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Chapter 17, Problem 93AE

Acrylonitrile is the starting material used in tire manufacture of acrylic fibers (U.S. annual production capacity is more than two million pounds). Three industrial processes for the production of acrylonitrile are given below. Using data from Appendix 4, calculate ΔS°, ΔH°, and ΔG° for each process. For part a, assume that T = 25°C; for part b. T = 70.°C: and for part c. T = 700.°C. Assume that ΔH° and ΔH° do not depend on temperature.

  1. a. Chapter 17, Problem 93AE, Acrylonitrile is the starting material used in tire manufacture of acrylic fibers (U.S. annual
  2. b. H C C H ( g ) + H C N ( g ) 70 ° C 90 ° C C a C 2 H c l C H 2 = C H C N ( g )
  3. c. 4 C H 2 = C H C H 3 ( g ) + 6 N O 2 ( g ) Ag 700°C 4 C H 2 = C H C N ( g ) + 6 H O 2 ( g ) + N 2 ( g )

(a)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The value of ΔHο,ΔSο and ΔGο for the given reaction by the use of data given in appendix 4 should be determined.

Concept Introduction:

  • Enthalpy H: it is the total amount of heat in a particular system.
  • Entropy S : it is used to describe the disorder. It is the amount of arrangements possible in a system at a particular state.
  • Free energy change ΔG0: change in the free energy takes place while reactants converts to product where both are in standard state.

Answer to Problem 93AE

ΔH0(kJ)ΔS0(J/K)ΔG0(kJ)(a)183.1100153.6(b)177.1129138.6(c)1229.6917.61022.4

Explanation of Solution

To determine: The value of ΔHο,ΔSο and ΔGο for the given reaction by the use of data given in appendix 4

The given reaction is,

Ethyleneepoxide+HCNH2C=CHCN+water

Given,

The given values of ΔHο,ΔSο and ΔGο are as follows

CompoundΔH0(kJ/mol)ΔS0(kJ.mol)ΔG0(kJ/mol)ethyleneoxide5324213HCN135.1202125acrylonitrile185274195.4H2O28670237

The value of standard enthalpy change ΔHο of the given reaction is calculated by the formula,

ΔHο=npΔHfο(products)nrΔHfο(reactants)

Where,

ΔHfο(reactants)=the standard enthalpy of formation for the reactantsΔHfο(products)=the standard enthalpy of formation for the productsnp=number of products moleculenr=number of reactants molecule

Substitute the values of standard enthalpy of formations,

ΔHο=npΔHfο(products)nrΔHfο(reactants)ΔHο=ΔHfCH2CHCN(g)ο+ΔHfοH2O(l)ΔHfοethyleneoxide(g)ΔHfοHCN(g)=1mol(185)+1mol(286)1mol(53)1mol(135.1)=183.1kJ

Therefore,

ΔHο=183.1kJ

The value of standard entropy change ΔSο of the given reaction is calculated by the formula,

ΔSο=npΔSfο(products)nrΔSfο(reactants)

Where,

ΔSfο(reactants)=the standard entropy of formation for the reactantsΔSfο(products)=the standard entropy of formation for the productsnp=number of products moleculenr=number of reactants molecule

Substitute the values of standard enthalpy of formations,

ΔSο=npΔSfο(products)nrΔSfο(reactants)ΔSο=ΔSfCH2CHCN(g)ο+ΔSfοH2O(l)ΔSfοethyleneoxide(g)ΔSfοHCN(g)=1mol(274)+1mol(70)1mol(242)1mol(202)=100J/K

Therefore,

ΔSο=100J/K

The value of standard free energy change ΔGο of the given reaction is calculated by the formula,

ΔGο=npΔGfο(products)nrΔGfο(reactants)

Where,

ΔGfο(reactants)=the standard free energy of formation for the reactantsΔGfο(products)=the standard free energy of formation for the productsnp=number of products moleculenr=number of reactants molecule

Substitute the values of standard enthalpy of formations,

ΔGο=npΔGfο(products)nrΔGfο(reactants)ΔGο=ΔGfCH2CHCN(g)ο+ΔGfοH2O(l)ΔGfοethyleneoxide(g)ΔGfοHCN(g)=1mol(195.4)+1mol(237)1mol(13)1mol(125)=153.6kJ

Therefore,

ΔGο=153.6kJ

(b)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The value of ΔHο,ΔSο and ΔGο for the given reaction by the use of data given in appendix 4 should be determined.

Concept Introduction:

  • Enthalpy H: it is the total amount of heat in a particular system.
  • Entropy S : it is used to describe the disorder. It is the amount of arrangements possible in a system at a particular state.
  • Free energy change ΔG0: change in the free energy takes place while reactants converts to product where both are in standard state.

Answer to Problem 93AE

ΔH0(kJ)ΔS0(J/K)ΔG0(kJ)(a)183.1100153.6(b)177.1129138.6(c)1229.6917.61022.4

Explanation of Solution

The given reaction is,

HCCH+HCNH2C=CHCNH

Given,

The given values of ΔHο,ΔSο and ΔGο are as follows

CompoundΔH0(kJ/mol)ΔS0(kJ.mol)ΔG0(kJ/mol)HCCH227201209HCN135.1202125acrylonitrile185274195.4

The value of standard enthalpy change ΔHο of the given reaction is calculated by the formula,

ΔHο=npΔHfο(products)nrΔHfο(reactants)

Where,

ΔHfο(reactants)=the standard enthalpy of formation for the reactantsΔHfο(products)=the standard enthalpy of formation for the productsnp=number of products moleculenr=number of reactants molecule

Substitute the values of standard enthalpy of formations,

ΔHο=npΔHfο(products)nrΔHfο(reactants)ΔHο=ΔHfCH2CHCN(g)οΔHfοHCCH(g)ΔHfοHCN(g)=1mol(185)1mol(227)1mol(135.1)=177.1kJ

Therefore,

ΔHο=177.1kJ

The value of standard entropy change ΔSο of the given reaction is calculated by the formula,

ΔSο=npΔSfο(products)nrΔSfο(reactants)

Where,

ΔSfο(reactants)=the standard entropy of formation for the reactantsΔSfο(products)=the standard entropy of formation for the productsnp=number of products moleculenr=number of reactants molecule

Substitute the values of standard enthalpy of formations,

ΔSο=npΔSfο(products)nrΔSfο(reactants)ΔSο=ΔSfCH2CHCN(g)οΔSfοHCCH(g)ΔSfοHCN(g)=1mol(274)1mol(201)1mol(202)=129kJ

Therefore,

ΔSο=129J/K

The value of standard free energy change ΔGο of the given reaction is calculated by the formula,

ΔGο=npΔGfο(products)nrΔGfο(reactants)

Where,

ΔGfο(reactants)=the standard free energy of formation for the reactantsΔGfο(products)=the standard free energy of formation for the productsnp=number of products moleculenr=number of reactants molecule

Substitute the values of standard enthalpy of formations,

ΔGο=npΔGfο(products)nrΔGfο(reactants)ΔGο=ΔGfCH2CHCN(g)οΔGfοHCCH(g)ΔGfοHCN(g)=1mol(195.4)1mol(209)1mol(125)=138.6kJ

Therefore,

ΔGο=138.6kJ

(c)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The value of ΔHο,ΔSο and ΔGο for the given reaction by the use of data given in appendix 4 should be determined.

Concept Introduction:

  • Enthalpy H: it is the total amount of heat in a particular system.
  • Entropy S : it is used to describe the disorder. It is the amount of arrangements possible in a system at a particular state.
  • Free energy change ΔG0: change in the free energy takes place while reactants converts to product where both are in standard state.

Answer to Problem 93AE

ΔH0(kJ)ΔS0(J/K)ΔG0(kJ)(a)183.1100153.6(b)177.1129138.6(c)1229.6917.61022.4

Explanation of Solution

The given reaction is,

4HC=CHCH+NO4H2C=CHCN+6H2O+N2

Given,

The given values of ΔHο,ΔSο and ΔGο are as follows

CompoundΔH0(kJ/mol)ΔS0(kJ.mol)ΔG0(kJ/mol)CH2CHCH320.9266.962.7NO9021187acrylonitrile185274195.4H2O28670237N201920

The value of standard enthalpy change ΔHο of the given reaction is calculated by the formula,

ΔHο=npΔHfο(products)nrΔHfο(reactants)

Where,

ΔHfο(reactants)=the standard enthalpy of formation for the reactantsΔHfο(products)=the standard enthalpy of formation for the productsnp=number of products moleculenr=number of reactants molecule

Substitute the values of standard enthalpy of formations,

ΔHο=npΔHfο(products)nrΔHfο(reactants)ΔHο=ΔHfCH2CHCN(g)ο+ΔHfοH2O(l)+ΔHfοN2(g)ΔHfοCH2CHCH3(g)ΔHfοNO(g)=6mol(185)+6mol(286)+1mol(0)4mol(20.9)6mol(90)=1110171683.6540=1229.6kJ

Therefore,

ΔHο=1229.6kJ

The value of standard entropy change ΔSο of the given reaction is calculated by the formula,

ΔSο=npΔSfο(products)nrΔSfο(reactants)

Where,

ΔSfο(reactants)=the standard entropy of formation for the reactantsΔSfο(products)=the standard entropy of formation for the productsnp=number of products moleculenr=number of reactants molecule

Substitute the values of standard enthalpy of formations,

ΔSο=npΔSfο(products)nrΔSfο(reactants)ΔSο=ΔSfCH2CHCN(g)ο+ΔSfοH2O(l)+ΔSfοN2(g)ΔSfοCH2CHCH3(g)ΔSfοNO(g)=6mol(274)+6mol(70)+1mol(192)4mol(266.9)6mol(211)=1644420+1921067.61266=917.6J/K

Therefore,

ΔSο=917.6J/K

The value of standard free energy change ΔGο of the given reaction is calculated by the formula,

ΔGο=npΔGfο(products)nrΔGfο(reactants)

Where,

ΔGfο(reactants)=the standard free energy of formation for the reactantsΔGfο(products)=the standard free energy of formation for the productsnp=number of products moleculenr=number of reactants molecule

Substitute the values of standard enthalpy of formations,

ΔGο=npΔGfο(products)nrΔGfο(reactants)ΔGο=ΔGfCH2CHCN(g)ο+ΔGfοH2O(l)+ΔGfοN2(g)ΔGfοCH2CHCH3(g)ΔGfοNO(g)=6mol(195.4)+6mol(237)+1mol(0)4mol(62.7)6mol(87)=1172.41422250.8522=1022.4kJ

Therefore,

ΔGο=1022.4kJ

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Chapter 17 Solutions

Bundle: Chemistry, Loose-leaf Version, 10th + Enhanced Webassign Printed Access Card For Chemistry, Multi-term Courses

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K:...Ch. 17 - Consider the following reaction at 298 K:...Ch. 17 - Consider the relationship In(K)=HRT+SR The...Ch. 17 - The equilibrium constant K for the reaction...Ch. 17 - A reaction has K = 1.9 1014 at 25C and K = 9.1 ...Ch. 17 - Using Appendix 4 and the following data, determine...Ch. 17 - Some water is placed in a coffee-cup calorimeter....Ch. 17 - A green plant synthesizes glucose by...Ch. 17 - When most biological enzymes are heated, they lose...Ch. 17 - Acrylonitrile is the starting material used in...Ch. 17 - Calculate the entropy change for the vaporization...Ch. 17 - As O2(l) is cooled at 1 atm, it freezes at 54.5 K...Ch. 17 - Consider the following reaction:...Ch. 17 - Using the following data, calculate the value of...Ch. 17 - Many biochemical reactions that occur in cells...Ch. 17 - Carbon monoxide is toxic because it bonds much...Ch. 17 - In the text, the equation G=G+RTIn(Q) was derived...Ch. 17 - Prob. 101AECh. 17 - Use the equation in Exercise 79 to determine H and...Ch. 17 - Prob. 103AECh. 17 - Consider the following diagram of free energy (G)...Ch. 17 - Prob. 105CWPCh. 17 - For rubidium Hvapo=69.0KJ/mol at 686C, its boiling...Ch. 17 - Given the thermodynamic data below, calculate S...Ch. 17 - Consider the reaction: H2S(g)+SO2(g)3S(g)+2H2O(l)...Ch. 17 - The following reaction occurs in pure water:...Ch. 17 - Prob. 110CWPCh. 17 - Consider the reaction: PCl3(g)+Cl2(g)PCl5(g) At...Ch. 17 - The equilibrium constant for a certain reaction...Ch. 17 - Consider two perfectly insulated vessels. 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