解:设石灰石中碳酸钙的质量为x,生成氯化钙的质量为y,CaCO3+2HCl=CaCl2+H2O+CO2↑100 111 44x y 17.6g100x=4417.6g=111y解之得:x=40g,y=44.4g,44.4g148mL�6�11.2g/cm3+40g-17.6g×100%=22.2%.
