scispace - formally typeset
W

W. Wagner

Researcher at Joint Institute for Nuclear Research

Publications -  7
Citations -  93

W. Wagner is an academic researcher from Joint Institute for Nuclear Research. The author has contributed to research in topics: Fission & Neutron emission. The author has an hindex of 5, co-authored 7 publications receiving 91 citations.

Papers
More filters
Journal ArticleDOI

Manifestation of clustering in the 252Cf(sf) and 249Cf(nth,f) reactions

TL;DR: In this article, a comparative analysis of the high-statistics mass-energy distributions of the fission fragments formed in the 252 Cf(sf) and 249 Cf(n th,f) reactions is performed on the basis of the potential energy surface calculations.
Journal ArticleDOI

Fission of 232Th, 238U and 235U induced by negative muons

TL;DR: The absolute yields of prompt and delayed fission induced by negative muons in 232 Th, 238 U and 235 U have been measured in this article, and it is suggested that prompt fission can be used for investigating the channel structure of the fission barrier.
Journal ArticleDOI

The response of a large CsI(Tl) detector to light particles and heavy ions in the intermediate energy range

TL;DR: In this paper, the particle dependent response of a CsI(Tl) scintillation detector with an entrance surface of 314 cm2 has been investigated using a secondary beam facility at the energy range from 2 to 77 MeV/A.
Journal ArticleDOI

Search for mass-symmetric ternary fission in the reactions 14 N(53 A MeV) + 197 Au and 232 Th

TL;DR: In this paper, the ternary yields of heavy hot composite systems with excitation energies of 1.5-2.5 MeV / amu have been studied in the reactions of 14N(53 A ǫ) with 197Au and 232Th.
Journal ArticleDOI

Fragment mass distribution of fission after incomplete fusion in the reaction 7Li (43A MeV) + 232Th☆

TL;DR: In this paper, the mass distribution of binary fission was measured for the reaction 7Li (43A MeV) + 232Th in dependence on the linear momentum transfer and the excitation energy of the compound nuclei produced by incomplete fusion was deduced applying the massive transfer approach and amounted to 57-205 MeV.