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الاثنين، 16 مارس 2015

Salt

Halite

What is salt?

Salt is a sedimentary rock which is formed by the evaporation of water. These are formed by the evaporation of lake water or ocean saline water which already have salt in it. Because of its precipitation from water, it is also called as evaporites. The minerals of salt is called Halite. Salt is not found at the surface without being driven out by external forces. These are used in food and chemical industry.

Conglomerate


What is conglomerate?

Conglomerate is a clastic sedimentary rock that is formed by the accumulation of rock fragments greater than 2 millimetre in size. The rock fragments that forms the conglomerate are round in shape. The pore spaces in between the clast of a rock are filled by the finer particles usually silt and clay or any other cementing material that binds the rock fragments together. 
Conglomerate can be formed of any rock material that is transported through time and space from the origin area to accumulation area. The rounded rock fragments is the proof of transportation of the rock fragments in the conglomerate. The rock fragments of the conglomerate can be derived from igneous, metamorphic or sedimentary rocks. The chemical binding material can be sand, silt or chemical cement like calcite.

What is the Composition of Conglomerate?

Conglomerate can have a variety of compositions. As a clastic sedimentary rock, it can contain clasts of any rock material or weathering product that is washed downstream or down current. The rounded clasts of conglomerate can be mineral particles such as quartz, or they can be sedimentary, metamorphic, or igneous rock fragments. The matrix that binds the large clasts together can be a mixture of sand, mud, and chemical cement.

Generation of conglomerate

Conglomerate can be formed at an areas where strong water current exist like mountain down slope where water has enough current flow that it can carry the rock fragments above 2 millimetre. It can also be formed at beaches where water current is strong and rock fragments are available to be accumulated for forming conglomerate. Conglomerate is formed when large clast pebble or cobble size fragments transported and deposited than the finer grained fills the spaces in between the clast.

Classification of conglomerate

Conglomerates may be named and classified by the:
  • Amount and type of matrix present
  • Composition of gravel-size clasts they contain
  • Size range of gravel-size clasts present
The classification method depends on the type and detail of research being conducted.
A sedimentary rock composed largely of gravel is first named according to the roundness of the gravel. If the gravel clasts that comprise it is largely well-rounded to subrounded, it is a conglomerate. If the gravel clasts that comprise it are largely angular, it is a breccia. Such breccias can be called sedimentary breccias to differentiate them from other types of breccia, e.g. volcanic and fault breccias. Sedimentary rocks that contain a mixture of rounded and angular gravel clasts are sometimes called breccio-conglomerate.

Texture

Conglomerates are rarely composed entirely of gravel-size clasts. Typically, the space between the gravel-size clasts is filled by a mixture composed of varying amounts of silt, sand, and clay, known as matrix. If the individual gravel clasts in a conglomerate are separated from each other by an abundance of matrix such that they are not in contact with each other and float within the matrix, it is called a paraconglomerate. Paraconglomerates are also often unstratified and can contain more matrix than gravel clasts. If the gravel clasts of a conglomerate are in contact with each other, it is called a orthoconglomerate. Unlike paraconglomerates, orthoconglomerates are typically cross-bedded and often well-cemented and lithified by either calcite, hematite, quartz, or clay.
The differences between paraconglomerates and orthoconglomerates reflect differences in how they are deposited. Paraconglomerates are commonly either glacial tills or debris flow deposits. Orthoconglomerates are tyipically associated with aqueous currents of some sort.

Clast composition

Conglomerates are also classified according to the composition of their clasts. A conglomerate or any clastic sedimentary rock that consists of a single rock or mineral is known as either a monomict, monomictic, oligomict, or oligomictic conglomerate. If the conglomerate consists of two or more different types of rocks, minerals, or combination of both, it is known as either a polymict or polymictic conglomerate. If a polymictic conglomerate contains an assortment of the clasts of metastable and unstable rocks and minerals, it called either a petromict or petromictic conglomerate.
In addition, conglomerates are classified by source as indicated by the lithology of the gravel-size clasts If these clasts consist of rocks and minerals that are significantly different in lithology from the enclosing matrix and, thus, older and derived from outside the basin of deposition, the conglomerate is known as an extraformational conglomerate. If these clasts consist of rocks and minerals that are identical to or consistent with the lithology of the enclosing matrix and, thus, penecontemporaneous and derived from within the basin of deposition, the conglomerate is known as an intraformational conglomerate.
Two recognized types of type of intraformational conglomerates are shale-pebble and flat-pebble conglomerates. A shale-pebble conglomerate is a conglomerate that is composed largely of clasts of rounded mud chips and pebbles held together by clay minerals and created by erosion within environments such as within a river channel or along a lake margin. Flat-pebble conglomerates (edgewise conglomerates) are conglomerates that consist of relatively flat clasts of lime mud created by either storms or tsunami eroding a shallow sea bottom or tidal currents eroding tidal flats along a shoreline

Clast size

Finally, conglomerates are often differentiated and named according to the dominant clast size comprising them. In this classification, a conglomerate composed largely of granule-size clasts would be called a granule conglomerate; a conglomerate composed largely of pebble-size clasts would be called a pebble conglomerate; and a conglomerate composed largely of cobble-size clasts would be called a cobble conglomerate.

Conglomerate forming sedimentary environments 

Conglomerates are deposited in a variety of sedimentary environments.

Deepwater marine

In turbidites, the basal part of a bed is typically coarse-grained and sometimes conglomeratic. In this setting, conglomerates are normally very well sorted, well-rounded and often with a strong A-axis type imbrication of the clasts.

Shallow marine

Conglomerates are normally present at the base of sequences laid down during marine transgressions above an unconformity, and are known as basal conglomerates. They represent the position of the shoreline at a particular time and are diachronous.

Fluvial

Conglomerates deposited in fluvial environments are typically well rounded and well sorted. Clasts of this size are carried as bedload and only at times of high flow-rate. The maximum clast size decreases as the clasts are transported further due to attrition, so conglomerates are more characteristic of immature river systems. In the sediments deposited by mature rivers, conglomerates are generally confined to the basal part of a channel fill where they are known as pebble lags. Conglomerates deposited in a fluvial environment often have an AB-plane type imbrication.

Alluvial

Alluvial deposits form in areas of high relief and are typically coarse-grained. At mountain fronts individual alluvial fans merge to form braidplains and these two environments are associated with the thickest deposits of conglomerates. The bulk of conglomerates deposited in this setting are clast-supported with a strong AB-plane imbrication. Matrix-supported conglomerates, as a result of debris-flow deposition, are quite commonly associated with many alluvial fans. When such conglomerates accumulate within an alluvial fan, in rapidly eroding (e.g., desert) environments, the resulting rock unit is often called a fanglomerate.

Glacial

Glaciers carry a lot of coarse-grained material and many glacial deposits are conglomeratic. Tillites, the sediments deposited directly by a glacier, are typically poorly sorted, matrix-supported conglomerates. The matrix is generally fine-grained, consisting of finely milled rock fragments. Waterlaid deposits associated with glaciers are often conglomeratic, forming structures such as eskers.

Examples of conglomerate

An example of conglomerate can be seen at Montserrat, near Barcelona. Here, erosion has created vertical channels that give the characteristic jagged shapes the mountain is named for (Montserrat literally means "jagged mountain"). The rock is strong enough to use as a building material, as in the Santa Maria de Montserrat Abbey.
Another example, the Crestone Conglomerate, occurs in and near the town of Crestone, at the foot of the Sangre de Cristo Range in Colorado's San Luis Valley. The Crestone Conglomerate consists of poorly sorted fanglomerates that accumulated in prehistoric alluvial fans and related fluvial systems. Some of these rocks have hues of red and green.
Conglomerate cliffs are found on the east coast of Scotland from Arbroath northwards along the coastlines of the former counties of Angus and Kincardineshire. Dunottar Castle sits on a rugged promontory of conglomerate jutting into the North Sea just south of the town of Stonehaven.
Conglomerate may also be seen in the domed hills of Kata Tjuta, in Australia's Northern Territory.
In the nineteenth century a thick layer of Pottsville conglomerate was recognised to underlie anthracite coal measures in Pennsylvania.
This image was acquired by NASA's Curiosity rover on the surface of Mars. It shows an outcrop of conglomerate and some pebble-size weathering debris. The round pebbles are too large to have been moved and shaped by wind, thus they had to have been transported a significant distance by water. This photo from September 2012 was the strongest evidence of the existence of water on Mars that had been obtained at that time.

Examples on Mars

On Mars, slabs of conglomerate have been found at an outcrop named "Hottah", and have been interpreted by scientists as having formed in an ancient streambed. The gravels, which were discovered by NASA's Mars rover Curiosity, range from the size of sand particles to the size of golf balls. Analysis has shown that the pebbles were deposited by a stream that flowed at walking pace and was ankle- to hip-deep.

Uses of conglomerate


Conglomerate has very few uses because of it not clean breakage and fine particles are unreliable. It can only be used as a crush where low performance material is wanted. Conglomerate has very few commercial uses. Its inability to break cleanly makes it a poor candidate for dimension stone, and its variable composition makes it a rock of unreliable physical strength and durability. Conglomerate can be crushed to make a fine aggregate that can be used where a low-performance material is suitable. Many conglomerates are colorful and attractive rocks, but they are only rarely used as an ornamental stone for interior use.
Analysis of conglomerate can sometimes be used as a prospecting tool. For example, most diamond deposits are hosted in kimberlite. If a conglomerate contains clasts of kimberlite, then the source of that kimberlite must be somewhere upstream.

Coal

What is coal?

Coal is an organic sedimentary rock which is the prehistoric vegetation that are deposited at swamps, subjected to heat and pressure over million of years. This is composed mainly of carbon, hydrogen and oxygen. Coal along with oil and gas is fossil fuel, can also be called combustible rock.
Coal is a flammable black hard rock used as a solid fossil fuel. It is mainly made up of 65-95% carbon and also contains hydrogen, sulphur, oxygen and nitrogen. It is a sedimentary rock formed from peat, by the pressure of rocks laid down later on top. The harder forms of coal, such as anthracite, are metamorphic rocks because they were changed by higher temperature and pressure.
Peat, and therefore coal, is formed from the remains of plants which lived millions of years ago in tropical wetlands, such as those of the late Carboniferous period (the Pennsylvanian). A similar substance made from wood by heating it in an airless space is called charcoal.
Coal can be burned for energy or heat. About two-thirds of the coal mined today is burned in power stations to make electricity. Coal is becoming less popular in new power plants as less expensive and less polluting technologies such as natural gas and hydroelectricity take over.

Coal can be roasted (heated in high temperature in a place where there is no oxygen) to produce coke. Coke is even better fuel than coal, and can be used in smelting to reduce metals from their ores.

Formation of coal

Coal is formed by the deposition of plant debris in a swampy area where conditions are favourable for the generation of coal. Condition to form coal are area where water does not dry up, plant debris are continuously being submerged in the water that no decay process can be carried out. The plant debris accumulates slowly at a place which further generate into coal seam. For a few feet fifty or hundred feet area of coal seam, it takes a very long time about thousands of years at which the water level should remain constant so that no decay process can be stimulated or else seam generation won't be carried out. 
Coal formation started in the Carboniferous period, which is spanned as 360 to 290 million years ago is known as first coal age. Due to tectonic movements, silt and other sediments build together with the swamp and peat log areas buried at great depths. With burial of the plant remains to depths which are great enough with temperature and pressure, turned the plant debris into peat and then into coal.

Energy of coal

The energy we get from the coal is the solar energy stored by the plants during their life time by a process we will be well aware of, the photosynthesis. This stored energy remains in the body of a plant which in turn is submerged in the water of a swamp. If this plant is not preserved in the water to form coal, the energy stored will be released by the decay process.

Types of coal

Under suitable conditions, plant material is transformed step by step into
  • Peat, which has industrial importance as a fuel in some regions, for example, Ireland and Finland. In its dehydrated form, peat is a highly effective absorbent for fuel and oil spills on land and water
  • Lignite (brown coal) is the lowest rank of coal and is used as fuel for electric power generation. Jet is a compact form of lignite that is sometimes polished and has long been used as an ornamental stone.
  • Sub-bituminous coal is used as fuel for steam-electric power generation. Also, it is a source of light aromatic hydrocarbons for the chemical synthesis industry.
  • Bituminous coal is a dense rock, black but sometimes dark brown. It is a relatively soft coal that breaks and burns readily and quickly. It used as fuel in steam-electric power generation, and for heat and power applications in manufacturing; also and to make coke
  • Steam coal was once widely used as a fuel for steam locomotives. In this specialized use it is sometimes known as sea-coal in the U.S.[1] Small steam coal (dry small steam nuts or DSSN) was used as a fuel for domestic water heating
  • Anthracite is the highest quality: a harder, glossy, black coal. It is longer burning, and used mainly for residential and commercial space heating.
  • Graphite is difficult to ignite and is not so commonly used as fuel: it was mostly used in pencils and, when powdered, as a lubricant.
Diamond is commonly believed to be the highest grade, but this is not true. Diamond is carbon but is not formed from coal. Coal contains impurities. The particular impurities determine the use. Coking coal has little ash or sulphur or phosphorus. Those would spoil the iron made by the blast furnace.
Coal quality depends upon the following factors
  • Vegetation variation from which it is formed
  • Depths of burial
  • Temperature and pressure at those depths
  • Length of time taken by the coal deposits
The coal generation starts from the plant cooking and at first peat is converted into lignite with low organic maturity. To compare with other coal lignite is soft and colour varies dark black to various shades of brown.
Over many more million years of temperature and pressure continuous effect, lignite faces further changes with progressively organic maturity transforming it into sub-bituminous coals.
Further cooking under favourable continuous temperature and pressure, organic matter matures more and more forming bituminous and at last the high grade anthracite. These are hard coal with more blackish colour. 

Uses of coals

Coal has a wide range of uses, it can be used for different purposes. The most significant use of coal is generation of electricity in power plants. Electricity is generated by burning of coal in power plant which is also called as thermal coal. Another use of coal is in metallurgical industry, making of steel which is know as metallurgical coal. Coal also have domestic use which can be for heating purpose by coal fire or can be used for cooking, mostly barbecue. 

Facts & figures

  • Coal makes up about 40% of the world's carbon dioxide emissions from fuels
  • Coal-fired power stations produce almost half the electricity produced in the US
  • Coal, when burnt, gives off almost a third more carbon dioxide per unit of energy than oil, and 80% more than natural gas
  • Coal provides about a quarter of the world's energy needs
  • Almost 70% of world steel production depends on burning coal.
Since 1983 the world top coal producer has been China. In 2011 China produced 3,520 millions of tonnes of coal, 49.5% of 7,695 millions tonnes world coal production. In 2011 other large producers were United States (993 millions tonnes), India (589), European Union (576) and Australia (416). In 2010 the largest exporters were Australia with 328 million tonnes (27.1% of world coal export) and Indonesia with 316 millions tonnes (26.1%), while the largest importers were Japan with 207 million tonnes (17.5% of world coal import), China with 195 million tonnes (16.6%) and South Korea with 126 million tonnes (10.7%).

السبت، 14 مارس 2015

Limestone

What is limestone?

Limestone is a sedimentary rock that is primarily composed of Calcium carbonate in the form of calcite mineral. It forms mostly in the clear, warm and shallow marine water accumulates in the form of organic debris as coral, shells, algal or fecal deposits. It can also be formed by the precipitation of calcium carbonate dissolved in the water running in the ground water. 

Composition of limestone

Limetone as the name indicates is mainly composed of calcium carbonate, greater than 50%. A few percentage of other minerals are also present as all limestone contains them. The other minerals can be quartz, siderite, pyrite, clay minerals feldspar and other minerals. It also includes large nodules of chert, pyrite or siderite. The calcium carbonate can easily be identified when treated with acid, it reacts. 

A Limestone-Forming Environment: An underwater view of a coral reef system from the Kerama Islands in the East China Sea southwest of Okinawa. Here the entire seafloor is covered by a wide variety of corals which produce calcium carbonate skeletons.

Environment of deposition

Marine

The limestone is mainly deposited in calm, warm marine water at shallow depths where organism are capable of generating calcium carbonate shells and skeleton. These organism when die accumulate in the area to form limestone deposits. The waste product of these organism also contribute to sediment mass which in turn when lithifies produces limestone. The limestone produce from this type are biological sedimentary rocks. 
Other limestone is formed by direct precipitation from the marine or fresh water and this type is called chemical sedimentary rock. 

Evaporite

The limestone formed by evaporation are often formed in the caves where water droplet enters the fracture and when reaching cave ceiling evaporates. When water evaporates the calcium carbonate present precipitates to form limestone.

The Bahamas Platform: A NASA satellite image of the Bahamas Platform where active limestone formation occurs today. The main platform is over 100 miles wide, and a great thickness of calcium carbonate sediments have accumulated there. In this image the dark blue areas are deep ocean waters. The shallow Bahamas Platform appears as light blue

Description

Like most other sedimentary rocks, most limestone is composed of grains. Most grains in limestone are skeletal fragments of marine organisms such as coral or foraminifera. Other carbonate grains comprising limestones are ooids, peloids, intraclasts, and extraclasts. These organisms secrete shells made of aragonite or calcite, and leave these shells behind when they die.
Limestone often contains variable amounts of silica in the form of chert (chalcedony, flint, jasper, etc.) or siliceous skeletal fragment (sponge spicules, diatoms, radiolarians), and varying amounts of clay, silt and sand (terrestrial detritus) carried in by rivers.
Some limestones do not consist of grains at all, and are formed completely by the chemical precipitation of calcite or aragonite, i.e. travertine. Secondary calcite may be deposited by supersaturated meteoric waters (groundwater that precipitates the material in caves). This produces speleothems, such as stalagmites and stalactites. Another form taken by calcite is oolitic limestone, which can be recognised by its granular (oolite) appearance.
The primary source of the calcite in limestone is most commonly marine organisms. Some of these organisms can construct mounds of rock known as reefs, building upon past generations. Below about 3,000 meters, water pressure and temperature conditions cause the dissolution of calcite to increase nonlinearly, so limestone typically does not form in deeper waters. Limestone may also form in lacustrine and evaporite depositional environments.
Calcite can be dissolved or precipitated by groundwater, depending on several factors, including the water temperature, pH, and dissolved ion concentrations. Calcite exhibits an unusual characteristic called retrograde solubility, in which it becomes less soluble in water as the temperature increases.
Impurities (such as clay, sand, organic remains, iron oxide, and other materials) will cause limestone to exhibit different colours, especially with weathered surfaces.
Limestone may be crystalline, clastic, granular, or massive, depending on the method of formation. Crystals of calcite, quartz, dolomite or barite may line small cavities in the rock. When conditions are right for precipitation, calcite forms mineral coatings that cement the existing rock grains together, or it can fill fractures.
Travertine is a banded, compact variety of limestone formed along streams; particularly where there are waterfalls and around hot or cold springs. Calcium carbonate is deposited where evaporation of the water leaves a solution supersaturated with the chemical constituents of calcite. Tufa, a porous or cellular variety of travertine, is found near waterfalls. Coquina is a poorly consolidated limestone composed of pieces of coral or shells.
During regional metamorphism that occurs during the mountain building process (orogeny), limestone recrystallises into marble. Limestone is a parent material of Mollisol soil group.

Classification

Two major classification schemes, the Folk and the Dunham, are used for identifying limestone and carbonate rocks.

Folk classification

Robert L. Folk developed a classification system that places primary emphasis on the detailed composition of grains and interstitial material in carbonate rocks. Based on composition, there are three main components: allochems (grains), matrix (mostly micrite), and cement (sparite). The Folk system uses two-part names; the first refers to the grains and the second is the root. It is helpful to have a petrographic microscope when using the Folk scheme, because it is easier to determine the components present in each sample.

Dunham classification

The Dunham scheme focuses on depositional textures. Each name is based upon the texture of the grains that make up the limestone. Robert J. Dunham published his system for limestone in 1962; it focuses on the depositional fabric of carbonate rocks. Dunham divides the rocks into four main groups based on relative proportions of coarser clastic particles. Dunham names are essentially for rock families. His efforts deal with the question of whether or not the grains were originally in mutual contact, and therefore self-supporting, or whether the rock is characterised by the presence of frame builders and algal mats. Unlike the Folk scheme, Dunham deals with the original porosity of the rock. The Dunham scheme is more useful for hand samples because it is based on texture, not the grains in the sample.

Limestone landscape

About 10% of all sedimentary rocks are limestone. Limestone is partially soluble, especially in acid, and therefore forms many erosional landforms. These include limestone pavements, pot holes, cenotes, caves and gorges. Such erosion landscapes are known as karsts. Limestone is less resistant than most igneous rocks, but more resistant than most other sedimentary rocks. It is therefore usually associated with hills and downland, and occurs in regions with other sedimentary rocks, typically clays.
Karst topography and caves develop in limestone rocks due to their solubility in dilute acidic groundwater. The solubility of limestone in water and weak acid solutions leads to karst landscapes. Regions overlying limestone bedrock tend to have fewer visible above-ground sources (ponds and streams), as surface water easily drains downward through joints in the limestone. While draining, water and organic acid from the soil slowly (over thousands or millions of years) enlarges these cracks, dissolving the calcium carbonate and carrying it away in solution. Most cave systems are through limestone bedrock. Cooling groundwater or mixing of different groundwater will also create conditions suitable for cave formation.
Coastal limestone are often eroded by organisms which bore into the rock by various means. This process is known as bioerosion. It is most common in the tropics, and it is known throughout the fossil record (see Taylor and Wilson, 2003).
Bands of limestone emerge from the Earth's surface in often spectacular rocky outcrops and islands. Examples include the Burren in Co. Clare, Ireland; the Verdon Gorge in France; Malham Cove in North Yorkshire and the Isle of Wight,[9] England; the Great Orme in Wales ; on Fårö near the Swedish island of Gotland, the Niagara Escarpment in Canada/United States, Notch Peak in Utah, the Ha Long Bay National Park in Vietnam and the hills around the Lijiang River and Guilin city in China.
The Florida Keys, islands off the south coast of Florida, are composed mainly of oolitic limestone (the Lower Keys) and the carbonate skeletons of coral reefs (the Upper Keys), which thrived in the area during interglacial periods when sea level was higher than at present.
Unique habitats are found on alvars, extremely level expanses of limestone with thin soil mantles. The largest such expanse in Europe is the Stora Alvaret on the island of Öland, Sweden. Another area with large quantities of limestone is the island of Gotland, Sweden. Huge quarries in northwestern Europe, such as those of Mount Saint Peter (Belgium/Netherlands), extend for more than a hundred kilometres.
The world's largest limestone quarry is at Michigan Limestone and Chemical Company in Rogers City, Michigan.

Varieties of limestone

There are many varieties of limestone based on the composition of limestone.
  • Chalk A soft limestone that is white or grey in colour which is mainly formed from calcareous shell remains of microscopic marine organisms.
  • Coquina A poorly cemented limestone that is composed mainly of broken shell debris.
  • Fossiliferous limestone A limestone with prominent and abundant fossils.
  • Oolitic limestone Limestone composed mainly of calcium carbonate oolites, spheres concentric precipitates of calcium carbonate.
  • Travertine Limestone formed by precipitation method mainly in caves.
  • Tufa Precipitation of limestone at hot springs or lake shore.

Uses of limestone

Limestone is very common in architecture, especially in Europe and North America. Many landmarks across the world, including the Great Pyramid and its associated complex in Giza, Egypt, are made of limestone. So many buildings in Kingston, Ontario, Canada were, and continue to be, constructed from it that it is nicknamed the 'Limestone City'. On the island of Malta, a variety of limestone called Globigerina limestone was, for a long time, the only building material available, and is still very frequently used on all types of buildings and sculptures. Limestone is readily available and relatively easy to cut into blocks or more elaborate carving. It is also long-lasting and stands up well to exposure. However, it is a very heavy material, making it impractical for tall buildings, and relatively expensive as a building material.
Limestone was most popular in the late 19th and early 20th centuries. Train stations, banks and other structures from that era are normally made of limestone. It is used as a facade on some skyscrapers, but only in thin plates for covering, rather than solid blocks. In the United States, Indiana, most notably the Bloomington area, has long been a source of high quality quarried limestone, called Indiana limestone. Many famous buildings in London are built from Portland limestone.
Limestone was also a very popular building block in the Middle Ages in the areas where it occurred, since it is hard, durable, and commonly occurs in easily accessible surface exposures. Many medieval churches and castles in Europe are made of limestone. Beer stone was a popular kind of limestone for medieval buildings in southern England.
Limestone and (to a lesser extent) marble are reactive to acid solutions, making acid rain a significant problem to the preservation of artefacts made from this stone. Many limestone statues and building surfaces have suffered severe damage due to acid rain. Acid-based cleaning chemicals can also etch limestone, which should only be cleaned with a neutral or mild alkaline-based cleaner.
Other uses include:
  • It is the raw material for the manufacture of quicklime (calcium oxide), slaked lime (calcium hydroxide), cement and mortar.
  • Pulverised limestone is used as a soil conditioner to neutralise acidic soils (agricultural lime).
  • Is crushed for use as aggregate, the solid base for many roads as well as in asphalt concrete.
  • Geological formations of limestone are among the best petroleum reservoirs;
  • As a reagent in flue-gas desulphurization, it reacts with sulphur dioxide for air pollution control.
  • Glass making, in some circumstances, uses limestone.
  • It is added to toothpaste, paper, plastics, paint, tiles, and other materials as both white pigment and a cheap filler.
  • It can suppress methane explosions in underground coal mines.
  • Purified, it is added to bread and cereals as a source of calcium.
  • Calcium levels in livestock feed are supplemented with it, such as for poultry (when ground up).
  • It can be used for remineralizing and increasing the alkalinity of purified water to prevent pipe corrosion and to restore essential nutrient levels.
  • Used in blast furnaces, limestone binds with silica and other impurities to remove them from the iron.
  • It is often found in medicines and cosmetics.
  • It is used in sculptures because of its suitability for carving.

    الجمعة، 6 مارس 2015

    Earth's axial tilt result in seasonal changes

    Earth tilt angle is 23.5 degrees

    Earth is tilted at an angle of 23.5 degree across its axis of rotation. This tilt is responsible for seasonal changes, without this there will be no seasonal changes but instead single season per area. The most direct sun rays hit areas would always be warmer. The increase in tilt of the Earth severe the the seasons. Winter becomes even more colder and summer becomes more warm. Nowadays tilt is 23.5 degree but it changes with a cycle of about 40,000 years the tilt varies between 22.1 and 24.5. Cooling of summers are thought to allow snow and ice formation on the high altitude areas which can stay for more time and becomes solid making massive ice sheets. Earth covered with more snow will reflect more sun light and Earth will becomes more and more cold. This is responsible for the ice age where Earth is covered with snow. 


    The tilt as implies to the seasonal changes other factors that gives seasonal changes are the change in the rotation of Earth's orbit. The other is the precession, changes in axial precession increase seasonal contrast between northern and southern hemisphere. When northern hemisphere have summer southern will be away from sun which will be the winter season. 
    Eccentricity is the change in Earth's orbital which can be away from sun or near the sun. When it is at the furthest distance from the sun, temperature will be cooler. The near sun orbital, heating process will be at peak warming up the Earth. Ice sheets will melt and transgression will occur, water level will rise. Changes in eccentricity affect the Earth sun distance, The shape of Earth becomes nearly circular from elliptical in a cycle that takes between 90,000 to 100,000 years. This cycle is called Milakovitch cycle which was after Milutin Milankovitch (1879-1958).

    الأربعاء، 4 مارس 2015

    Sedimentary structures

    Sedimentary structures is associated with sedimentary rocks, nearly all sedimentary rock will contain sedimentary structures. These are developed right at the time of deposition or shortly after deposition. These are important features that tells us the history of deposition and sediments transportation.



    Bedding or stratification

    The most common sedimentary structure is the bedding or stratification, layers that develops during the deposition. Sediments deposits at a level surface so thus applies the law of horizontality that states as all sediments deposit as horizontal layers.



    Cross bedding

    Cross bedding consists of small layers that are deposited at an angle to the main beds. These are developed in the transportation of sediments by wind or water. The sediments as transported by wind, these moves down slope and is thus at an angle to the main beds. Same is the case with the water where water moving down slope deposits sediments at an angle to the main bed. Cross bedding is common in sands deposited by wind, streams, ocean currents and wind on beaches. 


    Ripple marks

    Ripple marks are the small ridges which are developed by the wind or water. These contains of crest and trough just like sand waves or dunes but are at a small scale. These gives the movement direction of the water or wind. If the movement is in a single direction then the ripple marks are asymmetrical and when the movement is to and fro like a pendulum then the marks will be symmetrical.


    Graded bedding

    Graded bedding is formed as the larger grains which is of-course the heavier settles down at the bottom and the finer and smaller grains settle later which will give a fining upward succession. Graded bedding is commonly formed at a flood plain or when both grains mixes in water.



    Mud cracks

    Mud cracks develop when mud shrinks as it dries up. This indicates that water was accumulated with it being in a shallow marine and then dries periodically. 

    Alabaster sculptures







    Alabaster is the name given to the source location Alabaston in Egypt. Alabaster chemical formula is CaSO4.2H2O and it is variety of gypsum. Alabaster, a beautiful, translucent, fine-grained stone, has been prized for thousands of years. It is similar to marble, and the two stones are often confused. Alabaster has been quarried for centuries in Italy and Egypt, although most so called alabaster artifacts from ancient Egypt and Rome are actually marble. Adding to the confusion, the term “onyx” has been applied variously to marble, alabaster, and true onyx, which is a form of quartz. The smooth, translucent appearance of alabaster resembles highly polished marble or onyx. The variety of colour and veining seen in various types of alabaster is also reminiscent of coloured or white marble. Alabaster is the fine grained form of the mineral gypsum (calcium sulfate). Marble, especially white marble, is mainly calcite (calcium carbonate). They are both metamorphic rocks, formed geologically under high pressure and temperature. Alabaster is also sometimes confused with steatite (soapstone), another soft, easily polished stone. Steatite is comprised of the mineral talc, which is even softer than alabaster. Most alabaster objects are found indoors, due to their vulnerability to moisture. These pieces are generally finely carved, smoothly polished, and are often painted and decorated with gilding. 

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