Showing posts with label argon. Show all posts
Showing posts with label argon. Show all posts

Friday, June 5, 2009

The evolution of the earth’s early atmosphere.

How did Earth's early atmosphere evolved.
by
Dr. Nitish Priyadarshi

The Earth's atmosphere (or air) is a layer of gases surrounding the planet Earth that is retained by the Earth's gravity. It has a mass of about five quadrillion metric tons. Dry air contains roughly (by volume) 78.08% nitrogen, 20.95% oxygen, 0.93% argon, 0.038% carbon dioxide, and trace amounts of other gases. Air also contains a variable amount of water vapor, on average around 1%. The atmosphere protects life on Earth by absorbing ultraviolet solar radiation, warming the surface through heat retention (greenhouse effect), and reducing temperature extremes between day and night.

The solid earth accumulated about 4700 m.y. ago from a cloud of cosmic particles and gaseous materials and as they collected gravitationally a hot planetary nucleus formed. This nucleus eventually became the present core as the mantle and crust consolidated. An atmosphere probably existed even in these early stages of the first billion years of earth’s history, though it was apparently transitory. Judging from the atmospheres of the major planets, Jupiter and Saturn, which retain light elements by virtue of their large gravitational attraction, hydrogen and helium would have been abundant in earth’s primordial atmosphere. These elements were derived in part from the original gaseous material of the cosmic cloud, but volcanic outgassing during lithification of the crust probably continued as well. Neon and argon and some of the lighter gases such as xenon probably also existed in the early atmosphere.

The first atmosphere of the earth, then, contained hydrogen, helium, neon, argon and various other lighter and inert gases, none of which is abundant in the present atmosphere. Most of these on liberation to the air now either escape earth’s gravitational pull because of their low densities or are bound up in minerals by chemically reacting with them. It is likely that the primitive atmosphere did not linger long but was dissipated through these processes.

A little reflection tells us that earth’s present atmosphere necessarily evolved from one that was different. We know no primary source for the free molecular oxygen that comprises one –fifth of our present atmosphere. Compared with solar abundances, our atmosphere has only traces of hydrogen and helium but a disproportionate amount of nitrogen.

An important clue to the origin of our ancestral atmosphere is found in the abundances of so-called noble gases – elements that, unlike oxygen, do not (or rarely) combine with others because they have the stable configuration of 8 (or 2 in the case of helium) in their outermost shell of electrons. As they do not ordinarily lose, gain, or share electrons with other elements, variations in their abundance imply different sources. Had earth inherited its atmosphere directly from the solar nebula, the gaseous elements neon, argon, krypton, xenon, and radon should be present in approximately solar abundances, allowing for the addition of radiogenic isotopes. That is not the case. It has been repeatedly noted over the past half-century that all the noble gases are grossly depleted in the earth’s atmosphere compared with solar and cosmic abundances. They are depleted, in fact, by several to many orders of magnitude. This means either that earth accumulated without an atmosphere of nebular proportions or that any initial atmosphere escaped its gravity field in some subsequent episode of heating that accelerated even the heavy noble gases to escape velocities.

The most significant development following sufficient cooling and consolidation of the surface rocks was liberation of abundant water along with CO2 , N2, and H2 S by volcanic outgassing. Water vapor is dissociated in the upper atmosphere by ultraviolet light to yield oxygen and hydrogen. This process constituted the sole source of free oxygen of the early atmosphere, and the build up to significant oxygen concentrations occupied the long interval between at least 3400 and about 2000 m.y. ago. Further, oxygen of the early high atmosphere was photochemically converted to ozone as at present, and with time, ozone concentration led to the development of a screen to ultraviolet light. Lastly, accumulation of water molecules in the atmosphere caused extensive precipitation and hence the initiation of the oceans at some time prior to 3760 m.y. ago, when the oldest known sedimentary rocks were deposited.

Other concept regarding evolution of early oxygen in atmosphere:
If earth’s primitive atmosphere resulted from volcanic outgassing, we have a problem, because volcanoes do not emit free oxygen. Where did the very significant percentage of oxygen in our present atmosphere (20 percent) come from?

The major source of oxygen is green plants. Plants did not just adapt to their environment, they actually influenced it, dramatically altering the composition of the entire planet’s atmosphere by using carbon dioxide and releasing oxygen. This is a good example of how earth operates as a giant system in which living things interact with their environment.

How did plants come to alter the atmosphere? The key is the way in which plants create their own food. They employ photosynthesis, in which they use light energy to synthesize food sugars from carbon dioxide and water. The process releases a waste gas, oxygen. Those of us in the animal kingdom rely on oxygen to metabolize our food, and we in turn exhale carbon dioxide as a waste gas. The plant use this carbon dioxide for more photosynthesis, and so on, in a continuing system.

The first life-forms on earth, probably bacteria, did not need oxygen. Their life processes were geared to the earlier, oxygen less atmosphere. Even today, many anaerobic thrive in environments that lack free oxygen. Later, primitive plants evolved that used photosynthesis and released oxygen. Slowly, the oxygen content of earth’s atmosphere increased. The Precambrian rock record suggests that much of the first free oxygen did not remain free because it combined with (oxidized) other substances dissolved in water, especially iron. Iron has tremendous affinity for oxygen, and the two elements combine to form iron oxides (rust) at any opportunity. To this day, the majority of oxygen produced over time is locked up in the ancient "banded rock" and "red bed" formations.

Then, once the available iron satisfied its need for oxygen, substantial quantities of oxygen accumulated in the atmosphere. By the beginning of the Paleozoic era, about 4 billion years into earth’s existence, the fossil record reveals abundant ocean- dwelling organisms that require oxygen to live.
Once oxygen had been produced, ultraviolet light split the molecules, producing the ozone UV shield as a by-product. Only at this point did life move out of the oceans and respiration evolved.
Hence, the composition of earth’s atmosphere has evolved together with its life-forms, from an oxygen less envelop to today’s oxygen-rich environment.

Sources:
Cloud,P. 1988. Oasis in space, earth history from the beginning. W.W. Norton & Company, New York.
Frakes, L. A. 1979. Climates throughout geologic times. Elsevier, New York.
Tarbuck, E.J. and Lutgens, F.K. 1994. Earth Science. Prentice Hall, New Jersey.
http://knowledgerush.com/kr/encyclopedia/Earth's_atmosphere/
http://en.wikipedia.org/wiki/Earth's_atmosphere

Sunday, March 15, 2009

From where did the water came on Earth?

Origin of Water on Earth
by
Dr. Nitish Priyadarshi

All life on Earth depends on water. Humans use water for many purposes like drinking, irrigation, fisheries, industrial processes, transportation, and waste disposal. Water is also an essential part of the geological cycle. Rain water converts the granitic rocks of the continents to clay, sand and solutes, and transports them to the ocean where they become the raw material of future continents. Approximately 80 percent of the water on the Earth is in the oceans, 19 percent is in the pores of rocks beneath the Earth’s surface, 1 percent in the form of ice, 0.002 percent is in the streams and lakes, and only about 0.0008 percent in the atmosphere.
Considering the central role of water in human affairs, it is remarkable how little we know about it.

The question of the origin of water on Earth, or more accurately put, the question of why there is clearly more water on the Earth than on the other planets of the Solar System, has not been clarified. There are various popular theories as to how the world's oceans were formed over the past 4.6 billion years. Some of the most likely contributing factors to the origin of the Earth’s oceans are as follows:

1. The cooling of the primoridal Earth to the point where the outgassed volatile components were held in an atmosphere of sufficient pressure for the stabilization and retention of liquid water.
Today, the air we breathe is stable mixture of 79 percent nitrogen, 20 percent oxygen, about 1 percent argon (or inert gas), and trace gases like carbon dioxide and water vapour. But our planet’s original atmosphere, several billion year ago, was far different. Earth’s very earliest atmosphere probably was swept into space by the solar wind, a vast stream of particles emitted by the Sun. as Earth slowly cooled, a more enduring atmosphere formed. The molten surface solidified into a crust, and gases that had been dissolved in the molten rock were gradually released, a process called outgassing. Outgassing continues today from hundreds of active volcanoes worldwide, thus, geologists hypothesize the Earth’s original atmosphere was made up of gases similar to those released in volcanic emissions today: water vapor, carbondioxide, nitrogen, and several trace gases.
As the planet continued to cool, the water vapor condensed to form clouds, and great rain commenced. At first, the water evaporated in the hot air before reaching the ground, or quickly boiled away upon contacting the surface, just like water sprayed on a hot grill. This accelerated the cooling of Earth’s crust. When the surface had cooled below water’s boiling point (100 degree c or 212 degree F), torrential rains slowly filled the low areas, forming the oceans.





2. Comets, trans-Neptunian objects or water-rich asteroids (protoplanets) from the outer reaches of the asteroid belt colliding with a pre-historic Earth may have brought water to the world's oceans. That the Earth's water originated purely from comets is implausible, as a result of measurements of the isotope ratios of hydrogen in the three comets Halley, Hyakutake and Hale-Bopp by researchers. According to this research the ratio of deuterium to protium (D/H ratio) of the comets is approximately double that of oceanic water.The Earth is believed to have formed hot and dry, meaning that its current water content must have been delivered after the planet cooled. Possible candidates for supplying this water are colliding comets and asteroids. Because of their large ice comet water has shown that comet water is significantly different from typical ocean water on Earth.
Asteroidal ice may give a better match to Earth's water, but until now, any ice that the asteroids may have once contained was thought to either be long gone or so deeply buried inside large asteroids as to be inaccessible for further analysis.


3. Gradual leakage of water stored in hydrous minerals (actinolite, borax, epsomite, serpentine, tremolite, gypsum etc.) of the Earth’s crust. The heating or metamorphism of minerals containing water results in the extraction of water. These are the water that have been trapped inside rocks for millions or billions of years. Loss of volatile constituents, H2O, CO2, and the like, are the dominant processes which occur when rocks change their pressure-temperature environment and undergo prograde metamorphism through tectonic processes.

4. Magma represents a fiery-liquid silicate melt, containing various elements, oxides and volatile components (fluorine, chlorine, water, carbon dioxide, etc.). Magma can be solidified in the depth of the Earth’s crust under the cover of the overlying rocks and at the surface or near the surface of the Earth. In the former case the process of solidification of magma is slow; it takes the whole of magma enough time to be crystallized. When there is a rapid uplift of the magma on to Earth’s surface its temperature becomes lower, the pressure drops down to normal, and volatile components are separated including water. Release of water to the atmosphere from the cooling of the magma is happening from millions of years.

Reference:

Drever, J.I. 1982. The Geochemistry of Natural Waters. Prentice-Hall, Englewood Cliffs, N.J.

Fyfe, W.S., Price, N.J., and Thompson, A.B., 1978. Fluids in the Earth’s crust. Elsevier Scientific Publishing company, New york.

Milovsky, A.V. and Kononov, O.V. 1985. Mineralogy. Mir Publishers, Moscow.

Tarbuck, E.J. and Lutgens, F.K. Earth Science. Prentice Hall, New Jersey.

http://en.wikipedia.org/wiki/Origin_of_the_world
http://www.ozh2o.com/h2solar.html
http://www.astrobio.net/news/article1905.html
http://scrapetv.com/News/News%20Pages/Science/Images/Asteroid-impact-on-Earth.jpg