Student Solutions Manual for Zumdahl/Zumdahl/DeCoste?s Chemistry, 10th Edition
Student Solutions Manual for Zumdahl/Zumdahl/DeCoste?s Chemistry, 10th Edition
10th Edition
ISBN: 9781305957510
Author: ZUMDAHL, Steven S.; Zumdahl, Susan A.; DeCoste, Donald J.
Publisher: Cengage Learning
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Chapter 6, Problem 85E

Use the values of Δ H f ° in Appendix 4 to calculate ∆Hº for the following reactions.

a. Chapter 6, Problem 85E, Use the values ofHf in Appendix 4 to calculate H for the following reactions. a. b.

b. Ca 3 ( PO 4 ) ( s ) + 3 H 2 SO 4 ( l ) 3 CaSO 4 ( s ) + 2 H 3 PO 4 ( l )

c. NH 3 ( g ) + HCl ( g ) NH 4 Cl ( s )

a)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: Standard enthalpy change has calculated for given reaction.

Concept introduction

Standard Enthalpy change (ΔH0): The heat change when molar quantities of reactants as specified by chemical equation to form a product at standard conditions. Standard condition: 250C and 1 atmosphere pressure.

Answer to Problem 85E

2NH3(g)+3O2(g) + 2CH4(g) 2HCN(g) + 6H2O(g). ΔH0=-940kJ

Explanation of Solution

Given data

Standard state for given compound in the reaction are,

Substance and state          ΔHf0kJ / mole

NH3(g)                                   -46

O2(g)                                        0

CH4(g)                                   -75

HCN(g)                                 -135.1

H2O(g)                                -242

Ca(PO4)2(s)                           -4126H2SO4(l)                               -814

CaSO4(s)                              -1433

H3PO4(s)                              -1267

HCl(g)                                   -92

NH4Cl(s)                               -314

To calculate standard enthalpy change.

 The balanced equation is,

2NH3(g)+3O2(g) + 2CH4(g) 2HCN(g) + 6H2O(g).            ΔH0=-940kJ

In generally,

ΔH0= np ΔHf0,productnr ΔHf0,reactant

Here,

np - Number of moles of product                   

nr- Number of moles of reactant

                    =[2(135.1kJ)+6(-242kJ)]-[2(-46)+2(-75)]

                    =-940kJ/mol

b)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: Standard enthalpy change has calculated for given reaction.

Concept introduction

Standard Enthalpy change (ΔH0): The heat change when molar quantities of reactants as specified by chemical equation to form a product at standard conditions. Standard condition: 250C and 1 atmosphere pressure.

Answer to Problem 85E

 Ca3(PO4)2(s)+3H2SO4(l)3CaSO4(s)+2H3PO4(l) ΔH0=-265kJ

Explanation of Solution

Given data

Standard state for given compound in the reaction are,

Substance and state          ΔHf0kJ/ mole

NH3(g)                                   -46

O2(g)                                        0

CH4(g)                                   -75

HCN(g)                                 -135.1

H2O(g)                                -242

Ca(PO4)2(s)                           -4126H2SO4(l)                               -814

CaSO4(s)                              -1433

H3PO4(s)                              -1267

HCl(g)                                   -92

NH4Cl(s)                               -314

The standard state of ammonia gas, oxygen, methane, hydrogen cyanide and water vapour are given. By substituting the values in the standard enthalpy change equation the standard enthalpy change for the reaction calculated as -940kJ/mol.

To calculate standard enthalpy change.

The balanced equation is,

          Ca3(PO4)2(s)+3H2SO4(l)3CaSO4(s)+2H3PO4(l) ΔH0=-265kJ

ΔH0= np ΔHf0,productnr ΔHf0,reactant

            =[3(-1433 kJ)+2(-1267kJ)]-[1(-4126kJ)+3(-814 kJ)]

            =-265kJ

The standard state of some compounds which present in the reaction are given. By substituting the values in the standard enthalpy change equation, the standard enthalpy change for the reaction calculated as -265kJ.

c)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: Standard enthalpy change has calculated for given reaction.

Concept introduction

Standard Enthalpy change (ΔH0): The heat change when molar quantities of reactants as specified by chemical equation to form a product at standard conditions. Standard condition: 250C and 1 atmosphere pressure.

Answer to Problem 85E

 NH3(g)+HCl(g)NH4Cl(s)                                          ΔH0=-176kJ

Explanation of Solution

Given data

Standard state for given compound in the reaction are,

Substance and state          ΔHf0kJ/ mole

NH3(g)                                   -46

O2(g)                                        0

CH4(g)                                   -75

HCN(g)                                 -135.1

H2O(g)                                -242

Ca(PO4)2(s)                           -4126H2SO4(l)                               -814

CaSO4(s)                              -1433

H3PO4(s)                              -1267

HCl(g)                                   -92

NH4Cl(s)                               -314

To calculate standard enthalpy change.

The balanced equation is,

                   NH3(g)+HCl(g)NH4Cl(s)           ΔH0=-176kJ

ΔH0= np ΔHf0,productnr ΔHf0,reactant

          =[1(-314kJ)]-[1(-46kJ)+1(-92kJ)]

          =-176kJ

The standard state of some compounds which present in the reaction are given. By substituting the values in the standard enthalpy change equation, the standard enthalpy change for the reaction calculated as -176kJ.

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Chapter 6 Solutions

Student Solutions Manual for Zumdahl/Zumdahl/DeCoste?s Chemistry, 10th Edition

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