Problem 4: Equilibrium conversions -B is carried out in a The reversible reactio

Question

Problem 4: Equilibrium conversions -B is carried out in a The reversible reaction 2A flow reactor where pure A is fed at a concentration of 4 mol/ L. The equilibrium conversion is found to be 60%. Assume that the reactor is isothermal and isobaric. a. What is the equilibrium constant, Kc, if the reaction is a gas phase reaction? [0.33 b. What is Kc if it is a liquid phase reaction? [0.47] The gas phase reaction A3C is carried out in a flow reactor with no pressure drop. Pure A enters at a temperature of 400K and a pressure of 10 atm. At this temperature, Kc=0.25 M2. c. What is the equilibrium conversion if the reaction is carried out in a constant volume batch reactor? Assume isothermal operation. [0.4] What is the equilibrium conversion if the reaction is carried out in a constant pressure batch reactor? Assume isothermal operation. [0.6] d.

Explanation / Answer

Problem 4.

a.

rate of reaction of A = -rA = kfCA2 - kbCB

at equilibrium -rA = 0

kfCA2 - kbCB = 0

Kc = kf/kb = CB/CA2

volume expansion factor = (final - initial )/initial = (1-2)/2 = -0.5

Also,

CA = CAo{1-X}/{1+X} = 4{1-0.6}/{1-0.5 x 0.6} = 2.2857

CB = CAo{0.5X}/{1+X} = 4{0.5 x 0.6}/{1-0.5 x 0.6} = 1.7143

Kc = CB/CA2 = 1.7143 / 2.28572 = 0.328 ~ 0.33

b.

we have reaction:

2A <------> B

Kc = [B]/[A]2

[ ] = erpresents molar concentration

2A <------> B

4.0 mol/L 0 initially

-4.0 mol/L x 0.6 +4.0 mol/L x 0.6 / 2 change

4.0 mol/L - 4.0 mol/L x 0.6 0+ 4.0 mol/L x 0.6 / 2 equilibrium

= 1.6 mol/L 1.2 mol/L   

Kc = [1.2]/[1.6]2 = 0.46875 ~ 0.47

c.

for constant volume

[A] = P/RT

[A] = 10 atm / 0.08206 atm.L/mol.L x 400K = 0.305 mol/L

We have reaction:

A <-----> 3C

0.305 0 initially

-x +3x change

0.305 - x +3x equilibrium

Kc = [C]3 / [A] = 0.25 = [3x]3/[0.305 - x]

x is < 1 assume 0.305 -x ~ 0.305

0.07625 = 27x3

x = 0.141

lets verify if error is <5%

Kc = [3 x 0.141]3/[0.305-0.141] = 0.465 seems our assumption to take x << 0.305 was wrong!

we have to find the roots of the equation

27x3 - 0.305 x 0.25 + 0.25x = 0

doing in calculator we get roots as follows:

we have got only one real root = 0.1197 ~ 0.12

Conversion = (initial concentration - final concentration) / initial concentration = x / 0.305 = 0.12 / 0.305 = 0.39344

~ = 0.4

d.

for constant pressure batch reactor

at equilibrium -rA = 0

kfCA - kbCc3 = 0

Kc = kf/kb = Cc3/CA

volume expansion factor = (final - initial )/initial = (3-1)/1 = 2

Also,

CA = CAo{1-X}/{1+X} = 0.305{1-X}/{1+2 x X} = 0.305{1-X}/{1+2X}

Cc = CAo{3X}/{1+X} = 0.305{3 x X}/{1+2 x X} = 0.305{3X}/{1+2X}

0.25 = CC3/CA = {0.305{3X}/{1+2X}}3 / {0.305{1-X}/{1+2X}} =

which can be simplified as:

3.52x3-0.75x-0.25 = 0

we have got a single real root = 0.58 ~ = 0.6

conversion = 0.6

kf and kb are forward and backward reaction constant

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