Introductory Chemistry: A Foundation
Introductory Chemistry: A Foundation
8th Edition
ISBN: 9781285199030
Author: Steven S. Zumdahl, Donald J. DeCoste
Publisher: Cengage Learning
Question
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Chapter 15, Problem 130AP
Interpretation Introduction

(a)

Interpretation:

The normality of the given solution is to be calculated.

Concept Introduction:

The normality of a solution is defined as the gram equivalent weight of a solute dissolved in one liter of the solution. The normality of solution is given as:

N=neqV

Where,

  • neq represents the number of equivalents of the solute.
  • V represents the volume of the solution.

Expert Solution
Check Mark

Answer to Problem 130AP

The normality of the given solution of HCl is 0.823N.

Explanation of Solution

The mass of HCl dissolved in solution is 15.0g.

The volume of the HCl solution is 500mL.

The molar mass of HCl is 36.469gmol1.

The dissociation reaction of HCl in water is represented as:

HClaqH+aq+Claq

The number of H+ ion released by HCl is 1.

Hence the equivalence factor of HCl is 1eqmol1.

The equivalent mass of a substance is given as:

Meq=Mmn

Where,

  • Mm represents the molar mass of the substance.
  • n represents the equivalence factor of the substance.

Substitute the value of Mm and n in the above equation.

Meq=36.469gmol11eqmol1=36.469geq1

The normality of a solution is given as:

N=mVMeq

Where,

  • m represents the mass of the solute.
  • Meq represents the equivalent mass of the solute.
  • V represents the volume of the solution.

Substitute m, Meq and V in the above equation.

N=15.0g500mL1L1000mL36.469geq1=0.823eqL11N1eqL1=0.823N

Therefore, the normality of the given solution is 0.823N.

Interpretation Introduction

(b)

Interpretation:

The normality of the given solution is to be calculated.

Concept Introduction:

The normality of a solution is defined as the gram equivalent weight of a solute dissolved in one liter of the solution. The normality of solution is given as:

N=neqV

Where,

  • neq represents the number of equivalents of the solute.
  • V represents the volume of the solution.

Expert Solution
Check Mark

Answer to Problem 130AP

The normality of the given solution of H2SO4 is 3.9968N.

Explanation of Solution

The mass of H2SO4 dissolved in solution is 49.0g.

The volume of the H2SO4 solution is 250mL.

The molar mass of H2SO4 is 98.079gmol1.

The dissociation reaction of H2SO4 in water is represented as:

H2SO4aq2H+aq+SO42aq

The number of H+ ion released by H2SO4 is 2.

Hence the equivalence factor of H2SO4 is 2eqmol1.

The equivalent mass of a substance is given as:

Meq=Mmn

Where,

  • Mm represents the molar mass of the substance.
  • n represents the equivalence factor of the substance.

Substitute the value of Mm and n in the above equation.

Meq=98.079gmol12eqmol1=49.0395geq1

The normality of a solution is given as:

N=mVMeq

Where,

  • m represents the mass of the solute.
  • Meq represents the equivalent mass of the solute.
  • V represents the volume of the solution.

Substitute m, Meq and V in the above equation.

N=49.0g250mL1L1000mL49.0395geq1=3.9968eqL11N1eqL1=3.9968N

Therefore, the normality of the given solution is 3.9968N.

Interpretation Introduction

(c)

Interpretation:

The normality of the given solution is to be calculated.

Concept Introduction:

The normality of a solution is defined as the gram equivalent weight of a solute dissolved in one liter of the solution. The normality of solution is given as:

N=neqV

Where,

  • neq represents the number of equivalents of the solute.
  • V represents the volume of the solution.

Expert Solution
Check Mark

Answer to Problem 130AP

The normality of the given solution of H3PO4 is 3.0614N.

Explanation of Solution

The mass of H3PO4 dissolve in solution is 10.0g.

The volume of the H3PO4 solution is 100mL.

The molar mass of H3PO4 is 97.994gmol1.

The dissociation reaction of H3PO4 in water is represented as:

H3PO4aq3H+aq+PO43aq

The number of H+ ion released by H3PO4 is 3.

Hence the equivalence factor of H3PO4 is 3eqmol1.

The equivalent mass of a substance is given as:

Meq=Mmn

Where,

  • Mm represents the molar mass of the substance.
  • n represents the equivalence factor of the substance.

Substitute the value of Mm and n in the above equation.

Meq=97.994gmol13eqmol1=32.6647geq1

The normality of a solution is given as:

N=mVMeq

Where,

  • m represents the mass of the solute.
  • Meq represents the equivalent mass of the solute.
  • V represents the volume of the solution.

Substitute m, Meq and V in the above equation.

N=10.0g100mL1L1000mL32.6647geq1=3.0614eqL11N1eqL1=3.0614N

Therefore, the normality of the given solution is 3.0614N.

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Chapter 15 Solutions

Introductory Chemistry: A Foundation

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