Chemistry & Chemical Reactivity
Chemistry & Chemical Reactivity
10th Edition
ISBN: 9781337399074
Author: John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher: Cengage Learning
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Chapter 5, Problem 110SCQ

Peanuts and peanut oil are organic materials and bum in air. How many burning peanuts does it take to provide the energy to boil a cup of water (250 mL of water)? To solve this problem, we assume each peanut, with an average mass of 0.73 g, is 49% peanut oil and 21% starch; the remainder is noncombustible We further assume peanut oil is palmitic acid, C16H32O2, with an enthalpy of formation of −848.4 kJ/mol. Starch is a long chain of C6H10O5 units, each unit having an enthalpy of formation of −960 kJ.

Expert Solution & Answer
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Interpretation Introduction

Interpretation:

To identify how many burning peanuts are required to boil 250mL of water

Concept Introduction:

Heat energy required to raise the temperature of 1g of substance by 1K.Energy gained or lost can be calculated using the below equation.

  q=C×m×ΔT

Where, q= energy gained or lost for a given mass of substance (m), C =specific heat capacity,ΔT= change in temperature.

The enthalpy of combustion can be calculated as

                                               ΔcH0Chemistry & Chemical Reactivity, Chapter 5, Problem 110SCQ , additional homework tip  1ΣnΔfH0(reactants)-ΣnΔfH0(products)

Answer to Problem 110SCQ

The number of peanuts required is 41.6 peanuts

Explanation of Solution

Given 49% of the peanut is palmitic acid.

  0.73g×49100 = 0.3577g of palmitic acid.

Given 21% of the starch is palmitic acid.

  0.73g×21100=0.153g of starch

Molecular weight of starch=162g/mol

So we have 0.15162 = 0.000925 moles of starch.

Enthalpy of combustion of palmitic acid.is calculated as,

  C16H32O2+23O216O2+16H2O

Substitute in ΔcH0Chemistry & Chemical Reactivity, Chapter 5, Problem 110SCQ , additional homework tip  2ΣnΔfH0(reactants)-ΣnΔfH0(products) as

  ΔcH0=(848.4+0)-(16× -393.5+16×241.8)=-9315.6kJ/mol

Enthalpy of combustion of starch.is calculated as

  C6H10O5+6O26O2+5H2O

  ΔcH0=(-960+0)-(6× -393.5+-241.8)=-2610kJ/mol

Since we have 0.000925 moles of starch = 0.000925 moles × -2610kJ/mol

                                                                =-2.41kJ per peanut

We have 0.3577g of palmitic acid=0.3577g÷256.4 g/mol =0.0014 moles

Since we have 0.0014 moles of palmitic acid =0.0014 moles × -9315.6kJ/mol

                                                               =-13.04kJ per peanut

Mass of 250mL=250g of water

Substitute in q=C×m×ΔT

                     =250g×4.184J/gK×75K

                     q=78540J =78kJ

Energy required to raise the temperature to 1000C , =Heat of vaporization ×Mass

                                                                                    =2.25kJ/g×250g

                                                                                    =562.5kJ

The total energy =78kJ+562.5kJ=642.73kJ

The total amount of energy released per peanut=-2.41-13.04 =-15.45kJ per peanut

Therefore, 642.73/15.45=41.6 peanuts

Conclusion

The number of peanuts are required to boil 250mL  of water was calculated.

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Chapter 5 Solutions

Chemistry & Chemical Reactivity

Ch. 5.8 - The standard enthalpies of formation of KNO3(s)...Ch. 5.8 - Prob. 1.2ACPCh. 5.8 - The decomposition of nitroglycerin (C3H5N3O9)...Ch. 5.8 - Prob. 2.1ACPCh. 5.8 - Prob. 2.2ACPCh. 5.8 - Prob. 2.3ACPCh. 5.8 - Prob. 2.4ACPCh. 5.8 - Prob. 2.5ACPCh. 5 - Define the terms system and surroundings. What...Ch. 5 - What determines the directionality of energy...Ch. 5 - Identify whether the following processes are...Ch. 5 - Identify whether the following processes are...Ch. 5 - The molar heat capacity of mercury is 28.1 J/mol ...Ch. 5 - The specific heat capacity of benzene (C6H6) is...Ch. 5 - The specific heat capacity of copper metal is...Ch. 5 - How much energy as heat is required to raise the...Ch. 5 - The initial temperature of a 344-g sample of iron...Ch. 5 - After absorbing 1.850 kJ of energy as heat, the...Ch. 5 - A 45.5-g sample of copper at 99.8 C is dropped...Ch. 5 - One beaker contains 156 g of water at 22 C, and a...Ch. 5 - A 182-g sample of gold at some temperature was...Ch. 5 - When 108 g of water at a temperature of 22.5 C is...Ch. 5 - A 13.8-g piece of zinc is heated to 98.8 C in...Ch. 5 - A 237-g piece of molybdenum, initially at 100.0 C,...Ch. 5 - How much energy is evolved as heat when 1.0 L of...Ch. 5 - The energy required to melt 1.00 g of ice at 0 C...Ch. 5 - How much energy is required to vaporize 125 g of...Ch. 5 - Chloromethane, CH3CI, arises from microbial...Ch. 5 - The freezing point of mercury is 38.8 C. 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