Showing posts with label Latent heat. Show all posts
Showing posts with label Latent heat. Show all posts

Saturday, March 4, 2017

Latent Heat

Latent heat is energy in the form of heat released or absorbed by a substance during a phase change of the substance. The amount of latent heat involved with condensation/evaporation and freezing/melting is different under different temperatures and pressures. As temperature increases, latent heat of vaporization decreases, but that of fusion increases. Water is not the only substance that has three different phases at a normal temperature range in the universe, but it is the most abundant substance like this on Earth. A larger amount of latent heat is involved with the phase change of water. Through this transfer of latent heat, the water cycle determines surface and atmospheric conditions, as well as atmospheric circulation. Evaporative cooling and condensation heating moderate the surface temperature. Without this cooling and heating, daily temperature range would be significant, much like that of planets such as Mars or Venus, or of blacktop asphalt in summer.

The atmosphere is a dynamic heat system designed to transfer heat from one place to another. Latent heat involved in the phase change of water plays an essential role in the transfer of heat. Just as much latent heat is released in the atmosphere through a phase change as the latent heat is absorbed at the Earth’s surface. The latent heat fluxes and the transfer of sensible heat between the equator and the poles are major components of the energy balance of the Earth. The latent heat flux in the atmosphere is huge. Latent heat flux involved in the phase change of water drives the atmospheric circulation and plays essential roles in global climate.

Primary Energy Source for Severe Weather Latent heat is also an important factor to better comprehend weather systems, because it is a primary source of energy that develops, promotes, and sustains severe weather systems, such as thunderstorms and tropical cyclones. Latent heat supplies weather energy. As water condenses, latent heat from the water molecule is released into the air, heats the air, makes it lighter, and makes it rise fast. As the air rises, more air flows in and promotes storms. In this process, some latent heat is changed into the kinetic energy that accelerates the speed of water molecules and powers up severe weather systems. Recent global warming increases the ability to evaporate and hold moisture in the atmosphere. As a greater amount of water vapor exists in the hot air, more latent energy is available for release into severe storms.

Another critical aspect of global warming is that it will increase variability of extreme weather, although the overall average of the atmospheric condition changes little. Thus rare, but extreme weather, often much beyond what we experience today, will be more common. Controversy exists concerning if latent heat adds to global warming, increasing it; or tends to act as negative feedback for global warming, slowing it down. A small change in atmospheric composition and chemistry can induce considerable climate alteration. The proponents of global warming argue that water vapor absorbs more infrared radiation than any other atmospheric gas and induces the largest greenhouse effect of the global climate. Growing latent heat flux in the atmosphere increases the amount of clouds, helping retain more heat; which leads to more evaporation of water and the addition of more water vapor into the atmosphere; which leads to more heat in the atmosphere, and so on, in a positive feedback cycle. Opponents of global warming argue that a growing amount of clouds will increase the Earth’s albedo, which will decrease the amount of solar radiation that reaches the Earth’s surface. A decrease of solar radiation received will cool the Earth’s surface, instead of heating it, in a negative feedback cycle.

Clouds contribute approximately 50 percent of Earth’s planetary albedo. Change in latent heat flux in the atmosphere not only determines weather, but also induces global climate change. Aside from the climate change, latent heat is also responsible for the atmospheric humidity that affects human comfort. Despite uncertainties in the understanding of the global climatic system, there is evidence that indicates that the Earth’s atmosphere and overall environment are warming, such as sea-level rise, receding polar ice caps, increasing weather extremes, and more severe storms. Neither positive nor negative feedback cloud forcing has reached the point where it can offset the warming or cooling effects.

Tuesday, January 19, 2016

Humidity

The distribution and movement of water vapor in the atmosphere play an important role in determining the weather of any region. Humidity is the amount of water vapor in the atmosphere at a given location on Earth’s surface. Two ways of expressing the water vapor content of the atmosphere are relative humidity and dew point. 

Relative humidity Consider a flask containing water. Some water molecules evaporate, leaving the liquid and becoming part of the water vapor in the flask. At the same time, other water molecules condense, returning from the vapor to become part of the liquid. Just as the amount of water vapor in the flask might vary, so does the amount of water vapor in the atmosphere. Water on Earth’s surface evaporates and enters the atmosphere and condenses to form clouds and precipitation.

In the example of the flask, if the rate of evaporation is greater than the rate of condensation, the amount of water vapor in the flask increases. Saturation occurs when the amount of water vapor in a volume of air has reached the maximum amount. 

The amount of water vapor in a volume of air relative to the amount of water vapor needed for that volume of air to reach saturation is called relative humidity. Relative humidity is expressed as a percentage. When a certain volume of air is saturated, its relative humidity is 100 percent. If you hear a weather forecaster say that the relative humidity is 50 percent, it means that the air contains 50 percent of the water vapor needed for the air to be saturated.

Dew point Another common way of describing the moisture content of air is the dew point. The dew point is the temperature to which air must be cooled at constant pressure to reach saturation. The dew point is often called the condensation temperature because it is the temperature at which water vapor in air condenses into water called dew. If the dew point is nearly the same as the air temperature, then the relative humidity is high.

Latent heat As water vapor in the air condenses, thermal energy is released. Where does this energy
come from? To change liquid water to water vapor, thermal energy is added to the water by heating it. The water vapor then contains more thermal energy than the liquid water. This is the energy that is released when condensation occurs. The extra thermal energy contained in water vapor compared to liquid water is called latent heat.