CaCl2 can crystallize as a dihydrate. Above the equilibrium mixture (t=20°C):
CaCl2---------CaCl2*2H2O p(H2O)=0.00045 bar.
The pressure of water on t=20°C is 2338 Pa. How many percents of the moisture, present in the dessicator, can combine with CaCl2?
The bar to Pa is 45 Pa. When I divide 2338 by 2338+45 and the multiply it by 100 I get 98%, the correct answer, but I don't understand the theory behind this, why I had to do in the calculation the thing I done? Any help appreciated!