Answer:
Maximum volume of carbon monoxide that can be produced = 2.206 × 10² L
Step-by-step explanation:
Given: Volume of CH₄ = 6.62 × 10² L, and Volume of O₂ = 3.31 × 10² L
To calculate the number of moles of methane and oxygen, we use the ideal gas equation: PV= nRT or n = PV ÷ (RT)
Here, the standard temperature (T) and pressure (P) is 273.15 K and 1 atm, respectively and the ideal gas constant (R) = 0.08206 L·atm.mol⁻¹ K⁻¹
Therefore, the number of moles of CH₄ = (1 atm × 6.62 × 10² L) ÷ (0.08206 L·atm.mol⁻¹ K⁻¹ × 273.15 K) = 29.55 moles
and the number of moles of O₂ = (1 atm × 3.31 × 10² L) ÷ (0.082 L·atm.mol⁻¹ K⁻¹ × 273.15 K) = 14.77 moles
Given reaction: 2CH₄ (g) + 3O₂ (g) → 2CO (g) + 4H₂O (g)
In this partial combustion, 2 moles of methane reacts with 3 moles of oxygen to give 2 moles of carbon monoxide.
Since oxygen is the limiting reagent.
Therefore, methane reacts with 14.77 moles of oxygen to give (14.77 × 2 ÷ 3) moles of carbon monoxide = 9.85 moles of carbon dioxide.
Therefore, volume of carbon dioxide produced= nRT ÷ P = (9.85 mole× 0.082 L·atm.mol⁻¹ K⁻¹× 273.15 K) ÷ 1 atm = 220.62 L = 2.206 × 10² L
Therefore, the maximum volume of carbon monoxide that can be produced is 2.206 × 10² L.