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GiBUU

Changes between Version 15 and Version 16 of GiBUU_Code_history


Ignore:
Timestamp:
Jan 7, 2009, 6:09:29 PM (16 years ago)
Author:
oliver
Comment:

Removing distinguishment between "red" and "black" names. Adding "*" as a link to our wikis - any better ideas? I guess links to our home wiki pages are still useful???

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  • GiBUU_Code_history

    v15 v16  
    66From then on a number of very good young scientists have worked on it. '''Wolfgang Cassing''' joined the effort at this point. First, '''Koji Niita''' (Japan) rewrote again large parts of the code and implemented pion production, photon production and a good description of the nuclear ground state, '''Angel de Paoli''' and '''Gustavo Batko''' (both Argentina) used it to calculate etas and kaons produced in heavy-ion collisions and '''Gyuri Wolf''' (Hungary) did a series of important papers on dilepton production which provided some of the motivation for the construction of HADES, the dilepton spectrometer at GSI. Very early on, a parallel development to construct a manifestly covariant BUU code was started. Giessen PhD students '''Volker Koch''' and '''Bernhard Blaettel''' wrote the first such code and used it to analyse BEVALAC cata on flow and particle production (1990). '''Klaus Weber''' in his thesis (1992) did work on a covariant description of the momentum dependence of the mean field at high energies, where the Walecka model becomes too repulsive. '''Tomoyuki Maruyama''' (Japan) followed up on this and did the first numerical implementation of an explicit momentum dependence that corrects this deficiency of the Walecka model at high energies. Giessen PhD student '''Andreas Lang''' performed the first thermal analysis of heavy-ion reactions with this code; he analyzed the degree of equilibration during heavy-ion collisions and showed that full equilibration is reached on in the latest stages of a collision when the nuclear density has already decreased below its equilibrium value. Another Giessen PhD student, '''Stefan Teis''', then did a very complete analysis of pion and eta production in heavy-ion collisions measured by the TAPS group at GSI (1997). He also analyzed the antiprotons and very-high energy pions produced in such reactions. At about this time, diploma student '''Alexander Hombach''' did the very first application of a BUU calculation to photon-induced reactions on a nucleus, analyzing the eta-production data obtained by the TAPS group at MAMI. Alexander Hombach, in his PhD thesis, did a corresponding detailed analysis of flow observables in such collisions. Teis, together with another PhD student, '''Martin Effenberger''', rewrote parts of the code and implemented significantly more resonance excitations into the code. At roughly the same time (1998), PhD student '''Jochen Geiss''', applied the earlier version of the code to an analysis of ultrarelativistic heavy-ion collisions, in particular to the problem of production of strangeness and charmonium in such collisions; the interest in these questions is still alive today.
    77
    8 At this point, as a spin-off the [http://th.physik.uni-frankfurt.de/~brat/hsd.html HSD project] was established, focusing on High Energy Heavy-Ion Collisions. This project is maintained by W.Cassing and E.Bratkovskaya totally detached from following development.
     8At this point, as a spin-off the  HSD project was established, focusing on High Energy Heavy-Ion Collisions. This project is maintained by W.Cassing and E.Bratkovskaya totally detached from following development (cf. its [http://th.physik.uni-frankfurt.de/~brat/hsd.html website] for details.).
    99
    1010Starting with the work of Hombach and Effenberger the code was applied to elementary collisions on a nucleus, as e.g. of photon- and pion-induced reactions. Effenberger, in his thesis, showed the first grand predictions for photon-nucleus collisions leading to dileptons. He also did the first high-energy calculations with photons where shadowing becomes important. In the following years
    11112000-05, '''Thomas Falter''' took this theme up again and worked on the description of high-energy non-resonant electron-induced
    12 reactions in the DIS regime, improving the treatment of shadowing in the code. Together with '''[wiki:kai  Kai Gallmeister]''' a picture for the time-dependence of fragmentation
    13 was established. At the same time some activities in heavy-ion collisions were still taken up. '''[wiki:alexei Alexei Larionov]''' (Russia) has worked on the description of heavy
     12reactions in the DIS regime, improving the treatment of shadowing in the code. Together with '''Kai Gallmeister'''[wiki:kai  ***] a picture for the time-dependence of fragmentation
     13was established. At the same time some activities in heavy-ion collisions were still taken up. '''Alexei Larionov'''[wiki:alexei ***] (Russia) has worked on the description of heavy
    1414ion collisions in the SIS energy region and above; as a major topic, he studied the influence of
    1515medium-dependent cross sections. Together with diploma student '''Markus Wagner'''
     
    2121changes of meson properties within the medium.
    2222
    23 The courageous PhD student '''[wiki:oliver Oliver Buss]''' during [http://theorie.physik.uni-giessen.de/documents/dissertation/buss.pdf his PhD] (2004-08) did a complete rewrite of the code and transformed it to a modular, modern FORTRAN version. Since this point we label the code by '''"GiBUU"'''.
     23The courageous PhD student '''Oliver Buss'''[wiki:oliver ***] during [http://theorie.physik.uni-giessen.de/documents/dissertation/buss.pdf his PhD] (2004-08) did a complete rewrite of the code and transformed it to a modular, modern FORTRAN version. Since this point we label the code by '''"GiBUU"'''.
    2424While O. Buss was rewriting the basic ingredients as e.g. the propagation routines, the first person to join the new code structure was Thomas Falter with his high-energetic electron-induced reactions.
    25 Later, also A. Larionov and K. Gallmeister joined the initiative. A. Larionov took care of the implementation of strangeness production and improved the baryon-baryon cross sections. Furthermore, he included a relativistic mean field in the propagation, which can now be used alternatively to the Skyrme mean field. In a joined effort, O.Buss and K.Gallmeister implemented the local ensemble
     25Later, also A. Larionov and K. Gallmeister joined the initiative. A. Larionov took care of the implementation of strangeness production and improved the baryon-baryon cross sections. In a joined effort, O.Buss and K.Gallmeister implemented the local ensemble
    2626method. This algorithm was not included in the preceding  Effenberger-Teis version and
    2727improved the speed of the full ensemble simulations. K.Gallmeister was also a major player in
    2828the speed-up of the core routines and the basic Makefile design.
    29 Furthermore, he managed to replace FRITIOF by a modified PYTHIA version for the treatment of higher-energy DIS processes. In 2006, '''[wiki:tina Tina Leitner]''' joined the project and implemented her model for neutrino-nucleon interactions and shared the work-load in the
    30 implementation of the off-shell potential. Lately, also '''[wiki:theo Theo Gaitanos]''' (nuclear fragmentation),
    31 '''[wiki:david David Kalok]''' (nucleon spectral functions), '''[wiki:birger Birger Steinmüller]''' (ground state properties) and
    32 '''[wiki:janus Janus Weil]''' (dileptons and vector meson production, gfortran compatibility) contributed to
     29Furthermore, he managed to replace FRITIOF by a modified PYTHIA version for the treatment of higher-energy DIS processes. In 2006, '''Tina Leitner'''[wiki:tina ***] joined the project and implemented her model for neutrino-nucleon interactions and shared the work-load in the
     30implementation of the off-shell potential. Lately, also '''Theo Gaitanos'''[wiki:theo ***] (nuclear fragmentation),
     31'''David Kalok''' (nucleon spectral functions), '''Birger Steinmüller''' (ground state properties) and
     32'''Janus Weil'''[wiki:janus ***] (dileptons and vector meson production, gfortran compatibility) contributed to
    3333the new code. Gaitanos and Larionov implemented another, relativistic version of the mean field and joined the code with a statistical method to describe fragment formation and decay.
    3434