Chemistry · Ch 5 — States of Matter
Dalton's Law of Partial Pressures
Dalton's Law of Partial Pressures
Total pressure of a gas mixture
John Dalton formulated this law in 1801: the total pressure exerted by a mixture of non-reacting gases equals the sum of the partial pressures of the individual gases — where the partial pressure of a gas in a mixture is the pressure that gas alone would exert if it occupied the same volume, at the same temperature, by itself.
Correcting for water vapour
Gases collected over water pick up water vapour and become moist. The pressure exerted by this saturated water vapour is called aqueous tension, and it must be subtracted to get the pressure of the dry gas:
Table 5.3 lists aqueous tension at various temperatures:
| Temp./K | Pressure/bar | Temp./K | Pressure/bar |
|---|---|---|---|
| 273.15 | 0.0060 | 295.15 | 0.0260 |
| 283.15 | 0.0121 | 297.15 | 0.0295 |
| 288.15 | 0.0168 | 299.15 | 0.0331 |
| 291.15 | 0.0204 | 301.15 | 0.0372 |
| 293.15 | 0.0230 | 303.15 | 0.0418 |
Partial pressure in terms of mole fraction
For three gases with , , moles sharing volume at temperature , each contributes , so:
Dividing by , the terms cancel, leaving:
…
| Temp./K | Pressure/bar | Temp./K | Pressure/bar |
|---|---|---|---|
| 273.15 | 0.0060 | 295.15 | 0.0260 |
| 283.15 | 0.0121 | 297.15 | 0.0295 |
| 288.15 | 0.0168 | 299.15 | 0.0331 |