'Cloud physics' is the study of the physical processes that lead to the formation, growth and precipitation of
clouds. Clouds are composed of
microscopic droplets of water (warm clouds), tiny crystals of ice, or both (mixed phase clouds). Under suitable conditions, the droplets combine to form precipitation, where they may fall to the earth. The precise
mechanics of how a cloud forms and grows is not completely understood, but scientists have developed theories explaining the structure of clouds by studying the
microphysics of individual droplets. Advances in
radar and
satellite technology have also allowed the precise study of clouds on a large scale.
Formation
The amount of water that can exist as vapor in air is proportional to the temperature. When enough water has evaporated into the air that it can't hold any more, the air has become saturated. At this point the
relative humidity is 100%. If the relative humidity becomes greater than 100%, the air is supersaturated. Excess water vapor will
condense out of the air until the air returns to 100% RH. Cold air has a lower saturation point than warm air. The difference between these values is the basis for the formation of clouds. When saturated air cools, it can no longer contain the same amount of water vapor. If the conditions are right, the excess water will condense out of the air until the lower saturation point is reached. Another possibility is that the water stays in vapor form, even though it is beyond the saturation point. It turns out that water can frequently exist in a supersaturated state, and will only condense when saturation levels reach up to 120%.
[1] This means that the air holds 20% more water vapor than would naturally evaporate into it. Water is able to maintain supersaturation because of the high
surface tension of each mircodroplet, which prevents them from combining to form larger drops.
Collision-Coalescence
One theory explaining how the behavior of individual droplets leads to the formation of clouds is the collision-coalescence process. Droplets suspended in the air will interact with each other, either by colliding and bouncing off each other or by coalescing -- combining -- to form a larger droplet. Eventually, the droplets become large enough that they fall to the earth as precipitation. The collision-coalescence process does not make up a significant part of cloud formation for the same reason that water droplets have a relatively high surface tension, which prevents them from coalescing on a large scale before they eventually fall to the earth.
Bergeron Process
The primary mechanism for the formation of clouds was discovered by
Tor Bergeron. The Bergeron process notes that the saturation vapor pressure of air, or how much water vapor it can hold, depends on what it is interacting with. Specifically, the saturation vapor pressure of air with respect to ice is lower than the saturation vapor pressure with respect to water. Air interacting with a water droplet may be saturated (at 100% RH) when interacting with a water droplet, but the same air would be supersaturated when interacting with an ice particle.
[2] The air will attempt to return to
equilibrium, so the extra water vapor will condense into ice on the surface of the particle. These ice particles end up as the nuclei of larger ice crystals. This process only happens at temperatures around -40 °C. The surface tension of the water allows the droplet to stay liquid well below its normal freezing point. When this happens, it is now
supercooled liquid water. The Bergeron process relies on supercooled liquid water interacting with ice nuclei to form larger particles. If there are few ice nuclei compared to the amount of SLW, droplets will be unable to form. A process whereby scientists seed a cloud with artificial ice nuclei to encourage precipitation is known as cloud seeding. This can help cause precipitation in clouds that otherwise may not rain. Adding excess artificial ice nuclei -- overseeding a cloud -- shifts the balance so that there are many nuclei compared to the amount of supercooled liquid water. An overseeded cloud will form many particles, but each will be very small. This can be done as a preventative measure for areas that are at risk for
hail storms.
Dynamic Phase Hypothesis
The second critical point in the formation of clouds is their dependence on updrafts. As particles group together to form water droplets, they will quickly be pulled down to earth by the force of
gravity. The droplets would quickly dissipate and the cloud will never form. However, if warm air interacts with cold air, an
updraft can form. Warm air is less dense than colder air, so the warm air rises. The air travelling upward buffers the falling droplets, and can keep them in the air much longer than they would otherwise stay. In addition, the air cools as it rises, so any moisture in the updraft will then condense into liquid form, adding to the amount of water available for precipitation. Violent updrafts can reach speeds of up to 180 mph (300 km/h).
[3]
A frozen ice nucleus can pick up 1/2" in size traveling through one of these updrafts and can cycle through several updrafts before finally becoming so heavy that it falls to the ground. Cutting a hailstone in half shows onion-like layers of ice, indicating distinct times when it passed through a layer of super-cooled water. Hailstones have been found with diameters of up to 7" (17.8 cm).
[4]
Classification of Clouds
Clouds are classified according to the height at which they are found, and their shape or appearance.
[5] The most commonly seen clouds are either "stratiform" (thin, large layer) or "cumuliform" (with vertical development). Some stratus and cumulus clouds are seen at low altitudes of around 2 kilometres. Clouds of similar shape in the topmost region of the troposphere have the prefix "cirro" added to their names ("cirrostratus" and "cirrocumulus"), appearing as light brush strokes in the blue sky, while clouds found at intermediate heights have the prefix "alto" added to their names.
There is also the "cumulonimbus" variety, which is a cloud that virtually spans the entire troposphere from a few hundred metres above the ground up to the tropopause. The cumulonimbus is the cloud responsible for thunderstorms.
References
1. "Cloud Physics". http://www.evac.ou.edu/okwmdp/physics.html. 1998
2. "Cloud Physics: The Bergeron Process". http://weather.cod.edu/sirvatka/bergeron.html
3. Dan O'Niell, "Hail Formation". http://www.gi.alaska.edu/ScienceForum/ASF3/328.html 1979
4. "Largest Hailstone in U.S. History Found". http://news.nationalgeographic.com/news/2003/08/0804_030804_largesthailstone.html 2003
5. "Cloud Physics: Types of Clouds." http://weather.cod.edu/sirvatka/cloudtypes.html.