| Qualification Type: | PhD |
|---|---|
| Location: | Lyngby - Denmark |
| Funding for: | UK Students, EU Students, International Students |
| Funding amount: | Not Specified |
| Hours: | Full Time |
| Placed On: | 6th August 2026 |
|---|---|
| Closes: | 2nd September 2026 |
The Section for Structures and Safety at DTU Civil and Mechanical Engineering Department is looking for an ambitious, motivated and skilled PhD student eager to dedicate three years to the diagnosis and prognosis of fatigue damage in steel structures, with emphasis on steel bridges.
Over the past century, steel has been the backbone of structures and infrastructures. Much of this built stock is reaching or has exceeded its design lifetime while being exposed to harsher operational conditions than originally designed for. Fatigue, where repetitive loads initiate and propagate cracks, is a key challenge in this aging era, undermining the functionality, safety and longevity of critical steel infrastructure. There is an urgent need to advance monitoring, diagnosis and prognosis methods that can reliably assess fatigue damage and predict remaining lifetime, enabling proactive maintenance strategies that extend service life and reduce CO2 emissions.
Through this PhD scholarship, you will contribute to the development of a multi-component framework for reliable and computationally efficient fatigue diagnosis and prognosis of steel structures. Building on the group's established expertise in virtual sensing and multi-fidelity modelling, your research will advance and integrate three core elements: (i) physics-based multi-fidelity structural models enabling high-resolution analysis at fatigue-prone hot-spots while maintaining computational efficiency through lower-fidelity simulation of non-critical regions, (ii) virtual sensing techniques for load and stress estimation from limited and optimally placed sensor data, and (iii) sophisticated fatigue analysis models combining advanced fracture mechanics with crack initiation and growth simulation. Additionally, you will explore fatigue mitigation strategies aimed at stress relaxation in fatigue-prone areas, minimizing material consumption and maximizing structural efficiency. The diagnostic and prognostic capabilities of the developed framework can be verified through simulated and/or laboratory-generated data.
Responsibilities and qualifications
Your primary responsibilities and tasks include:
Candidate Profile
You must have a two-year master's degree (120 ECTS points) or a similar degree with an academic level equivalent to a two-year master's degree.
Application procedure
To apply, please read the full job advertisement by clicking Apply button above.
Application deadline: 2 September 2026.
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