Given: Rate of formation of P2Q is \( +0.24 \, \text{mol dm}^{-3} \text{s}^{-1} \)
From the stoichiometry:
\[ \text{Rate} = \frac{1}{2} \left| \frac{d[P]}{dt} \right| = \left| \frac{d[Q]}{dt} \right| = \left| \frac{d[P_2Q]}{dt} \right| = 0.24 \]
So, the rate of disappearance of P:
\[ \left| \frac{d[P]}{dt} \right| = 2 \times 0.24 = \mathbf{0.48 \, mol \, dm^{-3}s^{-1}} \]
And the rate of disappearance of Q:
\[ \left| \frac{d[Q]}{dt} \right| = 0.24 \, mol \, dm^{-3}s^{-1} \]
But disappearance rates are negative:
For the reaction:
\[ 2A + B \rightarrow 2C + D \]
The following kinetic data were obtained for three different experiments performed at the same temperature:
\[ \begin{array}{|c|c|c|c|} \hline \text{Experiment} & [A]_0 \, (\text{M}) & [B]_0 \, (\text{M}) & \text{Initial rate} \, (\text{M/s}) \\ \hline I & 0.10 & 0.10 & 0.10 \\ II & 0.20 & 0.10 & 0.40 \\ III & 0.20 & 0.20 & 0.40 \\ \hline \end{array} \]
The total order and order in [B] for the reaction are respectively: