PubMed Health⌕ Search

Biomedical subjects

B S Proimos

Publications and source records attributed to B S Proimos.

6 recordsLinked to original sources

Variation of sensitometric curves of radiographic films in high energy photon beams.

Film dosimetry is an important tool for the verification of irradiation techniques. The shape of the sensitometric curve depends on the type of film as well as on the irradiation and processing conditions. Existing data concerning the influence of irradiation geometry on the sensitometric curve are conflicting. In particular the variation of optical density, OD, with field size and depth in a phantom shows large differences in magnitude between various authors. This variation, as well as the effect of beam energy and film plane orientation on OD, was therefore investigated for two types of film, Kodak X-Omat V and Agfa Structurix D2. Films were positioned in a solid phantom, either perpendicular or (almost) parallel to the beam axis, and irradiated to different dose levels using various photon beams (Co-60, 6 MV, 15 MV, 18 MV, 45 MV). It was found that the sensitometric curves of the Kodak film derived at different depths are almost identical for the four x-ray beams. For the Kodak film the differences in OD with depth are less than 2%, except for the Co-60 beam, where the difference is about 4% at 10 cm depth for a 15 cm x 15 cm field. The slope of the sensitometric curve of the Agfa film is somewhat more dependent on photon beam energy, depth and field size. The sensitometric curves of both types of film are almost independent of the film plane orientation, except for shallow depths. For Co-60 and for the same dose, the Kodak and Agfa films gave at dose maximum an OD lower by 4% and 6%, respectively, for the parallel compared to the perpendicular geometry. Good dosimetric results can be obtained if films from the same batch are irradiated with small to moderate field sizes (up to about 15 cm x 15 cm), at moderate depths (up to about 15 cm), using a single calibration curve, e.g., for a 10 cm x 10 cm field.

Biophysical Phenomena↗

Dosimetry of rotational photon fields with gravity-oriented eye blocks.

Evolving radiotherapeutic technique is aimed at routine use of an eye protection accessory with uniformity of dose to facial tumors. Rotational 4 MV photon fields with gravity-oriented eye blocks are described in applications to patients and a phantom. A machine-oriented compensator with a slit and beveled edges at eye levels has been applied to increase uniformity of dose over the entire target, including partly blocked regions. Treatment planning parameters are derived from simple geometric relationships. Dose distributions and average tissue-air ratios (TAR) are calculated with a conventional radiotherapeutic treatment planning system, and measured during initial treatments via thermoluminescent dosemeters (TLD) in facial cavities. Machine monitor units of initial treatments (MU1) are calculated from prescribed dose D, TAR, percentage isodose lines, dose rates in air, and compensator transmission; for subsequent treatments, MU1 are modified using averages of unblocked target doses D measured during initial treatment: MU2 = (D/D)MU1. Doses measured on patients' eyelids have been 10 to 15% of prescribed dose. Three dimensional dose distributions were determined using TLD in an anthropomorphic phantom. With beam compensation, eye doses were 15% of unblocked target doses, doses to partly blocked target were 86 to 129% of unblocked target doses, and doses to unblocked target showed 5% mean standard deviations. In vivo and in phantom data were consistent with computer-calculated distributions. For uniformity of target dose, eye-sparing, and simplicity of irradiating tumors surrounding the eyes, the technique investigated compares favorably with conventional techniques.

Elementary Particles↗