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The CoMputational Mechanics and Methods (CM3 [cubic centimeter]) Group in the Department of Mechanical and Aerospace Engineering at the University of Kentucky is a research unit that extensively and intensively develops and applies computational methods (e.g., finite elements and meshfree/meshless methods) to model and simulate real world mechanics-related problems.

The research interests of our group lie primarily in the broad areas of Computational Mechanics and Computational Materials, with research focus in following main topics:

  • Multi-scale multi-physics modeling of solid materials (brittle, ductile);
  • Damage and failure modeling of solids and structures under normal and extreme conditions (high temperature, high velocity, etc);
  • Mechanics of material systems with stochastic heterogeneous microstructures (composites, polycrystals, etc);
  • Advanced methods for Integrated Computational Materials Engineering and materials design.

We believe that new and existing ideas become better through exploration and collaboration. If you find what we are doing is interesting to you, don’t hesitate to contact us.

Cheers!


Four Golden Lessons (to PhD students)

By Steven Weinberg

  • Lesson 1: "No one knows everything, and you don't have to."
  • Lesson 2: "While you are swimming and not sinking you should aim for rough water."
  • Lesson 3: "To forgive yourself for wasting time."
  • Lesson 4: "Learn something about the history of science, or at a minimum the history of your own branch of science."
deep sea

News

New paper coauthored by Dr. Chen on numerical computation of fluid-solid mixture flow has been accepted by JFLS

New paper entitled "Numerical Computation of Fluid-Solid Mixture Flow using the SPH-VCPM-DEM Method" has been accepted for publication in the Journal of Fluids and Structures.

Welcome new group member Di Liu

We have a new group member joined our group in Fall 2021 semester. Welcome Di!

New paper coauthored by Dr. Chen on modeling crystal plasticity using LPM has been accepted by CMAME

New paper entitled "Modeling Plasticity of Cubic Crystals Using a Nonlocal Lattice Particle Method" has been accepted for publication in Computer Methods in Applied Mechanics and Engineering.

New paper on studying the wave dispersion properties of the peridynamic bond-associated correspondence model has been accepted by the IJNME

New paper entitled "Peridynamic bond-associated correspondence model: Wave dispersion property" has been accepted for publication in the International Journal for Numerical Methods in Engineering.

Dr. Chen was appointed as an Associate Editor of the CMES journal

Dr. Chen was appointed as an Associate Editor of the CMES-Computer Modeling in Engineering & Sciences journal.

New paper on higher-order peridynamic material correspondence models has been accepted by the Journal of Elasticity

New paper entitled "Higher-Order Peridynamic Material Correspondence Models for Elasticity" has been accepted for publication in the Journal of Elasticity.

Welcome new group member Donglai Liu

We have a new group member joined our group in Fall 2020 semester. Welcome Donglai!

New paper coauthored by Dr. Chen on coupled SPH-VCPM for FSI modeling has been accepted by Ocean Engineering

New paper entitled "A Coupled Smoothed Particle Hydrodynamics-Volume Compensated Particle Method (SPH-VCPM) for Fluid Structure Interaction (FSI) Modeling" has been accepted for publication in the Ocean Engineering.

New paper coauthored by Dr. Chen on modeling elastoplastic materials using nonlocal lattice method has been accepted by IJNME

New paper entitled "A Nonlocal Lattice Particle Model for J2 Plasticity" has been accepted for publication in the International Journal for Numerical Methods in Engineering.

Dr. Chen and WaiLam presented work on peridynamics at IMECE2019

Our work on "Thermomechanical Modeling of Fracture in Ceramic Nuclear Fuel: a Peridynamics Approach" and "A Peridynamic Correspondence Model using Higher-Order Deformation Gradient" were presented at the ASME IMECE2019 conference, Salt Lake City, UT.