(1)质量分数为36.5%,密度为1.20g/cm3的浓盐酸的物质的量浓度=(1000×1.20×36.5%÷36.5)mol/L=12.0mol/L,
答:该浓盐酸的浓度为12.0mol/L;
(2)沉淀为BaSO4和BaCO3的混合物,过量稀硝酸处理后沉淀质量减少到4.66g,则m(BaSO4)=4.66g,则m(BaSO4)=4.66g,故m(BaCO3)=14.51-4.66=9.85g;
n(Na2SO4)=n(BaSO4)=
=0.02mol,4.66g 233g/mol
n(Na2CO3)=n(BaCO3)=
=0.05mol,9.85g 197g/mol
所以c(Na2SO4)=
=0.2mol/L,0.02mol 0.1L
c(Na2CO3)=
=0.5mol/L,0.05mol 0.1L
答:原混合物中Na2CO3的物质的量浓度为0.5mol/L,Na2SO4的物质的量浓度为0.2mol/L.
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