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Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 June 2007
DOI: 10.31399/asm.tb.pmsspmp.t52000203
EISBN: 978-1-62708-312-6
... Abstract This atlas contains images showing how sintering conditions (time, temperature, and atmosphere) and compaction pressure affect the microstructure of different types of stainless steel. It also includes images of stainless steel powders, fracture surfaces, and test specimens...
Abstract
This atlas contains images showing how sintering conditions (time, temperature, and atmosphere) and compaction pressure affect the microstructure of different types of stainless steel. It also includes images of stainless steel powders, fracture surfaces, and test specimens characterized by the presence of compounds, such as oxides, carbides, and nitrides, and various forms of corrosion.
Image
Published: 01 December 1996
Fig. 3-42 (Part 1) TTT diagrams illustrating the effect of boron. ((a) and (b) from Atlas of Isothermal Transformation and Cooling Transformation Diagrams , American Society for Metals, Metals Park, Ohio (1977), ( Ref 29 ); (c) from W.W. Cias, Austenite Transformation Kinetics of Ferrous
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Image
Published: 01 December 1996
Fig. 3-42 (Part 2) TTT diagrams illustrating the effect of boron. ((a) and (b) from Atlas of Isothermal Transformation and Cooling Transformation Diagrams , American Society for Metals, Metals Park, Ohio (1977), ( Ref 29 ); (c) from W.W. Cias, Austenite Transformation Kinetics of Ferrous
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Image
Published: 01 December 1996
Fig. 3-42 (Part 3) TTT diagrams illustrating the effect of boron. ((a) and (b) from Atlas of Isothermal Transformation and Cooling Transformation Diagrams , American Society for Metals, Metals Park, Ohio (1977), ( Ref 29 ); (c) from W.W. Cias, Austenite Transformation Kinetics of Ferrous
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Image
Published: 01 May 2018
FIG. 10.15 Marcus Grossmann, left, and Edgar Bain of Atlas Steel Corp., Dunkirk, New York, circa 1923.
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Series: ASM Technical Books
Publisher: ASM International
Published: 01 December 2016
DOI: 10.31399/asm.tb.ascaam.9781627082969
EISBN: 978-1-62708-296-9
Series: ASM Technical Books
Publisher: ASM International
Published: 01 December 2016
DOI: 10.31399/asm.tb.ascaam.t59190089
EISBN: 978-1-62708-296-9
... Abstract This chapter is an atlas of microstructures observed in AlSi7Mg, AlSi11, and Al21CuNiMg modified with either eutectic (strontium, sodium) or hypereutectic (phosphorus) silicon crystals. The microstructure images reveal the as-cast state of gravity castings made in sand and metal molds...
Abstract
This chapter is an atlas of microstructures observed in AlSi7Mg, AlSi11, and Al21CuNiMg modified with either eutectic (strontium, sodium) or hypereutectic (phosphorus) silicon crystals. The microstructure images reveal the as-cast state of gravity castings made in sand and metal molds, before and after modification. The chapter also provides composition data and includes callouts identifying various phase constituents in the interdendritic eutectic microstructure.
Series: ASM Technical Books
Publisher: ASM International
Published: 01 December 2016
DOI: 10.31399/asm.tb.ascaam.t59190147
EISBN: 978-1-62708-296-9
... can be observed using metallographic techniques. It describes, and in many cases illustrates, the characteristic shapes, colors, and optical properties associated with aluminum alloy intermetallic phases and how they can be enhanced through selective etching. It provides an atlas of microstructures...
Abstract
Intermetallic phase precipitates in aluminum alloys can often be identified without resorting to chemical analysis. Very often the determination can be made based on the shape, color, and refractive properties of the particular phase. This chapter explains how these visual attributes can be observed using metallographic techniques. It describes, and in many cases illustrates, the characteristic shapes, colors, and optical properties associated with aluminum alloy intermetallic phases and how they can be enhanced through selective etching. It provides an atlas of microstructures comparing the effects of selective etching procedures on various phase constituents in cast aluminum-silicon alloys. The compilation of images demonstrates the use of two types of reagents: those that reveal discontinuities in crystal orientation and grain boundaries, and those that reveal differences in chemical composition.
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 March 2002
DOI: 10.31399/asm.tb.stg2.t61280353
EISBN: 978-1-62708-267-9
... generated. Potential sources of superalloy data Name Aerospace Materials Handbook Mil-Hdbk-5H Damage-Tolerant Handbook Atlas of Stress-Strain Curves Atlas of Creep and Stress-Rupture Curves Atlas of Fatigue Curves Atlas of Stress-Corrosion and Corrosion Fatigue Curves ASM Handbook, Vol 1 20 Materials...
Image
in The Iron-Carbon Phase Diagram and Time-Temperature-Transformation (TTT) Diagrams
> Principles of the Heat Treatment of Plain Carbon and Low Alloy Steels
Published: 01 December 1996
Fig. 2-35 Isothermal TTT diagram showing that the diagram is displaced to longer times for the larger austenite grain size. (From Atlas of Isothermal Transformation Diagrams , U.S. Steel Corporation, Pittsburgh (1950), Ref 26 )
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Image
Published: 01 May 2018
FIG. 10.16 Isothermal transformation diagram for an iron-carbon alloy of eutectoid composition (0.80% C), including austenite to pearlite and austenite to bainite transformations. Source: Atlas of Isothermal Transformation and Cooling Transformation Diagrams , ASM International.
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Image
Published: 01 January 1998
Fig. 5-27 CCT diagrams for H-13 tool steel austenitized at 1030 °C (1885 °F) (a) and 1100 °C (2010 °F) (b). Source: Ref 4 (from Atlas Zur Wärmebehandlung der Stähle
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in The Iron-Carbon Phase Diagram and Time-Temperature-Transformation (TTT) Diagrams
> Principles of the Heat Treatment of Plain Carbon and Low Alloy Steels
Published: 01 December 1996
Fig. 2-21 Isothermal TTT diagram for a eutectoid, plain carbon steel. Legend: A = Austenite; F = Ferrite; C = Carbide; M = Martensite; B = Bainite; P = Pearlite. (Adapted from Atlas of Isothermal Transformation and Cooling Transformation Diagrams , American Society for Metals, Metals Park
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Image
in The Iron-Carbon Phase Diagram and Time-Temperature-Transformation (TTT) Diagrams
> Principles of the Heat Treatment of Plain Carbon and Low Alloy Steels
Published: 01 December 1996
Fig. 2-30 Continuous cooling TTT diagram for an alloy steel, showing a different method of presenting the transformation process compared to that in the preceding figures. (From M. Atkins, Atlas of Continuous Cooling Transformation Diagrams for Engineering Steels , American Society for Metals
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Image
in Modeling and Use of Correlations in Heat Treatment
> Principles of the Heat Treatment of Plain Carbon and Low Alloy Steels
Published: 01 December 1996
Fig. 9-4 Cooling curves imposed on continuous cooling transformation diagrams, showing at the arrows the perturbation in the cooling curves from heat release associated with the decomposition of austenite. (From Atlas of Time-Temperature Diagrams for Irons and Steels , G.F. Vander Voort
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Image
in The Iron-Carbon Phase Diagram and Time-Temperature-Transformation (TTT) Diagrams
> Principles of the Heat Treatment of Plain Carbon and Low Alloy Steels
Published: 01 December 1996
Fig. 2-19 Comparison of the isothermal TTT diagram for a steel determined by the dilatometry (dashed lines) and metallography (continuous lines). (From Atlas zur Warmebehandlung der Stahle , Vol 1-4, Verlag Stahleisen mbH, Dusseldorf, Germany (1954), ( Ref 13 ), as given in G. Krauss, Steels
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Image
Published: 01 June 2010
. Source: Atlas of Microstructures of Industrial Alloys , Volume 7, Metals Handbook , 8th ed., American Society for Metals, 1972, p 135
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Series: ASM Technical Books
Publisher: ASM International
Published: 01 January 2015
DOI: 10.31399/asm.tb.spsp2.t54410197
EISBN: 978-1-62708-265-5
... been selected from an atlas that systematically characterizes the effects of molybdenum, chromium, nickel, and silicon on CT diagrams of 0.4% C steels ( Ref 10.6 ). The microstructures resulting from selected cooling curves from Fig. 10.6 and 10.7 are shown in Fig. 10.8 and 10.9 , respectively...
Abstract
Isothermal and continuous cooling transformation (CT) diagrams help users map out diffusion-controlled phase transformations of austenite to various mixtures of ferrite and cementite. This chapter discusses the application as well as limitations of these engineering tools in the context of heat treating eutectoid, hypoeutectoid, and proeutectoid steels. It also provides references to large collections of transformation diagrams and includes several diagrams that plot quenching and hardening transformations as a function of bar diameter.
Series: ASM Technical Books
Publisher: ASM International
Published: 01 December 2003
DOI: 10.31399/asm.tb.cfap.t69780153
EISBN: 978-1-62708-281-5
... Sunlamps Fluorescent sunlamps are used in the UVCON test device, manufactured by the Atlas Electrical Devices Company, and in the QUV cyclic ultraviolet weathering tester, manufactured by the Q-Panel Company. These devices expose test specimens to alternating cycles of condensation and fluorescent UV...
Abstract
This article presents a general overview of outdoor weather aging factors, their effects on plastic materials, and the accelerated test methods that can be used to estimate the reaction of a plastic component during actual use. Weather and radiation factors that contribute to degradation in plastics include temperature variations, moisture, sunlight, oxidation, microbiologic attack, and other environmental elements. The article also describes the tests used to predict the behavior of a plastic material to outdoor exposure, discussing the use of xenon arc lamp for the weatherometer and fadeometer and the use of fluorescent sunlamp in test devices.
Image
Published: 01 January 1998
Fig. 13-45 Hardness as a function of tempering temperature for molybdenum hot-work steels. Data from Teledyne VASCO, Atlas Steels, Ltd., and Ref 38 Curve Type Composition, % Hardening temperature Hardening medium C Cr W Mo V Ni Co °C °F 1 H42 0.59 3.83 5.31
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