Sort by
Refine Your Search
-
Category
-
Country
-
Employer
- CNRS
- Delft University of Technology (TU Delft)
- University of Nottingham
- University of Twente
- University of Twente (UT)
- AALTO UNIVERSITY
- IDAEA-CSIC
- Institute of Organic Chemistry Polish Academy of Sciences
- Itä-Suomen yliopisto
- Linköping University
- Lulea University of Technology
- Luleå University of Technology
- Monash University
- National University of Singapore
- Queensland University of Technology
- Technical University of Denmark (DTU)
- The University of Chicago
- The University of Manchester
- University of East Anglia
- University of Iceland
- 10 more »
- « less
-
Field
-
metal–impurity interactions, interfacial phenomena and its commitment to computation-guided design for a sustainable future. You will collaborate closely with researchers from a broad consortium
-
of hydrogen embrittlement in circular steels aligns perfectly with the team's broader interest in metal–impurity interactions, interfacial phenomena and its commitment to computation-guided design for a
-
progressive interfacial damage development as a function of fatigue loading. The models will be implemented and validated in commercial finite element (FE) software. The resulting FE model will define
-
will be used to develop constitutive models for the welded interface. In particular, these models should describe progressive interfacial damage development as a function of fatigue loading. The models
-
synchrotron x-ray facility. Must be able to fulfill requirements for access to Argonne National Laboratory and the Advanced Photon Source. Preferred qualifications: Experience with interfacial X-ray scattering
-
their mechanical performance and damage evolution. The experimental results will be used to develop constitutive models for the welded interface. In particular, these models should describe progressive interfacial
-
for high-aspect-ratio vertical interconnects characterise the results (SEM, AFM, XCT, optical microscopy) for geometric accuracy, durability and interfacial strength -validate scalability and
-
. Particular emphasis will be placed on understanding the relationships between catalyst structure, interfacial processes, local reaction environments, and electrochemical performance. The project aims
-
interconnects characterise the results (SEM, AFM, XCT, optical microscopy) for geometric accuracy, durability and interfacial strength -validate scalability and sustainability: less material waste, better energy
-
developed during this work will deepen our understanding of nonlinear wave phenomena in fluid mechanics and contribute to the broader theory of interfacial flows. Entry Requirements The minimum entry