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alpha-2 alloys
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Book Chapter
Series: ASM Desk Editions
Publisher: ASM International
Published: 01 December 1998
DOI: 10.31399/asm.hb.mhde2.a0003164
EISBN: 978-1-62708-199-3
... (Ni3Al and NiAl), iron aluminides (Fe3Al and FeAl) and titanium aluminides (alpha-2 alloys, orthorhombic alloys, and gamma alloys). alloying effects corrosion resistance crystallographic data fabrication iron aluminides mechanical properties nickel aluminides processing of aluminides...
Abstract
Alloys based on ordered intermetallic compounds constitute a unique class of metallic material that form long-range ordered crystal structures below a critical temperature. Aluminides, a unique class of ordered intermetallic materials, possesses many attributes like low densities, high melting points, and good high-temperature strength that make them an attractive material for high-temperature structural application. This article discusses the properties, chemical composition, corrosion resistance, processing, fabrication, alloying effects and crystallographic data of nickel aluminides (Ni3Al and NiAl), iron aluminides (Fe3Al and FeAl) and titanium aluminides (alpha-2 alloys, orthorhombic alloys, and gamma alloys).
Series: ASM Handbook
Volume: 6
Publisher: ASM International
Published: 01 January 1993
DOI: 10.31399/asm.hb.v06.a0001416
EISBN: 978-1-62708-173-3
... Abstract This article focuses on the physical metallurgy and weldability of four families of titanium-base alloys, namely, near-alpha alloy, alpha-beta alloy, near-beta, or metastable-beta alloy, and titanium based intermetallics that include alpha-2, gamma, and orthorhombic systems...
Series: ASM Handbook
Volume: 4E
Publisher: ASM International
Published: 01 June 2016
DOI: 10.31399/asm.hb.v04e.a0006253
EISBN: 978-1-62708-169-6
.... Fig. 2 Basic types of titanium alloying elements. (a) Alpha stabilizers (such as solute addition of aluminum, oxygen, nitrogen, carbon, or gallium), where the dotted phase boundaries refer specifically to the titanium-aluminum system. (b) Isomorphous beta stabilizers (such as solute additions...
Abstract
This article introduces the different types, distinctions, and grades of commercially pure titanium and titanium alloys. It describes three types of alloying elements: alpha stabilizers, beta stabilizers, and neutral additions. The article discusses the basic categories of titanium alloys, namely, alpha and near-alpha titanium alloys, beta and near-beta titanium alloys, and alpha-beta titanium alloys. It also describes the general microstructural features of titanium alloys.
Series: ASM Handbook
Volume: 4E
Publisher: ASM International
Published: 01 June 2016
DOI: 10.31399/asm.hb.v04e.a0006270
EISBN: 978-1-62708-169-6
... in alpha (close-packed hexagon) titanium in the solution-treated state. This structure is amenable to an age-hardening reaction similar to that in the conventional Al-Cu-Mg type of alloy. The aging treatment causes precipitation of a finely divided compound, Ti 2 Cu, giving the usual strain-hardening...
Abstract
The response of titanium and titanium alloys to heat treatment depends on the composition of the metal, the effects of the alloying elements on the alpha-beta crystal transformation, and the thermomechanical processing utilized during processing of the alloy. This article provides a detailed discussion on the effects of heat treatment on the mechanical properties for three general classes of titanium alloys, namely, alpha and near-alpha titanium alloys, alpha-beta alloys, and beta alloys.
Book Chapter
Series: ASM Handbook
Volume: 9
Publisher: ASM International
Published: 01 December 2004
DOI: 10.31399/asm.hb.v09.a0003779
EISBN: 978-1-62708-177-1
... are also described in more detail in Ref 1 and 2 . Types of Titanium Alloys Titanium is an allotropic element; that is, it exists in more than one crystallographic form. At room temperature, titanium has a hexagonal close-packed (hcp) crystal structure, which is referred to as “alpha” phase...
Abstract
This article describes the fundamentals of titanium metallographic sample preparation. Representative micrographs are presented for each class of titanium alloys, including unalloyed titanium, alpha alloys, alpha-beta alloys, and beta titanium alloys. The article provides information on the macroexamination and microexamination for these alloys. It concludes with a discussion on the several metallographic techniques developed for specific purposes, such as recrystallization studies and microstructure/fracture topography correlations.
Series: ASM Handbook
Volume: 22A
Publisher: ASM International
Published: 01 December 2009
DOI: 10.31399/asm.hb.v22a.a0005409
EISBN: 978-1-62708-196-2
... of beta retained at room temperature. These include beta and near-beta alloys and near-alpha and alpha/beta alloys ( Ref 1 , 2 ). Beta and near-beta alloys have moderate-to-large amounts of beta-stabilizing elements such as vanadium, molybdenum, tungsten, niobium, chromium, and iron. The beta transi...
Abstract
This article focuses on the modeling of microstructure evolution during thermomechanical processing in the two-phase field for alpha/beta and beta titanium alloys. It also discusses the mechanisms of spheroidization, the coarsening, particle growth, and phase decomposition in titanium alloys, with their corresponding equations.
Series: ASM Handbook
Volume: <span class="search-highlight">2</span>
Publisher: ASM International
Published: 01 January 1990
DOI: 10.31399/asm.hb.v02.a0001081
EISBN: 978-1-62708-162-7
... 888 1630 880 1620 ASTM grade 2 913 1675 890 1635 ASTM grade 3 920 1685 900 1650 ASTM grade 4 950 1740 905 1660 ASTM grade 7 913 1675 890 1635 ASTM grade 12 890 1635 … … Typical unit cell parameters for an alpha crystal structure at 25 °C (77 °F...
Abstract
This article discusses the wrought product forms of titanium and titanium-base alloys, which include forgings and the typical mill products with tabulations for various specifications, and compares specifications for pure titanium, titanium alloys for mechanical, physical properties and chemical properties, including chemical composition, corrosion resistance, and chemical reactivity. The article discusses the effects of alloying elements in titanium alloys, and describes the classes of titanium alloys, namely, alpha alloys, alpha-beta alloys, and beta alloys. It also describes the typical applications of various titanium-base materials, and explains the crystal structure, effect of impurities, and microstructural constituents of titanium alloys. The article provides a brief description on the processing of wrought titanium alloys, including primary fabrication in which ingots are converted into general mill products and secondary fabrication (forging, extrusion, forming, machining, chemical milling and joining) of finished shapes from mill products and the heat treatment of titanium alloys.
Series: ASM Handbook
Volume: 6
Publisher: ASM International
Published: 01 January 1993
DOI: 10.31399/asm.hb.v06.a0001415
EISBN: 978-1-62708-173-3
... the metastable beta phase. More detailed information on the physical metallurgy and phase transformations associated with titanium alloys can be found in Ref 3 . A graphic illustration of the microstructural transformations that can occur in an alpha-beta alloy (Ti-6Al-4V) is shown in Fig. 2 . As can...
Abstract
This article emphasizes the physical metallurgy of titanium and titanium alloys along with their microstructural response to fusion welding condition. The titanium alloys are classified into unalloyed or commercially pure titanium, alpha and near-alpha alloys, alpha-beta alloys, and metastable beta alloys. The article further discusses the weld microstructure for alpha-beta and metastable beta alloys and describes welding defects observed in titanium alloys. The influence of macro- and microstructural characteristics of titanium weldment on mechanical properties is also discussed. The article concludes with a discussion on the different welding processes used in the welding of titanium and titanium alloys.
Series: ASM Handbook
Volume: 22A
Publisher: ASM International
Published: 01 December 2009
DOI: 10.31399/asm.hb.v22a.a0005401
EISBN: 978-1-62708-196-2
... in the basal plane of the alpha is parallel to one of the two close-packed directions lying within the specific close-packed plane in the beta ( Fig. 1 ). Thus, decomposition of a beta grain may give rise to one or more of 12 (= 6 × 2) possible alpha-phase variants, each with its own orientation within...
Abstract
The modeling and simulation of texture evolution for titanium alloys is often tightly coupled to microstructure evolution. This article focuses on a number of problems for titanium alloys in which such coupling is critical in the development of quantitative models. It discusses the phase equilibria, crystallography, and deformation behavior of titanium and titanium alloys. The article describes the modeling and simulation of recrystallization and grain growth of single-phase beta and single-phase alpha titanium. The deformation- and transformation-texture evolution of two-phase (alpha/beta) titanium alloys are also discussed.
Book Chapter
Book: Fatigue and Fracture
Series: ASM Handbook
Volume: 19
Publisher: ASM International
Published: 01 January 1996
DOI: 10.31399/asm.hb.v19.a0002409
EISBN: 978-1-62708-193-1
... separately. Titanium alloy designations and tensile strengths Table 2 Titanium alloy designations and tensile strengths Designation Tensile strength (min) 0.2% yield strength (min) Impurity limits, wt%, max MPa ksi MPa ksi N C H Fe O Alpha and near-alpha alloys Ti-5Al...
Abstract
This article summarizes the metallurgical and environmental variables that affect fracture toughness, fatigue life, and subcritical crack growth of titanium alloys, such as chemistry, microstructure, texture, environment, and loading. The classes of titanium alloys considered in the article include alpha-beta alloys, Ti-6AI-4V; alpha alloys, Ti-8Al -1Mo-IV, Ti-5AI-2.5Sn, Ti-6242S; and beta alloys, solute-lean beta alloys and solute-rich beta alloys.
Series: ASM Handbook
Volume: 23
Publisher: ASM International
Published: 01 June 2012
DOI: 10.31399/asm.hb.v23.a0005674
EISBN: 978-1-62708-198-6
... name (alloy classification) UNS designation ASTM standard ISO standard Ti CP-1 CP-1 (alpha) R50250 ASTM F67 ISO 5832-2 Ti CP-2 CP-2 (alpha) R50400 ASTM F67 ISO 5832-2 Ti CP-3 CP-3 (alpha) R50550 ASTM F67 ISO 5832-2 Ti CP-4 CP-4 (alpha) R50700 ASTM F67 ISO 5832-2 Ti...
Abstract
Titanium and its alloys have been used extensively in a wide variety of implant applications, such as artificial heart pumps, pacemaker cases, heart valve parts, and load-bearing bone or hip joint replacements or bone splints. This article discusses the properties of titanium and its alloys and presents a list of titanium-base biomaterials. Titanium components are produced in wrought, cast, and powder metallurgy (PM) form. The article describes forging, casting, and heat treating of titanium alloys for producing titanium components. Typical mechanical properties of titanium biomedical implant alloys are listed in a tabular form. The article presents an overview of the surface-modification methods for titanium and its alloys implants. It concludes with a section on biocompatibility and in vivo corrosion of titanium alloys.
Image
Published: 01 December 2004
Fig. 22 Ti-6Al-6V-2Sn alpha-beta alloy forging, solution treated, quenched, and aged. Hand forging at 925 °C (1700 °F), solution treated for 2 h at 870 °C (1600 °F), water quenched, aged 4 h at 595 °C (1100 °F), and air cooled. (a) “Primary” alpha grains (light) in a matrix of transformed beta
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Image
in Introduction to Corrosion Resistance of Bulk Materials
> Corrosion: Fundamentals, Testing, and Protection
Published: 01 January 2003
Fig. 2 The relationship between microstructure and corrosion behavior. From the phase diagram (top), alloys with differing compositions—and thus differing relative amounts of alpha and beta phase particles—are selected. A profile of the material in a corrosive medium is shown when alpha
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Image
Published: 01 June 2016
Fig. 21 Microstructure of forge titanium alpha-beta alloy (Ti-6Al-2Sn-4Zr-6Mo) with varying amounts of primary alpha and secondary acicular alpha in matrix of beta that transformed by aging (dark). (a) Solution treated 2 h at 870 °C (1600 °F), water quenched, aged 8 h at 595 °C (1100 °F
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Image
Published: 01 June 2016
Fig. 22 Effect of cooling rates on microstructure of alpha alloy Ti-5Al-Sn after beta annealing for 30 min at 1175 °C (2150 °F). (a) Furnace cooled, coarse, platelike alpha produced by furnace cooling to 790 °C (1450 °F) in 6 h, followed by furnace cooling to room temperature in 2 h. Original
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Series: ASM Handbook
Volume: 14A
Publisher: ASM International
Published: 01 January 2005
DOI: 10.31399/asm.hb.v14a.a0004003
EISBN: 978-1-62708-185-6
.... During such controlled alpha-beta processing sequences, the transformed lamellar alpha-phase platelets are blunted and thickened. Alloy Ti-10-2-3 is often processed by this method ( Ref 36 ). Through-transus forging is also a novel process used for titanium alloys. This methodology results...
Abstract
The thermomechanical processing (TMP) of conventional and advanced nickel and titanium-base alloys is aimed at altering or enhancing one or more metallurgical features within the material and component. This article presents a number of examples of the TMP of nickel-base superalloys and titanium alloys. The TMP techniques include retained-strain processing, dual-microstructure processing, and dual-alloy processing. The article also describes the TMP of alpha-beta titanium alloys, including fine-grain processing, hybrid-structure processing, dual-microstructure processing, and dual-alloy processing. It concludes with a discussion on computer simulation of advanced TMP processes.
Series: ASM Handbook
Volume: 13A
Publisher: ASM International
Published: 01 January 2003
DOI: 10.31399/asm.hb.v13a.a0003673
EISBN: 978-1-62708-182-5
... with differing compositions—and thus differing relative amounts of alpha and beta phase particles—are selected. A profile of the material in a corrosive medium is shown when alpha is active and beta is noble. The bottom line illustrates when alpha is more noble than beta (adapted from Ref 2 ). Mechanical...
Series: ASM Handbook
Volume: 4E
Publisher: ASM International
Published: 01 June 2016
DOI: 10.31399/asm.hb.v04e.a0006256
EISBN: 978-1-62708-169-6
... alloy is shallow hardening, however. At the center of the bar, transformation to alpha phase plus U 2 Ti starts at prior grain boundaries ( Fig. 6b ). Similar structures are found in 18 mm (0.7 in.) diam bar oil quenched from the gamma phase. Aging to peak hardness produces no detectable change...
Abstract
Heat treatment of depleted uranium (DU) alloys with 4.0 wt% or more molybdenum or equivalent is similar to that of dilute alloys. This article discusses the metallurgical characteristics and processing considerations of DU and its alloys, and describes the control of grain size and orientation using beta treatment. It lists the typical mechanical properties of DU as functions of the amount of cold work and hardness data of uranium rod, and describes the annealing of cold-worked DU. The article also describes the heat treatment of dilute alloys of DU, focusing on the three basic furnace designs used for heating or heat treating of unalloyed uranium: molten salt baths, inert-atmosphere furnaces, and vacuum furnaces. Finally, it presents procedures that are examples of heat treatment used to meet certain specifications of ultimate tensile strength, yield strength, and elongation.
Image
Published: 01 January 2005
) are for the alloy with an equiaxed-alpha starting microstructure (no shear bands), and specimen in (b) and simulation in (d) are for the alloy with a colony-alpha starting microstructure (that exhibited shear bands). Source: Ref 46
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Image
Published: 01 December 2004
for duration noted, and examined under slightly uncrossed polarized light (a) lamellar alpha after air cool (AC) from temperature about 70 °C (130 °F) below beta transus (730 °C, or 1350 °F, for 2 h). (b) Heat treated just below the beta transus (788 °C, or 1450 °F, for 2 h, AC), where almost all of the alpha
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