Swinburne
Browse

A simple, direct derivation and proof of the validity of the SLLOD equations of motion for generalized homogeneous flows

Download (103.93 kB)
journal contribution
posted on 2024-07-26, 14:46 authored by Peter J. Daivis, Billy ToddBilly Todd
We present a simple and direct derivation of the SLLOD equations of motion for molecular simulations of general homogeneous flows. We show that these equations of motion (1) generate the correct particle trajectories, (2) conserve the total thermal momentum without requiring the center of mass to be located at the origin, and (3) exactly generate the required energy dissipation. These equations of motion are compared with the g -SLLOD and p -SLLOD equations of motion, which are found to be deficient. Claims that the SLLOD equations of motion are incorrect for elongational flows are critically examined and found to be invalid. It is confirmed that the SLLOD equations are, in general, non-Hamiltonian. We derive a Hamiltonian from which they can be obtained in the special case of a symmetric velocity gradient tensor. In this case, it is possible to perform a canonical transformation that results in the well-known DOLLS tensor Hamiltonian.

History

Available versions

PDF (Published version)

ISSN

0021-9606

Journal title

Journal of Chemical Physics

Volume

124

Issue

19

Pagination

194103-

Publisher

American Institute of Physics

Copyright statement

Copyright © 2006 American Institute of Physics. The published version is reproduced in accordance with the copyright policy of the publisher.

Language

eng

Usage metrics

    Publications

    Categories

    No categories selected

    Keywords

    Exports

    RefWorks
    BibTeX
    Ref. manager
    Endnote
    DataCite
    NLM
    DC