From first law of thermodynamics
$$
Q=\Delta U+W
$$
For cylinder $A$ pressure remains constant.
$\therefore$ Work done by a system
$$
W=\frac{\mu R}{\gamma-1}\left(T_{1}-T_{2}\right)
$$
For monoatomic gases, $\mu=1 ; \gamma=\frac{5}{3}$
$$
\therefore W=\frac{1 \times R}{\frac{5}{3}-1}(442-400)=\frac{3}{2} R \times 42
$$
or $W=63 R$
But $\Delta U=0$, for cylinder $A$
$$
\therefore Q=0+63 R=63 R
$$
For cylinder $B$ volume is constant, $\therefore W=0$ and $Q=\mu C_{V} \Delta T$
For monoatomic gas
$$
C_{V}=\frac{3}{2} R \Rightarrow Q=1 \times \frac{3}{2} R \Delta T
$$
As heat given on both cylinder is same,
$$
\therefore 63 R=\frac{3}{2} R \Delta T \Rightarrow \Delta T=42 \mathrm{~K}
$$