Question

Calcium carbonate react with dilute hydrochloric acid as given below:

\[\ce{CaCO3 + 2HCl -> CaCl2 + H2O + CO2}\]

What is the volume of carbon dioxide liberated at S.T.P. at the same time?

Answer 1

\[\ce{100 g of CaCO3 -> 22.4 l of CO2}\]

500 g of \[\ce{CaCO3}\] = `(22.4 xx 500)/100`

= 112.0

∴ 112.0 of \[\ce{CO2}\]

Hence, 112 l of \[\ce{CO2}\] is liberated from 5 moles of calcium carbonate.