$ 解:(1)ρ_甲=\frac {m_甲 }{V_甲}=\frac {2.7\ \text {g}}{1\ \text {cm}^3}=2.7\ \text {g/cm}^3$
$ (2)ρ_乙=\frac {m_乙 }{V_乙}=\frac {2.7\ \text {g}}{3\ \text {cm}^3}=0.9\ \text {g/cm}^3$
$ V_乙'=\frac {m_乙'}{ρ_乙}=\frac { 1.8\ \text {g}}{0.9\ \text {g/cm}^3}=2\ \text {cm}^3$
