Let, the speed of bus be $v_B$ and that of cyclist be $v_C$.
Case 1 Bus moving from $A$ to $B$,
Relative speed of bus $=v_B-v_C=v_B-20$
Distance covered $=$ Velocity $\times$ Time
$$
d=\left(v_B-20\right) \times 18...(i)
$$
Case 2 Bus moving from $B$ to $A$,
Relative speed of bus $=v_B+v_C$
$$
=v_B+20
$$
Distance covered $=$ Velocity $\times$ Time
$$
d=\left(v_B+20\right) \times 6...(ii)
$$
From Eqs. (i) and (ii), we get
$$
\begin{aligned}
& \left(v_B-20\right) \times 18=\left(v_B+20\right) \times 6 \\
& \Rightarrow \quad v_B=40 \mathrm{~km} / \mathrm{h} \\
& \text { From Eq. (ii), }\left(v_B+20\right) \times 6=v_B \times T \\
& \Rightarrow \quad(40+20) \times 6=40 \times T \\
& \Rightarrow \quad T=9 \min =\frac{9}{60} \mathrm{~h}=\frac{3}{20} \mathrm{~h} . \\
&
\end{aligned}
$$