Equal masses of $${H_2},{O_2}$$  and methane have been taken in a container of volume $$V$$ at temperature $${27^ \circ }C$$  in identical conditions. The ratio of the volumes of gases $${H_2}:{O_2}:C{H_4}$$   would be

Solution :
According to Avogadro's hypothesis,
Volume of a gas $$(V) \propto $$   number of moles $$(n)$$
Therefore, the ratio of the volumes of gases can be determined in terms of their moles.
∴ The ratio of volumes of $${H_2}:{O_2}:{\text{methane}}\left( {C{H_4}} \right)$$     is given by
$$\eqalign{ & {V_{{H_2}}}:{V_{{O_2}}}:{V_{C{H_4}}} = {n_{{H_2}}}:{n_{{O_2}}}:{n_{C{H_4}}} \cr & \Rightarrow {V_{{H_2}}}:{V_{{O_2}}}:{V_{C{H_4}}}:\, = \frac{{{m_{{H_2}}}}}{{{M_{{H_2}}}}}:\frac{{{m_{{O_2}}}}}{{{M_{{O_2}}}}}:\frac{{{m_{C{H_4}}}}}{{{M_{C{H_4}}}}} \cr} $$
$${\text{Given,}}$$   $${m_{{H_2}}} = {m_{{O_2}}} = {m_{C{H_4}}} = m$$     $$\left[ {\because \,n = \frac{{{\text{mass}}}}{{{\text{molar}}\,{\text{mass}}}}} \right]$$
$${\text{Thus}},$$   $${V_{{H_2}}}:{V_{{O_2}}}:{V_{C{H_4}}} = \frac{m}{2}:\frac{m}{{32}}:\frac{m}{{16}}$$       $$ = 16:1:2$$