CHEMISTRY >CUSTOM<
CHEMISTRY >CUSTOM<
8th Edition
ISBN: 9781309097182
Author: SILBERBERG
Publisher: MCG/CREATE
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Chapter 21, Problem 21.153P

a)

Interpretation Introduction

Interpretation:

Burning of 1.00gal gasoline to produce carbon-dioxide gas and water vapour, value of ΔH has to be calculated.

Concept Introduction:

The standard enthalpy of reaction is quantity of energy released or consumed when one mole of a substance is formed under standard conditions from its pure elemental form. It is denoted as ΔHrxn°.

ΔHrxn°= ΔHp° ΔHr°ΔHp°  =  standard enthalpy of productΔHr°  =  standard enthalpy of reactant

a)

Expert Solution
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Explanation of Solution

The given chemical equation:

2C8H8(l)+ 25O2(g)16CO2(g)+18H2O(g)

As known, heat of reaction is calculated using heat of formation as follows,

ΔHrxn°=ΔHf(poducts)°ΔHf(reactants)°

ΔHrxn°=[(16mol CO2)(ΔHf°ofCO2)+(18mol H2O)(ΔHf°ofH2O)]-[(2molC8H18)(ΔHf°ofC8H18)+(25mol O2)(ΔHf°ofO2)]ΔHrxn°=[(16mol CO2)(-393.5kJ/mol)+(18mol H2O)(-241.826kJ/mol)]-[(2molC8H18)(-250.1kJ/mol)+(25mol O2)(0kJ/mol)]ΔHrxn°=-10148.868=-10148.9kJ.

The energy from 1.00gal of gasoline as follows,

Energy (kJ)=(1.00gal)(4qt1gal)(1L1.057qt)(1mL103L)(0.7028gmL)(1molC8H18114.22gC8H18)(10148.9kJ2molC8H18)=-1.18158×105=-1.18×105kJ.

Hence, the calculated value of ΔH is -1.18×105kJ.

b)

Interpretation Introduction

Interpretation:

Liters of H2 required to burn the given quantity of energy has to be calculated.

Concept introduction:

Ideal gas: A hypothetical gas whose molecules occupy negligible space and have no interactions, and which consequently obeys the gas law exactly.

Ideal gas equation: An equation describes the relationship among the four variables P, V, T, and n.

PV=nRT

The unit of each term in the equation is,

Where, R is proportionality constant called gas constant (atm.L/mol.K)

  V is volume (L)

  N is number of moles (moles)

  P is Pressure (atm)

  T is temperature (K)

Standard temperature and pressure: The conditions 0oC and 1atm are called standard atmospheric conditions.

b)

Expert Solution
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Explanation of Solution

The reaction as follows,

H2(g)12O2(g)H2O(g)

The heat of formation of water vapour is ΔHo=-241.826kJ.

The moles of hydrogen needed to produce the energy from given part a) is,

Moles of H2=(-1.18158×105kJ)(1molH2-241.826kJ)=488.6mol.

In order to determine the volume, the ideal gas equation is used as shown below,

V=nRTP=((488.6molH2)(0.0821L.atmmol.K)(298K)1.00atm)=1.195×104=1.20×104L.

Therefore, the volume required calculated as 1.20×104L.

c)

Interpretation Introduction

Interpretation:

For the amount of H2 to produce the time required by electrolysis with a current of 1.00×103Aat 6.00V has to be calculated.

c)

Expert Solution
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Explanation of Solution

The reaction as follows,

2H2O(l)+ 2e-H2(g)+2OH-(aq)

Using the known unit conversion; 1A =1C/s

Time (s)=(488.6molH2)(2mole-2molH2)(96485C1mole-)(s1.00×103C)=9.43×104seconds.

Therefore, the required time calculated as 9.43×104seconds.

d)

Interpretation Introduction

Interpretation:

Power required generating the amount of H2 in kilowatt-hours has to be calculated.

d)

Expert Solution
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Explanation of Solution

The coulombs involved in electrolysis of 488.6molofH2.

Coulombs=(488.6molH2)(2mole1molH2)(96485C1mole)=94,286,589C.

Conversion of Coulomb into Joules:

Joules=C×V=94,286,589C×6.00V=565,719,534J.

Conversion of Joules into Power:

Power(kW.h)=(565,719,534J)[1kW.h3.6×106J]=157.144=157kW.h.

Therefore, the Power required in order of generating the amount of H2 in kilowatt-hours calculated as 157kW.h.

e)

Interpretation Introduction

Interpretation:

The cost of producing the amount of H2 equivalent to 1.00gal of gasoline has to be calculated.

e)

Expert Solution
Check Mark

Explanation of Solution

Given:

Cell has efficiency of 88.0%; electricity costs of PerkW.h is $0.123.

Additional electricity is necessary to produce sufficient hydrogen; the purpose of (100%80%) factor.

Cost=(157kW.h)(100%80%)[0.123cents1kW.h]=21.96=22.0cents.

Therefore, the cost of producing the amount of H2 equivalent to 1.00gal of gasoline calculated as 22.0cents.

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Chapter 21 Solutions

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