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            "brief_description": "Normalised carbon steel",
            "long_description": "Low carbon steel with a microstructure consisting mostly of ferrite with the darker pearlite regions around the ferrite grains. Upon cooling the steel the ferrite forms initially, either on austenite grain boundaries or inclusions. This causes carbon to be partitioned into the austenite. Eventually the remaining austenite will be at the eutectoid condition and the transformation to pearlite will then take place. This sample has been normalised, removing the directionality caused by casting",
            "contributor": "Dr R F Cochrane",
            "organisation": "Department of Materials, University of Leeds",
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            "brief_description": "Ni-hard iron",
            "long_description": "This is a Ni-hard iron, one of the first cast irons to be developed. These white irons contain Ni to ensure that the austenite transforms to martensite following heating and chromium to increase the hardness of the eutectic carbide.Ni-hard irons are normally stress relieved at 200-300 °C for approximately four hours to relieve the martensitic transformation stresses and to promote the transformation of retained austenite. The structure consists of proeutectic austenite dendrites containing martensitic needles with interdendritic austenite-martensite/carbide eutectic.",
            "contributor": "Prof T W Clyne",
            "organisation": "Department of Materials Science and Metallurgy, University of Cambridge",
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            "name": "Microstructure 860",
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            "brief_description": "Bi 80wt%, Sn 20wt%",
            "long_description": "A hypereutectic (in wt% Bi) Bi-Sn alloy.",
            "contributor": "Lewis Lea",
            "organisation": "Department of Materials Science and Metallurgy, University of Cambridge",
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            "name": "Microstructure 737",
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            "brief_description": "Dual-phase steel water quenched from 800°C",
            "long_description": "The steel sample with composition same as above was quenched from 800°C. The microstructure shows higher volume fraction of martensite. The martensite is appearing as the same straw-coloured entities. The straw tint is not influenced either by martensite size or its C-content. The retained austenite is appearing as bright white fine particles associated mostly with martensite.",
            "contributor": "Dr Amar K De",
            "organisation": "ASPPRC, Metallurgical and Materials Engineering Department, Colorado School of Mines",
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            "name": "Microstructure 021",
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            "brief_description": "Fe, C 1.0 (wt%), hypereutectoid alloy",
            "long_description": "This is a hypereutectoid alloy and illustrates the effect of a fast cooling rate on the resultant microstructure. The first phase to form from the austenite is proeutectoid cementite. With faster cooling there is less time for carbon to diffuse and the microstructure is more refined and  may form the initial cementite as Widmanstätten side plates.",
            "contributor": "Prof T W Clyne",
            "organisation": "Department of Materials Science and Metallurgy, University of Cambridge",
            "last_updated": "2025-09-24T09:12:19.605858Z",
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            "name": "Microstructure 420",
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            "brief_description": "Commercial brass, ~30% Zn, displaying dendritic solidification",
            "long_description": "An good example of dendritic solidification, which occurs when the solidification front becomes unstable with respect to small perturbations. This results in the growth of the perturbations, producing dendrites (from the Greek for tree).  The variation in colour across the micrograph indicates that the cooling was sufficiently rapid to prevent solid state diffusion and hence a concentration variation. This phenomena is known as coring.",
            "contributor": "Dr R F Cochrane",
            "organisation": "Department of Materials, University of Leeds",
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            "name": "Microstructure 016",
            "short_name": "microstructure016",
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            "brief_description": "Fe, C 0.8 (wt%), eutectoid transformation - pearlite (coarse)",
            "long_description": "This steel is of the eutectoid composition. Once the temperature is lowered below the eutectoid temperature the steel becomes simultaneously supersaturated with both ferrite and cementite. A eutectoid transformation results (g to a + Fe3C). The resultant microstructure, known as pearlite, comprises lamellae of cementite (dark) embedded in ferrite (white). The platelets are parallel to each other and do not follow a specific crystallographic direction.Each pearlite colony is made up of a number of subgrains. Thus each pearlite colony consists of two interpenetrating single crystals having an orientation relationship with respect to each other and with respect to the austenite grain they grow from, but not with respect to the austenite grain they have grown into. Changes in the apparent interlamellar spacing from colony to colony in the photograph are due to differences in the lamellae spacing with respect to the polished surface.The coarseness of the pearlite is determined by the interlamellar spacing. This spacing is inversely proportional to the undercooling. This is primarily because of the increased rate of carbide nucleation with increased undercooling.The pearlite in this sample is coarse due to it being slowly cooled. The undercooling is low so the lamellae spacing is relatively large resulting in a coarse microstructure. Each pearlite colony is made up of a number of subgrains. Thus each pearlite colony consists of two interpenetrating single crystals having an orientation relationship with respect to each other and with respect to the austenite grain they grow from, but not with respect to the austenite grain they have grown into. Changes in the apparent interlamellar spacing from colony to colony in the photograph are due to differences in the lamellae spacing with respect to the polished surface.The coarseness of the pearlite is determined by the interlamellar spacing. This spacing is inversely proportional to the undercooling. This is primarily because of the increased rate of carbide nucleation with increased undercooling.The pearlite in this sample is coarse due to it being slowly cooled. The undercooling is low so the lamellae spacing is relatively large resulting in a coarse microstructure.",
            "contributor": "Prof T W Clyne",
            "organisation": "Department of Materials Science and Metallurgy, University of Cambridge",
            "last_updated": "2025-04-03T18:11:44.290661Z",
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            "id": 65,
            "name": "Microstructure 447",
            "short_name": "microstructure447",
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            "brief_description": "Cu 65, Zn 35 (wt%) B4 brass, chill cast",
            "long_description": "An good example of dendritic solidification, which occurs when the solidification front becomes unstable with respect to small perturbations. This results in the growth of the perturbations, producing dendrites (from the Greek for tree). Interdendritic b phase and purple-grey ZnO inclusions.",
            "contributor": "Dr R F Cochrane",
            "organisation": "Department of Materials, University of Leeds",
            "last_updated": "2025-09-24T09:12:51.342387Z",
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            "name": "Microstructure 186",
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            "brief_description": "Silicon Carbide from within a Silicon Nitride-bonded Silicon Carbide sample",
            "long_description": "Silicon Nitride bonded Silicon Carbide is characterized by excellent wear properties, good resistance to high temperatures, good impact resistance, an ability to be easily cast, and good corrosion resistance.",
            "contributor": "Dr K M Knowles",
            "organisation": "Department of Materials Science and Metallurgy, University of Cambridge",
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