Experimental reference stress techniques for the prediction of creep deformation using lead alloy models

It is necessary at the design stage to predict the creep behaviour of components and structures operating at high temperature. The direct calculation of the creep behaviour requires extensive material data for the long service lives of the components and engineering methods are needed to minimise th...

Full description

Bibliographic Details
Main Author: Hyde, T.H.
Format: Thesis (University of Nottingham only)
Language:English
Published: 1976
Subjects:
Online Access:https://eprints.nottingham.ac.uk/11718/
_version_ 1848791342931509248
author Hyde, T.H.
author_facet Hyde, T.H.
author_sort Hyde, T.H.
building Nottingham Research Data Repository
collection Online Access
description It is necessary at the design stage to predict the creep behaviour of components and structures operating at high temperature. The direct calculation of the creep behaviour requires extensive material data for the long service lives of the components and engineering methods are needed to minimise the amount of data needed. This can be achieved in some cases by use of the so called Reference stress method and the objective of this work was the experimental prediction of the creep deformation of some components using developments of this idea. It has been achieved by the determination of Reference stresses from accelerated room temperature creep tests of lead alloy models. Reference stresses, which characterise the creep response of components in relation to uniaxial tests, have previously been determined by calculation. Reference stresses determined by the new experimental methods have been compared with analytical predictions for beams in pure bending, cantilevers, thin cylinders and thin spheres under internal pressure. Acceptable agreement was found for the Reference stresses and consequent predictions of creep deformations. The method has also been used successfully to predict creep strains in a cylindrical pressure vessel with a hemispherical end. The methods of chill-casting models from a lead-antimony-arsenic alloy have been improved and the material has been calibrated by constant and stepped load, uniaxial and biaxial (combined pressure and torsion of thin cylinders) tests. The creep strains cannot be characterised by separate. stress and time functions; a strain hardening law best describes its stepped load response; the von-Mises criterion gives accurate predictions of creep strains in the tension-compression quadrant but underestimates the creep strains in the tension-tension quadrant.
first_indexed 2025-11-14T18:27:00Z
format Thesis (University of Nottingham only)
id nottingham-11718
institution University of Nottingham Malaysia Campus
institution_category Local University
language English
last_indexed 2025-11-14T18:27:00Z
publishDate 1976
recordtype eprints
repository_type Digital Repository
spelling nottingham-117182025-02-28T11:15:12Z https://eprints.nottingham.ac.uk/11718/ Experimental reference stress techniques for the prediction of creep deformation using lead alloy models Hyde, T.H. It is necessary at the design stage to predict the creep behaviour of components and structures operating at high temperature. The direct calculation of the creep behaviour requires extensive material data for the long service lives of the components and engineering methods are needed to minimise the amount of data needed. This can be achieved in some cases by use of the so called Reference stress method and the objective of this work was the experimental prediction of the creep deformation of some components using developments of this idea. It has been achieved by the determination of Reference stresses from accelerated room temperature creep tests of lead alloy models. Reference stresses, which characterise the creep response of components in relation to uniaxial tests, have previously been determined by calculation. Reference stresses determined by the new experimental methods have been compared with analytical predictions for beams in pure bending, cantilevers, thin cylinders and thin spheres under internal pressure. Acceptable agreement was found for the Reference stresses and consequent predictions of creep deformations. The method has also been used successfully to predict creep strains in a cylindrical pressure vessel with a hemispherical end. The methods of chill-casting models from a lead-antimony-arsenic alloy have been improved and the material has been calibrated by constant and stepped load, uniaxial and biaxial (combined pressure and torsion of thin cylinders) tests. The creep strains cannot be characterised by separate. stress and time functions; a strain hardening law best describes its stepped load response; the von-Mises criterion gives accurate predictions of creep strains in the tension-compression quadrant but underestimates the creep strains in the tension-tension quadrant. 1976 Thesis (University of Nottingham only) NonPeerReviewed application/pdf en arr https://eprints.nottingham.ac.uk/11718/1/460244.pdf Hyde, T.H. (1976) Experimental reference stress techniques for the prediction of creep deformation using lead alloy models. PhD thesis, University of Nottingham. Creep behaviour Reference stress method Thermal stresses Creep of lead alloys
spellingShingle Creep behaviour
Reference stress method
Thermal stresses
Creep of lead alloys
Hyde, T.H.
Experimental reference stress techniques for the prediction of creep deformation using lead alloy models
title Experimental reference stress techniques for the prediction of creep deformation using lead alloy models
title_full Experimental reference stress techniques for the prediction of creep deformation using lead alloy models
title_fullStr Experimental reference stress techniques for the prediction of creep deformation using lead alloy models
title_full_unstemmed Experimental reference stress techniques for the prediction of creep deformation using lead alloy models
title_short Experimental reference stress techniques for the prediction of creep deformation using lead alloy models
title_sort experimental reference stress techniques for the prediction of creep deformation using lead alloy models
topic Creep behaviour
Reference stress method
Thermal stresses
Creep of lead alloys
url https://eprints.nottingham.ac.uk/11718/