дано
m(Fe3O4) = 66 g
w() = 12%
η (Fe) = 84%
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mпракт(Fe)-?
m(Fe3O4) = 66 - (66*12% / 100%) = 58.08 g
Fe3O4 +4H2-->3Fe+4H2O
M(Fe3O4) = 232 g/mol
n(Fe3O4) = m/M = 58.08 / 232 = 0.25 mol
n(Fe3O4) = 3n(Fe)
n(Fe) = 3*0.25 = 0.75 mol
M(Fe) = 56 g/mol
mтеор(Fe) = n*M = 0.75 *56 = 42 g
mпракт (Fe) = 42*84% / 100% = 35.28 g
ответ 35.28 г