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Published: 01 January 2002
Fig. 21 Simplified deformation behavior (Ashby) maps of unalloyed annealed metals with (a) face-centered cubic crystal structure and (b) body-centered cubic crystal structure. Engineering alloys may behave somewhat differently than unalloyed metals, but these general trends are relatively More
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Published: 01 January 2000
Fig. 1 Simplified deformation behavior (Ashby) maps (a) for face-centered cubic metals and (b) for body-centered cubic metals. Source: Ref 2 More
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Published: 15 January 2021
Fig. 17 Simplified deformation behavior (Ashby) maps of unalloyed annealed metals with (a) face-centered cubic crystal structure and (b) body-centered cubic crystal structure. Engineering alloys may behave somewhat differently than unalloyed metals, but these general trends are relatively More
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Published: 31 December 2017
Fig. 23 Mechanism of oxide-scale deformation behavior in the roll bite in hot rolling of stainless steel with ZDDP (zinc dialkyl dithio phosphate) lubricant films. Source: Ref 108 More
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Published: 31 August 2017
Fig. 8 Nature of the deformation behavior. n , strain-hardening exponent More
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Published: 15 May 2022
Fig. 2 Illustration of deformation behavior. (a) Spring. (b) Rotational solid torsion bar. (c) Tensile solid specimen. Flow, Deformation, Solid behavior, Elastic nature: F = F(x); F ≠ F(v) ; F -force; x , Displacement; v, velocity; θ, torque; Θ, angular displacement More
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Published: 01 January 1997
Fig. 9 Deformation behavior of composites. The deformations for composites with various symmetries are schematically illustrated for in-plane loading and bending. Generally, laminates that are symmetric through the thickness and symmetric in-plane with respect to the applied stress are used More
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Published: 01 January 2000
Fig. 18 Deformability behavior under pure compressive loading as function of strain rate for titanium alloy Ti-62222Si. Open circles, failure under stable plastic flow; solid circles, failure with adiabatic shear bands More
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Published: 01 January 2005
Fig. 70 Deformation-temperature-time schedule and resulting flow behavior of superpurity aluminum deformed in torsion at an effective strain rate of 2.3 s −1 . Source: Ref 54 More
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Published: 01 January 2000
Fig. 17 Typical behavior of engineering compression stress and axial deformation under a biaxial compression-shear load More
Book Chapter

By Sammy Tin
Series: ASM Handbook
Volume: 22A
Publisher: ASM International
Published: 01 December 2009
DOI: 10.31399/asm.hb.v22a.a0005404
EISBN: 978-1-62708-196-2
... Abstract This article, to develop an understanding of the underlying mechanisms governing deformation at elevated temperatures, discusses the phenomenological effects resulting from temperature-induced thermodynamic and kinetic changes. It describes the deformation behavior of engineering...
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
... 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...
Series: ASM Handbook
Volume: 6
Publisher: ASM International
Published: 01 January 1993
DOI: 10.31399/asm.hb.v06.a0001419
EISBN: 978-1-62708-173-3
... deformation behavior of these alloys, which affect the selection and application of fusion and solid-state welding processes. The article provides specific examples of material responses to welding conditions and highlights the microstructural development in the weld zone. diffusion welding dispersion...
Book Chapter

By Adam Pilchak, Jim Williams
Series: ASM Handbook
Volume: 12
Publisher: ASM International
Published: 01 June 2024
DOI: 10.31399/asm.hb.v12.a0007034
EISBN: 978-1-62708-387-4
... Abstract This article presents a detailed discussion on the microstructures, physical metallurgy, classification, deformation behavior, and fracture modes of titanium alloys. It illustrates the effect of microstructure and texture on the fracture topography and fracture behavior of titanium...
Book Chapter

By David Dye
Series: ASM Handbook
Volume: 22A
Publisher: ASM International
Published: 01 December 2009
DOI: 10.31399/asm.hb.v22a.a0005418
EISBN: 978-1-62708-196-2
... Abstract Self-consistent models are a particular class of models in continuum micromechanics, that is, the field concerned with making predictions of the properties and evolution of aggregates whose single-crystal deformation behavior is known. This article provides information...
Book Chapter

By Erhard Krempl
Series: ASM Handbook
Volume: 20
Publisher: ASM International
Published: 01 January 1997
DOI: 10.31399/asm.hb.v20.a0002469
EISBN: 978-1-62708-194-8
... of deformation behavior and concludes with a discussion on lifetime analysis based on a strain approach. crack propagation deformation fatigue failure fatigue resistance fatigue strength high-cycle fatigue low-cycle fatigue multiaxial fatigue stress concentration tensile strength FATIGUE...
Image
Published: 01 January 2005
Fig. 65 Specimen cross sections showing relative amount of gage volume penetration (DGV) into specimen ends for two different deformation behaviors. (a) Distributed deformation. (b) Concentrated deformation. Source: Ref 20 More
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Published: 01 January 2005
Fig. 72 Flow behavior for a niobium-vanadium microalloyed steel deformed in 17 passes in a torsion machine. The specimen temperatures are represented by the upper bold line. Source: Ref 131 More
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Published: 01 January 2002
Fig. 10 Micrographs of worn PEEK surfaces at various operating temperatures. These pictures highlight the changes in the surface deformation behavior of the polymer with temperature. (a) 90 °C (194 °F). (b) 152 °C (306 °F). (c) 180 °C (356 °F). (d) 225 °C (437 °F). Arrows indicate the sliding More
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Published: 15 May 2022
Fig. 9 Micrographs of worn polyetheretherketone (PEEK) surfaces at various operating temperatures. These pictures highlight the changes in the surface deformation behavior of the polymer with temperature: (a) 90 °C (194 °F), (b) 152 °C (306 °F), (c) 180 °C (356 °F), and (d) 225 °C (437 °F More