Chemistry for Engineering Students
Chemistry for Engineering Students
4th Edition
ISBN: 9781337398909
Author: Lawrence S. Brown, Tom Holme
Publisher: Cengage Learning
Question
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Chapter 12, Problem 12.78PAE

(a)

Interpretation Introduction

Interpretation: Using the values from Appendix E, the equilibrium constant, KP for the given reaction should be calculated.H2(g)+Cl2(g)2HCl(g)

Concept introduction:

For a reaction, change in standard Gibbs free energy is calculated as follows:ΔGreactiono=ΔGproductoΔG reactanto

Here, ΔGproducto and ΔGreactanto is change in standard Gibbs free energy of product and reactant respectively.

The change in standard Gibbs free energy is related to equilibrium constant as follows:ΔGreactiono=RTlnK

Here, R is Universal gas constant, T is absolute temperature and K is equilibrium constant of the reaction.

(a)

Expert Solution
Check Mark

Answer to Problem 12.78PAE

Solution:

Kp =2.6×1033

Explanation of Solution

The given reaction is as follows:H2(g)+Cl2(g)2HCl(g)

First step is to calculate the value of ΔGreactiono from the data given in Appendix E.

From the formula:ΔGreactiono=2ΔGHClo[ΔG H 2o+ΔG Cl 2o]=2 mol×(95.3 kJ/mol)0=190.6 kJ

From the calculated value of ΔGreactiono calculate the value of equilibrium constant Kp

ΔGreactiono=RTlnKp

The absolute temperature is 298 .15 K, putting all the values,190.6×103J=(8.314 J/mol K)(298.15 K)lnKp76.93=lnKpKp=2.6×1033

(b)

Interpretation Introduction

Interpretation: Using the values from Appendix E, the equilibrium constant, KP for the given reaction should be calculated.CH4 (g) + H2(g) CO (g) + 3H2(g)

Concept introduction:

For a reaction, change in standard Gibbs free energy is calculated as follows:ΔGreactiono=ΔGproductoΔG reactanto

Here, ΔGproducto and ΔGreactanto is change in standard Gibbs free energy of product and reactant respectively.

The change in standard Gibbs free energy is related to equilibrium constant as follows:ΔGreactiono=RTlnK

Here, R is Universal gas constant, T is absolute temperature and K is equilibrium constant of the reaction.

(b)

Expert Solution
Check Mark

Answer to Problem 12.78PAE

Solution:

 K=8.6×1026

Explanation of Solution

The given reaction is as follows:CH4 (g) + H2(g) CO (g) + 3H2(g) First step is to calculate the value of ΔGreactiono from the data given in Appendix E.

From the formula:ΔGreactiono=ΔGCOo+3ΔGH2o[ΔG CH 4o+ΔG H 2Oo]=1 mol(137 kJ/mol)+3 mol(0 kJ/mol)(1 mol( 51 kJ/mol)+1 mol( 229 kJ/mol))=143 kJ

From the calculated value of ΔGreactiono calculate the value of equilibrium constant Kp

ΔGreactiono=RTlnKp

The absolute temperature is 298 .15 K, putting all the values,

143×103J=(8.314 J/mol K)(298.15 K)lnKp57.98=lnKpKp=8.6×1026

(c)

Interpretation Introduction

Interpretation: Using the values from Appendix E, the equilibrium constant, KP for the given reaction should be calculated.SO2 (g) + Cl2 (g) SO2Cl2(g)

Concept introduction:

For a reaction, change in standard Gibbs free energy is calculated as follows:ΔGreactiono=ΔGproductoΔG reactanto

Here, ΔGproducto and ΔGreactanto is change in standard Gibbs free energy of product and reactant respectively.

The change in standard Gibbs free energy is related to equilibrium constant as follows:ΔGreactiono=RTlnK

Here, R is Universal gas constant, T is absolute temperature and K is equilibrium constant of the reaction.

(c)

Expert Solution
Check Mark

Answer to Problem 12.78PAE

Solution:

 K=62.5

Explanation of Solution

The given reaction is as follows:SO2 (g) + Cl2 (g) SO2Cl2(g) First step is to calculate the value of ΔGreactiono from the data given in Appendix E.

From the formula:ΔGreactiono=ΔG SO2 Cl2o[ΔG SO 2o+ΔG Cl 2o]=1 mol(310.45 kJ/mol)(1 mol( 300.2 kJ/mol)+1 mol( 0 kJ/mol))=10.25 kJ

From the calculated value of ΔGreactiono calculate the value of equilibrium constant Kp

ΔGreactiono=RTlnKp

The absolute temperature is 298 .15 K, putting all the values,10.25×103J=(8.314 J/mol K)(298.15 K)lnKp4.13=lnKpKp=62.5

(d)

Interpretation Introduction

Interpretation: Using the values from Appendix E, the equilibrium constant, KP for the given reaction should be calculated.2HCl (g) +F2 (g)2HF(g)+Cl2 (g)

Concept introduction:

For a reaction, change in standard Gibbs free energy is calculated as follows:ΔGreactiono=ΔGproductoΔG reactanto

Here, ΔGproducto and ΔGreactanto is change in standard Gibbs free energy of product and reactant respectively.

The change in standard Gibbs free energy is related to equilibrium constant as follows:ΔGreactiono=RTlnK

Here, R is Universal gas constant, T is absolute temperature and K is equilibrium constant of the reaction.

(d)

Expert Solution
Check Mark

Answer to Problem 12.78PAE

Solution:

 K=2.17×1062

Explanation of Solution

The given reaction is as follows:2HCl (g) +F2 (g)2HF(g)+Cl2 (g) First step is to calculate the value of ΔGreactiono from the data given in Appendix E.

From the formula:ΔGreactiono=2ΔGHFo+ΔG Cl2o[2ΔGHClo+ΔG F 2o]=2 mol(273.2 kJ/mol)+0(2 mol( 95.3 kJ/mol)+0)=355.8 kJ

From the calculated value of ΔGreactiono calculate the value of equilibrium constant Kp

ΔGreactiono=RTlnKp

The absolute temperature is 298 .15 K, putting all the values,355.8×103J=(8.314 J/mol K)(298.15 K)lnKp143.53=lnKpKp=2.17×1062

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Chapter 12 Solutions

Chemistry for Engineering Students

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