• DocumentCode
    1931239
  • Title

    Simulation of Ecophysiological Processes on 3D Virtual Stands with the ARCHIMED Simulation Platform

  • Author

    Dauzat, Jean ; Franck, Nicolas ; Rapidel, Bruno ; Luquet, Delphine ; Vaast, Philippe

  • Author_Institution
    Centre Int. de Rech. Agronomique pour le Dev., Montpellier
  • fYear
    2006
  • fDate
    13-17 Nov. 2006
  • Firstpage
    101
  • Lastpage
    108
  • Abstract
    Most classic ecophysiological models rely on crude representations of canopies as stacks of vegetation layers. Therefore, their use in complex canopies implies complicated adaptations as well as simplifying assumptions that are difficult to validate. Alternatively, the ARCHIMED simulation platform uses 3D virtual stands as a support for numerical simulations of biophysical processes such as leaf irradiation, transpiration and temperature and ultimately carbon assimilation. By doing so, detailed information can be integrated from the individual leaf scale up to the individual plant scale, even within complex stands such as agroforestry systems. Simple numerical methods are used for solving multiple feedbacks between light, energy, water and CO2 transfers at leaf, plant and plot scales. Numerical calculations applied at different scales allow simple implementation of complex models involving intricate processes.
  • Keywords
    digital simulation; ecology; forestry; geophysics computing; solid modelling; vegetation; 3D virtual stand; ARCHIMED simulation platform; agroforestry systems; biophysical process; canopy representation; carbon assimilation; ecophysiological process simulation; leaf irradiation; numerical simulation; temperature; transpiration; vegetation layer; Chemical elements; Feedback; Humidity; Input variables; Joining processes; Numerical simulation; Temperature; Vegetation; Visualization; Wind speed;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Plant Growth Modeling and Applications, 2006. PMA '06. Second International Symposium on
  • Conference_Location
    Beijing
  • Print_ISBN
    978-0-7695-2851-9
  • Type

    conf

  • DOI
    10.1109/PMA.2006.52
  • Filename
    4548355