \frac{5}{cd}\\
\\
\frac{1}{\sqrt 3}=\frac{5}{cd}\\
\\
cd=5\sqrt 3[/tex]
Now, in triangle acb, we have
[tex]tan 60 = \frac{ad}{5\sqrt3} \\
\\
\sqrt 3= \frac{ad}{5\sqrt3}\\
\\
ad= 5\sqrt3 \times \sqrt 3\\
\\
ad= 5\times 3\\
\\
ad=15[/tex]
Thus, ad is 15 cm.
