Question

Calculate the standard enthalpy of combustion of CH_4(g) if Δ_fH°(CH₄) = – 74.8 kJ mol^–1, Δ_fH°(CO₂) = – 393.5 kJ mol^–1 and Δ_fH°(H₂O) = – 285.8 kJ mol^–1.

Answer 1

Given:  Δ_fH° (CO₂) = – 393.5 kJ mol^–1
Δ_fH° (H₂O)= – 285.8 kJ mol^–1
Δ_fH°(CH₄) = – 74.8 kJ mol^–1

To find: Standard enthalpy of combustion (Δ_cH°)

Formula: Δ_rH° = ∑Δ_fH°(products) − ∑Δ_fH° (reactants)

Calculation: The equation for the combustion of CH₄ is

\[\ce{CH_{4(g)} + 2O_{2(g)} -> CO_{2(g)} + 2H2O_{(l)}}\]

Δ_rH° = ∑Δ_fH°(products) − ∑Δ_fH° (reactants)

= [Δ_fH°(CO₂) + 2Δ_fH°(H₂O)] – [Δ_fH°(CH₄) + 2Δ_fH°(O₂)]

= [1 mol × (– 393.5 kJ mol^–1) + 2 mol × (– 285.8 kJ mol^–1)] – [1 mol × (– 74.8 kJ mol^–1) + 0]

= – 890.3 kJ

Δ_cH°(CH₄) = – 890.3 kJ

The standard enthalpy of combustion is – 890.3 kJ.