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Water vapor - Wikipedia, the free encyclopedia

  
1.3.2 Air and water vapor density interactions at equal temperatures ... 2 Water vapor in Earth's atmosphere. 2.1 Radar and satellite imaging. 2.2 Lightning ...
http://en.wikipedia.org/wiki/Water_vapor

Unisys Weather: Water Vapor Satellite Image

  
Back. Home. Water Vapor Satellite Image. IMAGE. Vis. IR. Enh IR. WV. Sfc. Rad. TYPE. Norm. Inv ... For sales information on Unisys weather solutions, contact ...
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Western Atlantic Water Vapor Imagery - Satellite Services Division

  
Western Atlantic - Water Vapor Loop. This loop intended for informational purposes only! ... General Problems with your Java Plug-in? Check here for a possible fix. ...
http://www.ssd.noaa.gov/goes/east/watl/loop-wv.html

AGU Web Site: Water Vapor in the Climate System. A Special Report.

  
Water vapor is involved in an important climate feedback loop. ... The additional water vapor, acting as a greenhouse gas, absorbs energy that ...
http://www.agu.org/sci_soc/mockler.html

Water - Wikipedia, the free encyclopedia

  
Water in three states: liquid, solid (ice), and (invisible) vapor in air. Clouds are droplets of liquid, condensed from water vapor. ...
http://en.wikipedia.org/wiki/Water

Intellicast - Water Vapor in United States

  
Water vapor is one state of the ... The , Water Vapor map shows areas of moist and dry air at mid ... Humidity is the amount of water vapor in the air. ...
http://www.intellicast.com/Storm/Severe/WaterVapor.aspx

Caribbean Water Vapor Imagery - Satellite Services Division

  
Caribbean - Water Vapor Loop. This loop intended for informational purposes only! ... General Problems with your Java Plug-in? Check here for a possible fix. ...
http://www.ssd.noaa.gov/goes/east/carb/loop-wv.html

Water Vapor : Global Maps

  
Current information about climate and the environment. ... Water vapor is also the most important greenhouse gas in the atmosphere. ...
http://earthobservatory.nasa.gov/GlobalMaps/view.php?d1=MYDAL2_M_SKY_WV

Global Composite Weather Satellite Water Vapor Pictures from NASA GHCC

  
Global composite of geostationary satellite weather images of water vapor. ... Interactive Global Composite Weather Satellite Water Vapor Imagery ...
http://wwwghcc.msfc.nasa.gov/GOES/globalwv.html

Interactive GOES-12 (East) Water Vapor Weather Satellite Images

  
Interactively view and zoom to 4 km resolution water vapor satellite imagery and animations from GOES-12 (East) ... Interactive Water Vapor Weather Satellite ...
http://weather.msfc.nasa.gov/GOES/goeseastfullwv.html
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 Questions 'n' Answers about 'Water vapor' Opens New Window.

Q.water vapor?Related Search:
Chemistry
 how does water vapor exist in air even though air temperature is well below the boiling point of water? shouldnt it condense back to liquid water? alright this is supposed to be very simple but i still dont get it.... so if water evaporates at temperatures below 100 deg C then what is the significance of the boiling point?
A.At some arbitrary temperature there will be a pressure at which both liquid water and water vapor are the stable phase. This is called the vapor pressure. If you raise the pressure to above the vapor pressure, you can only have liquid water. If you reduce the pressure to below the vapor pressure then all the water will be in the form of water vapor. If we put liquid water in a container of fixed volume, then the water will evaporate until the vapor pressure is reached (if the liquid water hasn't evaporated away completely before this point is reached). Before this point is reached, the vapor phase is the stable phase, so evaporation continues. But if somehow the pressure were to exceed the vapor presure then the liquid water phase would be the stable phase, so then the water vapor would condense back into water. In a closed container you therefore automatically reach equilibrium between the two phases, provided there is enough water in the container. In the air it is the same story, water evaporates until the partial pressure of water vapor equals the vapor presure. The vapor pressure at room temperature is about 0.02 bar. At 100 °C the vapor pressure becomes equal to the atmospheric pressure. Then what happens is that bubbles of water vapor can form inside the water. The water itself is at 1 atmospere pressure so the pressure inside the bubble must be 1 atmosphere or more for this to happen. This is what we call boiling.
  

Q.How much pressure is due to water vapor and how much to the pressure of oxygen?Related Search:
Chemistry
 The vapor pressure of water at 21 degrees Celsius is 19 mmHg. If 100ml of oxygen is collected over water at 21 degrees Celsius and 730 mmHg total pressure, how much pressure is due to water vapor and how much to the pressure of oxygen?
A.The total pressure is simply the sum of all the partial pressures inside the system. 730mmHg = 19mmHg (from water) + 711 mmHg (from oxygen).
  

Q.What mass of water vapor condenses to liquid?Related Search:
Chemistry
 In an experiment, 3.50 L of N2 is saturated with water vapor at 24°C and then compressed to half its volume at constant T. What mass of water vapor condenses to liquid?
A.1750g.
  

Q.What is the equilibrium partial pressure of water vapor over mixture?Related Search:
Chemistry
 What is the equilibrium partial pressure of water vapor above a mixture of 24.0 g H2O and 48.0 g CH3CH2OH at 25 °C. The partial pressure of pure water at 25.0 °C is 23.8 mm Hg. Assume ideal behavior for the solution. An answer accompanied by how to do this would be best, Thanks.
A.24.0 g / 18.02 g/mol = 1.33 moles water 48.0 g / 46 g/mol= 1.04 moles CH3CH2OH total moles = 1.33 + 1.04 = 2.37 Moles fraction water = 1.33 / 2.37 = 0.561 p = p°(water ) X (water) => Raoult's law p = 23.8 x 0.561 = 13.4 mm Hg
  

Q.What is the difference between cloud and water vapor ?Related Search:
Physics
 What is the Difference between cloud and water vapor... Are water vapor and Steam ,, same?? Thank you.
A.Water vapor is gaseous water. Steam is partly gaseous water and small water droplets that have condensed. That is why you can see some steam coming out of a pot of boiling water. A cloud is small droplets of liquid water that are suspended in the air along with other small solid particles.
  

Q.How do people contribute to increasing methane and water vapor?Related Search:
Earth Sciences & Geology
 i have questions on the greenhouse gases and i know how CO2 is increased but i have know idea how methane and water vapor do. anyone know?
A.Methane: We consume large quantities of beef. A cow releases between 100-500 liters of methane per day. Water Vapor: Irrigation of crops and grasses allows for increased evaporation.
  

Q.Are our houes air tight? Or, should a window with water vapor inside its glasses be replaced?Related Search:
Do It Yourself (DIY)
 One window of my 20 yr old house has water condensation inside its two glass pieces. I am thinking of drilling one or two tiny holes on the inside glass piece so that the water vapor can come out. I realise that these holes may reduce the insulation of the window glasses, as window company told me to replace it. But then again, cold air can always come inside my house through my kitchen exhaust vent and chimney?
A.there is argon gas inbetween the panes of glass, it keeps the window from fogging over. It can be repaired easily. Any glass or window shop should be able to do it.
  
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Water vapor
Systematic name Water Vapor
Liquid State Water
Solid state Ice
Properties[1]
Melting point 0 °C
Boiling point 100 °C
specific gas constant 461.5 J/(kg·K)
heat of vaporization 2.27 MJ/kg
molecular weight 18.02 g/mol
specific heat capacity at constant pressure 1.84 kJ/(kg·K)

Water vapor or water vapour (see spelling differences), also aqueous vapor, is the gas phase of water. Water vapor is one state of the water cycle within the hydrosphere.[2] Water vapor can be produced from the evaporation of liquid water or from the sublimation of ice. Under normal atmospheric conditions,[3] water vapor is continuously generated by evaporation and removed by condensation.

Contents

[edit] General properties of water vapor

[edit] Evaporation/sublimation

Whenever a water molecule leaves a surface, it is said to have evaporated. Each individual water molecule which transitions between a more associated (liquid) and a less associated (vapor/gas) state does so through the absorption or release of kinetic energy. The aggregate measurement of this kinetic energy transfer is defined as thermal energy and occurs only when there is differential in the temperature of the water molecules. Liquid water that becomes water vapor takes a parcel of heat with it, in a process called evaporative cooling.[4] The amount of water vapor in the air determines how fast each molecule will return back to the surface. When a net evaporation occurs, the body of water will under go a net cooling directly related to the loss of water.[5]

In the US, the National Weather Service measures the actual rate of evaporation from a standardized "pan" open water surface outdoors, at various locations nationwide. Others do likewise around the world. The US data is collected and compiled into an annual evaporation map.[1] The measurements range from under 30 to over 120 inches per year. Formulas for calculating the rate of evaporation from a water surface such as a swimming pool of can be found here[2] and here[3]

Evaporative cooling is restricted by atmospheric conditions. Humidity is the amount of water vapor in the air. The vapor content of air is measured with devices known as hygrometers. The measurements are usually expressed as specific humidity or percent relative humidity. The temperatures of the atmosphere and the water surface determine the equilibrium vapor pressure; 100% relative humidity occurs when the partial pressure of water vapor is equal to the equilibrium vapor pressure. This condition is often referred to as complete saturation. Humidity ranges from 0 gram per cubic metre in dry air to 30 grams per cubic metre (0.03 ounce per cubic foot) when the vapour is saturated at 30 °C.[4] (See also Absolute Humidity table)

Another form of evaporation is sublimation, by which water molecules become gaseous directly from ice without first becoming liquid water. Sublimation accounts for the slow mid-winter disappearance of ice and snow at temperatures too low to cause melting.

[edit] Condensation

Clouds, formed by condensed water vapor.

Water vapor will only condense onto another surface when that surface is cooler than the temperature of the water vapor, or when the water vapor equilibrium in air has been exceeded. When water vapor condenses onto a surface, a net warming occurs on that surface.[6] The water molecule brings a parcel of heat with it. In turn, the temperature of the atmosphere drops slightly.[7] [8] In the atmosphere, condensation produces clouds, fog and precipitation (usually only when facilitated by cloud condensation nuclei). The dew point of an air parcel is the temperature to which it must cool before water vapor in the air begins to condense.

Also, a net condensation of water vapor occurs on surfaces when the temperature of the surface is at or below the dew point temperature of the atmosphere. Deposition, the direct formation of ice from water vapor, is a type of condensation. Frost and snow are examples of deposition.

[edit] Water vapor density

Water vapor is lighter or less dense than dry air. At equivalent temperatures it is buoyant with respect to dry air.

[edit] Water vapor and dry air density calculations at 0°C

The molecular mass or weight of water is 18.02g/mol, as calculated from the sum of the atomic masses of its constituent atoms.

The average molecular mass of air (Approx. 79% nitrogen, N2; 21% Oxygen, 02) is 28.57g/mol at standard temperature and pressure (STP).

Using Avogadro's Law and the ideal gas law, water vapor and air will have a molar volume of 22.414 litre/mol at STP. A molar mass of air and water vapour occupy the same volume of 22.414 litres. The density (mass/volume) of water vapor is 0.804g/litre, which is significantly less than that of dry air at 1.27g/litre at STP.

Note that STP conditions include a temperature of 0°C, at which the ability of water to become vapor is very restricted. Its concentration in air is very low at 0°C. The red line on the chart to the right is the maximum concentration of water vapor expected for a given temperature. The water vapor concentration increases significantly as the temperature rises, approaching 100% (steam, pure water vapor) at 100°C. However the difference in densities between air and water vapour would still exist.

[edit] Air and water vapor density interactions at equal temperatures

At the same temperature, a column of dry air will be denser or heavier than a column of air containing any water vapor. Thus, any volume of dry air will sink if placed in a larger volume of moist air. Also, a volume of moist air will rise or be buoyant if placed in a larger region of dry air. As the temperature rises the proportion water vapor in the air increases, its buoyancy will become larger. This increase in buoyancy can have a significant atmospheric impact, giving rise to powerful, moisture rich, upward air currents when the air temperature and sea temperature reaches 25°C or above. This phenomenon provides a significant motivating force for cyclonic and anticyclonic weather systems (tornadoes and hurricanes).

[edit] Water vapour and respiration or breathing

Water vapor's contribution to the pressure increases as its concentration increases. Its partial pressure contribution to air pressure increases, lowering the partial pressure contribution of the other atmospheric gases (Dalton's Law). The total air pressure must remain constant. The presence of water vapor in the air naturally dilutes or displaces the other air components as its concentration increases.

This can have an effect on respiration, in very warm air (35°C). The proportion of water vapor is significant enough to give rise to the stuffiness that can be experienced in humid jungle conditions or in poorly air conditioned buildings.

[edit] General discussion

The amount of water vapor in an atmosphere is constrained by the restrictions of partial pressures and temperature. Dew point temperature and relative humidity act as guidelines for the process of water vapor in the water cycle. Energy input, such as sunlight, can trigger more evaporation on an ocean surface or more sublimation on a chunk of ice on top of a mountain. The balance between condensation and evaporation gives the quantity called vapor partial pressure[9].

The maximum partial pressure (saturation pressure) of water vapor in air varies with temperature of the air and water vapor mixture. A variety of empirical formulas exist for this quantity; the most used reference formula is the Goff-Gratch equation for the SVP over liquid water:

\log_{10} \left ( p \right )=  -7.90298 (\frac{373.16}{T}-1) + 5.02808 \log_{10} \frac{373.16}{T}
- 1.3816 . 10^{-7} (10^{11.344 (1-\frac{T}{373.16})} -1)
+ 8.1328 . 10^{-3} (10^{-3.49149 (\frac{373.16}{T}-1)} -1)
+ \log_{10} \left ( 1013.246 \right )
Where T, temperature of the moist air, is given in units of kelvins, and p is given in units of millibars (hectopascals).

The formula is valid from about −50 to 102 °C; however there are a very limited number of measurements of the vapor pressure of water over supercooled liquid water.[10]

Under adverse conditions, such as when the boiling temperature of water is reached, a net evaporation will always occur during standard atmospheric conditions regardless of the percent of relative humidity. This immediate process will dispel massive amounts of water vapor into a cooler atmosphere.

Exhaled air is almost fully at equilibrium with water vapor at the body temperature. In the cold air the exhaled vapor quickly condenses, thus showing up as a fog or mist of water droplets and as condensation or frost on surfaces.

Controlling water vapor in air is a key concern in the heating, ventilating, and air-conditioning (HVAC) industry. Thermal comfort depends on the moist air conditions. Non-human comfort situations are called refrigeration, and also are affected by water vapor. For example many food stores, like supermarkets, utilize open chiller cabinets, or food cases, which can significantly lower the water vapor pressure (lowering humidity). This practice delivers several benefits as well as problems.

[edit] Water vapor in Earth's atmosphere

Gaseous water represents a small but environmentally significant constituent of the atmosphere. Approximately 99.99% of it is contained in the troposphere. The condensation of water vapor to the liquid or ice phase is responsible for clouds, rain, snow, and other precipitation, all of which count among the most significant elements of what we experience as weather. Less obviously, the latent heat of vaporization, which is released to the atmosphere whenever condensation occurs, is one of the most important terms in the atmospheric energy budget on both local and global scales. For example, latent heat release in atmospheric convection is directly responsible for powering destructive storms such as tropical cyclones and severe thunderstorms. Water vapor is also a potent greenhouse gas. Because the water vapor content of the atmosphere is expected to greatly increase in response to warmer temperatures, there is the potential for a water vapor feedback that could amplify the expected climate warming effect due to increased carbon dioxide alone. However, it is less clear how cloudiness would respond to a warming climate; depending on the nature of the response, clouds could either further amplify or partly mitigate the water vapor feedback.

Fog and clouds form through condensation around cloud condensation nuclei. In the absence of nuclei, condensation will only occur at much lower temperatures. Under persistent condensation or deposition, cloud droplets or snowflakes form, which precipitate when they reach a critical mass.

Increasing water vapor at Boulder, Colorado.

The average residence time of water molecules in the troposphere is about 10 days. Water depleted by precipitation is replenished by evaporation from the seas, lakes, rivers and the transpiration of plants, and other biological and geological processes.

Measurements of vapor concentration are expressed as specific humidity or percent relative humidity. The annual mean global concentration of water vapor would yield about 25 mm of liquid water over the entire surface of the Earth if it were to instantly condense. However, the mean annual precipitation for the planet is about 1 meter, which indicates a rapid turnover of water in the air.

The abundance of gases emitted by volcanoes varies considerably from volcano to volcano. However, water vapor is consistently the most common volcanic gas, normally comprising more than 60% of total emissions during a subaerial volcanic eruption.[11]

[edit] Radar and satellite imaging

MODIS/Terra global mean atmospheric water vapor

Because water molecules absorb microwaves and other radio wave frequencies, water in the atmosphere attenuates radar signals.[12] In addition, atmospheric water will reflect and refract signals to an extent that depends on whether it is vapor, liquid or solid.[13]

Generally, radar signals lose strength progressively the farther they travel through the troposphere. Different frequencies attenuate at different rates, such that some components of air are opaque to some frequencies and transparent to others. Radio waves used for broadcasting and other communication experience the same effect.

Water vapor reflects radar[14] to a less extent than do water's other two phases. In the form of drops and ice crystals, water acts as a prism, which it does not do as an individual molecule; however, the existence of water vapor in the atmosphere causes the atmosphere to act as a giant prism.[15]

A comparison of GOES-12 satellite images shows the distribution of atmospheric water vapor relative to the oceans, clouds and continents of the Earth. Vapor surrounds the planet but is unevenly distributed.

[edit] Lightning generation

Water vapor plays a key role in lightning production in the atmosphere. From cloud physics, usually, clouds are the real generators of static charge as found in Earth's atmosphere. But the ability, or capability of clouds to hold massive amounts of electrical energy is directly related to the amount of water vapor present in the local system.

The amount of water vapor directly controls the permittivity of the air. During times of low humidity, static discharge is quick and easy. During times of higher humidity, fewer static discharges occur. However, permittivity and capacitance[16] work hand in hand to produce the megawatt outputs of lightning.

After a cloud, for instance, has started its way to becoming a lightning generator, atmospheric water vapor acts as a substance (or insulator[17] [18] ) that decreases the ability of the cloud to discharge its electrical energy. Over a certain amount of time, if the cloud continues to generate and store[19] more static electricity[20], the barrier that was created by the atmospheric water vapor will ultimately break down[21] from the stored electrical potential energy. This energy will be released to a locally, opposite[22] charged region in the form of lightning. The strength of each discharge is directly related to the atmospheric permittivity, capacitance, and the source's charge generating ability.[23]

See also, Van de Graaff generator.

[edit] Extraterrestrial water vapor

The brilliance of comet tails comes largely from water vapor. On approach to the sun, the ice many comets carry sublimates to vapor, which reflects light from the sun. Knowing a comet's distance from the sun, astronomers may deduce a comet's water content from its brilliance.[24] Bright tails in cold and distant comets suggests carbon monoxide sublimation.

Scientists studying Mars hypothesize that if water moves about the planet, it does so as vapor.[25] Most of the water on Mars appears to exist as ice at the northern pole. During Mars' summer, this ice sublimates, perhaps enabling massive seasonal storms to convey significant amounts of water toward the equator.[26]

A star called CW Leonis was found to have a ring of vast quantities of water vapor circling the aging, massive star. A NASA satellite designed to study chemicals in interstellar gas clouds, made the discovery with an onboard spectrometer. Most likely, "the water vapor was vaporized from the surfaces of orbiting comets."[27]

Spectroscopic analysis of HD 209458 b, an extrasolar planet in the constellation Pegasus, provides the first evidence of atmospheric water vapor beyond the Solar System.

[edit] Scientific Discrepancies, Confounding factors and limits of knowledge

Since water vapor is very common, it has been studied and written about from many perspectives. As working knowledge has grown and developed within apparently unrelated fields several discrepancies in understanding may be encountered. These discrepancies often arise from an inability to rigidly determine either a volumetric or gravimetric basis of study; and/or use of constants inappropriate for the conditions being observed.

Many scientific studies view water vapor as a Confounding variable (preventing Ceteris paribus, also 'lurking variable') due to its complex nature; this becomes especially true when the study observes significant variation in water vapor quantities, over time and/or location.

It is for the reasons above that this remains a particularly tricky and sometimes controversial factor in many fields of science, whether storage of foods or ancient artefacts, thermodynamics or climate change.

[edit] See also

[edit] External links

[edit] References

  1. ^ Lide, David. CRC Handbook of Chemistry and Physics, 73rd ed. 1992, CRC Press.
  2. ^ Technically called the Hydrologic cycle, from U.S. Geologic Survey. Water Cycle. Retrieved on 2006-10-24.
  3. ^ Normal atmosphere means in the Earth's troposphere under a large variety of temperatures and pressures that are naturally occurring anywhere and at anytime.
  4. ^ Schroeder, David. Thermal Physics. 2000, Addison Wesley Longman. p36
  5. ^ This remains true as long as surface water exists, or water that is capable of being evaporated exists. Otherwise, with a net heat flux on the observed body when the water completely evaporates, then the temperature of the observed body begins to rise. (see Thermodynamics)
  6. ^ See Thermodynamics, as it is a process of energy transfer. This should not be confused with precipitates falling onto a surface.
  7. ^ The atmosphere is a heat bath, heat is transferred by molecular conduction.
  8. ^ Schroeder, p19.
  9. ^ Abbreviated to Vapor pressure
  10. ^ A number of other formulas are listed and compared at CIRES.
  11. ^ Sigurdsson, H. et al., (2000) Encyclopedia of Volcanoes, San Diego, Academic Press
  12. ^ Skolnik, Merrill. Radar Handbook, 2nd ed. 1990, McGraw-Hill, Inc. p23.5
  13. ^ See Bright band.
  14. ^ More correctly stated, the attenuation of microwave signals due to water vapor is directly related to the frequency of the microwaves, see Skolnik.
  15. ^ Skolnik, pp2.44-2.54.
  16. ^ Shadowitz, Albert. The Electromagnetic Field. 1975, McGraw-Hill Book Company. pp165-171.
  17. ^ The term insulator is used to roughly describe the electrical properties of a gas mixture. Here, the dipole water molecules increase the reactance (impedance) and lower the permittivity of the air as humidity rises in the localized parcel of air.
  18. ^ Shadowitz, p270.
  19. ^ Shadowitz, pp172-173, 182.
  20. ^ Shadowitz, pp414-416.
  21. ^ Commonly referred as dielectric breakdown.
  22. ^ The term opposite charge in ESD and in E&M, may also include the case of largely differing electrical potentials of the same charge. This is normally called Voltage or potential difference.
  23. ^ Shadowitz, p172.
  24. ^ ANATOMY OF COMETS, Retrieved December 2006.
  25. ^ Jakosky, Bruce, et al. "Water on Mars", April 2004, Physics Today, p71.
  26. ^ "Europe probe detects Mars water ice", January 23, 2004, Cnn.com, retrieved August 2005.
  27. ^ Lloyd, Robin. "Water Vapor, Possible Comets, Found Orbiting Star", 11 July 2001, Space.com. Retrieved December 15, 2006.



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