À propos de cet article

Citez

1. Hill R, Healey B, Holloway L, et al. Advances in kilovoltage x-ray beam dosimetry. Phys Med Biol. 2014;59(6):R183-231. https://doi.org/10.1088/0031-9155/59/6/R18310.1088/0031-9155/59/6/R18324584183 Search in Google Scholar

2. Seuntjens JP, Ross CK, Shortt KR, Rogers DW O. Absorbed-dose beam quality conversion factors for cylindrical chambers in high energy photon beams. Med Phys. 2000:27(12): 2763-2779. https://doi.org/10.1118/1.132808110.1118/1.132808111190960 Search in Google Scholar

3. Chetty IJ, Curran B, Cygler JE, et al. Report of the AAPM Task Group no 105: Issues associated with clinical implementation of Monte Carlo based photon and electron external beam treatment planning. Med Phys. 2007;34(12):4818-4853. https://doi.org/10.1118/1.279584210.1118/1.279584218196810 Search in Google Scholar

4. Verhaegen F, Seuntjens J. Monte Carlo modelling of external radiotherapy photon beams. Phys Med Biol. 2003;48(21):R107-164. https://doi.org/10.1088/0031-9155/48/21/r0110.1088/0031-9155/48/21/R01 Search in Google Scholar

5. Bencheikh M, Maghnouj A, Tajmouati J. Energetic Properties’ Investigation of Removing Flattening Filter at Phantom Surface: Monte Carlo Study using BEAMnrc Code, DOSXYZnrc Code and BEAMDP Code. PEPAN Letters. 2017;14(6):921-930. https://doi.org/10.1134/S154747711706007310.1134/S1547477117060073 Search in Google Scholar

6. Bencheikh M, Maghnouj A, Tajmouati J. Photon beam softening coefficient determination with slab thickness in small filed size: Monte Carlo study. PEPAN Letters, 2017:14(6):685-68610.1134/S1547477117060085 Search in Google Scholar

7. Didi A, Dadouch A., Bencheikh M, Jai O. Monte Carlo simulation of thermal neutron flux of americium–beryllium source used in neutron activation analysis. Moscow University Physics Bulletin. 2017;72(5):460-464. https://doi.org/10.3103/S002713491705002210.3103/S0027134917050022 Search in Google Scholar

8. Sheikh-Bagheri D, Rogers DWO. Sensitivity of megavoltage photon beam Monte Carlo simulations to electron beam and other parameters. Med Phys. 2002;29(3):379-390. https://doi.org/10.1118/1.144610910.1118/1.144610911930913 Search in Google Scholar

9. Vega-Carrillo HR, Martınez-Ovalle SA, Lallena AM, et al. Neutron and photon spectra in LINACs. Applied Radiation and Isotopes. 2012;71(Supplement):75-80. https://doi.org/10.1016/j.apradiso.2012.03.03410.1016/j.apradiso.2012.03.03422494894 Search in Google Scholar

10. Medina AL, Teijeiro A, Salvador F, et al. Comparison between TG-51 and TRS-398: electron contamination effect on photon beam-quality specification. Phys Med Biol. 2004;49(1):17-32. https://doi.org/10.1088/0031-9155/49/1/00210.1088/0031-9155/49/1/00214971770 Search in Google Scholar

11. Bencheikh M, Maghnouj A, Tajmouati J. Photon beam softening coefficients evaluation for a 6 MeV photon beam for an aluminum slab: Monte Carlo study using BEAMnrc code, DOSXYZnrc code and BEAMDP code. Moscow University Physics Bulletin. 2017;72(3):263-270. https://doi.org/10.3103/S002713491703004310.3103/S0027134917030043 Search in Google Scholar

12. Bencheikh M, Maghnouj A, Tajmouati J. Dosimetry Investigation and Evaluation for Removing Flattening Filter Configuration of linac: Monte Carlo Study. Moscow University Physics Bulletin. 2017;72(6):640-646. https://doi.org/10.3103/S002713491866002510.3103/S0027134918660025 Search in Google Scholar

13. Bencheikh M, Maghnouj A, Tajmouati J. Study of photon beam dosimetry quality for removing flattening filter linac configuration. Annals of University of Craiova Physics AUC. 2017;27:50-60. Search in Google Scholar

14. Reynaert N, van der Marck SC, Schaart DR, et al. Monte Carlo treatment planning for photon and electron beams. Rad Phys Chem. 2017;76(4):643-686. https://doi.org/10.1016/j.radphyschem.2006.05.01510.1016/j.radphyschem.2006.05.015 Search in Google Scholar

15. Pearson D, Parsai E, Fledmeier J. SU-FF-T-223: Evaluation of dosimetric properties of 6 and 10 MeV photon beams from a linear accelerator with no flattening filter. Med Phys;33:2099. https://doi.org/10.1118/1.224114310.1118/1.2241143 Search in Google Scholar

16. Rogers DWO, Walters B, Kawrakow I. BEAMnrc Users Manual. NRCC Report; Ottawa. 2013;12-254. Search in Google Scholar

17. Rogers DWO, Kawrakow I, Seuntjens JP, et al. NRC User Codes for EGSnrc. NRCC Report; Ottawa. 2013;6-83. Search in Google Scholar

18. Ma CM, Rogers DWO. BEAMDP Users Manual. NRCC Report; Ottawa. 2013;3-24. Search in Google Scholar

19. IAEA Technical Reports Series No.430. Commissioning and Quality Assurance of Computerized Planning Systems for Radiation Treatment of Cancer. International Atomic Energy Agency; Vienna. 2004. Search in Google Scholar

20. IAEA-TECDOC-1540. Specification and Acceptance Testing of Radiotherapy Treatment Planning Systems. International Atomic Energy Agency; Vienna. 2007. Search in Google Scholar

21. Bencheikh M, Maghnouj A, Tajmouati J. Validation of Monte Carlo simulation of 6 MV photon beam produced by Varian Clinac 2100 linear accelerator using BEAMnrc code and DOSXYZnrc code. PEPAN Letters. 2017;14(5):780-787. https://doi.org/10.1134/S154747711705003X10.1134/S154747711705003X Search in Google Scholar

22. Swiss Society of Radiobiology and Medical Physics SSRMP. Dosimétrie des faisceaux de photons de haute énergie l’aide de chambres d’ionisation. SSRMP Recommandation N° 8. 2000. ISBN 3-908125-26-X. Search in Google Scholar

23. García-Garduño OA, Celis MA, Lárraga-Gutiérrez JM, et al. Radiation transmission, leakage and beam penumbra measurements of a micro-multileaf collimator using GafChromic EBT film. Journal of Applied Clinical Medical Physics. 2008;9(3):90-98. https://doi.org/10.1120/jacmp.v9i3.280210.1120/jacmp.v9i3.2802572229318716595 Search in Google Scholar

24. International Atomic Energy Agency. Absorbed dose determination in external beam radiotherapy. Technical reports series no. 398. International Atomic Energy Agency; Vienna. 2000;110-133. Search in Google Scholar

25. Chaney EL, Cullip TJ, Gabriel TA. A Monte Carlo study of accelerator head scatter. Med Phys. 1994;21(9):1383-1390. https://doi.org/10.1118/1.59719410.1118/1.5971947838048 Search in Google Scholar

26. Zhu TC, Bjärngard BE. Head scatter off-axis for megavoltage x rays. Med Phys. 2003;30(4):533-543. https://doi.org/10.1118/1.155660910.1118/1.155660912722805 Search in Google Scholar

27. Bencheikh M, Maghnouj A, Tajmouati J. Study of Possibility to Reduce Flattening Filter Volume for Increasing Energetic Photons for High Radiotherapy Efficiency. Moscow University Physics Bulletin. 2017;72(6):653-657. https://doi.org/10.3103/S002713491866004910.3103/S0027134918660049 Search in Google Scholar

28. Bencheikh M, Maghnouj A, Tajmouati J. Relative Attenuation and Beam Softening Study with Flattening Filter Volume Reduction: Monte Carlo Study. Moscow University Physics Bulletin. 2017;72(6):647-652. https://doi.org/10.3103/S002713491866003710.3103/S0027134918660037 Search in Google Scholar

eISSN:
1898-0309
Langue:
Anglais
Périodicité:
4 fois par an
Sujets de la revue:
Medicine, Biomedical Engineering, Physics, Technical and Applied Physics, Medical Physics