The RMS speed of the molecule is given by $v_{RMS}=\sqrt{\frac{3RT}{M}}$. Therefore, to double the speed the temperature must become $4$ times.

Therefore, the change in the temperature is $∆T=3T_0$.

Now the process is isochoric (enclosed vessel) therefore, the heat required will be,

$$\begin{gathered} H=n{C}_v∆T \\ \Rightarrow H=\frac{56}{28}\times \frac{5}{2}R\times 3\times \left(273+127\right)=12000 \mathrm{cal}=12 \mathrm{kcal} \end{gathered}$$