Erhalte mehr Antworten von Arbeitgebern
Versende in nur wenigen Minuten einen passgenauen Lebenslauf.
ETH Zürich is seeking a motivated PhD student to join their Professorship of Solid Mechanics. This position focuses on computational earthquake rupture mechanics, requiring a strong background in computational mechanics and programming skills
The ideal candidate will engage in theoretical and numerical investigation of dynamic earthquake processes, providing opportunities for collaboration in a supportive and international research environment.
At the Professorship of Solid Mechanics (SMEC) in the Institute for Building Materials at ETH Zurich, we aim to understand how materials deform, degrade, break, and ultimately fail. Our research is driven by curiosity about the physical mechanisms that underlie failure and by the ambition to translate this understanding into more reliable and resilient materials and structures. By combining numerical modeling, laboratory experiments, and theoretical analyses, we seek to link microscopic processes with the macroscopic behavior of both engineering and natural systems and develop predictive tools for mechanical failure.
Our team is highly interdisciplinary and international, bringing together researchers with backgrounds in materials science, mechanics, and applied physics. We work across a broad range of topics, including the mechanics of particle systems (colloidal and granular), architected and topologically interlocked materials, the mechanics of fragility in collagen, the mechanics of earthquakes, fracture of soft materials, and modeling failure in multiphysical processes such as corrosion‑driven degradation of concrete. What unites these efforts is a shared curiosity about why complex materials fail and a commitment to developing new concepts, experiments, and models that advance our understanding of failure mechanics.
We are seeking a motivated, innovative PhD student with a background in computational mechanics to work on a project in computational earthquake rupture mechanics. The project will combine numerical method development and theoretical analysis to investigate how heterogeneous stress states and nonlinear near‑fault processes influence earthquake rupture propagation, arrest, and earthquake‑size statistics.
In line with our values, ETH Zurich encourages an inclusive culture. We promote equality of opportunity, value diversity and nurture a working and learning environment in which the rights and dignity of all our staff and students are respected. Visit our Equal Opportunities and Diversity website to find out how we ensure a fair and open environment that allows everyone to grow and flourish. Sustainability is a core value for us - we are consistently working towards a climate‑neutral future.
Curious? So are we.
The position is available with a flexible start date, possibly as soon as possible.