IFP-C3D: an unstructured parallel solver for reactive compressible gas flow with spray (Record no. 170254)

MARC details
000 -LEADER
fixed length control field 02599nab a2200205 4500
008 - CÓDIGOS DE INFORMACIÓN DE LONGITUD FIJA - INFORMACIÓN GENERAL
Campo de control de longitud fija 260224s2009 xxu
245 00 - TITULO
Título IFP-C3D: an unstructured parallel solver for reactive compressible gas flow with spray
260 ## - PUBLICACION, DISTRIBUCION, ETC
Lugar de publicación, distribución, etc.
Nombre de publicador, distribuidor, etc.
Fecha de publicación, distribución, etc. mayo/jun. 2009
270 ## - FECHA DE CARGA
Fecha de carga 05/08/2009 ; 05/08/2009
300 ## - DESCRIPCION FISICA
Otra extensión 26 p. ; 309-335
520 ## - RESUMEN, ETC
Resumen Transcripción del resúmen publicado por el autor: IFP-C3D, a hexahedral unstructured parallel solver dedicated to multiphysics calculation, is being developed at IFP to compute the compressible combustion in internal engines. IFP-C3D uses an unstructured formalism, the finite volume method on staggered grids, time splitting, SIMPLE loop, sub-cycled advection, turbulent and Lagrangian spray and a liquid film model. Original algorithms and models such as the conditional temporal interpolation methodology for moving grids, the remapping algorithm for transferring quantities on different meshes during the computation enable IFP-C3D to deal with complex moving geometries with large volume deformation induced by all moving geometrical parts (intake/exhaust valve, piston). The Van Leer and Superbee slop limiters are used for advective fluxes and the wall law for the heat transfer model. Physical models developed at IFP for combustion (ECFM gasoline combustion model and ECFM3Z for Diesel combustion model), for ignition (TKI for auto-ignition and AKTIM for spark plug ignition) and for spray modelling enable the simulation of a large variety of innovative engine configurations from non-conventional Diesel engines using for instance HCCI combustion mode, to direct injection hydrogen internal combustion engines. Large super-scalar machines up to 1 000 processors are being widely used and IFP-C3D has been optimized for running on these Cluster machines. IFP-C3D is parallelized using the Message Passing Interface (MPI) library to distribute calculation over a large number of processors. Moreover, IFP-C3D uses an optimized linear algebraic library to solve linear matrix systems and the METIS partitionner library to distribute the computational load equally for all meshes used during the calculation and in particular during the remap stage when new meshes are loaded. Numerical results and timing are presented to demonstrate the computational efficiency of the code.
581 ## - ESTADO DE COLECCIÓN
Estado de colección 3
773 0# - CORRECCIÓN
Título Oil and Gas Science and Technology
Partes relacionadas 64
942 ## - DESC. DE MATERIAL
Tipo de item KOHA Artículo de Revista
100 1# - RESPONSABLE PERSONAL
Apellido, Nombre Bohbot, J.
9 (RLIN) 21415
100 1# - RESPONSABLE PERSONAL
Apellido, Nombre Gillet, N.
9 (RLIN) 41721
100 1# - RESPONSABLE PERSONAL
Apellido, Nombre Benkenida, A.
9 (RLIN) 21417
Holdings
Biblioteca propietaria Biblioteca actual Fecha de adquisición Inventario Total de préstamos Inventario Fecha de carga Tipo de item KOHA
Biblioteca Alejandro Angel Bulgheroni Biblioteca Alejandro Angel Bulgheroni 05/03/2026 200045081   200045081 05/03/2026 Artículo de Revista


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