Microscale swimming: The molecular dynamics approach

dc.creatorRapaport, D. C.
dc.date2007-05-11
dc.date2007-12-06
dc.date.accessioned2026-07-07T08:47:19Z
dc.date.available2026-07-07T08:47:19Z
dc.descriptionThe self-propelled motion of microscopic bodies immersed in a fluid medium is studied using molecular dynamics simulation. The advantage of the atomistic approach is that the detailed level of description allows complete freedom in specifying the swimmer design and its coupling with the surrounding fluid. A series of two-dimensional swimming bodies employing a variety of propulsion mechanisms -- motivated by biological and microrobotic designs -- is investigated, including the use of moving limbs, changing body shapes and fluid jets. The swimming efficiency and the nature of the induced, time-dependent flow fields are found to differ widely among body designs and propulsion mechanisms.
dc.description5 pages, 3 figures (minor changes to text)
dc.identifierhttps://arxiv.org/abs/0705.1606
dc.identifierhttp://arxiv.org/abs/0705.1606
dc.identifierPhys. Rev.Lett. 99 (2007) 238101
dc.identifierdoi:10.1103/PhysRevLett.99.238101
dc.identifier.urihttp://salesiana.dossiersoluciones.com/handle/123456789/143559
dc.subjectSoft Condensed Matter
dc.subjectSubcellular Processes
dc.titleMicroscale swimming: The molecular dynamics approach
dc.typetext

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