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Sunday, 22 January 2012

Turbidite Sequences

Turbidite Sequences

   Turbidites are syntectonic sedimentary deposits orginated by deep submarine turbidity currents, especially in foreland basins, in tectonic setting of convergent margin (active). To most part of geologists, turbidite is a sequence of layers that consist of a grano-classified set of sandstone strata/pelitic sediments, generally in fining-upward that were deposited by turbidity currents and is commonly covered by hemipelagic pelites containing assemblages of  deep-water fossils.

   The deposits are formed by concentrated hyperpicnal flow, building a succession of  sandy and hemipelagic sediments very thick set of sedimentary strata (layes), deposited in a short period of geologic time. They are linked to the rising of orogenic chains, exposing the crystalline basement, intense denudation through small rivers that lead quickly (in terms of geological time) with large amounts of sediment deposition in a confined environment, in the context of deep water, forming typical sedimentary structures. The composition of turbidite sequences may be siliciclastic (sands, pelites), carbonates, lithic fragments, salt, volcaniclastics and others.

   The turbidites are characterized by layers (bed) with great lateral continuity, bedding regularly and generally gradational with thinning of the grains to the top of each stratum (layer), ripple marks, association of hemipelagic sediments, base-layer structures as sole marks, flutecasts, marks objects (toolmarks, grooves). Each stratum of turbidite (bed) is deposited in a single one event (flow). The partition of energy between dense and turbulent flow during a turbidity event gives the typical features of these deposits.  In Bi-partite flows dense and fast deposition commonly form massive sandstones while turbulent flow will deposit fine sediments (pelites).The deceleration of the turbulent flow may form ripple marks before decanting the less dense materials and the finer particles, such as clays and silts.


The characterization of some facies and processes associated with siliciclastic turbidites comes primarily from the observation of the structures formed in the ignimbrite flows, which are volcaniclastic rocks.


Spetacular turbidite outcrop. Gorgoglione Flysch, Miocene, South Italy

   
Classical turbidite deposits with high efficiency flux occur in the European foreland basins, with the best expositions in the Apennines of Italy, Spanish  Pyrenees, Western Alps in France. In Brazil, State of Santa Catarina, typical turbidites occur in Early Paleozoic Itajai Basin and in some Proterozoic basins.

   The turbidite sequences are highly sought by petroleum geologists because they can constitute good reservoirs for hydrocarbons (oil and natural gas).

   Among the scholars of the turbidite sequences are Carlo Migliorini, Kuenen, Arnold Bouma, Emiliano Mutti, Franco Ricci-Lucchi, Shanmugan, Mulder, Pickering, Normark, Lowe, Middleton, P. Heller, Kneller, R. Tinterri and many others.

   But what would be the unconventional ideas on the issue of use of the term turbidite? The issue is the problem caused by the confusion that is made to designate and generalize as turbidites all sedimentary sequences deposited in the context of deep water, especially those that occur in divergent margins (passive margins). Deep-water deposits in divergent margin could not be designated as turbidites because they are related to flows of low efficiency (energy), mainly linked to the response of sea level oscillation, frequently in Lowstand System Tract. The big rivers carry sediments during flood events, but if the sea level remains stable, these sediments are not transported beyond the slope and remain, whether in bars or as mouth-bars of the rivers, in deltaic deposits, dominated by rivers, waves or tides. Part of these sediments can reach regions offshore platform, but the transfer of large amounts of sediment can only be transported by catastrophic event with significant fall of sea level. In this context, strong erosion occur in the onshore basin drainage (watershed) and forming incised valleys in environments of near-shore and platform (shelf), developing of deep cut canyons on the slope that will facilitate transport beyond the slope of those materials present on the platform, and its final deposition at basin floor. In some areas, deep-water bottom-currents may rework slightly the top of turbidite sediments and form contourite deposits. However, even all these process does not have high efficiency to form the typical features of classic turbidites present in foreland basins. Thus it seems desirable to use the term turbidite only for deposits with typical sedimentary facies and its association such as those occurring in the foreland basins, with deposition associated to deep confined environments, source and transport of sediments due high rising of mountain chain and small dirty-rivers. In any case, much remains to be understood about the processes that form turbidite sequences.




Zumaia is a small village along the coast of Guipúzcoa (Basque Country). Famous in this area is known as the geological formation Flysch Zumaia. These impressive outcrops, often with verticalized layers and extraordinary continuity, ranging from Late Cretaceous to Paleogene. This alternation of calcareous clay and marl are a classic example of Flysch, i.e. classical turbidite sediments.

Peat Formation

Peat Formation


   According to the scientist Thomas Gold, in his book "The Deep Hot Biosphere", peat and lignite are clearly biological materials,  but the reason for their accumulation may well lie in the circumstances created by non-biological hydrocarbons that happen to upwell from below and that may also add more carbon than contained in the plants involved.

   Peat and lignite also represent a most interesting partnership between biogenic and abiogenic carbon sources. The anoxic situation in the swamp may often be due to the rapid growth of bacteria plundering any available oxygen atoms in order to burn, for their metabolic needs, abiogenic methane upwelling from below. Because methane is such a desirable food, methanotrophic microbes will outcompete those tha would otherwise use oxygen to attack the plant debris, the cellulose and lignin molecules of which many may be particularly resistant to attack. A swamp will then be created from all the plant material that has accumulated and not yet decomposed.

   It's also interesting that where a patch of peaty terrain in Switzerland are vegetated by the same flora that is characteristic of peat bogs that occurs on steep hillsides, along fault lines that run transverse to the slope hill.  Methane outgassing is therefore likely to create peat and lignite deposits in regions overlying a strong flow of hydrocarbons.

  Element mercury sometimes occur at trace content associated to peat. Some researchers report this evidence, meanwhile they used to link the presence of mercury due to anthropic cause, i.e. industrial pollution and for the old peat they link to the epoch of Industrial Revolution, which is nonsense. Mercury is related to gaseous abiogenic hydrocarbon upwelling, mainly dimethyl-mercury as also occur in coal deposits by the same process.

   Certain kinds of continental sponges as Family of Porifera Metaniidae may also associate with altitude peat along fault lines or lagoons. Methane outgassing is frequently measured over these places.


Saturday, 21 January 2012

Origin of black coal


Origin of Black Coal

     Many people think that the process of coal formation is fully understood. The paradigm is that coal is essentially a product formed through the burial of plants and, according to this conventional view, the common presence of plant fossils associated with coal deposits therefore would explain intrinsically throught biogenic origin. However, there are much evidences related to the coal origin that are not yet understood.

     The American scientist Thomas Gold proposed in his book "The Deep Hot Biosphere" an insight into the processes of coal formation very different from the conventional view. He states that the existence of fossils with an excellent state of preservation, including textures at the cellular tissues level, proves that coal can not be formed through biogenic origin.


He said in an interview:


“The coal we dig is hard, brittle stuff [but] it was once a liquid, because we find embedded in the middle of a six-foot seam of coal such things as a delicate wing of some animal or a leaf of a plant. They are undestroyed, absolutely preserved, with every cell in that fossil filled with exactly the same coal as all the coal on the outside... The fact that coal contains fossils does not prove that it is a fossil fuel; it proves exactly the opposite. Those fossils you find in coal prove that coal is not made from those fossils. How could you take a forest and much it all up so that it is a completely featureless big black substance and then find one leaf in it that is perfectly preserved? That is absolute nonsense.”


 Highly preserved plant fossil in black coal

    The abiogenic theory then, combined with the deep, hot biosphere theory is as Gold succinctly phrases it; “not biology that has been reworked by geology but geology that has been reworked by biology”.  One might expect coal to be the exception; surely coal is the result of degraded plant life and ancient swamps. No, says Gold, but he does make a partial exception for peat and lignite, which are indeed reworked plant life with some help from primordial hydrocarbons. But black coals come from the same upwelling of hydrocarbons as petroleum and methane, originating far below the sedimentary layers. The process is essentially a sequential loss of hydrogen atoms as hydrocarbons upwell through porous rock, and this is the primary reason why so many petroleum fields are configured in a “layer-cake” manner. Methane is at the lowest depth, layered on this is light crude, next come the heavier oils, and then often on top of all is blackcoal. This correlation of coal with petroleum fields can be seen in many parts of the world (see pictures of US oil and coal maps below). The blacker the coal the greater the hydrogen loss and the greater the carbon to hydrogen ratio. How do the hydrocarbons lose their hydrogen atoms? Though many factors are involved, and we can go no further into the technical details here, there is a gradual process of oxidation as the hydrocarbons upwell, and carbon deposits left behind tend to be a catalyst for more carbon deposits, not unlike what happens in an internal combustion engine.

Coal formation

Biogenic (Orthodox): Coal is a material derived from organic detritus (plant material) that was buried and compressed. 

 
 Coal mining in Indonesia


Abiogenic: Coal (black only) is a material that may contain the presence of organic compounds, but that was filled by inorganic hydrocarbons that migrated by continuous upwelling come from great depth and reached these deposits in the surface and preserving fine debris and cellular tissues of plants. Such a situation may occur in the surface migration of methane and oil on areas of marshes or peat.
Several metals such as Nickel, Vanadium, Chromium, Cadmium, Mercury, Arsenic, Lead, Selenium, among others, are also present in coal. Many coals are sometimes bituminous and also have high sulfur content. As with oil, these metals come from deep inside the Earth (mantle) and black coal only represent stages in high loss of hydrogen of primordial hydrocarbons and intense biodegradation at shallower levels as postulated by Thomas Gold.
It's interesting that the same biomarkers found in oil are present in coal and represent, of course, parts of prokaryotic archaea that re-worked primordial hydrocarbons.
It's not rare association of uranium with black coal deposits. Association of biocide and poisonous element mercury with coal is also common evidence. In many coal deposits in the world are commonly found thin white layers called tonsteins that consisting of kaolin material, sometimes interpreted as volcanic ash.
There are some occurrences of coal in Precambrian, Neoproterozoic. According to fossil record of planet Earth there's no superior plant  at that time, then the Proterozoic coal is surely abiotic and represents probably  ancient oil accumulation with high hydrogen loss and biodegradation of primordial hydrocarbons.
Coal sometimes occurs in thick layers, as shown in the pictures below. It would be hard to imagine a swamp or anarea with thick ancient forests accumulated and its volume decreased after the water loss and compaction of the layers to form a thick coal layer.
Only the brown coal (lignite) should be considered dominantly biogenic.

Coal layer over 100 ft - Powder River, Wyoming, USA


Thick coal layer. See car and person as scale


   It is also common association of coal over oil and gas production areas. See below a comparison between maps of oil and coal occurrences in the United States.


Oil and natural gas production areas in the United States

   Main coal basins in the United States

"Petroleum and coal were made from materials in which heavy hydrocarbons were common components. We know that because the meteorites are the sort of debris left over from the formations of the planets and those contain carbon in unoxidized form as hydrocarbons as oil and coal-like particles. We find that in one large class of meteorites and we find that equally on many of the other planetary bodies in the solar system. So it’s pretty clear that when the Earth formed it contained a lot of carbon material built into it." (Thomas Gold)

Saturday, 3 December 2011

Hydrocarbons and Metallogenesis


Hydrocarbons and Metallogenesis


   There are several evidences of hydrocarbon association to metal ores. Black shales, specially those of high carbon content, have long been known to be enriched with a variety of transition metals, especially Mo, Zn, Vi, Cu, Cr, V, Co, Pb, U and Ag. The Kupferschiefer is associated with black shales and near Zechstein Salt in Germany. Miners try to found the black leader to prospect gold deposits. Mississipi Valley Type - MVT deposits are frequently associated with hydrothermal dolomite HTD and bitumen. In Australia, Proterozoic shales hosted Pb-Zn-Ag deposits, such as Mt. Isa, Hilton, McArthur River and Lady Loretta According. 


   The scientist Thomas Gold, remind that in geology there's no understanding about the role of hydrocarbon compounds and their capacity to transport metals. This is due few people reasoning with the possibility that hydrocarbons come from great depths as oil and natural gas and that they are primordial materials. Then, most part of Economic geologists still reasoning that metals are syngenetic with shale deposition and diagenetic process would be responsible for metal concentration.


   The understanding of real hydrocarbon origin and processes of hydrothermal salt formation maybe will be key to comprehension of certain metal ore accumulations in the Earth.


Metal Ores and Hydrocarbons
Thomas Gold, 1994

   The association of various metal ore deposits with hydrocarbons is a vast subject, but as yet very few people have worked on it. Many such associations have been seen, but as people did not recognize the possibility that hydrocarbons could come up from great depth, they could not see any reason for these effects. And people do not write papers to say they do not understand what they see.
   The general problems about concentrated mineral deposits are the following:

1.) The Earth formed by the collection of solids, mostly small grains, that had the elements pretty much mixed up. There may have been some layers that had a little more of this or that, but except for iron and nickel, there were no "clean" substances in this infall. We judge this from the great array of meteorites which are samples of the various contributions the Earth received. Many detailed trace element and isotope ratios show that this is true.
   What processes would single out a particular element and cause a deposition in a location which represents a concentration by a factor of one million or more from the original mix? A fluid that moved through a large amount of the mix, and picked up in solution the particular substance, and then shed it from solution as a result of changing circumstances such as temperature, pressure, ph, or the picking up into the solution of another substance that decreased the solubility of the first. All attempts at explanation assume processes of this kind and this seems inevitable. Water is generally considered the basic fluid, usually with aggressive contaminants like salts. But when it comes to the arithmetic of these processes, there is frequently serious trouble. Many metals , especially the heavy metals, are just not sufficiently soluble in brines. or in any aqueous fluids. The excerpt from Krauskopf (appended here) refers to this difficulty. Many other authors have also noted it.
   In my view hydrocarbons come towards the surface from depths between 150 and 300 km. They therefore leach through a very large amount of rock as they are driven up by buoyancy forces. Effective leaching requires powerful pumping action to drive fluids though fine pores and for a large distance: fluids coming up from great depth have of course this advantage. By comparison surface waters running through some crustal rocks have an incomparably smaller driving force. The leaching has to be due to fluids that originate at depth, because only those have the pressure differentials that are required for effective leaching.

2.) Which fluids have the capability to take into solution such substances as heavy metals or metal compounds?

   At high pressures and temperatures many metals will form organometallics, that means molecules that combine metal atoms with such elements as carbon and hydrogen, possibly with some nitrogen and oxygen also. Most organometallic compounds are soluble in hydrocarbon oils. Such oils, being forced through the rocks, will have a chance to combine with metals in the rocks to make organometallic compounds. In turn those that are soluble in the oils can then be transported by that same flow. This will be so also for many metals that have very low solubilities in aqueous liquids.

3.) What process can be so selective that it will deposit one metal ore in one location and another often nearby? What liquid stream will just leach out copper from the rocks, while another nearby stream will leach out zinc? Or why platinum here and gold there?

   The hydrocarbon flow, on the way up, will make a large array of molecules, in detail depending on such things as the carbon-hydrogen ratio, the ratio to other elements like nitrogen and oxygen, the catalytic action of specific minerals in the rocks, and the pressure-temperature regime it finds on the way. Among those molecules may be a class that is particularly favourable for forming a particular organometallic compound with one metal, another class with another. The great diversity of hydrocarbon molecules is thus the reason for the selectivity in the metal deposits. Certain groups of metals occur in close association, presumably because there exists a hydrocarbon stream there, and similar hydrocarbons that were abundant in that location have selected that group because these respond similarly. Thus lead and zinc are found together, gold and silver, etc.
   When these metal-laden streams come nearer to the surface, and reach lower pressures and temperatures, many of the compounds become unstable (many carbon compounds are stable at a high pressure only, like diamond). Also bacterial action may destroy them, as the bacteria will preferentially remove the hydrocarbon components. In this way the naked metal atoms remain.
   The close association of gold with carbon is well recorded in the literature. Conventional wisdom gives no hint of an explanation either for the association with carbon, or even for the occurrence of metallic gold altogether. It seems that carbon is an essential component in the laying down of gold. The gold miners of olden days knew this very well, and followed the "black leader", a trail of carbon black that led frequently to a gold deposit.
   It is interesting that the other substance that is commonly associated with gold is silicon dioxide. Silicon is in the same column, two below carbon, in Mendeleev's table of the elements and it has very similar properties. It will form oils that are quite similar to hydrocarbon oils, but frequently with higher thermal stability. I do not know (and possibly no one knows) whether at high temperatures and pressures, it will form silicon-metallic compounds, analogous to organometallics. An argument in favour of this would be the occurrence of gold in quartz veins rather than in quartz deposits, suggesting a common migration path. Mercury, found as the sulfide cinnabar, is often together with oil and tar.
   Many metals will of course make sulfides, if sulfur is available. Thus mercury may come up in a gas stream as mercury vapor or as dimethyl-mercury, but have enough sulfur to be turned into cinnabar. It is the same for many other metals, they would not resist being turned into the sulfide. For mercury it is particularly clear that it has come from great depths, as it is strongly associated with helium, in particular with helium high in helium-3, which is the marker for primordial helium, caught in the formation process of the Earth, and not merely derived from the radioactivity of uranium and thorium.
   In the drilling in the Siljan Ring structure in Sweden, large quantities of magnetite were found. Some twelve tons of a mix of very fine grained magnetite and natural petroleum were pumped up from one wellbore, and some kilograms of a similar paste were pulled up on the drillstring in a second hole. At the deeper levels, below 5 km, the magnetite paste impeded the drilling operation in both holes. It appears that it was this same paste that prevented any substantial inflow into the wellbores, necessary for any commercial production. Investigations by laboratories including that of the Danish Geological Survey, showed the oil to be an ordinary type of crude, somewhat biodegraded. In the second hole no drilling fluids were introduced that could possibly have resulted in the oils seen.
   The origin of such clean, concentrated magnetite and its very small grain size, much of it in the micron size range, certainly present a puzzle. Moreover the entire Siljan Ring structure displayed a positive magnetic anomaly, quite accurately centered in the ring. It therefore seems very likely that this same magnetite paste was the source for the magnetic anomaly, and that it was present in sufficiently large amount to account for it. If this is considered a possibility, then one may well wonder whether the various other large magnetite deposits of Sweden have a similar origin.
   The only clues we have about the origin of the Siljan magnetite come from the detailed trace element and isotope observations of it. Neutron activation analysis (done by the Los Alamos National Laboratory) showed a substantially different admixture of trace elements from the local granite or the much larger magnetite grains in it. For example the paste magnetite contained only 1/30th of the amount of Mg-27 as the magnetic grains of the granite; 1/7th of the Na-24; but 100 times as much Zn-65 (there is a commercial zinc mine in the region); 10 times as much Ba-131 and Ba-139; less than 1/10th the amount of Nd-148. Several other equally large differences were found. It does not seem probable that any iron oxide in the local granite can be the origin of the magnetite paste: no processes are known that could have separated these elements so sharply. One may therefore consider the possibility that all this magnetite has been brought up as an organometallic from a totally different chemical domain such as the mantle. It would be most illuminating to analyze some of the other magnetite deposits of Sweden for similar anomalies.
   From Introduction to Geochemistry, Konrad B. Krauskopf, McGraw Hill, 1982, p. 395.
   This is similar to the question we tried to answer in the last section, as to the minimum concentration of metal in a magmatic gas that would be significant for the formation of ore deposits. We proceed in the same way, using rough numbers to establish a limit of reasonableness. Suppose, for example, that an ore solution carried 10-7 g/liter of zinc. To deposit 1 ton of metal would require a minimum of 1010 cubic meters of solution, approximately the volume of water carried to the sea each year by the Hudson River (average flow approximately 10,000 sec-ft). Such a solution traversing a vein at a rate of 10 ft3/sec could deposit 1 ton of zinc in a thousand years, provided that all the dissolved zinc precipitates. The amount of water and the amount of time seem excessive, by comparison with scanty data on the flow of hot springs and on the geologic times required for the formation of ore bodies. Thus 10-7 g/liter can be taken as an absolute minimum, below which the concentration of metal is too small to be of interest. For most purposes a somewhat larger figure, say 10-5 g/liter, is a more reasonable minimum.
By this criterion the solubility of ZnS is barely high enough to be of interest at a temperature of 200° and a pH as low as 5.  The calculated solubilities of the sulfides of some other common metals (Mn, Fe, Co, Pb) have a similar order of the amounts of metal that can be carried by hot sulfide solutions seem far too small, except for a few metals under the most favorable assumed conditions, to account for the origin of ore deposits. This is the long-standing difficulty with the classical hydrothermal hypothesis.

Origin of Carbonate Rocks


Origin of Carbonate Rocks


   In geology, carbonates are a class of sedimentary rocks compose primarily of carbonate minerals. Two major types are limestone, which is composed of calcite or aragonite (different crystalline forms of CaCO3) and dolostone, which is composed of the mineral dolomite (CaMg(CO3)2).

   There are are many studies published in books, papers about carbonate rocks, mainly related to depositional environments, variations in textures, structures, facies, mineralogy, stratigraphy, diagenesis, deformation, formation of karst processes, paleontological content (fossils), isotopic studies, among others. The carbonate record is also relatively well documented by geological studies in many carbonate platforms from the Archean to recent.

   Nevertheless the problem lies in the fact that, in geology, there is little concern about the origin of this rock type.

The questions are:
  •  Where does come from carbon present in the carbonate rocks?
  •  What are the causes of the beggining of carbonate sedimentation?
  •  What are the processes responsible for the formation of dolomite and dolostone?

   The ideas based on the principles of uniformitarianism have not resolved these issues. This problem is due geology not yet provided an understanding of the process of planetary formation, the origin of natural hydrocarbons and the carbon cycle, from deep within the Earth to ocean-atmosphere-biosphere systems.

   According to the scientist Thomas Gold, surface of the Earth is very rich in carbon and deserves an explanation. Four-fifth of this carbon is oxidized, mainly in the form of carbonates. Studies of Earth's carbon budget made by the Massachusetts Institute of Technology - MIT show that the carbonates represent about 5% of global carbon and about 83% of carbon in Earth's surface or near surface.



   The carbon present in carbonate rocks can be derived from excess methane in the ocean-atmosphere by outgassing of hydrocarbons and carbon dioxide from the primordial Earth's mantle. The dissociation of methane and its reaction with oxygen is then responsible for carbon oxidation and the formation of calcium carbonate salt would be common in this paroxysm, since calcium is an abundant element on Earth.  Methane is a greenhouse gas 20 times more potent than carbon dioxide and fixation in carbonates, its precipitation in marine and lake environments would be responsible by the removal excess of carbon of the oceanic-atmospheric pool. The carbonate rocks are highly chemically reactive and are reworked by sedimentary processes in the Earth's dynamic systems. Living organisms take advantage of the calcium carbonate to build their skeletons and structures and can also be entirely reworked and re-sediment bioclastic carbonate rocks.


   Cap carbonates occur after glacial periods, mainly in Neoproterozoic (Sturtian and Marinoan glacial events). Methane released from permafrost with excess in atmosphere could  be incresead to form overlying carbonate sequences.

   The process of dolomite formation is still an enigma for geology. However it is known that dolomite mineral do not precipitate in laboratory and the features in the process of dolomitization are best explained when related hypogene hydrothermal fluids from depth through deep faults, from which the magnesium that is incorporated into calcium carbonate. Primordial hydrocarbons sometimes occur associated to dolostones (hydrothermal dolomite - HTD) and frequently remain as bituminous material after intense biodegradation in carbonate vugs. 

   It is common association of carbonate sequences with sequences of halide salt as halite (traditionally the so-called evaporites). The gypsum and barite formed as sulphates, also associated with volcanic and hydrothermal systems that brings sulphur. Hydrothermal Salt theory and abiotic hydrocarbons are maybe a clue to understanding the process of dolomite formation.

   Indeed, understand release of primordial methane maybe would be the key for understand origin of carbonate rocks in the geological record. The dolomitization process it seems related to mantle deep fluids which bring hydrocarbons (oil and gas) and halogens similar to hydrothermal process of salt formation and its interaction with carbonate rocks.



Saturday, 26 November 2011

Hydrothermal Salt


Hydrothermal Salt


   Most part of geologists still believe that salt rocks as halite NaCl, anhydrite CaSO4, gypsum CaSO4·2H2O, sylvite KCl, tachyhydrite CaMg2Cl6·12H2O, carnallite KMgCl3·6H2O, among others would be formed intrinsically by evaporation processes of shallow saline waters at surface environments and thus would configure sequences formed by the so-called "evaporites" which would be a class of chemical sedimentary rocks. The paradigm of the model related to formation of evaporites dates since 1849 by Italian chemist Usiglio and after proposals by Bischof  and Ochsenius, respectively in 1854 and 1877 based on previous ideas would take place through the model of restriction by a barrier (Barrier Model) of saline water bodies where the salt to precipitate and form layers according to its solubility, concentration and evaporation rates that are influenced by topography and arid climates.


   Would be traditional evaporite model the only real  explanation for the genesis of salt deposits? The traditional evaporite model is, however, not the only way of explaining all the salts appearing on Earth today. Thus, a group of Norwegian scientists have, over the past decade developed the new Hydrothermal Salt Theory (Hovland et al., 2006). Unlike the traditional model, this theory is more physically and chemically consistent, and over time, may take over parts of the current view. The new theory is not only valid on Earth, but also on planet Mars, where probably there are salt domes and salt deposits (Hovland et al., 2009)

   According to this new theory, Salt is originated from hydrothermal systems deep-through where supercritical water acts on stage at certain conditions of pressures and temperatures in a superior range of the superficial environments. The molecules of supercritical water has no polarity  and, different of non-critical water (normal water), indeed supercritical water can not dissolved salts and carrier them from deep sources brines to surface environments where then the effects of climate dry and restrictions areas in lakes or marine environments such salts are accumulated, reworked, precipitated, redissolved, reprecipitate forming spetacular sequences of salt rocks.


   It is noteworthy that there is no rock-forming minerals in the crust of the Earth with high content of chlorine or abundance to justify the occurrence of huge deposits of salt halite (NaCl). It makes sense then think that salt would not be derived primarily only from the dissolution of surface rocks. By the other hand, salt usually occurs associated with volcanic environments and hydrothermal systems as mud volcanism, for instance. There are many examples in the world, in marine, estuarine and continental environments and also a wider range of altitudes. 


   Good example of non-marine salt association is the salt of the Salar de Uyuni, in Bolivia. This occurrence is situated over 3,650 m altitude in the Andes, wide more than 100 km in area about 3,000 square miles. The salar is surrounded by several volcanic buildings. Another example is the Danakil Depression, in Ethiopia, Eritrea and the salts that occur in the Afar Triangle in Djibouti, where there is also intense volcanism. White Sands National Monument, in New Mexico, USA is another good example of salt related to volcanism. In this place there are spetacular dunes, not sand dunes, but gypsum dunes and the Carrizozo Malpais lava flow, over 70 km long, occurs closely towards north of White Sands. There also many similar occurences in the world.


Salar de Uyuni, Bolivia, South America (NASA GFSC Modis Terra image)
Salar de Uyuni is the world's largest salt flat, at larger than 3000 square miles in size. It is located near the crest of the Andes mountains, at an altitute of 3650 meters. It is estimated that Salar de Uyuni contains 10 billion tons of salt; its mineral content is mainly gypsum and halite. Around salar there are several volcanoes. 



Dallol is a unique crater in the world, located in Afar territory, in the Danakil desert (one of the most inhospitable deserts in the world), north-eastern Ethiopia, about fifteen kilometers from the border of Eritrea. This site is volcanic in the north end of a saline lake, Lake Karoum, in which salt is still mined today by the Afar. It follows from the explosion of a large magma chamber of the Great Rift Valley, over a large area west of saline Red Sea, and is - 136.8 meters below the level Sea, in the Danakil Depression. The heat regularly reaches 45 degrees in the shade. 


This vast area is known for its unusual geological formations: acidic hot springs, mountains of sulfur, salt columns, small gas geysers, pools of acid isolated by cornices of salt concretions and evaporites, sulfur chloride magnesium, sodium hydroxide and brine solidified. All on a white background, yellow, green and red ocher, due to the strong presence of sulfur, iron oxide, salt and other minerals. 



The site, like the volcanoes surrounding this area (Erta Ale volcano in Kenya, etc..) Is the result of the separation of the Arabian Plate and the African plate and the creation of the Red Sea rift. 



The large white area near the bottom of this image of New Mexico, USA, is the sand dune field known as the White Sands National Monument. The field has a surface area of 710 km² (275 mi²). White Sands is the world’s largest gypsum dunefield. The thick, dark brown line just north of the dunes is the Carrizozo Malpais, a large lava flow, one of the youngest volcanic features in the state of New Mexico. The 75 kilometer long Malpais, is composed of basaltic lava flows. (from Earth Snapshot)

   The questions are: where does Chlorine (Cl) come from for  to form the chloride salts  and sulfur (S) to sulphate salts? It is likely that chlorine migrate from great depths as organochlorine compounds, i.e., through its connection with primordial hydrocarbon molecules of the mantle. Salt  cations such as sodium, calcium and magnesium are abundant in the crust and mantle, but not chlorides and sulphates. Elements such as halogens Fluorine (F), Chlorine (Cl), Bromine (Br), Iodine (I) can have its origin related to primordial volatiles , including sulphur (S), which is likely to combine with oxygen to form sulphate compounds.


   Hydrothermal Salt Theory offers plausible explanation on the origin and evolution for the end-members of these salt sequences,  but  the dogmas of  geology, as the principle of actualism, are still very influential and difficult paradigm shift to an unconventional theory. This is due the difficult of most part of geologists still do not have comprehension of physical, chemical laws and mass balance of natural processes because they still remaining prisoner with their reasoning in context of restricted "a priori" theories.


   Indeed, understanding the whole process - from the origin to the formation of salt deposits is not  simple, since the elements and compounds have high chemical reactivity with many changes. Maybe Hydrothermal Salt Theory is the great light to the knowledge of salt rocks formation and evaporites are only extrinsic processes  of salt rework at surface shallow environments.


   Why are the oceans salty? That is a question that even children always ask and geologists and scientists still do not get an apropriated answer, obviously because they do not have enough understanding about what is salt and its origin but the Hydrothermal Salt Theory is probably a right way to answer that and other many questions about salt and its real origin.


   The traditional evaporite model could explains only certain situations after salt formed originally by hydrothermal systems reach to surface and reworked at this enviroment by normal evaporation processes. On the other hand, Hydrothermal Salt Theory also explain existence of deep-water salt sequences.

   Recently NASA found evidence of salt in Mars (see link below). Hydrothermal Salt Theory is suitable to explain origin of salt in Mars. We know that there was extensive volcanism in Mars. There, the highest volcan of solar system is present - The Olympus Mons (Mount Olympus) is a martian shield volcano which has base diameter about 624 km (374 mi) and 25 km (16mi) high. Volcanic outgassing brings methane and is oxidize to carbon dioxide to Mars atmosphere. Hydrothermal brines synchronous with volcanism could provide salt reach near surface of Mars. Natural oil-spills or oil seeps, seepages, are interpreted from Mars images also associated with salt. This phenomenon is very common on Earth.


Mons Olympus - Mars 
(ESA/DLR/FU Berlin - G. Neukum)

 References
Hovland, M., Rueslåtten, H., Johnsen, H.K., Kvamme, B., Kutznetsova, T., 2006. Salt formation associated with sub-surface boiling and supercritical water. Marine and Petroleum Geology 23, 855-869.

Hovland, M., Rueslåtten, H., ,Johnsen, H.K., Fichler, C., 2009.(Abstract) Hydrothermal evaporites - from the Conrad Deep, via Dallol, to Elysium Planitia. International Association of Sedimentologists (IAS) Annual meeting, Alghero, Sardinia, Book of Abstracts.

 
Links about Hydrothermal Salt