The formation of Cu from CuFeS2 can be shown by the following equations:
4CuFeS2 + 7O2 → 4CuS + 2Fe2O3 + 4 SO2
4CuS + 4O2 → 4Cu + 4SO2
Based on the stoichiometry:
1 mole of CuFeS2 produces 1 mol of Cu
Now,
Mass of Cu to be produced = 60 g
# moles of Cu = 60 g/63.5 g.mol-1 = 0.945 moles
Therefore, moles of CuFeS2 required = 0.945 moles
Molar mass of CuFeS2 = 183.5 g.mol-1
Mass of CuFeS2 required = 0.945 * 183.5 = 173.41 g
It is given that the ore contains 55.0% CuFeS2
i.e.
100 g of chalcopyrite contains 55.0 g CuFeS2
The amount of ore corresponding to 173.41 g of CuFeS2 is
= 100 g chalcopyrite * 173.41 g CuFeS2/55 g CuFeS2 = 315.29 g
Ans: Around 315 g of the ore is required to produce 60 g Cu