Photonuclear dose calculations for high‐energy photon beams from Siemens and Varian linacs
- 11 July 2003
- journal article
- Published by Wiley in Medical Physics
- Vol. 30 (8) , 1990-2000
- https://doi.org/10.1118/1.1590436
Abstract
The dose from photon‐induced nuclear particles (neutrons, protons, and alpha particles) generated by high‐energy photon beams from medical linacs is investigated. Monte Carlo calculations using the MCNPX code are performed for three different photon beams from two different machines: Siemens 18 MV, Varian 15 MV, and Varian 18 MV. The linac head components are simulated in detail. The dose distributions from photons, neutrons, protons, and alpha particles are calculated in a tissue‐equivalent phantom. Neutrons are generated in both the linac head and the phantom. This study includes (a) field size effects, (b) off‐axis dose profiles, (c) neutron contribution from the linac head, (d) dose contribution from capture gamma rays, (e) phantom heterogeneity effects, and (f) effects of primary electron energy shift. Results are presented in terms of absolute dose distributions and also in terms of DER (dose equivalent ratio). The DER is the maximum dose from the particle (neutron, proton, or alpha) divided by the maximum photon dose, multiplied by the particle quality factor and the modulation scaling factor. The total DER including neutrons, protons, and alphas is about 0.66 cSv/Gy for the Siemens 18 MV beam The neutron DER decreases with decreasing field size while the proton (or alpha) DER does not vary significantly except for the field. Both Varian beams (15 and 18 MV) produce more neutrons, protons, and alphas particles than the Siemens 18 MV beam. This is mainly due to their higher primary electron energies: 15 and 18.3 MeV, respectively, vs 14 MeV for the Siemens 18 MV beam. For all beams, neutrons contribute more than 75% of the total DER, except for the field The total DER is 1.52 and 2.86 cSv/Gy for the 15 and 18 MV Varian beams respectively. Media with relatively high‐ elements like bone may increase the dose from heavy charged particles by a factor 4. The total DER is sensitive to primary electron energy shift. A Siemens 18 MV beam with 15 MeV (instead of 14 MeV) primary electrons would increase by 40% the neutron DER and by 210% the DER. Comparisons with measurements (neutron yields from different materials and neutron dose equivalent) are also presented. Using the NCRP risk assessment method, we found that the dose equivalent from leakage neutrons (at 50‐cm off‐axis distance) represent 1.1, 1.1, and 2.0% likelihood of fatal secondary cancer for a 70 Gy treatment delivered by the Siemens 18 MV, Varian 15 MV, and Varian 18 MV beams, respectively.Keywords
This publication has 14 references indexed in Scilit:
- Monte Carlo calculation of nine megavoltage photon beam spectra using the BEAM codeMedical Physics, 2002
- Method for determining photonuclear production of radioisotopes using high-energy electron beamsMedical Physics, 1999
- In‐phantom dosimetry and spectrometry of photoneutrons from an 18 MV linear acceleratorMedical Physics, 1998
- Photonuclear production in tissue for different 50 MV bremsstrahlung beamsMedical Physics, 1998
- Superheated Emulsions: Neutronics and ThermodynamicsRadiation Protection Dosimetry, 1997
- Photoneutrons from medical linear accelerators—Radiobiological measurements and risk estimatesInternational Journal of Radiation Oncology*Biology*Physics, 1995
- Neutrons from high‐energy x‐ray medical accelerators: An estimate of risk to the radiotherapy patientMedical Physics, 1984
- The dose contribution due to photonuclear reactions during radiotherapyMedical Physics, 1982
- Neutron dosimetry in high energy X-ray beams of medical acceleratorsPhysics in Medicine & Biology, 1979
- Bremsstrahlung and Photoneutrons from Thick Tungsten and Tantalum TargetsPhysical Review C, 1970