Jen Ash
· Lecturer, Stage ManagementRutgers University · Theater
Active 2011–2024
Research topics
- Artificial Intelligence
- Computer Science
- Quantum mechanics
- Mathematics
- Structural engineering
- Optics
- Physics
- Engineering
- Mathematical analysis
- Materials science
- Composite material
Selected publications
Soft Matter · 2020 · 51 citations
- Computer Science
- Artificial Intelligence
- Computer Science
Cellular mechanical metamaterials are a special class of materials whose mechanical properties are primarily determined by their geometry. However, capturing the nonlinear mechanical behavior of these materials, especially those with complex geometries and under large deformation, can be challenging due to inherent computational complexity. In this work, we propose a data-driven multiscale computational scheme as a possible route to resolve this challenge. We use a neural network to approximate the effective strain energy density as a function of cellular geometry and overall deformation. The network is constructed by "learning" from the data generated by finite element calculation of a set of representative volume elements at cellular scales. This effective strain energy density is then used to predict the mechanical responses of cellular materials at larger scales. Compared with direct finite element simulation, the proposed scheme can reduce the computational time up to two orders of magnitude. Potentially, this scheme can facilitate new optimization algorithms for designing cellular materials of highly specific mechanical properties.
Frequent coauthors
- 13 shared
Akshay Krishnamurthy
- 10 shared
Ryan P. Adams
- 9 shared
Surbhi Goel
- 8 shared
Cyril Zhang
- 6 shared
Alex Beatson
- 6 shared
Geoffrey Roeder
Princeton University
- 6 shared
Sham M. Kakade
- 6 shared
John Langford
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