Cho m gam X (a mol) gồm Fe và FeS tác dụng hết với HCl dư thu được...

$\begin{aligned}
& \left\langle \begin{aligned}
& Thi nghiem 1: \left\{ \begin{aligned}
& Fex \\
& FeSy \\
\end{aligned} \right.\xrightarrow{+HCl}\left\{ \begin{aligned}
& {{H}_{2}}x \\
& {{H}_{2}}Sy \\
\end{aligned} \right.\to {{n}_{kh\acute{i}}}=\left( x+y \right)\left( 1 \right) \\
& Thi nghiem 2: \left\{ \begin{aligned}
& Fex \\
& FeSy \\
\end{aligned} \right.\xrightarrow{+HN{{O}_{3}}}{{n}_{NO}}=x+3y\left( 2 \right) \\
\end{aligned} \right. \\
& \dfrac{\left( 1 \right)}{\left( 2 \right)}\Leftrightarrow \dfrac{\left( x+y \right)}{x+3y}=\dfrac{7}{13}\to \dfrac{x}{y}=\dfrac{4}{3} \\
& \to Y\left\{ \begin{aligned}
& \left. \begin{aligned}
& Fe :4t \\
& FeS :3t \\
\end{aligned} \right\}a \\
& Fe{{S}_{2}}\left. :7t \right\}a \\
\end{aligned} \right. \to \left\{ \begin{aligned}
& Fe:14t \\
& S :17t \\
\end{aligned} \right. \to \left\{ \begin{aligned}
& FeS{{O}_{4}}\ \ \ \ \ \ \ \dfrac{14t}{3} \\
& F{{e}_{2}}{{\left( S{{O}_{4}} \right)}_{3}}\dfrac{14t}{3} \\
\end{aligned} \right. \\
& \xrightarrow{BTe}\dfrac{14t}{3}.2+\dfrac{28t}{3}.3+17t.6=2{{n}_{{{H}_{2}}}}+2{{n}_{S{{O}_{2}}}}\to {{n}_{{{H}_{2}}}}+{{n}_{S{{O}_{2}}}}=\dfrac{209}{3}t \\
& \to \dfrac{{{V}_{1}}}{V}=\dfrac{\left( \dfrac{209}{3}t \right)}{7t}=\dfrac{209}{21}\approx 9,95 \\
\end{aligned}$