Research projects & supervision summary

Project Opportunities

Title: Material characterisation and residual stresses of 3D-printed steel structures

Summary of opportunity:

 

Research Area:

3D printed structures; steel structures; material characterisation

 

Opportunity synopsis:

Successful 3D-printing of steel structures requires optimisation of the printing process which in this project consists of wire-arc additive manufacturing (WAAM). The project will investigate the influence of weld track spacing and overlapping, scanning sequence, heat input, wire feed rate and pause time between track depositions. Test specimens will be 3D-printed for selected combinations of process parameters, and weld residual stresses will be measured in-situ on the neutron strain scanner at ANSTO, allowing the residual stress evolution to be investigated. The development of the residual stresses will be then modelled using finite element (macroscale) simulations that predict the overall residual stress field and distortion of WAAM-printed components. After verifying the accuracy of the numerical predictions against experimental results, the models will be used to uncover the interdependency between the weld process variables, including voltage, amps, speed, patterning, dwell time and interpass temperature, and the mechanical properties and residual stress fields, thereby enabling the rapid optimisation of WAAM-process variables.
Further, to understand the microstructure of WAAM-printed materials, optical, Scanning Electron Microscopy (SEM) and Electron Back-Scatter Diffraction (EBSD) procedures will be used for identification of microstructure, and neutron radiography and imaging will be used to study the efficiency of the printing process and the formation of volumetric defects such as porosity and inclusions. Based on these observations, a parameter set that minimises defects and optimises for residual stress, required microstructure and strength will be identified. The project will provide the successful candidate with cutting-edge and industry sought-after knowledge about the material characterisation of 3D-printed steel structures. It is part of a larger project supported by the Australian Research Council which comprises multiple PhD projects including research on the crystal plasticity mechanisms that control microstructure and mechanical properties, and the macroscopic testing and analysis of structural connections. 

Further information:
The scholarship is available to domestic and international students. The start date is flexible

 

How to apply: To apply, please email anna.paradowska@sydney.edu.au the following:

  • CV
  • Transcripts

 

 

 

----------Current Research Projects----------

Current PostDocs

Dr Halsey Ostergaard

DrVladislav Yakubov

 

Current PhD supervision

Development of efficient laser cleaning processes for Roads and Maritime Services Bridges - Yutaka Tsumura

Influence of residual stress and mechanical properties of laser cleaning processes on steel performance for Transport for NSW - Jade Tu

Phase -field and crystal plasticity modelling of 3D metal printing - Fernando VALIENTE DIES

Material characterisation and residual stresses of 3D-printed steel structures - Markus Domogala

 

Opportunity for 2xPhD student projects in advanced structural and composit materials.

Opportunity for 2xfemale PhD students (Australian or permanent residence only) in advanced construction materials

Please contact me for more details.

RESEARCH PROJECTS & ACTIVITIES

  • RESEARCH-BASED DEGREE SUPERVISION
    Advanced characterisation of steel welds
  • RESEARCH-BASED DEGREE SUPERVISION
    AI-based Quality Control in Structural Steel Fabrication
  • RESEARCH-BASED DEGREE SUPERVISION
    Composite Manufacturing and Finite Element Modelling of Ti-6Al-4V/Cu via Additive Friction Stir Deposition
  • RESEARCH-BASED DEGREE SUPERVISION
    Experimental and Numerical Analysis of Large-Scale Composite Structures Manufactured via Additive Friction Stir Deposition (AFSD)
  • RESEARCH-BASED DEGREE SUPERVISION
    Investigation of Microstructural and Mechanical Changes of Structural Steels Cleaned with Nanosecond and Femtosecond Lasers
  • RESEARCH-BASED DEGREE SUPERVISION
    Material characterisation and residual stresses of 3D-printed steel structures
  • RESEARCH-BASED DEGREE SUPERVISION
    Multi-Scale Thermo-Mechanical and Microstructural Simulations of Wire Arc Additive Manufacturing (WAAM) of 316L Stainless Steel
  • RESEARCH-BASED DEGREE SUPERVISION
    Optimization of Process Parameters and Wear Corrosion Properties of Multi-Layer Coatings
  • RESEARCH-BASED DEGREE SUPERVISION
    Towards Long Lasting Robot Operations in Nuclear Facilities