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Book: Fatigue and Fracture
Series: ASM Handbook
Volume: 19
Publisher: ASM International
Published: 01 January 1996
DOI: 10.31399/asm.hb.v19.a0002384
EISBN: 978-1-62708-193-1
... Abstract This article discusses the various options for controlling fatigue and fractures in welded steel structures, with illustrations. It describes the factors that influence them the most. The article details some of the leading codes and standards for designing against failure mechanisms...
Abstract
This article discusses the various options for controlling fatigue and fractures in welded steel structures, with illustrations. It describes the factors that influence them the most. The article details some of the leading codes and standards for designing against failure mechanisms. Codes are presented for fitness-for-service and standards for fatigue and fracture control.
Book Chapter
Fatigue and Fracture Control for Powder Metallurgy Components
Available to PurchaseBook: Fatigue and Fracture
Series: ASM Handbook
Volume: 19
Publisher: ASM International
Published: 01 January 1996
DOI: 10.31399/asm.hb.v19.a0002374
EISBN: 978-1-62708-193-1
... is the controlling load parameter for high-cycle fatigue endurance, the embedded pore in a tensile field is a reasonably approximate model for a stressed porous metal without interacting stress fields (one of less than 10% porosity). One can expect the local pore-dominated stress field to control local events...
Abstract
This article discusses the fracture and fatigue properties of powder metallurgy (P/M) materials depending on the microstructure. It describes the effects of porosity on the P/M processes relevant to fatigue and fracture resistance. The article details the factors determining fatigue and fracture resistance of P/M materials. It reviews the methods employed to improve fatigue and fracture resistance, including carbonitriding, surface strengthening and sealing treatments, shot-peening, case hardening, repressing and resintering, coining, sizing, and postsintering heat treatments. Safety factors for P/M materials are also detailed.
Image
Strain control fatigue life as a function of elastic-, plastic-, total-stra...
Available to PurchasePublished: 01 January 1996
Fig. 31 Strain control fatigue life as a function of elastic-, plastic-, total-strain amplitude
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Crack tip stress-intensity control of fatigue crack propagation in 7075-T6 ...
Available to PurchasePublished: 01 January 2003
Fig. 10 Crack tip stress-intensity control of fatigue crack propagation in 7075-T6 aluminum alloy sheet—long-transverse loading. Remote and wedge force methods of loading specimens in aqueous 3.5% sodium chloride environment and benign dry air environment. Source: Ref 46
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Stereomicrograph image of the fracture from a fatigue-tested (load control)...
Available to PurchasePublished: 01 June 2024
Fig. 7 Stereomicrograph image of the fracture from a fatigue-tested (load control) additive-manufactured specimen. The fracture face exhibits multiple fatigue origins originating at surface discontinuities associated with the additive manufacturing process. This specimen was built up
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Fatigue crack-initiation site in Ti-6Al-4V subjected to strain-control low-...
Available to PurchasePublished: 01 June 2024
Fig. 31 Fatigue crack-initiation site in Ti-6Al-4V subjected to strain-control low-cycle fatigue showing isolated faceted primary α separated by cyclic ductile tearing. Morphology such as this typically correlates to longer fatigue lifetime.
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Strain-controlled fatigue tests. Strain-life fatigue curves for metal-matri...
Available to PurchasePublished: 30 November 2018
Fig. 9 Strain-controlled fatigue tests. Strain-life fatigue curves for metal-matrix composite with alumina contents from 0 to 15%. AS, as-sintered; HT, heat treated, T6. Source: Ref 71
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Stress-strain hysteresis in a constant-amplitude strain-controlled fatigue ...
Available to PurchasePublished: 01 January 1996
Fig. 9 Stress-strain hysteresis in a constant-amplitude strain-controlled fatigue test. Source: Ref 32
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Strain-controlled matrix fatigue data plotted in terms of the effective str...
Available to PurchasePublished: 01 January 1996
Fig. 26 Strain-controlled matrix fatigue data plotted in terms of the effective strain criterion. Source: Ref 49
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Low-cycle strain-controlled fatigue behavior of cast and wrought carbon ste...
Available to PurchasePublished: 01 December 2008
Fig. 19 Low-cycle strain-controlled fatigue behavior of cast and wrought carbon steels in the normalized-and-tempered condition
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Effect of elevated temperature on strain-controlled fatigue behavior of ann...
Available to Purchase
in Elevated-Temperature Properties of Ferritic Steels
> Properties and Selection: Irons, Steels, and High-Performance Alloys
Published: 01 January 1990
Fig. 54 Effect of elevated temperature on strain-controlled fatigue behavior of annealed 2 1 4 Cr-1Mo steel. Strain rate was greater than 4 mm/m · s. Source: Ref 84
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Stress/number of cycles to fatigue curves resulting from stress-controlled ...
Available to PurchasePublished: 30 November 2018
Fig. 6 Stress/number of cycles to fatigue curves resulting from stress-controlled fatigue testing of powder metallurgy aluminum alloy AC-2236, fully reversed (R = −1). Machined test bars, axial loading. Source: Ref 63
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Stress/number of cycles to fatigue curves resulting from stress-controlled ...
Available to PurchasePublished: 30 November 2018
Fig. 7 Stress/number of cycles to fatigue curves resulting from stress-controlled fatigue testing of powder metallurgy aluminum alloy AC-2236, in tensile mode only (R = 0.1)
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Strain-controlled fatigue tests. Cyclic stress-strain curves for metal-matr...
Available to PurchasePublished: 30 November 2018
Fig. 8 Strain-controlled fatigue tests. Cyclic stress-strain curves for metal-matrix composite with alumina contents from 0 to 15%. AS, as-sintered; HT, heat treated, T6. Source: Ref 71
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Fracture surface of samples broken using strain-controlled low-cycle fatigu...
Available to PurchasePublished: 31 August 2017
Fig. 28 Fracture surface of samples broken using strain-controlled low-cycle fatigue (LCF) tests at 400 °C (752 °F) on ductile cast iron. Chemical composition: 3.0–3.6% C, 3.8–4.4% Si, <0.5% Mn, <0.04% P, <0.02% S, 0.5–0.7% Mo, bal Fe. Intergranular fracture could be attributed
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Cyclic load response during strain-controlled low-cycle fatigue test of ann...
Available to Purchase
in Fatigue, Creep Fatigue, and Thermomechanical Fatigue Life Testing
> Mechanical Testing and Evaluation
Published: 01 January 2000
Fig. 20 Cyclic load response during strain-controlled low-cycle fatigue test of annealed AISI 304 stainless steel in air at 816 °C (1500 °F). Total strain range, 3.26%, 0.056 Hz. (a) Cyclic load response for defining cyclic life to crack initiation. (b) Cyclic load range and ratio of tensile
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Stress-strain hysteresis in (a) constant-amplitude strain-controlled fatigu...
Available to PurchasePublished: 15 June 2019
Fig. 21 Stress-strain hysteresis in (a) constant-amplitude strain-controlled fatigue test and (b) several generalizations of material behavior. Source: Ref 38
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Book Chapter
Fatigue and Fracture Mechanics
Available to PurchaseSeries: ASM Handbook
Volume: 8
Publisher: ASM International
Published: 01 January 2000
DOI: 10.31399/asm.hb.v08.a0003313
EISBN: 978-1-62708-176-4
... Abstract The separation of the fatigue process into crack initiation and propagation phases has been an important and useful advance in engineering. The combined approach of strain-control testing and the development fracture mechanics of fatigue crack growth rates is a key advance that allows...
Abstract
The separation of the fatigue process into crack initiation and propagation phases has been an important and useful advance in engineering. The combined approach of strain-control testing and the development fracture mechanics of fatigue crack growth rates is a key advance that allows better understanding and simulation of both crack nucleation and the subsequent crack growth mechanisms. This article reviews three basic types of fatigue properties: stress-life, strain life, and fracture mechanic crack growth.
Book: Fatigue and Fracture
Series: ASM Handbook
Volume: 19
Publisher: ASM International
Published: 01 January 1996
DOI: 10.31399/asm.hb.v19.a0002350
EISBN: 978-1-62708-193-1
... as fatigue properties. These have been aptly categorized by Hoeppner ( Ref 8 ) as intrinsic and extrinsic factors, and substantial progress has been made in understanding and controlling both. Design of the materials covers the intrinsic characteristics (e.g., composition, grain size, cleanliness level...
Abstract
Fatigue properties are an integral part of materials comparison activities and offer information for structural life estimation in many engineering applications. This article presents three general approaches to fatigue design, with a discussion on their respective attributes. These include infinite-life criterion, finite-life criterion, and damage tolerant criterion. The article describes the individual property requirements of these approaches. It also presents selected examples of properties that reflect some detail of these approaches.
Book Chapter
Fatigue, Creep Fatigue, and Thermomechanical Fatigue Life Testing
Available to PurchaseSeries: ASM Handbook
Volume: 8
Publisher: ASM International
Published: 01 January 2000
DOI: 10.31399/asm.hb.v08.a0003314
EISBN: 978-1-62708-176-4
... to accomplish closed loop control of materials testing systems in performing standard materials tests and for the development of custom testing applications. It explores the advanced software tools for materials testing. The article includes a description of baseline isothermal fatigue testing, creep-fatigue...
Abstract
This article describes the phenomena of crack initiation and early growth. It examines specimen design and preparation as well as the apparatus used in crack initiation testing. The article provides descriptions of the various commercially available fatigue testing machines: axial fatigue testing machines and bending fatigue machines. Load cells, grips and alignment devices, extensometry and strain measuring devices, environmental chambers, graphic recorders, furnaces, and heating systems of ancillary equipment are discussed. The article presents technologies available to accomplish closed loop control of materials testing systems in performing standard materials tests and for the development of custom testing applications. It explores the advanced software tools for materials testing. The article includes a description of baseline isothermal fatigue testing, creep-fatigue interaction, and thermomechanical fatigue. The effects of various variables on fatigue resistance and guidelines for fatigue testing are also presented.
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