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Image
Published: 27 April 2016
Fig. 37 Two representative binary iron phase diagrams, showing ferrite stabilization (iron-chromium) and austenite stabilization (iron-nickel). Source: Ref 4 as published in Ref 5
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Published: 01 December 1998
Fig. 36 Two representative binary iron phase diagrams, (a) showing ferrite stabilization (Fe-Cr) and (b) austenite stabilization (Fe-Ni). Source: Ref 7
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Book Chapter
Book: Alloy Phase Diagrams
Series: ASM Handbook
Volume: 3
Publisher: ASM International
Published: 27 April 2016
DOI: 10.31399/asm.hb.v03.a0006162
EISBN: 978-1-62708-163-4
... Abstract This article is a compilation of binary alloy phase diagrams for which iron (Fe) is the first named element in the binary pair. The diagrams are presented with element compositions in weight percent. The atomic percent compositions are given in a secondary scale. For each binary system...
Abstract
This article is a compilation of binary alloy phase diagrams for which iron (Fe) is the first named element in the binary pair. The diagrams are presented with element compositions in weight percent. The atomic percent compositions are given in a secondary scale. For each binary system, a table of crystallographic data is provided that includes the composition, Pearson symbol, space group, and prototype for each phase.
Book Chapter
Book: Alloy Phase Diagrams
Series: ASM Handbook
Volume: 3
Publisher: ASM International
Published: 27 April 2016
DOI: 10.31399/asm.hb.v03.a0006231
EISBN: 978-1-62708-163-4
... triangle for plotting ternary composition and discusses the ternary three-phase phase diagrams by using tie triangles. It describes the peritectic system with three-phase equilibrium and ternary four-phase equilibrium. The article presents representative binary iron phase diagrams, showing ferrite...
Abstract
This article describes the liquidus plots, isothermal plots, and isopleth plots used for a hypothetical ternary phase space diagram. It discusses the single-phase boundary (SPB) line and zero-phase fraction (ZPF) line for carbon-chromium-iron isopleth. The article illustrates the Gibbs triangle for plotting ternary composition and discusses the ternary three-phase phase diagrams by using tie triangles. It describes the peritectic system with three-phase equilibrium and ternary four-phase equilibrium. The article presents representative binary iron phase diagrams, showing ferrite stabilization (iron-chromium) and austenite stabilization (iron-nickel).
Image
Published: 01 June 2024
Fig. 1 Phase diagram of the binary iron-carbon system. The stable system (iron-graphite) is shown with solid lines; the metastable system (iron-iron carbide) is shown with dotted lines.
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Published: 30 September 2015
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Published: 01 December 2008
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Published: 01 August 2013
Fig. 2 Iron-carbon binary phase diagram with superimposed full annealing, process annealing, and spheroidizing treatments. Source: Ref 1
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Published: 01 August 2013
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Published: 01 August 2013
Fig. 2 Iron-chromium pseudo-binary phase diagram for a carbon content of 0.10 wt%. Source: Ref 2
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Published: 01 August 2013
Fig. 1 Iron-carbon binary phase diagram, where solid lines indicate the metastable Fe-Fe 3 C diagram and dashed lines are from the iron-graphite equilibrium diagram. Reprinted from Ref 1 , adapted from Ref 2
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Published: 01 October 2014
Fig. 2 Iron-carbon binary phase diagram with superimposed temperature ranges for full annealing, process annealing, spheroidizing, normalizing, and austenitizing for hardening
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Published: 01 October 2014
Fig. 1 Binary iron-copper phase diagram indicating the maximum solubility of copper in α-Fe (ferrite) and the solvus curve. Source: Ref 38
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Published: 01 October 2014
Fig. 3 Iron-chromium equilibrium phase diagram (a) binary without carbon (b) effect of 0.10% carbon on phase formation
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in Metallography and Microstructures of Carbon and Low-Alloy Steels[1]
> Metallography and Microstructures
Published: 01 December 2004
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Published: 01 December 1998
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Published: 01 January 1993
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Published: 01 January 1993
Fig. 5 Iron-chromium-carbon pseudo-binary phase diagram for 12 wt% Cr steel. Circled numbers represent the four HAZ regions shown in Fig. 3 and 6 . Source: Adapted from Ref 5
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Published: 01 January 2005
Series: ASM Handbook
Volume: 1A
Publisher: ASM International
Published: 31 August 2017
DOI: 10.31399/asm.hb.v01a.a0006300
EISBN: 978-1-62708-179-5
... binary Fe-C phase diagram deformation modeling ferrite transformation lamellar graphite iron nucleation spheroidal graphite iron THE SOLID-STATE TRANSFORMATION products of common cast irons (excluding austenitic cast irons) may be ferrite, pearlite, bainite, and martensite. This article covers...
Abstract
This article discusses the stable and metastable three-phase fields in the binary Fe-C phase diagram. It schematically illustrates that austenite decomposition requires accounting for nucleation and growth of ferrite and then nucleation and growth of pearlite in the remaining untransformed volume. The article describes the austenite decomposition to ferrite and pearlite in spheroidal graphite irons and lamellar graphite irons. It provides a discussion on modeling austenite decomposition to ferrite and pearlite.
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