Hòa tan hoàn toàn m gam hỗn hợp $\mathrm{X}$ gồm $\text{Ba}...

Dựa vào đồ thị thấy một đoạn không có kết tủa chứng minh trong dung dịch Y còn $\text{O}{{\text{H}}^{\text{-}}}$, $\mathrm{AlO}_{2}^{-}, \mathrm{Ba}^{2+}$
$\underset{0,2}{\mathop{{{\text{H}}^{+}}}} +\underset{0,2}{\mathop{\text{O}{{\text{H}}^{-}}}} \to {{\text{H}}_{2}}\text{O}$
$\underset{x}{\mathop{{{\text{H}}^{+}}}} +\underset{x}{\mathop{\text{AlO}_{2}^{-}}} +{{\text{H}}_{2}}\text{O}\to \underset{x}{\mathop{\text{Al}{{(\text{OH})}_{3}}}} $
$\underset{(3x-0,6)}{\mathop{3{{\text{H}}^{+}}}} + \underset{\leftarrow (x-0,2)}{\mathop{ \text{Al}{{(\text{OH})}_{3}}}} \to \text{A}{{\text{l}}^{3+}}+3{{\text{H}}_{2}}\text{O}$
$\rightarrow 0,06.26+0,04.2=m_{\mathrm{C}_{2} \mathrm{H}_{4}(\mathrm{Y})}+m_{\mathrm{C}_{2} \mathrm{H}_{2}(\mathrm{Y})}$
$\to {{m}_{{{\text{C}}_{2}}{{\text{H}}_{4}}(\text{Y})}}+{{m}_{{{\text{C}}_{2}}{{\text{H}}_{2}}(\text{Y})}}=1,32 \text{gam}$
$\to \text{X}\left\{ \begin{array}{*{35}{l}}
\text{Ba}:0,25 \\
\text{Al}:0,3\quad \to \text{BT} \text{e}:{{n}_{\text{O}}}=\dfrac{2{{n}_{\text{Ba}}}+3{{n}_{\text{Al}}}-2{{n}_{{{\text{H}}_{2}}}}}{2}=0,45 \\
\text{O} \\
\end{array} \right.$
$\rightarrow m=49,55$.