91ÇàÇà²Ý

News

More durable airplanes and buildings possible after physicists untangle engineering paradox

A team of researchers combined statistical physics and fracture mechanics to explain why cracks and faults travel faster when stress in materials is allowed to relax once in a while.
Two images of a cracked wall, the left one light grey and the right one dark grey.
Illustration: Margot Lepetit/Aalto University.

Cracks and faults are everywhere from tiny fractures in aircraft components to stress-induced wear in bridges, pipelines, and medical devices. Predicting when and how faults grow is a key challenge in engineering and materials science. Solving it could help engineers make components, materials and even buildings last longer.

Now, researchers from Aalto University’s Department of Applied Physics have uncovered a new way to describe how structural cracks expand using statistical physics. Their insights help untangle a long-standing paradox in fracture mechanics and could improve the reliability and durability of everything affected by cracks and faults. 

The findings were published in Physical Review Letters: .

In practice, materials are subjected to either static or periodic loads. Static loads—for example in stationary infrastructure like buildings—can cause slow creep deformation, and periodic loads—like those in rotating machinery or aircraft structures—lead to fatigue, where cracks advance over many cycles.

‘Fatigue cracks grow faster when stress relaxes between cycles. This has puzzled engineers for years because it would be more intuitive that stress without breaks resulted in faster-growing cracks,’ lead author and Postdoctoral Researcher Tero Mäkinen explains.

Mäkinen and members of the Complex Systems and Materials research group at Aalto showed that cracks don’t grow steadily but advance in intermittent bursts, overcoming microscopic barriers inside the material. This insight, drawn from statistical physics, combined with a new length scale discovered by the team describing the processes happening in the material just before the advancing fault, helps explain the paradox.

‘The work provides a missing link between empirical fatigue models and physics-based fracture theories. We created an experimentally measurable length scale that captures the material’s plasticity history and crack closure effects. This means we can now better predict failure and improve how new materials are designed,’ the group leader Professor Mikko Alava says.

The study provides a new way to describe crack growth in real-world materials, including construction and engineering staples like steel, aluminum and titanium.

‘The results could lead to more accurate lifetime predictions in industries where failure prevention is critical, including aerospace, civil engineering, and medical devices,’ Mäkinen concludes.

The work was carried out using the computational resources from Aalto’s Science-IT project and funded by Research Council of Finland (especially the Fluctuations in Fracture project).

More information:

Complex Systems and Materials (CSM)

Applies statistical physics to a wide variety of cross-disciplinary topics.

Department of Applied Physics
Piece of code on the computer screen, colourful text

Science-IT

Infrastructure for high-level computational research.

Services
  • Updated:
  • Published:
Share
URL copied!

Read more news

A man in a suit standing next to a large green metal door in an underground bunker.
Press releases Published:

Doctoral thesis: Finland’s civil defence shelters protect nearly everyone – but hotter summers may test their limits

Built over decades, Finland’s civil defence shelter system covers almost the entire population and has cost the equivalent of three years of defence spending.
Laajalahti nature reserve in Espoo
Press releases, Research & Art Published:

Rising sea could erase a significant portion of coastal habitats in Finland

More than a fifth of coastal meadows and sandy beaches may disappear by the turn of the century.
Sustainability Action Boosterin hankekoordinaattori Jasmin Järvinen vastaanotti palkinnon New Yorkissa.
Press releases Published:

Groundbreaking grant model supporting student sustainability projects wins award in New York

Sustainability Action Booster grant model, developed by Aalto University, has received a prestigious international recognition from an UN-affiliated educational initiative. The model funds students' own experiments, ideas, and prototypes, and is now being praised for its bold, student-centered approach.
Six images from the James Webb telescope showing galaxy clusters.
Research & Art Published:

James Webb telescope gives unprecedented open access to images of the deep universe

Researchers from Aalto University played a key role in cataloguing the largest ever sample of deep galaxies in the early universe