在标况下,将224LHCL气体溶于635ML水中,所得盐酸的密度为1.18g/cm3,求此溶液的质量分数?
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m(溶液)=m(HCl)+m(H2O)
ρ(H2O)=1g/cm3
m(HCl)=[V(HCl)/Vm]*M(HCl)
=224L/(22.4L/mol) * 36.5g/mol
=365g
m(H2O0=V(H2O)ρ(H2O)
=635mL*1g/mL
=635g
所以
m(溶液)=365g+635g=1000g
ω=m(HCl)/m(溶液)
=365/1000 * 100%
=36.5%
ρ(H2O)=1g/cm3
m(HCl)=[V(HCl)/Vm]*M(HCl)
=224L/(22.4L/mol) * 36.5g/mol
=365g
m(H2O0=V(H2O)ρ(H2O)
=635mL*1g/mL
=635g
所以
m(溶液)=365g+635g=1000g
ω=m(HCl)/m(溶液)
=365/1000 * 100%
=36.5%
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