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The types of minerals industri is marble, limestone, andesite, granite, feldspar, kaolin, zeolite, bentonite, etc
Zinc is a metallic chemical element with symbol Zn and atomic number 30. This is the first row of the transition metals of group 12 of the periodic table. Zinc is approximately 75 ppm (0.007%) of the crust, so the 24 most abundant element there. The seawater is only 30 ppb zinc, and the atmosphere contains 0.1 to 4 ng/m3.
The main application of zinc corrosion resistant galvanized steel. Other applications of the batteries and alloys such as brass. Sphalerite, zinc is the most important zinc ore. Including the production of zinc roasting, leaching, and in the finals to win pyrometallurgic winning or electriowinning.
Sphalerite (ZNS), usually in combination with other metals such as copper and lead ores. Therefore, the phase in the zinc sulfide minerals. Sphalerite, which is a form of zinc is the most heavily mined ore containing zinc, 60-62% as zinc.
A variety of zinc compounds to find industrial applications, such as zinc chloride (in deodorants), zinc Pyrithione (Anti-dandruff shampoos), zinc (in luminescent paints), zinc and organic methyl or zinc diethyl in the laboratory. Approximately one quarter of the production of zinc in the form of zinc compounds.
Zinc, in the context, the plaintext is a blue-white shiny metal diamagnetic, although most commercial varieties of metal with a metal mat finish.The hard and brittle, but the temperatures in most malleable will be 100 to 150 ° C. Zinc is a good conductor of electricity. The melting point is the lowest of all transition metals, except mercury and cadmium.
Many zinc alloys, including brass, an alloy of zinc and copper. Other metals, such as the binary zinc alloys, aluminum, antimony, bismuth, gold, iron, lead, mercury, silver, tin, magnesium, cobalt, nickel, sodium and tellurium.
Other minerals, zinc, due to smithsonite (zinc carbonate), hemimorphite (zinc silicate), Wurtzite (excluding zinc) and sometimes hydrozincite (basic zinc carbonate).
Zinc is an essential mineral necessary for the preservation of all life. Enzymes in a zinc atom in the center of the reaction in biochemistry, such as alcohol in humans. The consumption of higher concentrations of zinc can lead to ataxia, lethargy and a lack of copper.
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Mineralogy is an Earth Science focused around the chemistry, crystal structure, and physical (including optical) properties of minerals. Specific studies within mineralogy include the processes of mineral origin and formation, classification of minerals, their geographical distribution, as well as their utilization.
The study of mineralogy was founded on the principles of crystallography and microscopic study of rock sections with the invention of the microscope in the 17th century
Historically, mineralogy was heavily concerned with taxonomy of the rock-forming minerals; to this end, the International Mineralogical Association is an organization whose members represent mineralogists in individual countries. Its activities include managing the naming of minerals (via the Commission of New Minerals and Mineral Names), location of known minerals, etc. As of 2004 there are over 4,000 species of mineral recognized by the IMA. Of these, perhaps 150 can be called "common," another 50 are "occasional," and the rest are "rare" to "extremely rare."
More recently, driven by advances in experimental technique (such as neutron diffraction) and available computational power, the latter of which has enabled extremely accurate atomic-scale simulations of the behaviour of crystals, the science has branched out to consider more general problems in the fields of inorganic chemistry and solid-state physics. It, however, retains a focus on the crystal structures commonly encountered in rock-forming minerals (such as the perovskites, clay minerals and framework silicates). In particular, the field has made great advances in the understanding of the relationship between the atomic-scale structure of minerals and their function; in nature, prominent examples would be accurate measurement and prediction of the elastic properties of minerals, which has led to new insight into seismological behaviour of rocks and depth-related discontinuities in seismograms of the Earth's mantle. To this end, in their focus on the connection between atomic-scale phenomena and macroscopic properties, the mineral sciences (as they are now commonly known) display perhaps more of an overlap with materials science than any other discipline.
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Manganese is a chemical element that is designated by the symbol Mn and has an atomic number of 25. Manganese (Mn) is a gray-white to silvery metal with a moderate melting temperature and relatively high specific gravity (7.2 to 7.4). It is found as the free element in nature (often in combination with iron), and in many minerals. The free element is a metal with important industrial metal alloy uses. In steel, manganese improves rolling and forging qualities, strength, toughness, stiffness, wear resistance, hardness, and hardenability.Manganese ions are variously colored, and are used industrially as pigments and as oxidation chemicals. Manganese (II) ions function as cofactors for a number of enzymes; the element is thus a required trace mineral for all known living organisms.Manganese occurs principally as pyrolusite (MnO2), braunite, (Mn2+Mn3+6SiO12), psilomelane (Ba(Mn2+)(Mn4+)8O16(OH)4), and to a lesser extent as rhodochrosite (MnCO3). The metal is obtained by reduction of the oxide with sodium, magnesium, aluminum, or by electrolysis. Land-based resources are large but irregularly distributed. Over 80% of the known world manganese resources are found in South Africa and Ukraine. Other important manganese deposits are in China, Australia, Brazil, Gabon, India, Mexico and Indonesia.
Geology is the science and study of the solid and liquid matter that constitutes the Earth. The field of geology encompasses the study of the composition, structure, physical properties, dynamics, and history of Earth materials, and the processes by which they are formed, moved, and changed. The field is a major academic discipline, and is also important for mineral and hydrocarbon extraction, knowledge about and mitigation of natural hazards, some engineering fields, and understanding past climates and environments.
Geologists use a number of field, laboratory, and numerical modeling methods to decipher Earth history and understand the processes that occur on and in the Earth. In typical geological investigations, geologists use primary information related to petrology (the study of rocks), stratigraphy (the study of sedimentary layers), and structural geology (the study of positions of rock units and their deformation). In many cases, geologists also study modern soils, rivers, landscapes, and glaciers; investigate past and current life and biogeochemical pathways, and use geophysical methods to investigate the subsurface.
Geologists and geophysicists study natural hazards in order to enact safe building codes and warning systems that are used to prevent loss of property and life. Examples of important natural hazards that are pertinent to geology (as opposed those that are mainly or only pertinent to meteorology) are: Avalanches, Earthquakes, Floods, Landslides and debris flows, River channel migration and avulsion, Liquefaction, Sinkholes, Subsidence, Tsunamis, Volcanoes.
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Calcium is the chemical element with the symbol Ca and atomic number 20. It has an atomic mass of 40.078 amu. Calcium is a soft grey alkaline earth metal, and is the fifth most abundant element by mass in the Earth's crust. Calcium is also the fifth most abundant dissolved ion in seawater by both molarity and mass, after sodium, chloride, magnesium, and sulfate.
Mining of stone and metal has been done since pre-historic times. Modern mining processes involve prospecting for ore bodies, analysis of the profit potential of a proposed mine, extraction of the desired materials and finally reclamation of the land to prepare it for other uses once the mine is closed. The nature of mining processes creates a potential negative impact on the environment both during the mining operations and for years after the mine is closed. This impact has led to most of the world's nations adopting regulations to moderate the negative effects of mining operations. Safety has long been a concern as well, though modern practices have improved safety in mines significantly. Mining today is able to profitably and safely recover minerals with little negative impact to the environment.
The process of mining from discovery of an ore body through extraction of minerals and finally to returning the land to its natural state consists of several distinct steps. The first is discovery of the ore body, which is carried out through prospecting or exploration to find and then define the extent, location and value of the ore body. This leads to a mathematical resource estimation to estimate the size and grade of the deposit. This estimation is used to conduct a pre-feasibility study to determine the theoretical economics of the ore deposit. This identifies, early on, whether further investment in estimation and engineering studies is warranted and identifies key risks and areas for further work. The next step is to conduct a feasibility study to evaluate the financial viability, technical and financial risks and robustness of the project. This is when the mining company makes the decision to develop the mine or to walk away from the project. This includes mine planning to evaluate the economically recoverable portion of the deposit, the metallurgy and ore recoverability, marketability and payability of the ore concentrates, engineering concerns, milling and infrastructure costs, finance and equity requirements and an analysis of the proposed mine from the initial excavation all the way through to reclamation. Once the analysis determines a given ore body is worth recovering, development begins to create access to the ore body. The mine buildings and processing plants are built and any necessary equipment is obtained. The operation of the mine to recover the ore begins and continues as long as the company operating the mine finds it economical to do so. Once all the ore that the mine can produce profitably is recovered, reclamation begins to make the land used by the mine suitable for future use.
Read MoreFelspar adalah nama kelompok mineral yang terdiri atas potasium, sodium dan kalsium alumino silikat. Pada umumnya kelompok ini terbentuk oleh proses pneumatolitis dan hidrotermal yang membentuk urat pegmatit. Felspar ditemukan pada batuan beku, batuan erupasi dan metamorfosa, baik bersifat asam maupun basa.
Bersasarkan keterdapatannya endapan felspar dapat dikelompokkan menjadi tiga jenis, yaitu endapan felspar primer, diagenetik, aluvial. Felspar primer terdapat dalam batuan granitis, felspar diagenetik terdapat dalam batuan sedimen piroklastik, sedangkan felspar aluvial terdapat dalam batuan yang telah emngalami metamorfosa. Felspar yang mempunyai nilai ekonomis yang baik adalah felspar yang berasal dari batuan asam.
Secara mineralogi felspar dapat dikelompokkan menjadi 2 kelompok mineral yaitu alkali felspar dam plagioklas. Felspar mempunyai nilai kekesaran 6 – 6,5 skala Mosh, berat jenis 2,4 – 2,8, warna dari putih keabu-abuan, merah jambu, coklat, kuning dan hijau.
Felspar adalah mineral alumina anhidrat silikat yang berasosiasi dengan unsur Kalium (K), Natrium (Na) dan Calsium (Ca) dalam perbandingan yang beragam. Mutu felspar ditentukan oleh kandungan oksida kimia K2O dan Na2O yang relatif tinggi diatas 6%, oksida Fe2O3 dan TiO2.
Felspar digunakan di berbagai industri, sebagai bahan pelebur/perekat pada suhu tinggi, pembuatan keramik halus seperti barang pecah belah, saniter, isolasi dan industri gelas/kaca.
Zeolite nature was the compound alumino-silicate terhidrasi with the main element that consist of kation the alkali and the land alkali. This compound berstruktur three dimensions and had pores that could be filled by the water molecule.
The geology of sediment zeolite was formed because of the process of the volcanic dust sedimentation in the lake environment that was shaped like an alkali, the process diagenetik (metamorphism low-level) and the hydrothermal process.
The mineral zeolite that was most general was encountered was (Na,K)2O, Al2O3. 10 SiO2. 8H2O. Perbandingan between the atom The and Al that varied will produce many kinds or the species zeolite that was met in the wild. There were more than 50 kinds zeolite, but the framer's mineral zeolite biggest had 9 kinds, that is analsim, khabazit, klinoptilolit, erionit, mordenit, ferrierit, heulandit, laumontit and fillipsit. In Indonesia the kind zeolit the most was klinoptilolit and mordenit.
The use zeolit generally was based on the characteristics of chemistry and physics zeolit, like the absorber, change kation and the catalyst, that is used in the agricultural field, the plantation, livestock breeding, fisheries, the industry, energy

Sediment calsite was results retructurisation the limestone that crystallised after experiencing the process of the dissolving. Generally happened to the limestone or marble in the period crystalin that be stratified and took the form of the stalagtite and stalagmit.
Calsite that composition chemistry CaCO3 could be found in the pure situation and not, depended on the content of his polluter's mineral. The polluter's mineral was formed because of the existence subtitution the Ca element by the element of metal like Mg, Fe, Mn. In the certain percentage of the polluter's mineral calsite will form the other lime mineral like dolomite, ankerit and kutnakorit.
Calsite had the form prismatik, tabular, rhombohedral, massive, sorting rough until very soft. The specific gravity Calsit pure was 2.71. Calsite pure was not coloured and transparent, the colour will change in accordance with subtitusi that happened like yellow, pink, blue, lavender, greenness, grey, black. Had the level of the violence 3 in the Mohs scale, the crack rhombohedral.
Sediment calsite most were found in the form of lenses or were the association of other mineral sediment, and rarely was found sediment calsit pure in the big measurement.
Calsite was utilised for the need of agriculture, the chemical industry, the food industry, the metallurgy industry, the construction industry.