ELECTRON-BEAM CHARACTERISTICS AT EXTENDED TREATMENT DISTANCES

被引:19
作者
DAS, IJ [1 ]
MCGEE, KP [1 ]
CHENG, CW [1 ]
机构
[1] UNIV ARIZONA, ARIZONA HLTH SCI CTR, DEPT RADIAT ONCOL, TUCSON, AZ 85724 USA
关键词
ELECTRON BEAM; EXTENDED DISTANCE TREATMENT; BEAM FLATNESS; TARGET COVERAGE FACTOR;
D O I
10.1118/1.597431
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
A uniform dose to the target site is required with a knowledge of delivered dose, central axis depth dose, and beam flatness for successful electron treatment at an extended source to surface distance (SSD). The central axis depth dose is shown to be nearly independent of moderate changes in the treatment distance. The delivered dose at a point could be calculated with the concept of virtual source position and an inverse square correction. In an extended SSD treatment, underdosage of the lateral tissue may occur due to reduced beam flatness. To study the changes in beam characteristics, the depth dose and beam flatness were measured at different SSDs for clinically used held sizes [(3 x 3)-(15 x 15) cm(2)] and beam energies ranging from 6 to 20 MeV. Our results indicate that the changes in depth dose are minimal except in the buildup region for most energies. In general, the surface dose is decreased (less than or equal to 10%) as the SSD is increased moderately. Beam flatness was measured in terms of target coverage factor (TCF) defined as the ratio of the width of a specified isodose Line to the geometrical field width. It was observed that the loss in beam flatness is significant for smaller fields, higher isodose lines, and lower energies. Variations in SSD have a minimal effect on the relative changes in beam flatness for held sizes greater than 8 x 8 cm(2). The lateral loss of beam uniformity could be estimated by various parameters, such as the full width at half maximum, the homogeneity index, the uniformity index, and the TCF; however, TCF is a simpler parameter to use clinically. The beam characteristics (depth dose and TCF) at extended treatment distances are presented for electron beams.
引用
收藏
页码:1667 / 1674
页数:8
相关论文
共 24 条
[1]   ELECTRON DOSIMETRY OF IRREGULAR FIELDS ON THE CLINAC-18 [J].
BIGGS, PJ ;
BOYER, AL ;
DOPPKE, KP .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 1979, 5 (03) :433-440
[2]   EFFECT OF THE ACCELERATOR DESIGN ON THE POSITION OF THE EFFECTIVE ELECTRON SOURCE [J].
CECATTI, ER ;
GONCALVES, JF ;
CECATTI, SGP ;
SILVA, MD .
MEDICAL PHYSICS, 1983, 10 (05) :683-686
[3]   ELECTRON DOSE DISTRIBUTIONS IN EXPERIMENTAL PHANTOMS - A COMPARISON WITH 2D PENCIL BEAM CALCULATIONS [J].
CYGLER, J ;
BATTISTA, JJ ;
SCRIMGER, JW ;
MAH, E ;
ANTOLAK, J .
PHYSICS IN MEDICINE AND BIOLOGY, 1987, 32 (09) :1073-1086
[4]   OPTIMUM FIELD SIZE AND CHOICE OF ISODOSE LINES IN ELECTRON-BEAM TREATMENT [J].
DAS, IJ ;
CHENG, CW ;
HEALEY, GA .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 1995, 31 (01) :157-163
[5]  
HOGSTROM KR, 1992, AAPM MED PHYSICS MON, V19, P390
[6]   ELECTRON DOSE CALCULATION USING MULTIPLE-SCATTERING THEORY - EVALUATION OF A NEW MODEL FOR INHOMOGENEITIES [J].
JETTE, D ;
WALKER, S .
MEDICAL PHYSICS, 1992, 19 (05) :1241-1254
[7]  
JOHNS HE, 1983, PHYSICS RADIOLOGY
[8]   DOSIMETRIC EFFECTS OF ABUTTING EXTENDED SOURCE TO SURFACE DISTANCE ELECTRON FIELDS WITH PHOTON FIELDS IN THE TREATMENT OF HEAD AND NECK CANCERS [J].
JOHNSON, JM ;
KHAN, FM .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 1994, 28 (03) :741-747
[9]  
KHAN FM, 1991, FRONT RADIAT THER ON, V25, P10
[10]   EFFECT OF AIR SPACE ON DEPTH DOSE IN ELECTRON-BEAM THERAPY [J].
KHAN, FM ;
SEWCHAND, W ;
LEVITT, SH .
RADIOLOGY, 1978, 126 (01) :249-251