Sort by
Refine Your Search
-
Listed
-
Category
-
Country
-
Employer
- Carnegie Mellon University
- Oak Ridge National Laboratory
- Delft University of Technology (TU Delft)
- Aalborg University
- CNRS
- KTH Royal Institute of Technology
- Stony Brook University
- Eindhoven University of Technology (TU/e)
- Helmholtz Association of German Research Centres
- Helmholtz-Zentrum Dresden-Rossendorf - HZDR - Helmholtz Association
- Northeastern University
- Technical University of Munich
- AALTO UNIVERSITY
- Argonne
- CNRS-LMA
- DURHAM UNIVERSITY
- Deutsches Elektronen-Synchrotron DESY
- Durham University
- Durham University;
- EPFL
- Harvard University
- IMEC
- King Abdullah University of Science and Technology
- King's College London
- Max Planck Institute for Plasma Physics (Garching), Garching
- Michigan State University
- NEW YORK UNIVERSITY ABU DHABI
- National Aeronautics and Space Administration (NASA)
- National Energy Technology Laboratory (NETL)
- Pennsylvania State University
- SUNY University at Buffalo
- Singapore-MIT Alliance for Research and Technology
- Tampere University
- Technical University Of Denmark
- Texas A&M University
- The University of Western Australia
- UNIVERSITY OF VIENNA
- University of Borås
- University of Miami
- University of Minnesota
- University of New Hampshire
- University of North Carolina at Charlotte
- University of Oxford
- University of Oxford;
- Université de Limoges
- Virginia Tech
- 36 more »
- « less
-
Field
-
-thin form factor, subwavelength modulation capabilities, and modulation flexibility, metasurfaces (MSs) represent a groundbreaking solution to overcome the fundamental limitations of conventional AR/VR
-
-domain, finite element, or method of moments, and you use these tools to translate ideas into robust antenna concepts. It is natural for you to work with advanced antenna architectures, for example
-
in day-to-day work. Strong computational and numerical modelling skills, including finite element or multiphysics simulation and scientific programming. Awareness of diversity and equal treatment
-
to demonstrate and translate these devices to practical medical applications. Core Responsibilities: Simulation and design of piezoelectric ultrasonic transducers using the finite element method (FEM)Conduct
-
ambitious researcher with a strong background and experience in biomechanics, finite element modelling (FEM), medical image processing, additive manufacturing (AM). The project will be carried out in close
-
with analytical modeling, reduced-order models, numerical simulation, finite element methods, optimization, or statistical-mechanics-based approaches. Proficiency in one or more programming languages or
-
modeling and simulation • Development in Finite element and alternative discretization methods (e.g. Lattice Boltzmann methods) • High-dimensional algorithms and high-performance computing
-
., Multiphysics finite element analysis, Matlab, Labview etc.) cleanroom experience, and characterization of electronic devices are required. Further, knowledge of system level integration and haptics feedback in
-
(photolithography, metal evaporation, etching) Experience with packaging schemes such as flip-chip bonding, anisotropic conductive film bonding and wire bonding Finite element Method (FEM) simulations (MEMS, Electro
-
by working to develop novel algorithms on finite element method, isogeometric analysis, geometric modeling, machine learning and digital twins to study various applications such as computational