Hesss Law - UNSOLVED PRACTICE SET
Chapter: Thermodynamics | Topic: Hesss Law
HESSS LAW - UNSOLVED PRACTICE SET
Topic: Hesss Law
Multiple Choice Questions
Q1. Hess's Law is based on:
- Conservation of mass
- Conservation of energy
- Conservation of momentum
- Conservation of charge
Q2. According to Hess's Law, the enthalpy change of a reaction:
- Depends on the path taken
- Is independent of the path taken
- Is always zero
- Is always positive
Q3. Which of the following is an application of Hess's Law?
- Calculating the enthalpy of formation of a compound that cannot be synthesized directly
- Determining the rate of a chemical reaction
- Predicting the spontaneity of a reaction
- Calculating the equilibrium constant
Q4. Given:
(i) C(s) + Oβ(g) β COβ(g); ΞH = β393.5 kJ
(ii) CO(g) + Β½Oβ(g) β COβ(g); ΞH = β283.0 kJ
The enthalpy change for C(s) + Β½Oβ(g) β CO(g) is:
- β110.5 kJ
- +110.5 kJ
- β676.5 kJ
- +676.5 kJ
Q5. Hess's Law is a consequence of:
- First Law of Thermodynamics
- Second Law of Thermodynamics
- Third Law of Thermodynamics
- Law of Mass Action
Q6. The enthalpy of formation of benzene (CβHβ) cannot be measured directly because:
- Benzene is unstable
- Carbon and hydrogen do not react directly to form benzene
- Benzene is a liquid
- The reaction is too fast
Short Answer Questions
Q7. State Hess's Law of constant heat summation. Why is it called a 'law of constant heat summation'?
Q8. Explain how Hess's Law can be used to calculate the enthalpy of formation of a compound that cannot be prepared directly from its elements.
Q9. Why is Hess's Law considered an application of the First Law of Thermodynamics? Explain briefly.
Q10. Given the following data:
(i) A β B; ΞH = +50 kJ
(ii) B β C; ΞH = β30 kJ
Calculate ΞH for the reaction A β C using Hess's Law.
Q11. A student wants to calculate the enthalpy of formation of methane. Why can't this be done directly in the laboratory? How does Hess's Law help overcome this problem?
Q12. Draw an enthalpy level diagram to illustrate Hess's Law for the formation of CO(g) from C(s) and Oβ(g) via two different paths.
Long Answer Questions
Q13. (a) State Hess's Law and explain its thermodynamic basis.
(b) Describe how you would use Hess's Law to calculate the enthalpy of formation of ethanol (CβHβ OH) using combustion data.
(c) Why is Hess's Law particularly useful in thermochemistry? Give two reasons.
Q14. (a) Explain the Born-Haber cycle as an application of Hess's Law for calculating lattice enthalpy.
(b) Draw a schematic diagram of the Born-Haber cycle for NaCl and label all the steps.
(c) How does the Born-Haber cycle demonstrate the power of Hess's Law in solving complex thermochemical problems?
Q15. (a) Given the following thermochemical equations:
(i) Nβ(g) + Oβ(g) β 2NO(g); ΞH = +180.5 kJ
(ii) 2NO(g) + Oβ(g) β 2NOβ(g); ΞH = β114.1 kJ
(iii) Nβ(g) + 2Oβ(g) β 2NOβ(g); ΞH = ?
Calculate ΞH for reaction (iii) using Hess's Law and explain your steps clearly.
(b) Draw an enthalpy diagram representing the above reactions.
(c) A student claims that if reaction (i) is reversed, the sign of ΞH should also be reversed. Is the student correct? Justify your answer using Hess's Law.
Numerical / Application-Based Problems
Q16. Calculate the enthalpy of formation of methanol (CHβOH) using the following data:
C(s) + Oβ(g) β COβ(g); ΞH = β393.5 kJ/mol
Hβ(g) + Β½Oβ(g) β HβO(l); ΞH = β285.8 kJ/mol
CHβOH(l) + Β³ββOβ(g) β COβ(g) + 2HβO(l); ΞH = β726.5 kJ/mol
Q17. Given the following thermochemical data:
(i) C(s) + 2Hβ(g) β CHβ(g); ΞH = ?
(ii) C(s) + Oβ(g) β COβ(g); ΞH = β393.5 kJ
(iii) Hβ(g) + Β½Oβ(g) β HβO(l); ΞH = β285.8 kJ
(iv) CHβ(g) + 2Oβ(g) β COβ(g) + 2HβO(l); ΞH = β890.3 kJ
(a) Calculate the enthalpy of formation of methane (CHβ) using Hess's Law.
(b) Draw an enthalpy cycle diagram for this calculation.
(c) Verify your answer by checking if the sum of enthalpies around the cycle equals zero.
Q18. In India, many villages use biogas (mainly methane) for cooking. A student wants to compare the energy efficiency of biogas with that of wood.
Given:
Enthalpy of combustion of CHβ(g) = β890.3 kJ/mol
Enthalpy of combustion of carbon (wood) = β393.5 kJ/mol
Enthalpy of combustion of hydrogen = β285.8 kJ/mol
(a) Use Hess's Law to calculate the enthalpy of formation of methane.
(b) A typical biogas plant produces 2 mΒ³ of methane per day (at STP, 1 mol = 22.4 L). Calculate the total heat energy available per day.
(c) If the same amount of energy were to be obtained from wood (carbon), what mass of wood would be needed?
(d) Discuss two advantages of using biogas over wood from both thermodynamic and environmental perspectives.
(Molar mass of carbon = 12 g/mol)