Hòa tan hết m gam hỗn hợp X gồm Fe, FeO, Fe2O3 và Fe3O4 vào dung...

+) Y có $\left\{ \begin{aligned}
& F{{e}^{3+}} \\
& {{H}^{+}} \\
& SO_{4}^{2-}:0,82mol \\
\end{aligned} \right.\xrightarrow{+0,8\text{ mol NaOH}}0,2\text{ mol Fe}{{\left( OH \right)}_{3}}$
$\Rightarrow \left\{ \begin{aligned}
& {{n}_{{{H}^{+}}}}=0,2 \\
& {{n}_{F{{e}^{3+}}}}=0,48 \\
\end{aligned} \right.\to {{n}_{HCl}}={{n}_{C{{l}^{-}}}}=\dfrac{62,38-0,48.56}{35,5}=1$
+) $\left\{ \begin{aligned}
& Fe \\
& FeO \\
& F{{e}_{2}}{{O}_{3}} \\
& F{{e}_{3}}{{O}_{4}} \\
\end{aligned} \right.\xrightarrow{quy\text{ doi}}\left\{ \begin{aligned}
& Fe:0,48\text{ mol} \\
& \text{O} \\
\end{aligned} \right.\xrightarrow{+{{H}_{2}}S{{O}_{4}}}\left\{ \begin{aligned}
& F{{e}^{3+}} \\
& {{H}^{+}} \\
& SO_{4}^{2-} \\
\end{aligned} \right.+\begin{matrix}
{} \\
S{{O}_{2}} \\
0,28 \\
\end{matrix}$
Bảo toàn $e\to 3.0,48=0,28.2+2{{n}_{O}}$
$\to {{n}_{O}}=0,44\text{ mol}$
Bảo toàn nguyên tố $H\to {{n}_{{{H}_{2}}}}=\dfrac{{{n}_{HCl}}-2{{n}_{O}}}{2}=0,06.$