activity
20182023
most citedNuclear modification factor in Pb-Pb and p-Pb collisions using Boltzmann transport equation

12 citations · 22 across the 6 of their papers we have counts for

collaborators

6 papers

nucl-th2023

Comparing pion production in transport simulations of heavy-ion collisions at MeV under controlled conditions

Jun Xu, Hermann Wolter, Maria Colonna +20

Within the TMEP, we present a detailed study of the performance of different transport models in Sn+Sn collisions at MeV, and put particular emphasis on the production of pi…

nucl-th20213 cited

Coulomb field correction due to virtual production in heavy ion collisions

Thomas Settlemyre, Aldo Bonasera, Hua Zheng

The correction to the Coulomb energy due to virtual production of pairs, which is on the order of one percent of the Coulomb energy at nuclear scales is discussed. The eff…

nucl-th20213 cited

Investigation of the nuclear liquid-gas phase transition in the static AMD

W. Lin, P. Ren, X. Liu +4

Nuclear liquid-gas phase transitions are investigated in the framework of static antisymmetrized molecular dynamics (static AMD) model under either a constant volume or a constant…

cs.CL20202 cited

Inductively Representing Out-of-Knowledge-Graph Entities by Optimal Estimation Under Translational Assumptions

Damai Dai, Hua Zheng, Fuli Luo +3

Conventional Knowledge Graph Completion (KGC) assumes that all test entities appear during training. However, in real-world scenarios, Knowledge Graphs (KG) evolve fast with out-of…

nucl-th202012 cited

Nuclear modification factor in Pb-Pb and p-Pb collisions using Boltzmann transport equation

L. Qiao, G. Che, J. Gu +2

We investigate the nuclear modification factor () of identified particles as a function of transverse momentum () in Pb-Pb collisions at 2.7…

nucl-th2018

Decay Modes of the Hoyle State in

H. Zheng, A. Bonasera, M. Huang +1

Recent experimental results give an upper limit less than 0.043\% (95\% C.L.) to the direct decay of the Hoyle state into 3 respect to the sequential decay into {Be}+. We…