Published 1986 | Version v1
Journal article

Monte Carlo electron-transport calculations for clinical beams using energy grouping

  • 1. National Tsing-Hua Univ., Hsin Chu, Taiwan (China). Dept. of Nuclear Engineering
  • 2. City of Faith Medical and Research Center, Tulsa, OK (USA)
  • 3. Joint Center for Graduate Study, Richland, WA (USA)

Description

A Monte Carlo program has been utilized to study the penetration of broad electron beams into a water phantom. The MORSE-E code, originally developed for neutron and photon transport, was chosen for adaptation to electrons because of its versatility. The electron energy degradation model employed logarithmic spacing of electron energy groups and included effects of elastic scattering, inelastic-moderate-energy-loss-processes and inelastic-large-energy-loss-processes (catastrophic). Energy straggling and angular deflections were modeled from group to group, using the Moeller cross section for energy loss, and Goudsmit-Saunderson theory to describe angular deflections. The resulting energy- and electron-deposition distributions in depth were obtained at 10 and 20 MeV and are compared with ETRAN results and broad beam experimental data from clinical accelerators. (author)

Additional details

Publishing Information

Journal Title
Appl. Radiat. Isot.
Journal Volume
37
Journal Issue
12
Series
Appl. Radiat. Isot.
Journal Page Range
1189-1194
CODEN
ARISE