In steel, the carbon begins to mix with gamma iron at the A 3 temperature, forming a solid solution called austenite.
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However, if the austenite is cooled quickly enough, the transformation may be suppressed for hundreds of degrees below the lower critical temperature.
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When martensite is reverted to austenite by heating, the original austenitic structure is restored, regardless of whether the martensite phase was deformed.
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The metal part is then removed from the bath and cooled in air to room temperature to permit the austenite to transform to martensite.
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The austenite of Hadfield steels is thermodynamically unstable and will transform into martensite when subject to mechanical impact thus forming the hard surface layer.
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It resembles an inverted eutectic, with the ? phase combining with the liquid to produce pure austenite at and 0.17 % carbon.
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The martensitic reaction begins during cooling when the austenite reaches the martensite start temperature ( M s ) and the parent austenite becomes mechanically unstable.
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The martensitic reaction begins during cooling when the austenite reaches the martensite start temperature ( M s ) and the parent austenite becomes mechanically unstable.
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A higher austenitization temperature can produce a higher carbon content in austenite, whereas a lower temperature produces a more uniform distribution of austempered structure.
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On the other hand, such elements as silicon, molybdenum, and chromium tend to de-stabilize austenite, raising the eutectoid temperature.
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