Title of article :
A temperature equation for coupled atomistic/continuum simulations Original Research Article
Author/Authors :
Harold S. Park، نويسنده , , Eduard G. Karpov، نويسنده , , Wing Kam Liu، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2004
Pages :
20
From page :
1713
To page :
1732
Abstract :
We present a simple method for calculating a continuum temperature field directly from a molecular dynamics (MD) simulation. Using the idea of a projection matrix previously developed for use in the bridging scale, we derive a continuum temperature equation which only requires information that is readily available from MD simulations, namely the MD velocity, atomic masses and Boltzmann constant. As a result, the equation is valid for usage in any coupled finite element (FE)/MD simulation. In order to solve the temperature equation in the continuum where an MD solution is generally unavailable, a method is utilized in which the MD velocities are found at arbitrary coarse scale points by means of an evolution function. The evolution function is derived in closed form for a 1D lattice, and effectively describes the temporal and spatial evolution of the atomic lattice dynamics. It provides an accurate atomistic description of the kinetic energy dissipation in simulations, and its behavior depends solely on the atomic lattice geometry and the form of the MD potential. After validating the accuracy of the evolution function to calculate the MD variables in the coarse scale, two 1D examples are shown, and the temperature equation is shown to give good agreement to MD simulations.
Keywords :
Lattice evolution function , Multiple scale simulations , Bridging scale , Finite temperature , Coupling methods , molecular dynamics , Finite elements
Journal title :
Computer Methods in Applied Mechanics and Engineering
Serial Year :
2004
Journal title :
Computer Methods in Applied Mechanics and Engineering
Record number :
892984
Link To Document :
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