INTRO.TO CHEM.ENGR.THERMO.-EBOOK>I<
INTRO.TO CHEM.ENGR.THERMO.-EBOOK>I<
8th Edition
ISBN: 9781260940961
Author: SMITH
Publisher: INTER MCG
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Chapter 4, Problem 4.23P

(a)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(a)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=91.88kJmol

Explanation of Solution

Given information:

The reaction is given as:

  N2(g)+3H2g2NH3(g)

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHNH3=42.94kJmol, ΔHN2=0kJmol and ΔHH2=0kJmol

Since The standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νNH3ΔHNH3|298fνH2ΔHH2|298f+νN2ΔHN2|298fΔH298|r=2×(45.94kJmol)3×0kJmol+1×0kJmolΔH298|r=91.88kJmol

(b)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(b)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=906.396kJmol

Explanation of Solution

Given information:

The reaction is given as:

  4NH3(g)+5O2(g)4NO(g)+6H2Og

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHNH3=42.94kJmol, ΔHO2=0kJmol, ΔHNO=90.2kJmol and ΔHH2O=241.826kJmol

Since The standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νNOΔHNO|298f+νH2OΔHH2O|298fνNH3ΔHNH3|298f+νO2ΔHO2|298fΔH298|r=4×90.2kJmol+6×241.826kJmol4×45.94kJmol+5×0kJmolΔH298|r=906.396kJmol

(c)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(c)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=71.77kJmol

Explanation of Solution

Given information:

The reaction is given as:

  3NO2(g)+H2O(l)2HNO3(l)+NO(g)

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHNO2=33.2kJmol, ΔHHNO3=174.1kJmol, ΔHNO=90.2kJmol and ΔHH2O(l)=285.830kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νHNO3ΔHHNO3(l)|298f+νNOΔHNO|298fνH2OΔHH2O(l)|298f+νNO2ΔHNO2|298fΔH298|r=2×174.1kJmol+1×90.2kJmol1×285.83kJmol+3×33.2kJmolΔH298|r=71.77kJmol

(d)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(d)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=62.59kJmol

Explanation of Solution

Given information:

The reaction is given as:

  CaC2(s)+H2O(l)C2H2(g)+CaO(s)

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHCaC2(s)=59.8kJmol, ΔHC2H2=226.7kJmol, ΔHCaO(s)=634.92kJmol and ΔHH2O(l)=285.830kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νC2H2ΔHC2H2(g)|298f+νCaO(s)ΔHCaO(s)|298fνH2OΔHH2O(l)|298f+νCaC2ΔHCaC2(s)|298fΔH298|r=1×226.7kJmol+1×634.92kJmol1×285.83kJmol+1×59.8kJmolΔH298|r=62.59kJmol

(e)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(e)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=1334.852kJmol

Explanation of Solution

Given information:

The reaction is given as:

  2Na(s)+2H2O(g)2NaOH(s)+H2(g)

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHNaOH(s)=425.6kJmol, ΔHH2=0kJmol, ΔHNa(s)=0kJmol and ΔHH2O(g)=241.826kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νNaOHΔHNaOH(s)|298f+νH2ΔHH2(g)|298fνH2OΔHH2O(g)|298f+νNaΔHNa(s)|298fΔH298|r=2×425.6kJmol+1×0kJmol2×241.826kJmol+2×0kJmolΔH298|r=1334.852kJmol

(f)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(f)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=2733.592kJmol

Explanation of Solution

Given information:

The reaction is given as:

  6NO2(g)+8NH3(g)7N2(g)+12H2O(g)

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHNH3(g)=45.94kJmol, ΔHN2=0kJmol, ΔHNO2(g)=33.2kJmol and ΔHH2O(g)=241.826kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νH2OΔHH2O(g)|298f+νN2ΔHN2(g)|298fνNO2ΔHNO2(g)|298f+νNH3ΔHNH3|298fΔH298|r=12×241.826kJmol+7×0kJmol6×33.2kJmol+8×45.94kJmolΔH298|r=2733.592kJmol

(g)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(g)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=104.9kJmol

Explanation of Solution

Given information:

The reaction is given as:

  C2H4(g)+12O2(g)CH22O(g)

The catalytic oxidation of ethylene gives ethylene oxide as a product.

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHC2H4(g)=52.3kJmol, ΔHO2=0kJmol and ΔHCH22O(g)=52.6kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=ν C H 2 2O(g)ΔH C H 2 2O(g)|298fνC2H4ΔHC2H4(g)|298f+νO2ΔHO2|298fΔH298|r=1×52.6kJmol1×52.3kJmol+12×0kJmolΔH298|r=104.9kJmol

(h)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(h)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=151.074kJmol

Explanation of Solution

Given information:

The reaction is given as:

  C2H2(g)+H2O(g)CH22O(g)

The acetylene reacts with water to give acetaldehyde as a product.

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHC2H2(g)=226.7kJmol, ΔHH2O=241.826kJmol and ΔHCH22O(g)=166.2kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=ν C H 2 2O(g)ΔH C H 2 2O(g)|298fνC2H2ΔHC2H2(g)|298f+νH2OΔHH2O|298fΔH298|r=1×166.2kJmol1×226.7kJmol+1×241.826kJmolΔH298|r=151.074kJmol

(i)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(i)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=164.942kJmol

Explanation of Solution

Given information:

The reaction is given as:

  CH4(g)+2H2O(g)CO2(g)+4H2(g)

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHCH4=74.8kJmol, ΔHH2O(g)=241.826kJmol, ΔHH2=0kJmol and ΔHCO2(g)=393.51kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νCO2(g)ΔHCO2(g)+νH2ΔHH2|298fνCH4ΔHCH4(g)|298f+νH2OΔHH2O(g)|298fΔH298|r=1×393.51kJmol+4×0kJmol1×74.8kJmol+2×241.826kJmolΔH298|r=164.942kJmol

(j)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(j)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=49.316kJmol

Explanation of Solution

Given information:

The reaction is given as:

  CO2(g)+3H2(g)CH3OH(g)+H2O(g)

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHCH3OH(g)=201kJmol, ΔHH2O(g)=241.826kJmol, ΔHH2=0kJmol and ΔHCO2(g)=393.51kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νCH3OH(g)ΔHCH3OH(g)|298f+νH2OΔHH2O(g)|298fνCO2(g)ΔHCO2(g)+νH2ΔHH2|298fΔH298|r=1×201kJmol+1×241.826kJmol1×393.51kJmol+3×0kJmolΔH298|r=49.316kJmol

(k)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(k)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=149.396kJmol

Explanation of Solution

Given information:

The reaction is given as:

  CH3OH(g)+12O2(g)HCHO(g)+H2O(g)

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHCH3OH(g)=201kJmol, ΔHH2O(g)=241.826kJmol, ΔHO2=0kJmol and ΔHHCHO(g)=108.570kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νHCHOΔHHCHO(g)|298f+νH2OΔHH2O(g)|298fνCH3OH(g)ΔHCH3OH(g)|298f+νO2ΔHO2|298fΔH298|r=1×108.570kJmol+1×241.826kJmol1×201kJmol+12×0kJmolΔH298|r=149.396kJmol

(l)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(l)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=1036.052kJmol

Explanation of Solution

Given information:

The reaction is given as:

  2H2S(g)+3O2(g)2SO2(g)+2H2O(g)

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHH2S(g)=20.63kJmol, ΔHH2O(g)=241.826kJmol, ΔHO2=0kJmol and ΔHSO2(g)=296.83kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νSO2(g)ΔHSO2(g)|298f+νH2OΔHH2O(g)|298fνH2S(g)ΔHH2S(g)|298f+νO2ΔHO2|298fΔH298|r=2×296.83kJmol+2×241.826kJmol2×20.63kJmol+3×0kJmolΔH298|r=1036.052kJmol

(m)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(m)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=207.452kJmol

Explanation of Solution

Given information:

The reaction is given as:

  H2S(g)+2H2O(g)SO2(g)+3H2(g)

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHH2S(g)=20.63kJmol, ΔHH2O(g)=241.826kJmol, ΔHH2=0kJmol and ΔHSO2(g)=296.83kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νSO2(g)ΔHSO2(g)|298f+νH2OΔHH2O(g)|298fνH2S(g)ΔHH2S(g)|298f+νO2ΔHO2|298fΔH298|r=1×296.83kJmol+3×0kJmol1×20.63kJmol+2×241.826kJmolΔH298|r=207.452kJmol

(n)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(n)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=180.5kJmol

Explanation of Solution

Given information:

The reaction is given as:

  N2(g)+O22NO(g)

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHNO=90.25kJmol, ΔHN2=0kJmol and ΔHO2=0kJmol

Since The standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νNOΔHNO|298fνO2ΔHO2|298f+νN2ΔHN2|298fΔH298|r=2×(90.25kJmol)1×0kJmol+1×0kJmolΔH298|r=180.5kJmol

(o)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(o)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=178.321kJmol

Explanation of Solution

Given information:

The reaction is given as:

  CaCO3(s)CaO(s)+CO2(g)

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHCaCO3=1206.92kJmol, ΔHCaO=635.09kJmol and ΔHCO2(g)=393.509kJmol

Since The standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νCO2(g)ΔHCO2(g)+νCaO(s)ΔHCaO(s)νCaCO3(s)ΔHCaCO3(s)ΔH298|r=1×393.509kJmol+1×635.09kJmol1×1206.92kJmolΔH298|r=178.321kJmol

(p)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(p)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=132.439kJmol

Explanation of Solution

Given information:

The reaction is given as:

  SO3(g)+H2O(l)H2SO4(l)

The acetylene reacts with water to give acetaldehyde as a product.

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHSO3(g)=395.72kJmol, ΔHH2O(l)=285.83kJmol and ΔHH2SO4(l)=813.989kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νH2SO4(l)ΔHH2SO4(l)νSO3(g)ΔHSO3(g)|298f+νH2O(l)ΔHH2O(l)|298fΔH298|r=1×813.989kJmol1×395.72kJmol+1×285.83kJmolΔH298|r=132.439kJmol

(q)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(q)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=60.65kJmol

Explanation of Solution

Given information:

The reaction is given as:

  C2H4(g)+H2O(l)C2H5OH(l)

The acetylene reacts with water to give acetaldehyde as a product.

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHC2H4(g)=52.51kJmol, ΔHH2O(l)=285.83kJmol and ΔHC2H5OH(l)=277.69kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νC2H5OH(l)ΔHC2H5OH(l)νC2H4(g)ΔHC2H4(g)|298f+νH2O(l)ΔHH2O(l)|298fΔH298|r=1×277.69kJmol1×52.51kJmol+1×285.83kJmolΔH298|r=60.65kJmol

(r)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(r)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=68.91kJmol

Explanation of Solution

Given information:

The reaction is given as:

  CH3CHO(g)+H2(g)C2H5OH(g)

The acetylene reacts with water to give acetaldehyde as a product.

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHCH3CHO(g)=166.19kJmol, ΔHH2(g)=0kJmol and ΔHC2H5OH(g)=235.1kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νC2H5OH(g)ΔHC2H5OH(g)νCH3CHO(g)ΔHCH3CHO(g)|298f+νH2(g)ΔHH2(g)|298fΔH298|r=1×235.1kJmol1×166.19kJmol+1×0kJmolΔH298|r=68.91kJmol

(s)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(s)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=492.64kJmol

Explanation of Solution

Given information:

The reaction is given as:

  C2H5OH(l)+O2(g)CH3COOH(l)+H2O(l)

The acetylene reacts with water to give acetaldehyde as a product.

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHCH3COOH(l)=484.5kJmol, ΔHO2(g)=0kJmol, ΔHH2O(l)=285.83kJmol and ΔHC2H5OH(l)=277.69kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νCH3COOH(l)ΔHCH3COOH(l)|298f+νH2O(l)ΔHH2O(l)|298fνC2H5OH(l)ΔHC2H5OH(l)+νO2(g)ΔHO2(g)|298fΔH298|r=1×484.5kJmol+1×285.83kJmol1×277.69kJmol+1×0kJmolΔH298|r=492.64kJmol

(t)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(t)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=109.78kJmol

Explanation of Solution

Given information:

The reaction is given as:

  C2H5CH:CH2(g)CH2:CHCH:CH2(g)+H2(g)

The acetylene reacts with water to give acetaldehyde as a product.

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHCH2:CHCH:CH2(g)=109.24kJmol, ΔHH2(g)=0kJmol, and ΔHC2H5CH:CH2(g)=0.540kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νCH2:CHCH:CH2(g)ΔHCH2:CHCH:CH2(g)|298f+νH2(g)ΔHH2(g)|298fνC2H5CH:CH2(g)ΔHC2H5CH:CH2(g)ΔH298|r=1×109.24kJmol+1×0kJmol1×0.540kJmolΔH298|r=109.78kJmol

(u)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(u)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=235.03kJmol

Explanation of Solution

Given information:

The reaction is given as:

  C4H10(g)CH2:CHCH:CH2(g)+2H2(g)

The acetylene reacts with water to give acetaldehyde as a product.

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHCH2:CHCH:CH2(g)=109.24kJmol, ΔHH2(g)=0kJmol, and ΔHC4H10(g)=125.79kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νCH2:CHCH:CH2(g)ΔHCH2:CHCH:CH2(g)|298f+νH2(g)ΔHH2(g)|298fνC4H 10(g)ΔHC4H 10(g)ΔH298|r=1×109.24kJmol+2×0kJmol1×125.79kJmolΔH298|r=235.03kJmol

(v)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(v)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=132.046kJmol

Explanation of Solution

Given information:

The reaction is given as:

  C2H5CH:CH2(g)+12O2(g)CH2:CHCH:CH2(g)+H2O(g)

The acetylene reacts with water to give acetaldehyde as a product.

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHCH2:CHCH:CH2(g)=109.24kJmol, ΔHO2(g)=0kJmol, ΔHH2O(g)=241.826kJmol and ΔHC2H5CH:CH2(g)=0.540kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νCH2:CHCH:CH2(g)ΔHCH2:CHCH:CH2(g)|298f+νH2O(g)ΔHH2O(g)|298fνC2H5CH:CH2(g)ΔHC2H5CH:CH2(g)+νO2(g)ΔHO2(g)|298fΔH298|r=1×109.24kJmol+1×241.826kJmol1×0.540kJmol+1×0kJmolΔH298|r=132.046kJmol

(w)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(w)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=1808.396kJmol

Explanation of Solution

Given information:

The reaction is given as:

  4NH3(g)+6NO(g)5N2(g)+6H2O(g)

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHNH3=42.94kJmol, ΔHN2=0kJmol, ΔHNO=90.2kJmol and ΔHH2O=241.826kJmol

Since The standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νN2ΔHN2|298f+νH2OΔHH2O|298fνNH3ΔHNH3|298f+νNO(g)ΔHNO(g)|298fΔH298|r=5×0kJmol+6×241.826kJmol4×45.94kJmol+6×90.2kJmolΔH298|r=1808.396kJmol

(x)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(x)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=43.5kJmol

Explanation of Solution

Given information:

The reaction is given as:

  N2(g)+C2H22HCN(g)

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHC2H2(g)=226.7kJmol, ΔHN2=0kJmol and ΔHHCN(g)=135.1kJmol

Since The standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νHCN(g)ΔHHCN(g)|298fνC2H2ΔHC2H2|298f+νN2ΔHN2|298fΔH298|r=2×(135.1kJmol)1×226.7kJmol+1×0kJmolΔH298|r=43.5kJmol

(y)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(y)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=109.78kJmol

Explanation of Solution

Given information:

The reaction is given as:

  C6H5.C2H5(g)C6H5.CH:CH2(g)+H2(g)

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHC6H5.CH:CH2(g)=147.36kJmol, ΔHH2(g)=0kJmol, and ΔHC6H5.C2H5(g)=29.92kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νC6H5.CH:CH2(g)ΔHC6H5.CH:CH2(g)|298f+νH2(g)ΔHH2(g)|298fνC6H5.C2H5(g)ΔHC6H5.C2H5(g)ΔH298|r=1×147.36kJmol+1×0kJmol1×29.92kJmolΔH298|r=117.44kJmol

(z)

Interpretation Introduction

Interpretation:

Calculate the standard heat of given equation at 25oC .

Concept Introduction:

The standard heat of reaction is calculated as:

  ΔH298=HPHR

....(1)

Where ΔH298 is standard heat of reaction at temperature 25oC .

(z)

Expert Solution
Check Mark

Answer to Problem 4.23P

  ΔH298|r=175.305kJmol

Explanation of Solution

Given information:

The reaction is given as:

  C(s)+H2O(l)CO(g)+H2(g)

The standard enthalpies of formation at standard temperature 298K are written from appendix C table C.4.

Values are:

ΔHC(s)=0kJmol, ΔHH2O(l)=285.83kJmol, ΔHH2(g)=0kJmol, and ΔHCO(g)=110.525kJmol

Since the standard heat of reaction is calculated as:

  ΔH298|r=HPHRΔH298|r=νCO(g)ΔHCO(g)|298f+νH2(g)ΔHH2(g)|298fνC(s)ΔHC(s)+νH2O(l)ΔHH2O(l)|298fΔH298|r=1×110.525kJmol+1×0kJmol1×0kJmol+1×285.83kJmolΔH298|r=175.305kJmol

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