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Experimental Studies of the Coulomb Force Effects in Deuteron-Proton Break-up Reaction at Medium Energy Regime

I. CiepałInstitute of Nuclear Physics PAS, PL-31342, KrakówPolandW. ParolInstitute of Physics, Jagiellonian University, PL-30348, Kraków, PolandN. Kalantar-NayestanakiKVI-CART, University of Groningen, NL-9747 AA Groningen, The NetherlandsG. KhatriInstitute of Physics, Jagiellonian University, PL-30348, Kraków, PolandSt. KistrynInstitute of Physics, Jagiellonian University, PL-30348, Kraków, PolandB. KłosInstitute of Physics, University of Silesia, PL-40007, Katowice, PolandA. KozelaInstitute of Nuclear Physics PAS, PL-31342, KrakówPolandP. KulessaInstitute of Nuclear Physics PAS, PL-31342, KrakówPolandJ. G. MesschendorpKVI-CART, University of Groningen, NL-9747 AA Groningen, The NetherlandsI. Skwira-ChalotFaculty of Physics, University of Warsaw, PL-02093, Warsaw, PolandE. StephanInstitute of Physics, University of Silesia, PL-40007, Katowice, PolandB. WłochAGH – University of Science and Technology, Faculty of Physics and Applied Computer Science, al. A. Mickiewicza 30, PL-30059 Kraków, Poland
EPJ Web of Conferencesjournal2016en
ABI

Аннотация

A set of differential cross-section data of the 1H(d, pp)n breakup reaction at 130 and 160 MeV deuteron beam energies has been measured in the forward polar angles domain. The data were collected with the use of the Germanium Wall (FZ Jülich) and BINA (KVI Groningen) detectors. This part of the phase-space is special with respect to the dominant Coulomb force influence on the system dynamics. The data are compared with the theoretical calculations based on the Argonne V18 potential supplemented with the long-range electromagnetic component. The predictions also include the Urbana IX three nucleon force model. The strongest Coulomb effects are found in regions where the relative energy of the two protons is the smallest.

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