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  4. Influence of thermo-mechanical processing on ordering kinetics in 18 karat red gold alloy
 
doctoral thesis

Influence of thermo-mechanical processing on ordering kinetics in 18 karat red gold alloy

Garcia Gonzalez, Marina  
2020

The aim of this project is to understand the correlation between alloy composition and the build-up of internal stresses in 18 carat Au-Ag-Cu alloys under thermo-mechanical loads. The copper rich end of this ternary system exhibits order-hardening of the equiatomic AuCu phase. There is very limited information in literature on the ordering transformation behavior of the copper-rich alloys under anisothermal annealing and in a pre-deformed state; and more importantly, how does the misfit strain induced by ordered nano- precipitates affect internal stresses of the material. The link between microstructural evolution and residual stresses is lacking. This project aims to quantify the coupling between the morphology of ordered precipitates and the evolution of residual stresses in pre-deformed samples, via in-situ temperature experiments with synchrotron x-ray and neutron diffraction and scattering methods. Electron microscopy will complement the microstructural investigations. This study will shed light on how thermo-mechanical loads impact internal stresses on 18 carat Au-Ag-Cu alloys subject to order-hardening of equiatomic AuCu.

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Type
doctoral thesis
DOI
10.5075/epfl-thesis-7666
Author(s)
Garcia Gonzalez, Marina  
Advisors
Van Swygenhoven, Helena  
•
Van Petegem, Steven  
Jury

professeure Cécile Hébert (présidente) ; professeure Helena Van Swygenhoven, Dr Steven Van Petegem (directeurs) ; Prof. William Curtin, Prof. Martin Heilmaier, Prof. Ludovic Thilly (rapporteurs)

Date Issued

2020

Publisher

EPFL

Publisher place

Lausanne

Public defense year

2020-03-09

Thesis number

7666

Total of pages

135

Subjects

In situ

•

X-ray diffraction

•

transmission electron microscopy

•

18 karat Gold alloys

•

Order-Disorder

•

Red Gold

•

Thermo-mechanical processing

•

Plastic Deformation

•

cooling rates

•

Isothermal Ageing

•

Anisothermal ageing

•

Heating

EPFL units
NXMM  
IMX  
Faculty
STI  
School
IMX  
Doctoral School
EDMX  
Available on Infoscience
February 25, 2020
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/166496
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