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Factor of Safety :  While designing the component it is necessary to ensure that sufficient reserve strength is kept to deal...</p><div class="button-container"><a rel="nofollow" class="button reverse" href="//m.gunkrazy.com/factor-of-safety-used-in-machine-design/" aria-label="View Post: Factor Of Safety Used in Machine Design | Significance | Importance">View Post</a></div></div></div></article> <script type="application/ld+json">{"@context":"http:\/\/schema.org\/","@type":"BlogPosting","name":"Factor Of Safety Used in Machine Design | Significance | Importance","url":"\/\/m.gunkrazy.com\/factor-of-safety-used-in-machine-design\/","articleBody":"Factor Of Safety Used in Machine Design | Significance | Importance\r\nFactor of Safety :\r\n\r\n\r\nWhile designing the component it is necessary to ensure that sufficient reserve strength is kept to deal with an uncertain situation. The factor of safety is taken into account for this safety.\r\nIt is defined, in general, as the ratio of the maximum stress to the working stress, Mathematically\r\n\r\n\r\nFactor Of Safety Formulas :\u00a0\r\n\r\n\r\nFactor of safety = Maximum stress \/ Working or design stress\r\n\r\n\r\n\r\n\r\n\r\nIn the case of ductile materials e.g. mild steel, where the yield point is clearly defined, the factor of safety is based upon the yield point stress, In such cases,\r\n\r\n\r\n\r\n\r\n\r\nFactor of safety = Yield point stress \/ Working or design stress\r\n\r\n\r\n\r\n\r\nIn the case of brittle materials e.g. cast iron, the yield point is not well defined as for ductile materials. Therefore, the factor of safety for brittle materials is based on the ultimate stress.\r\n\r\nFactor of safety = Ultimate stress \/ Working or design stress\r\n\r\nThis relation may also be used for\u00a0ductile\u00a0materials.\r\n\r\n\r\n\r\nfactor of safety\r\n\r\n\r\n\r\nFactor Of safety Values:\r\n\r\n\r\n\r\nEquipment\r\n\r\nFactor of Safety\r\n-\u00a0FOS\u00a0-\u00a0\r\n\r\n\r\n\r\n\r\n\r\nAircraft components\r\n1.5 - 2.5\r\n\r\n\r\nBoilers\r\n3.5 - 6\r\n\r\n\r\nBolts\r\n8.5\r\n\r\n\r\nCast-iron wheels\r\n20\r\n\r\n\r\nEngine components\r\n6 - 8\r\n\r\n\r\nHeavy-duty shafting\r\n10 - 12\r\n\r\n\r\nLifting equipment - hooks.\r\n8 - 9\r\n\r\n\r\nPressure vessels\r\n3.5 - 6\r\n\r\n\r\nTurbine components - static\r\n6 - 8\r\n\r\n\r\nTurbine components - rotating\r\n2 - 3\r\n\r\n\r\nSpring, large heavy-duty\r\n4.5\r\n\r\n\r\nStructural steelwork in buildings\r\n4 - 6\r\n\r\n\r\nStructural steelwork in bridges\r\n5 - 7\r\n\r\n\r\nWire ropes\r\n8 - 9\r\n\r\n\r\n\r\n\r\nGeneral recommendations\r\n\r\n\r\n\r\nApplications\r\n\r\nFactor of Safety\r\n-\u00a0FOS\u00a0-\u00a0\r\n\r\n\r\n\r\n\r\n\r\nFor use with highly reliable materials where loading and environmental conditions are not severe and where weight is an important consideration\r\n1.3 - 1.5\r\n\r\n\r\nFor use with reliable materials where loading and environmental conditions are not severe\r\n1.5 - 2\r\n\r\n\r\nFor use with ordinary materials where loading and environmental conditions are not severe\r\n2 - 2.5\r\n\r\n\r\nFor use with less tried and for brittle materials where loading and environmental conditions are not severe\r\n2.5 - 3\r\n\r\n\r\nFor use with materials where properties are not reliable and where loading and environmental conditions are not severe, or where reliable materials are used under difficult and environmental conditions\r\n3 - 4\r\n\r\n\r\n\r\nFactor Affecting on Selection Of factory of safety :\u00a0\r\nFactors based on which FOS is selected are given below.\r\n\r\n1.The reliability of the properties of material and change of these properties during service.\r\n2.The Reliability of test results and accuracy of the application of these results to actual machine parts.\r\n3.The Reliability of the applied load.\r\n4.The certainty as to the exact mode of failure.\r\n5.Extent of simplifying assumptions.\r\n6.The extent of localized stresses.\r\n7. The extent of initial stresses set up during manufacture.\r\n8.The extent of loss of life if a failure occurs. A higher factor of safety is chosen if there is more risk of life.\r\nSituation when Higher FOS is generally Selected\r\n1) Where the magnitude and exact nature of forces is unknown, higher FOS is selected.\r\n2) Where there is possibility of Impact or unseen sudden loads, higher FOS is selected\r\n3) Where there are chances of residual or initial stress in the component, higher FOS is selected.\r\n4) Where there is a very high risk of life\/property in case of failure, higher FOS is selected.\r\n5) When very high reliability is expected from the components, higher FOS is selected.\r\n6) Where the components are non-accessible for repairs, or failure of that component causes a lot of inconvenience higher FOS is selected.\r\n\r\nFactor of safety is a ratio of maximum stress withstand by an object to applied stress. Whenever a Factor of safety is greater than or equal to, then the applied stress is less than or equal to the maximum stress so the object can withstand load. But when the ratio is equal to\r\n\r\n1, the object tough enough to withstand load.\r\nWhenever a Factor of safety is less than 1, the applied stress is greater than maximum stress then the object can\u2019t withstand the stress applied it leads to failure. The high factor of safety results in unnecessary risk of failure.\r\n\r\nThere are many factors as\r\n1- materials strength (if the materials is a brittle or ductile)\r\n2-possible misuse: the designer must consider any responsible of for foreseeable use\r\n3-loading (static. impact, repeated).\r\n4- complexity of stress analysis\r\n5-cost\r\n6-environment and temperature, and this factor affect also to choose the materials. and we can say also each factor from the previous factors affects on another one its like a network and the designer person must know this Entanglement perfectly\r\n\r\n\r\n\r\nMore Resources \/articles\r\nMachine Design Notes , article , Interview Que. and Ans.\r\nMechanical Subjectwise Basic Concept Notes ,Articles\r\nLatest seminar topic index - Report ,PPT Download\r\n\r\n\r\n\r\n&nbsp;","headline":"Factor Of Safety Used in Machine Design | Significance | Importance","author":{"@type":"Person","name":"Sachin Thorat","url":"\/\/m.gunkrazy.com\/"},"datePublished":"2015-02-28","mainEntityOfPage":"False","dateModified":"April 21, 2020","image":{"@type":"ImageObject","url":"\/\/m.gunkrazy.com\/wp-content\/uploads\/2015\/02\/factor-of-safety-300x137.jpg","height":137,"width":300},"publisher":{"@context":"http:\/\/schema.org\/","@type":"Organization","name":"Learn Mechanical Engineering","logo":{"@type":"ImageObject","url":"\/\/m.gunkrazy.com\/wp-content\/uploads\/2020\/01\/learn-mech-logo-1-300x300.png","height":600,"width":60}}}</script> <article class="article-card horizontal "> <a href="//m.gunkrazy.com/a-seminar-on-under-water-windmill-pp/" rel="nofollow"><div class="image-container" style="background-image: url('//m.gunkrazy.com/wp-content/uploads/2015/02/underwaterwindmillseminarreport-300x300.jpg')"></div><span class="sr-only">link to A SEMINAR ON UNDER WATER WINDMILL-PPT full Download</span></a><div class="copy-container"><header><p><a style="color: #ff392e!important" href="//m.gunkrazy.com/a-seminar-on-under-water-windmill-pp/">A SEMINAR ON UNDER WATER WINDMILL-PPT full Download</a></p></header><div class="excerpt"><p>INTRODUCTION TO UNDERWATER WINDMILL
What is it ???
An Underwater windmill like a device that extracts power from the tides. Renewable energy technologies are becoming an increasingly favourable...</p><div class="button-container"><a rel="nofollow" class="button reverse" href="//m.gunkrazy.com/a-seminar-on-under-water-windmill-pp/" aria-label="View Post: A SEMINAR ON UNDER WATER WINDMILL-PPT full Download">View Post</a></div></div></div></article> <script type="application/ld+json">{"@context":"http:\/\/schema.org\/","@type":"BlogPosting","name":"A SEMINAR ON UNDER WATER WINDMILL-PPT full Download","url":"\/\/m.gunkrazy.com\/a-seminar-on-under-water-windmill-pp\/","articleBody":"INTRODUCTION TO UNDERWATER WINDMILL\r\nWhat is it ???\r\nAn Underwater windmill like a device that extracts power from the tides. Renewable energy technologies are becoming an increasingly favourable alternative to conventional energy sources to assuage fossil fuel related issues. Tidal energy offers a vast and reliable energy source. This technology is similar to wind energy technology, with the rotor blades driven not by wind power but by tidal currents. The gravitational pull of the moon produces a swift tidal current, which spins the long blades of the turbine . Which in turn produces electricity via different parts of underwater windmill . This Energy derived from the moon that now helps to power a small arctic village.\r\nNAME JUSTIFICATION\r\nWhy it is called as \u201cunderwater windmill\u201d ?\u00a0\r\n\"Basically it's like putting a windmill in the water,\" said Bjorn Bekken, a project manager for Hammerfest Strom. Or as it\u2019s looking like a wind mill &amp; are installed on the ocean floor and large river bed , that means these are under the water.\r\nPRINCIPLE OF OPERATION\r\n\r\n \tIn simple a underwater windmill consists of a number of blades mounted on a hub (together known as the rotor), a gearbox, and a generator.\r\n \tThe hydrodynamic effect of the flowing water past the blades causes the rotor to rotate, thus turning the generator to which the rotor is connected via a gearbox.\r\n \tThe gearbox is used to convert the rotational speed of the rotor shaft to the desired output speed of the generator shaft.\r\n \tThe electricity generated is transmitted to land through cables.\r\n\r\n\r\n\r\n\r\nFig. Underwater Windmill\r\n\r\n\r\n\r\nTYPES :\r\n\r\nThere are two types of underwater windmill\r\n\r\n \tHorizontal axis \r\n \tVertical axis\r\n\r\nIn horizontal axis underwater windmill , the rotor shaft is parallel to the direction of the flow of water.\r\nIn vertical axis underwater windmill , the rotor shaft is perpendicular to the direction of the flow of water.\r\n\r\nABOUT TURBINES\u2026\r\n\r\n \tThe turbines can convert kinetic hydro energy into power ranging from 25 kW to 250 kW, depending on turbine size and current.\r\n \tKinetic energy is converted to mechanical power in a nacelle within the turbine.\r\n\r\nWORKING\u2026\r\n\r\n \tUnderwater ( tidal) turbines are a fairly straightforward concept, as far as cutting-edge energy technology goes.\r\n \tThey are essentially windmills installed onto an ocean floor or river bed.\r\n \tThe underwater current produced by the tides spins blades arranged like an airplane propeller.\r\n \tThese turbines are attached to a gear box, which is connected to an electrical generator.\r\n \tThis produces the electricity that is carried by cable to shore.\r\n \tOnce it's plugged into an electrical grid, the electricity can be distributed.\r\n\r\nAdvantages:\r\n\r\nThe advantages of under water windmill is much more\u00a0 than the disadvantages:-\r\n\r\n \tUses Tidal energy ,which is a clean and renewable source of energy\r\n \tHave lesser impact on the environment\r\n \tLow running cost\r\n \tLong lifetime with little maintenance\r\n \tReduces the dependence upon fossil fuels \r\n\r\n\r\nCONCLUSIONTides play a very important role in the formation of global climate as well as the ecosystems for ocean habitants. At the same time, tides are a substantial potential source of clean renewable energy for future human generations. Depleting oil reserves, the emission of greenhouse gases by burning coal, oil and other fossil fuels, as well as the accumulation\r\nof nuclear waste from nuclear reactors will inevitably force people to replace most of our traditional energy sources with renewable energy in the future . Tidal energy is one of the best candidates for this approaching revolution. Development of new, efficient, low-cost and environmentally friendly hydraulic energy converters suited to free-flow waters. This type of machine, moreover ,can be used not only for multi-megawatt tidal power farms but also for mini-power stations with turbines generating a few kilowatts. Such power stations can provide clean energy to small communities or even individual households located near continental shorelines, straits or on remote islands with strong tidal currents.\r\n\r\n\r\nDownload:UNDER WATER WINDMILL.pptx\r\n\r\n\r\n\r\n\r\nMore Resources \/articles\r\nRenewable Energy Sources , Power Generation Projects List - Abstract\r\nLatest seminar topic index - Report ,PPT Download\r\nProject Sample report , Final report Download\r\n\r\n\r\n\r\n&nbsp;","headline":"A SEMINAR ON UNDER WATER WINDMILL-PPT full Download","author":{"@type":"Person","name":"Sachin Thorat","url":"\/\/m.gunkrazy.com\/"},"datePublished":"2015-02-28","mainEntityOfPage":"False","dateModified":"February 23, 2020","image":{"@type":"ImageObject","url":"\/\/m.gunkrazy.com\/wp-content\/uploads\/2015\/02\/underwaterwindmillseminarreport-300x300.jpg","height":300,"width":300},"publisher":{"@context":"http:\/\/schema.org\/","@type":"Organization","name":"Learn Mechanical Engineering","logo":{"@type":"ImageObject","url":"\/\/m.gunkrazy.com\/wp-content\/uploads\/2020\/01\/learn-mech-logo-1-300x300.png","height":600,"width":60}}}</script> <article class="article-card horizontal "> <a href="//m.gunkrazy.com/abc-inventory-analysis/" rel="nofollow"><div class="image-container" style="background-image: url('//m.gunkrazy.com/wp-content/uploads/2015/02/ABCanalysischart-300x210.jpg')"></div><span class="sr-only">link to ABC Inventory analysis</span></a><div class="copy-container"><header><p><a style="color: #ff392e!important" href="//m.gunkrazy.com/abc-inventory-analysis/">ABC Inventory analysis</a></p></header><div class="excerpt"><p>Introduction to ABC analysis :  In materials management, the ABC analysis (or Selective Inventory Control) is an inventory categorization technique. ABC analysis divides an inventory into three...</p><div class="button-container"><a rel="nofollow" class="button reverse" href="//m.gunkrazy.com/abc-inventory-analysis/" aria-label="View Post: ABC Inventory analysis">View Post</a></div></div></div></article> <script type="application/ld+json">{"@context":"http:\/\/schema.org\/","@type":"BlogPosting","name":"ABC Inventory analysis","url":"\/\/m.gunkrazy.com\/abc-inventory-analysis\/","articleBody":"Introduction to ABC analysis : \r\n\r\nIn materials management, the ABC analysis (or Selective Inventory Control) is an inventory categorization technique. ABC analysis divides an inventory into three categories- \"A items\" with very tight control and accurate records, \"B items\" with less tightly controlled and good records, and \"C items\" with the simplest controls possible and minimal records.\r\n\r\nThe ABC analysis provides a mechanism for identifying items that will have a significant impact on overall inventory cost, while also providing a mechanism for identifying different categories of stock that will require different management and controls.\r\n\r\nThe ABC analysis suggests that inventories of an organization are not of equal value. Thus, the inventory is grouped into three categories (A, B, and C) in order of their estimated importance.\r\n\r\n'A' items are very important for an organization. Because of the high value of these 'A' items, frequent value analysis is required. In addition to that, an organization needs to choose an appropriate order pattern (e.g. \u2018Just- in- time\u2019) to avoid excess capacity. 'B' items are important, but of course less important than 'A' items and more important than 'C' items. Therefore 'B' items are inter group items. 'C' items are marginally important.\r\n\r\n\r\nABC analysis chart\r\n\r\n\r\nVarious names of ABC analysis Or Similar Techniques.\r\n\r\n \tABC Analysis\r\n \tPereto Analysis\u00a0\r\n \t80\/20 Rules\r\n \tVital Few,Trivel manys\r\n \tVED Analysis\r\n\r\n\r\nThe ABC analysis\r\n\r\nThe ABC approach states that a company should rate items from A to C, basing its ratings on the following rules:\r\n\r\n \tA-items are goods which annual consumption value is the highest; the top 70-80% of the annual consumption value of the company typically accounts for only 10-20% of total inventory items.\r\n \t\r\nB-items are the inter class items, with a medium consumption value; those 15-25% of annual consumption value typically accounts for 30% of total inventory items.\r\n \t\u00a0\r\n \tC-items are, on the contrary, items with the lowest consumption value; the lower 5% of the annual consumption value typically accounts for 50% of total inventory items.\r\n\r\nAbc analysis table\r\n\r\n\r\n\u00a0\r\n\u00a0ABC analysis Calculation :\r\n\r\nThe annual consumption value is calculated with the\r\n\u00a0\r\nformula: (Annual demand) x (item cost per unit) \r\n\r\nThrough this categorization, the supply manager can identify inventory hot spots, and separate them from the rest of the items, especially those that are numerous but not that profitable.\r\nAdvantages of ABC Classification\r\n\r\n \tThis kind of categorization of inventory helps one manage the entire volume and assign relative priority to the right category. For Example A Class items are the high value items. Hence one is able to monitor the inventory of this category closely to ensure the inventory level is maintained at optimum levels for any excess inventory can have huge adverse impact in terms of overall value.\r\n \tA Category Items: Helps one identify these stocks as high value items and ensure tight control in terms of process control,\r\nphysical security as well as audit frequency.\r\n \tIt helps the managers and inventory planners to maintain accurate records and draw management\u2019s attention to the issue on hand to\r\nfacilitate instant decision-making.\r\n \tB Category Items: These can be given second priority with lesser frequency of review and less tightly controls with adequate\r\ndocumentation, audit controls in place.\r\n \tC Category Items: Can be managed with basic and simple records. Inventory quantities can be larger with very few periodic reviews.\r\n\r\nDisadvantages\r\n\r\n \tInventory Classification does not reflect the frequency of movement of SKU and hence can mislead controllers.\r\n \tB &amp; C Categories can often get neglected and pile in huge stocks or susceptible to loss, pilferage, slackness in record control etc.","headline":"ABC Inventory analysis","author":{"@type":"Person","name":"Sachin Thorat","url":"\/\/m.gunkrazy.com\/"},"datePublished":"2015-02-20","mainEntityOfPage":"False","dateModified":"February 23, 2020","image":{"@type":"ImageObject","url":"\/\/m.gunkrazy.com\/wp-content\/uploads\/2015\/02\/ABCanalysischart-300x210.jpg","height":210,"width":300},"publisher":{"@context":"http:\/\/schema.org\/","@type":"Organization","name":"Learn Mechanical Engineering","logo":{"@type":"ImageObject","url":"\/\/m.gunkrazy.com\/wp-content\/uploads\/2020\/01\/learn-mech-logo-1-300x300.png","height":600,"width":60}}}</script> <article class="article-card horizontal "> <a href="//m.gunkrazy.com/cast-irons-types-and-application/" rel="nofollow"><div class="image-container" style="background-image: url('//m.gunkrazy.com/wp-content/uploads/2015/02/microstrucutreforcastiron.-300x164.jpg')"></div><span class="sr-only">link to Cast irons | Types And Application</span></a><div class="copy-container"><header><p><a style="color: #ff392e!important" href="//m.gunkrazy.com/cast-irons-types-and-application/">Cast irons | Types And Application</a></p></header><div class="excerpt"><p>Cast irons | Types And Application
Cast irons
 
Though ferrous alloys with more than 2.14 wt.% C are designated as cast irons, commercially cast irons contain about 3.0-4.5% C along with some...</p><div class="button-container"><a rel="nofollow" class="button reverse" href="//m.gunkrazy.com/cast-irons-types-and-application/" aria-label="View Post: Cast irons | Types And Application">View Post</a></div></div></div></article> <script type="application/ld+json">{"@context":"http:\/\/schema.org\/","@type":"BlogPosting","name":"Cast irons | Types And Application","url":"\/\/m.gunkrazy.com\/cast-irons-types-and-application\/","articleBody":"Cast irons | Types And Application\r\nCast irons\r\n\u00a0\r\nThough ferrous alloys with more than 2.14 wt.% C are designated as cast irons, commercially cast irons contain about 3.0-4.5% C along with some alloying additions. Alloys with this carbon content melt at lower temperatures than steels i.e. they are responsive to casting. Hence casting is the most used fabrication technique for these alloys. Hard and brittle constituent presented in these alloys, cementite is a metastable phase, and can readily decompose to form \u03b1-ferrite and graphite. In this way disadvantages of brittle phase can easily be overcome. Tendency of cast irons to form graphite is usually controlled by their composition and cooling rate.\u00a0\r\n\r\nBased on the form of carbon present, cast irons are categorized as gray, white, nodular and malleable cast irons.\r\n\r\n\u00a0\r\n\r\n\r\nFig. Microstructure For Cast Iron.\r\n\r\n\r\n\r\n\r\n\r\n1) Gray cast iron:\r\n\r\n\r\nThese alloys consists carbon in form graphite flakes, which are surrounded by either ferrite or pearlite. Because of presence of graphite, fractured surface of these alloys look grayish, and so is the name for them. Alloying addition of Si (13wt.%) is responsible for decomposition of cementite, and also high fluidity. Thus castings of intricate shapes can be easily made. Due to graphite flakes, gray cast irons are weak and brittle. However they possess good damping properties,and thus\u00a0\r\ntypical applications include: base structures, bed for heavy machines, etc. they also show high resistance to wear.\r\n\r\n2) White cast iron:\r\n\r\nWhen Si content is low (less than 1%) in combination with faster cooling rates, there is no time left for cementite to get decomposed, thus most of the brittle cementite retains. Because of presence of cementite, fractured surface appear white, hence the name. They are very brittle and extremely difficult to machine. Hence their use is limited to wear resistant applications such as rollers in rolling mills. Usually white cast iron is heat treated to produce malleable iron.\r\n\r\n3) Nodular (or ductile) cast iron:\u00a0\r\n\u00a0\r\nAlloying additions are of prime importance in producing these materials. Small additions of Mg \/ Ce to the gray cast iron melt before casting can result in graphite to form nodules or sphere-like particles. Matrix surrounding these particles can be either ferrite or pearlite depending on the heat treatment. These are stronger and ductile than gray cast irons.\r\nTypical applications include: pump bodies,\u00a0crank shafts, automotive components, etc.\u00a0\r\n\r\n4) Malleable cast iron:\r\n\r\n\u00a0These formed after heat treating white cast iron. Heat treatments involve heating the material up to 800-900 degreeC, and keep it for long hours, before cooling it to room temperature. High temperature incubation causes cementite to decompose and form ferrite and graphite. Thus these materials are stronger with appreciable amount of ductility.\u00a0\r\nTypical applications include: railroad, connecting rods, marine and other heavy duty services.\u00a0\r\n\r\n\r\n\r\n\r\n\r\nMore Resources \/articles\r\nMachine Science Notes , article , Interview Que &amp; Ans\r\nTechnical Mechanical Interview Question and Answers\r\nMechanical Subjectwise Basic Concept Notes ,Articles","headline":"Cast irons | Types And Application","author":{"@type":"Person","name":"Sachin Thorat","url":"\/\/m.gunkrazy.com\/"},"datePublished":"2015-02-14","mainEntityOfPage":"False","dateModified":"February 23, 2020","image":{"@type":"ImageObject","url":"\/\/m.gunkrazy.com\/wp-content\/uploads\/2015\/02\/microstrucutreforcastiron.-300x164.jpg","height":164,"width":300},"publisher":{"@context":"http:\/\/schema.org\/","@type":"Organization","name":"Learn Mechanical Engineering","logo":{"@type":"ImageObject","url":"\/\/m.gunkrazy.com\/wp-content\/uploads\/2020\/01\/learn-mech-logo-1-300x300.png","height":600,"width":60}}}</script> <article class="article-card horizontal "> <a href="//m.gunkrazy.com/steel-types-and-application-of-stee/" rel="nofollow"><div class="image-container" style="background-image: url('//m.gunkrazy.com/wp-content/uploads/2015/02/metalalloyclassification-steelalloyandcastironalloy-284x300.jpg')"></div><span class="sr-only">link to Steel | Types and Application Of Steel</span></a><div class="copy-container"><header><p><a style="color: #ff392e!important" href="//m.gunkrazy.com/steel-types-and-application-of-stee/">Steel | Types and Application Of Steel</a></p></header><div class="excerpt"><p>Steel | Types and Application Of Steel
Metal Alloy Classification :  Metal alloys, by virtue of composition, are often grouped into two classes—ferrous and nonferrous.  [caption id=""...</p><div class="button-container"><a rel="nofollow" class="button reverse" href="//m.gunkrazy.com/steel-types-and-application-of-stee/" aria-label="View Post: Steel | Types and Application Of Steel">View Post</a></div></div></div></article> <script type="application/ld+json">{"@context":"http:\/\/schema.org\/","@type":"BlogPosting","name":"Steel | Types and Application Of Steel","url":"\/\/m.gunkrazy.com\/steel-types-and-application-of-stee\/","articleBody":"Steel | Types and Application Of Steel\r\nMetal Alloy\u00a0Classification\u00a0:\r\n\r\nMetal alloys, by virtue of composition, are often grouped into two classes\u2014ferrous and nonferrous.\r\n\r\nSteel | Types and Application Of Steel\r\n\r\n\r\n\u00a0Steels\r\n\r\nSteels are alloys of iron and carbon plus other alloying elements. In steels, carbon present in atomic form, and occupies interstitial sites of Fe microstructure. Alloying additions are \u00a0necessary for many reasons including: improving properties, improving corrosion \u00a0resistance, etc. Arguably steels are well known and most used materials than any other materials.\r\n\r\n\r\n\r\n\r\n\r\nClassification Of Steels:\r\n1) Mechanical properties of steels are very sensitive to carbon content. Hence, it is practical to classify steels based on their carbon content.\u00a0\r\n\r\nThus steels are basically three kinds:\r\n\r\n\r\n \tLow carbon steels (% wt of C &lt; 0.3),\u00a0\r\n \tMedium carbon steels (0.3 &lt;% wt of C &lt; 0.6) and\r\n \tHigh carbon steels (% wt of C &gt; 0.6).\u00a0\r\n\r\n&nbsp;\r\n2) The other parameter available for classification of steels is amount of alloying additions, and based on this steels are two kinds: (plain) carbon steels and alloy-steels.\u00a0\r\n\r\n\r\n\r\n\r\n\r\nLow carbon steels:\u00a0\r\n\r\nThese are arguably (probably)\u00a0produced in the greatest quantities than other alloys. Carbon present in these alloys is limited, and is not enough to strengthen these materials by heat treatment; hence these alloys are strengthened by cold work. Their microstructure consists of ferrite and pearlite, and these alloys are thus relatively soft, ductile combined with high toughness. Hence these materials are easily machinable and weldable.\u00a0\r\nTypical applications of these alloys include: structural shapes, tin cans, automobile body components, buildings, etc.\u00a0\r\n\r\nA special group of ferrous alloys with noticeable amount of alloying additions are known as HSLA (high-strength low-alloy) steels. Common alloying elements are: Cu, V, Ni, W, Cr, Mo, etc. These alloys can be strengthened by heat treatment, and yet the same time they are ductile, formable. Typical applications of these HSLA steels include: support columns, bridges, pressure vessels.\u00a0\r\n\r\n\r\n\r\nTable: Designation of low alloy steel\r\n\r\n\r\n\r\n\r\n\r\nMedium carbon steels:\u00a0\r\n\r\nThese are stronger than low carbon steels. However these are of less ductile than low carbon steels. These alloys can be heat treated to improve their strength. Usual heat treatment cycle consists of austenitizing, quenching, and tempering at suitable conditions to acquire required hardness. They are often used in tempered condition. As hardenability of these alloys is low, only thin sections can be heat treated using very high quench rates. Ni, Cr and Mo alloying additions improve their \u00a0hardenability.\u00a0\r\nTypical applications include: railway tracks &amp; wheels, gears, other machine parts which may require good combination of strength and toughness. \u00a0\r\n\r\n\r\n\r\n\r\n\r\nHigh carbon steels:\u00a0\r\n\r\nThese are strongest and hardest of carbon steels, and of course their ductility is very limited. These are heat treatable, and mostly used in hardened and tempered conditions. They possess very high wear resistance, and capable of holding sharp edges.\u00a0\r\nThus these are used for tool application such as knives, razors, hacksaw blades, etc.\u00a0\r\n\u00a0\r\nWith addition of alloying element like Cr, V, Mo, W which forms hard carbides by reacting with carbon present, wear resistance of high carbon steels can be improved considerably.\u00a0\r\n\r\nStainless steels:\u00a0\r\n\r\nThe name comes from their high resistance to corrosion i.e. they are rustless (stainless).Steels are made highly corrosion resistant by addition of special alloying elements, especially a minimum of 12% Cr along with Ni and Mo.\r\n\r\nStainless steels are mainly three kinds: ferritic &amp; hardenable Cr steels, austenitic and precipitation hardenable (martensitic, semi-austenitic) steels. This classification is based on prominent \u00a0constituent of the microstructure.\u00a0\r\nTypical applications include cutlery, razor blades, surgical knives, etc.\r\n\r\nFerritic stainless steels are principally Fe-Cr-C alloys with 12-14% Cr. They also contain small additions of Mo, V, Nb, and Ni.\u00a0\r\n\r\nAustenitic stainless steels usually contain 18% Cr and 8% Ni in addition to other minor alloying elements. Ni stabilizes the austenitic phase assisted by C and N. Other alloying additions include Ti, Nb, Mo (prevent weld decay), Mn and Cu (helps in stabilizing austenite). By alloying additions, for martensitic steels Ms is made to be above the room temperature. These alloys are heat treatable. Major alloying elements are: Cr, Mn and Mo.\u00a0\r\nFerritic and austenitic steels are hardened and strengthened by cold work because they are not heat treatable. On the other hand martensitic steels are heat treatable. Austenitic steels are most corrosion resistant, and they are produced in large quantities. Austenitic steels are non-magnetic as against ferritic and martensitic steels, which are magnetic.\u00a0\r\n\r\n\r\nTool and Die Steels\r\n\r\n\r\nTool and die steels are specially alloyed steels\u00a0designed for high\u00a0strength, impact toughness, and Wear resistance at room temperature.Tool and die steels are among the most important materials and\r\nare used Widely in casting, forming, and machining operations for both metallic and nonmetallic materials. They generally consist of high-speed steels (molybdenum and tungsten types), hot and cold-Work steels, and shock-resisting steels.\r\n\r\n\r\n\r\n\r\nTable : Application Of Tool Steel.\r\n\r\n\r\nHigh Speed Steel(HSS) are the most highly alloyed tool and die steels. First devel-oped in the early 19005, they maintain their hardness and strength at elevated operating temperatures. There are two basic types of high-speed steels: the molybdenum type (M-series) and the tungsten type (T-series). The M-series steels contain up to about 10% molybdenum with chromium, vanadium, tungsten, and cobalt as other alloying elements. The T-series steels contain 12 to 18% tungsten with chromium, vanadium, and cobalt as other alloying elements. The M-series steels, undergo less steels generally have higher abrasion resistance than T-series distortion in heat treatment, and are less expensive. The M-series constitutes about 95% of all the high-speed steels produced in the United States. High-speed steel tools can be coated with titanium nitride and titanium carbide for improved Wear resistance\r\n\r\n\r\n&nbsp;\r\n\r\n\r\n\r\nMore Resources \/articles\r\nMachine Design Notes , article , Interview Que. and Ans.\r\nMachine Science Notes , article , Interview Que &amp; Ans\r\nMechanical Subjectwise Basic Concept Notes ,Articles\r\nNew Mechanical Projects 2020 ( All Projects Post Index List )\r\n\r\n\r\n\r\n&nbsp;","headline":"Steel | Types and Application Of Steel","author":{"@type":"Person","name":"Sachin Thorat","url":"\/\/m.gunkrazy.com\/"},"datePublished":"2015-02-14","mainEntityOfPage":"False","dateModified":"February 23, 2020","image":{"@type":"ImageObject","url":"\/\/m.gunkrazy.com\/wp-content\/uploads\/2015\/02\/metalalloyclassification-steelalloyandcastironalloy-284x300.jpg","height":300,"width":284},"publisher":{"@context":"http:\/\/schema.org\/","@type":"Organization","name":"Learn Mechanical Engineering","logo":{"@type":"ImageObject","url":"\/\/m.gunkrazy.com\/wp-content\/uploads\/2020\/01\/learn-mech-logo-1-300x300.png","height":600,"width":60}}}</script> <article class="article-card horizontal "> <a href="//m.gunkrazy.com/fundamental-laws-of-thermodynamics/" rel="nofollow"><div class="image-container" style="background-image: url('//m.gunkrazy.com/wp-content/uploads/2015/02/zerothlaw-300x173.png')"></div><span class="sr-only">link to Fundamental laws of Thermodynamics</span></a><div class="copy-container"><header><p><a style="color: #ff392e!important" href="//m.gunkrazy.com/fundamental-laws-of-thermodynamics/">Fundamental laws of Thermodynamics</a></p></header><div class="excerpt"><p>Fundamental laws of Thermodynamics  Classical thermodynamics is based upon four empirical principles called zeroth, first, second and third laws of thermodynamics. These laws define thermodynamic...</p><div class="button-container"><a rel="nofollow" class="button reverse" href="//m.gunkrazy.com/fundamental-laws-of-thermodynamics/" aria-label="View Post: Fundamental laws of Thermodynamics">View Post</a></div></div></div></article> <script type="application/ld+json">{"@context":"http:\/\/schema.org\/","@type":"BlogPosting","name":"Fundamental laws of Thermodynamics","url":"\/\/m.gunkrazy.com\/fundamental-laws-of-thermodynamics\/","articleBody":"Fundamental laws of Thermodynamics\r\n\r\nClassical thermodynamics is based upon four empirical principles called zeroth, first, second and third laws of thermodynamics. These laws define thermodynamic properties, which are of great importance in understanding of thermodynamic principles. Zeroth law defines temperature; first law defines internal energy; second law defines entropy and the third law can be used to obtain absolute entropy values. The above four thermodynamic laws are based on human observation of natural phenomena; they are not mathematically derived equations. Since no exceptions to these have been observed; these are accepted as laws.\r\n\r\nConservation of mass is a fundamental concept, which states that mass is neither created nor \u00a0destroyed.\u00a0\r\n\r\nThe Zeroth law of thermodynamics states that when two systems are in thermal equilibrium with a third system, then they in turn are in thermal equilibrium with each other. This implies that some property must be same for the three systems. This property is temperature. Thus this law is the basis for temperature measurement. Equality of temperature is a necessary and sufficient condition for thermal equilibrium, i.e. no transfer of heat.\r\n\r\n\r\nzeroth law\r\n\r\n\r\n\r\n\r\nThe First law of thermodynamics\u00a0\r\n\r\nIt is a statement of law of conservation of energy. Also, according to this law, heat and work are interchangeable. Any system that violates the first law (i.e., creates or destroys energy) is known as a Perpetual Motion Machine (PMM) of first kind.\u00a0\r\n\r\nFor a system undergoing a cyclic process, the first law of thermodynamics is given by:\r\n\u00a0\u00a0\r\n\r\n\r\nFirst law of thermodynamics\r\n\r\n\r\n\r\nSecond law of thermodynamics:\r\n\r\n\r\nThe second law of thermodynamics is a limit law. It gives the upper limit of efficiency of a system. The second law also acknowledges that processes follow in a certain direction but not in the opposite direction. It also defines the important property called entropy. \u00a0\r\n\r\nIt is common sense that heat will not flow spontaneously from a body at lower temperature to a body at higher temperature. In order to transfer heat from lower temperature to higher temperature continuously (that is, to maintain the low temperature) a refrigeration system is needed which requires work input from external source. This is one of the principles of second law of thermodynamics, which is known as Clausius statement of the second law.\u00a0\r\n\r\nClausius\u2019 statement of second law\r\n\r\nIt is impossible to transfer heat in a cyclic process from low temperature to high temperature without work from external source.\r\n\r\nIt is also a fact that all the energy supplied to a system as work can be dissipated as heat transfer. \u00a0On the other hand, all the energy supplied as heat transfer cannot be continuously converted into \u00a0work giving a thermal efficiency of 100 percent. Only a part of heat transfer at high temperature in a cyclic process can be converted into work, the remaining part has to be rejected to surroundings at lower temperature. If it were possible to obtain work continuously by heat transfer with a single heat source, then automobile will run by deriving energy from atmosphere at no cost. A hypothetical machine that can achieve it is called Perpetual Motion Machine of second kind. This fact is embedded in Kelvin-Planck Statement of the Second law.\u00a0\r\n\r\nKelvin-Planck statement of second law\u00a0\r\n\r\nIt is impossible to construct a device (engine) operating in a cycle that will produce no effect other than extraction of heat from a single reservoir and convert all of it into work.\r\n\r\nMathematically, Kelvin-Planck statement can be written as:\r\n\r\n\r\n\r\n\r\n\r\nThird law of thermodynamics: \u00a0\r\n\r\nThis law gives the definition of absolute value of entropy and also states that absolute zero cannot be achieved. Another version of this law is that \u201cthe entropy of perfect crystals is zero at absolute zero\u201d.\u00a0\r\n\r\nDefinitions of Entropy :\r\n1. is a state variable whose change is defined for a reversible process at T where Q is the heat absorbed.\r\n2. a measure of the amount of energy which is unavailable to do work.\r\n3. a measure of the disorder of a system.\u00a0\r\n\r\n\r\nFor imperfect crystals however there is some entropy associated with configuration of molecules and atoms even when all motions cease, hence the entropy in this case does not tend to zero as T \u00a0\u2192 0, but it tends to a constant called the entropy of configuration.\r\n\r\nThe third law allows absolute entropy to be determined with zero entropy at absolute zero as the reference state. In refrigeration systems we deal with entropy changes only, the absolute entropy is not of much use. Therefore entropy may be taken to be zero or a constant at any suitably chosen reference state.\u00a0\r\n\r\nAnother consequence of third law is that absolute zero cannot be achieved. One tries to approach absolute zero by magnetization to align the molecules. This is followed by cooling and then demagnetization, which extracts energy from the substance and reduces its temperature. It can be shown that this process will require infinite number of cycles to achieve absolute zero. In a later chapter it will be shown that infinitely large amount of work is required to maintain absolute zero if at all it can be achieved.\r\n\r\n\r\n\r\nMore Resources \/articles\r\nPedal Operated (Bicycle ) projects\r\nSheet Metal Fabrication Projects\r\nNew Mechanical Projects 2020 ( All Projects Post Index List )\r\nRenewable Energy Sources , Power Generation Projects List - Abstract","headline":"Fundamental laws of Thermodynamics","author":{"@type":"Person","name":"Sachin Thorat","url":"\/\/m.gunkrazy.com\/"},"datePublished":"2015-02-13","mainEntityOfPage":"False","dateModified":"February 23, 2020","image":{"@type":"ImageObject","url":"\/\/m.gunkrazy.com\/wp-content\/uploads\/2015\/02\/zerothlaw-300x173.png","height":173,"width":300},"publisher":{"@context":"http:\/\/schema.org\/","@type":"Organization","name":"Learn Mechanical Engineering","logo":{"@type":"ImageObject","url":"\/\/m.gunkrazy.com\/wp-content\/uploads\/2020\/01\/learn-mech-logo-1-300x300.png","height":600,"width":60}}}</script> <nav class="pagination-wrapper" aria-label="article pagination"> <a class="prev page-numbers" href="?page_num=328">&laquo; PREV</a> <a class="page-numbers" href="?page_num=1"><span class="screen-reader-text">Page </span>1</a> <span class="page-numbers dots">&hellip;</span> <a class="page-numbers" href="?page_num=327"><span class="screen-reader-text">Page </span>327</a> <a class="page-numbers" href="?page_num=328"><span class="screen-reader-text">Page </span>328</a> <span aria-current="page" class="page-numbers current"><span class="screen-reader-text">Page </span>329</span> <a class="page-numbers" href="?page_num=330"><span class="screen-reader-text">Page </span>330</a> <a class="page-numbers" href="?page_num=331"><span class="screen-reader-text">Page </span>331</a> <span class="page-numbers dots">&hellip;</span> <a class="page-numbers" href="?page_num=338"><span class="screen-reader-text">Page </span>338</a> <a class="next page-numbers" href="?page_num=330">NEXT &raquo;</a></nav></section></main><aside id="secondary" class="widget-area"><div class="about-wrapper"><h2 class="widget-title" style="background: #d693c6; color: #ff392e">About Us</h2><div class="about-image" style="background-image: url('//m.gunkrazy.com/wp-content/uploads/2020/03/Sachin-Thorat-300x300-min.png')"></div><p class="about-copy">LearnMech.Com is a Mechanical Project-oriented platform run by Sachin Thorat who is a B-Tech Graduate in Mechanical Engineering. 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