Would you expect a dynamic equilibrium in a liquid in an open container?

1 Answer
anor277
Aug 6, 2018

Probably not....

Explanation:

We consider the equilibrium phase change, say...

#"Liquid "rightleftharpoons" Vapour"#

And this is generally a function of temperature....water for instance at a given temperature exerts a equilibrium vapour pressure, at #298*K# the so-called #P_"saturated vapour pressure"=23.8*mm*Hg#. In higher level calculations, where a gas is collected over water, we subtract #P_"SVP"# from the measured pressure.

Now in an open container, the liquid water (or other liquid) will slowly evaporate, and the container will empty eventually. In a closed container, there is dynamic equilibrium between the vapour phase, and the liquid phase, and the rate of evaporation is equal to the rate of condensation.

Of course for water, #P_"SVP"=1*atm# AT #100# #""^@C#. Why should this be so?

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