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Write Brief Answer · Q39

Q.The reaction between aluminium and ferric oxide can generate temperatures up to 3273 K and is used in welding metals. (Atomic mass of Al = 27 u, atomic mass of O = 16 u) 2Al + Fe₂O₃ → Al₂O₃ + 2Fe If, in this process, 324 g of aluminium is allowed to react with 1.12 kg of ferric oxide,

i) Calculate the mass of Al₂O₃ formed.
ii) How much of the excess reagent is left at the end of the reaction?
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Step 1. Reaction: 2Al + Fe2O3 → Al2O3 + 2Fe. Moles of Al = 324 g ÷ 27 g mol⁻¹ = 12 mol.

Step 2. Molar mass of Fe2O3 ≈ (2×56) + (3×16) = 112+48 = 160 g mol⁻¹, so moles of Fe2O3 = 1120 g ÷ 160 g mol⁻¹ = 7 mol.

Step 3. The 2:1 ratio means 12 mol Al needs only 6 mol Fe2O3 (available: 7 mol) -- so Al is the limiting reagent, Fe2O3 is in excess. …

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