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Image
Published: 01 October 2011
Fig. 11.3 The microstructure of a D7 air-hardening tool steel that was austenitized at 1040 °C (1900 °F), air quenched, and tempered at 540 °C (1000 °F). The white particles that appear in this microstructure are the carbides; the darkly etched background structure is tempered martensite. Note
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Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 January 1998
DOI: 10.31399/asm.tb.ts5.t65900193
EISBN: 978-1-62708-358-4
... Abstract The air-hardening cold-work tool steels, designated as group A steels in the AISI classification system, achieve their processing and performance characteristics with combinations of high carbon and moderately high alloy content. This chapter describes the microstructural features...
Abstract
The air-hardening cold-work tool steels, designated as group A steels in the AISI classification system, achieve their processing and performance characteristics with combinations of high carbon and moderately high alloy content. This chapter describes the microstructural features and hardenability of air-hardening cold-work tool steels and discusses the processes involved in the hardening and tempering of tool steels.
Image
Published: 01 January 1998
Fig. 11-13 Rotating beam fatigue performance of A6 tool steel hardened by air cooling from 845 °C (1550 °F) and double tempering for 2 h at 175 °C (350 °F). Approximate hardness, 60 HRC. Data from Universal-Cyclops Steel Corp.
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Image
Published: 01 January 1998
Fig. 17-22 Dimensional changes in air-hardened D2 tool steel as a function of tempering temperature and orientation. Courtesy of Latrobe Steel Co.
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Image
Published: 01 January 1998
Fig. 17-23 Dimensional changes in air-hardened H13 tool steel as a function of tempering temperature and orientation. Courtesy of Latrobe Steel Co.
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Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 March 2006
DOI: 10.31399/asm.tb.pht2.t51440191
EISBN: 978-1-62708-262-4
... include water-hardening; shock-resisting; oil-hardening cold-work; air-hardening, medium-alloy cold-work; high-carbon, high-chromium cold-work; low-alloy, special-purpose; mold; hot-work; and high-speed tool steels. air-hardening tool steel annealing austenitizing high-carbon tool steel high...
Abstract
Tool steels represent a small, but very important, segment of the total production of steel. Their principal use is for tools and dies that are used in the manufacture of commodities. For the most part, the processes used for heat treating carbon and alloy steels are also used for heat treating tool steels, that is, annealing, austenitizing, tempering, and so forth. This chapter focuses on these heat treating processes of tool steels. Classification and approximate compositions and heating treating practices of some principal types of tool steels are provided. The steel types discussed include water-hardening; shock-resisting; oil-hardening cold-work; air-hardening, medium-alloy cold-work; high-carbon, high-chromium cold-work; low-alloy, special-purpose; mold; hot-work; and high-speed tool steels.
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 31 December 2020
DOI: 10.31399/asm.tb.phtbp.t59310285
EISBN: 978-1-62708-326-3
... the following way: Cold-worked tool steels Unalloyed and low-alloyed (water- and oil-hardening, shock-resistant) cold-worked tool steels: W-, S-, O-, L-, as well as 6F-type Medium- and high-alloy (air-hardening, high-carbon, and high-chromium) cold-worked tool steels: A-, D- (including powder...
Abstract
The possible classification for tool steels is their division into four groups according to their final application: hot-worked, cold-worked, plastic mold, and high-speed tool steels. This chapter mainly follows such division by application, but the grade nomenclatures used here are primarily from AISI. It presents the classification of tool steels and discusses the principles and processes of tool steel heat treating, namely normalizing, annealing, hardening, and tempering. Various factors associated with distortion in several tool steels are also covered. The chapter discusses the composition, classification, and properties of unalloyed and low-alloy cold-worked tool steels; medium and high-alloy cold-worked tool steels; and 18% nickel maraging steels.
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 January 1998
DOI: 10.31399/asm.tb.ts5.t65900001
EISBN: 978-1-62708-358-4
... hardened steel tool 350 B.C. Wootz steels of India A.D. 540 Damascus layered steel blades A.D. 900 Japanese layered steel blades Dark Ages Steel production by carburizing of iron 1740 Crucible melting of steel: Huntsman 1868 Air-hardening tungsten alloy steel: Mushet 1898...
Abstract
Tool steels are the ferrous alloys used to manufacture tools, dies, and molds that shape, form, and cut other materials, including steels, nonferrous metals, and plastics. This chapter explores the considerations that make tool steels a very special class of steels, the long historical evolution of iron and steel manufacture, including steels for tools, and the development of tool steels as they emerged from the general class of iron and steel products.
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 January 1998
DOI: 10.31399/asm.tb.ts5.t65900203
EISBN: 978-1-62708-358-4
... not contain molybdenum and contains an addition of tungsten, the D-type steels are hardenable by air cooling from austenitizing temperatures used for hardening and thus have very low susceptibility to distortion and cracking during hardening. Type D3 tool steels are oil quenched. Composition limits of high...
Abstract
The high-carbon, high-chromium tool steels, designated as group D steels in the AISI classification system, are the most highly alloyed cold-work steels. This chapter describes the microstructures and hardenability of high-carbon, high-chromium tool steels and discusses the processes involved in the hardening and tempering of tool steels. It also covers the selection criteria and applications of high-carbon, high-chromium tool steels.
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 January 1998
DOI: 10.31399/asm.tb.ts5.t65900219
EISBN: 978-1-62708-358-4
... to be encountered during operation, low-carbon H-type steels are preferred. Figure 13-1 shows a heat treatment processing schematic for hot-work tool steels ( Ref 1 ). Considering the high austenitizing temperatures used to harden H-type steels, several preheating stages are recommended. Air cooling and hot...
Abstract
Steels for hot-work applications, designated as group H steels in the AISI classification system, have the capacity to resist softening during long or repeated exposures to high temperatures needed to hot work or die cast other materials. These steels are subdivided into three classes according to the alloying approach: chromium hot-work steels, tungsten hot-work steels, and molybdenum hot-work steels. This chapter discusses the composition, characteristics, applications, advantages, and disadvantages of each of these steels.
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 January 1998
DOI: 10.31399/asm.tb.ts5.t65900007
EISBN: 978-1-62708-358-4
... Identifying symbol Water-hardening tool steels W Shock-resisting tool steels S Oil-hardening cold-work tool steels O Air-hardening, medium-alloy cold-work tool steels A High-carbon, high-chromium cold-work tool steels D Mold steels P Hot-work tool steels, chromium, tungsten...
Abstract
The several specific grades or compositions of tool steels have evolved over time and have been organized into useful groupings. This chapter presents the AISI classification system for tool steels, which categorizes tool steels by their alloying, applications, or heat treatment, and briefly describes the characteristics of each major group. It discusses selection criteria for tool steels, along with examples.
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 November 2007
DOI: 10.31399/asm.tb.smnm.t52140157
EISBN: 978-1-62708-264-8
... data for T1. The higher-alloyed tool steels are air hardening. However, austenite stabilization effects produce more retained austenite for air-quenched steels than oil-quenched steels, just as was described for stainless steels in Chapter 13 . Hence, the air-hardened steels end up with slightly...
Abstract
Tool steels are specialty steels, produced in relatively low volumes, optimized for applications requiring precise combinations of wear resistance, toughness, and hot hardness. This chapter describes the AISI classification system by which tool steels are defined. It discusses primary types, including high-speed and shock-resisting steels, and their associated subtype groups (W, L, S, O, A, D, H, M, and T series). It also discusses the types of carbides found in tool steels and their influence on mechanical properties. The chapter concludes with a discussion on heat treatment effects unique to tool steels, including two-phase effects, austenite stabilization, and the conditioning of retained austenite.
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 June 2008
DOI: 10.31399/asm.tb.emea.t52240411
EISBN: 978-1-62708-251-8
... hardening in sections of 10 cm (4 in.) diameter on air cooling from the austenitizing temperature. Because they are air hardening, group A tool steels exhibit minimum distortion and little tendency to crack during hardening. Manganese, chromium, and molybdenum are the principal alloying elements used...
Abstract
There is a fairly wide variety of different tool steels for different applications. The American Iron and Steel Institute (AISI) classification of tool steels includes seven major categories: water-hardening tool steels, shock-resisting tool steels, cold work tool steels, hot work tool steels, low-alloy special-purpose tool steels, mold tool steels, high-speed tool steels, and powder metallurgy tool steels. This chapter provides discusses the manufacturing process, composition, properties, types, and applications of these tool steels and other cutting tool materials, such as cemented carbides. It also describes the methods of applying coatings to cutting tools to improve tool life.
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 January 1998
DOI: 10.31399/asm.tb.ts5.t65900181
EISBN: 978-1-62708-358-4
... (1600 °F). Forging below these temperatures may result in center bursts or surface cracking. Although slightly air hardening, forged O-type steel tools may be generally air cooled from forging temperatures—except for small or intricately shaped parts, which should be cooled in an insulating material...
Abstract
The oil-hardening cold-work tool steels, designated as group O steels in the AISI classification system, derive their high hardness and wear resistance from high carbon and modest alloy contents. This chapter describes the microstructures and hardenability of oil-hardening tool steels and discusses the processes involved in the hardening and tempering of tool steels. It also covers the selection criteria and applications of oil-hardening cold-work tool steels.
Image
Published: 01 January 1998
Fig. 12-10 Hardness as a function of tempering temperature for D-type tool steels hardened as shown. Data from Columbia Tool Steel Co., Latrobe Steel Co., and Bethlehem Steel Co. Curve Type Composition, % Hardening Temperature Hardening Medium C Si Cr W Mo V Ni Co °C °F
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Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 January 1998
DOI: 10.31399/asm.tb.ts5.t65900067
EISBN: 978-1-62708-358-4
... micrograph. Source: Ref 5 Fig. 5-5 Fracture ledges at interfaces of grain-boundary cementite in an Fe-1.12C-1.50Cr steel. SEM micrograph. Courtesy of T. Ando In tool steels with high alloy content, high hardenability may cause martensite to form during air cooling. Hardenability...
Abstract
This chapter describes how the phases are arranged into desired microstructures during the heat treatment of tool steels. It describes the microstructural changes that are the objectives of the austenitizing, quenching, and tempering steps of tool steel hardening. The chapter covers austenite composition, retained austenite, and austenite grain size and grain growth. It provides information on the hardness and hardenability of tool steel. The chapter reviews some of these concepts and describes the microstructural appearance of the products of diffusion-controlled transformation of austenite. The role that diffusion-controlled phase transformations play relative to the hardenability of high-carbon and alloy tool steels is then emphasized. It presents general considerations of transformation diagrams, Jominy curves, and the hardenability of tool steels. The factors related to the kinetics and stabilization of martensite transformation are also covered. It briefly reviews selected aspects of the changes that evolve during tempering.
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 30 April 2021
DOI: 10.31399/asm.tb.tpsfwea.t59300199
EISBN: 978-1-62708-323-2
... a water quench no thicker than about 2 mm, whereas D2 tool steel will air harden inches thick to 60 HRC. So, hardenability is an important consideration in evaluating steels for tribological applications—high hardenability is usually desired. Carbon steels have poor hardenability. Researchers...
Abstract
This chapter covers the friction and wear behaviors of carbon, alloy, and tool steels. It begins a review of commercially available shapes and forms. It then describes the metallurgy and microstructure of various designations and grades of each type of steel and explains how it affects their performance in adhesive and abrasive wear applications and in environments where they are subjected to solid particle, droplet, slurry, and cavitation erosion and fretting damage.
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 January 2015
DOI: 10.31399/asm.tb.spsp2.t54410277
EISBN: 978-1-62708-265-5
... intergranular fracture along grain-boundary cementite ( Ref 13.4 ). The latter observations were obtained in an experimental study, but for air-hardening tool steels, similar brittle fracture may occur after high-temperature normalizing, and normalizing is not recommended ( Ref 13.5 ). Fig. 13.3...
Abstract
This chapter describes heat treatments that produce uniform grain structures, reduce residual stresses, and improve ductility and machinability. It also discusses spheroidizing treatments that improve strength and toughness by promoting dispersions of spherical carbides in a ferrite matrix. The chapter concludes with a brief discussion on the mechanical properties of ferrite/pearlite microstructures in medium-carbon steels.
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 December 2001
DOI: 10.31399/asm.tb.aub.t61170210
EISBN: 978-1-62708-297-6
... they are air hardening, group A tool steels exhibit minimum distortion and the highest safety (least tendency to crack) in hardening. Manganese, chromium, and molybdenum are the principal alloying elements used to provide this deep hardening. Types A2, A3, A7, A8, and A9 contain a high percentage of chromium...
Abstract
This article provides an overview of tool steels, discussing their composition, properties, and behaviors. It covers all types and classes of wrought and powder metal tool steels, including high-speed steels, hot and cold-work steels, shock-resisting steels, and mold steels. It explains how the properties of these steels are determined by alloying elements, such as tungsten, molybdenum, vanadium, manganese, and chromium, and the presence of alloy carbides. It describes the types of carbides that form and how they contribute to wear resistance, toughness, high-temperature strength, and other properties.
Book Chapter
Series: ASM Technical Books
Publisher: ASM International
Published: 01 January 1998
DOI: 10.31399/asm.tb.ts5.t65900291
EISBN: 978-1-62708-358-4
... polishability and are manufactured from shock-resisting steels (SI and S4), oil-hardening steels (O1 and O2), or cold-work steels (including A2, A6, D2, and D4). Water-hardening tool steels will generally not harden deeply enough to provide the high compressive strengths required for hubbing. Table 15-1...
Abstract
Mold steels are used for plastic molding and certain die-casting applications and are designated as group P steels in the AISI classification system. The fabrication and performance requirements that differentiate them from other types of tool steels are described in this chapter. It provides information on hubbing and machined cavity grades of mold steels and describes the performance of the corrosion-resistant mold steels. The chapter discusses the processes involved in forging, annealing, stress relieving, carburizing, hardening, and tempering of mold steels. It presents the selection criteria and applications of mold steels.
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