• DocumentCode
    1400322
  • Title

    A new line integral convolution algorithm for visualizing time-varying flow fields

  • Author

    Shen, Han-Wei ; Kao, David L.

  • Author_Institution
    NASA Ames Res. Center, Moffett Field, CA, USA
  • Volume
    4
  • Issue
    2
  • fYear
    1998
  • Firstpage
    98
  • Lastpage
    108
  • Abstract
    New challenges on vector field visualization emerge as time dependent numerical simulations become ubiquitous in the field of computational fluid dynamics (CFD). To visualize data generated from these simulations, traditional techniques, such as displaying particle traces, can only reveal flow phenomena in preselected local regions and thus, are unable to track the evolution of global flow features over time. The paper presents an algorithm, called UFLIC (Unsteady Flow LIC), to visualize vector data in unsteady flow fields. Our algorithm extends a texture synthesis technique, called Line Integral Convolution (LIC), by devising a new convolution algorithm that uses a time-accurate value scattering scheme to model the texture advection. In addition, our algorithm maintains the coherence of the flow animation by successively updating the convolution results over time. Furthermore, we propose a parallel UFLIC algorithm that can achieve high load balancing for multiprocessor computers with shared memory architecture. We demonstrate the effectiveness of our new algorithm by presenting image snapshots from several CFD case studies
  • Keywords
    computer animation; data visualisation; flow visualisation; fluid dynamics; image texture; parallel algorithms; physics computing; CFD case studies; Line Integral Convolution; UFLIC; Unsteady Flow LIC; computational fluid dynamics; convolution algorithm; flow animation; global flow features; image snapshots; line integral convolution algorithm; load balancing; multiprocessor computers; parallel UFLIC algorithm; particle traces; preselected local regions; shared memory architecture; texture advection; texture synthesis technique; time dependent numerical simulations; time varying flow field visualization; time-accurate value scattering scheme; unsteady flow fields; vector field visualization; Animation; Coherence; Computational fluid dynamics; Computational modeling; Convolution; Data visualization; Load management; Numerical simulation; Particle scattering; Particle tracking;
  • fLanguage
    English
  • Journal_Title
    Visualization and Computer Graphics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1077-2626
  • Type

    jour

  • DOI
    10.1109/2945.694952
  • Filename
    694952