Step 1: Intrinsic order
Given intrinsic rate $r = k C_A^2$, the intrinsic reaction order is $n = 2$.
Step 2: Observed order under pore-diffusion control
For strong diffusion limitation, the Thiele modulus is large. The rate is then proportional to the surface concentration multiplied by the effectiveness factor, which scales as $1/\phi$ for large $\phi$. The effective reaction rate behaves as:
\[
r_{\text{obs}} \propto C_A^{(n+1)/2}.
\]
Substituting $n = 2$ gives
\[
\frac{n+1}{2} = \frac{2+1}{2} = \frac{3}{2}.
\]
Step 3: Conclusion
Thus, the observed reaction order is 3/2 instead of the intrinsic value of 2 when the reaction is strongly pore-diffusion controlled.
An ideal monoatomic gas is contained inside a cylinder-piston assembly connected to a Hookean spring as shown in the figure. The piston is frictionless and massless. The spring constant is 10 kN/m. At the initial equilibrium state (shown in the figure), the spring is unstretched. The gas is expanded reversibly by adding 362.5 J of heat. At the final equilibrium state, the piston presses against the stoppers. Neglecting the heat loss to the surroundings, the final equilibrium temperature of the gas is __________ K (rounded off to the nearest integer).
The residence-time distribution (RTD) function of a reactor (in min$^{-1}$) is 
The mean residence time of the reactor is __________ min (rounded off to 2 decimal places).}
Ideal nonreacting gases A and B are contained inside a perfectly insulated chamber, separated by a thin partition, as shown in the figure. The partition is removed, and the two gases mix till final equilibrium is reached. The change in total entropy for the process is _________J/K (rounded off to 1 decimal place).
Given: Universal gas constant \( R = 8.314 \) J/(mol K), \( T_A = T_B = 273 \) K, \( P_A = P_B = 1 \) atm, \( V_B = 22.4 \) L, \( V_A = 3V_B \).
The following data is given for a ternary \(ABC\) gas mixture at 12 MPa and 308 K:
\(y_i\): mole fraction of component \(i\) in the gas mixture
\(\hat{\phi}_i\): fugacity coefficient of component \(i\) in the gas mixture at 12 MPa and 308 K
The fugacity of the gas mixture is __________ MPa (rounded off to 3 decimal places).