Comparisons of point and average organ dose within an anthropomorphic physical phantom and a computational model of the newborn patient
- 20 May 2002
- journal article
- Published by Wiley in Medical Physics
- Vol. 29 (6) , 1080-1089
- https://doi.org/10.1118/1.1481516
Abstract
Pediatric radiographic examinations yield medical benefits and/or diagnostic information that must be balanced against potential risk from patient radiation exposure. Consequently, clinical tools for measuring internal organ dose are needed for medical risk assessment. In this study, a physical phantom and Monte Carlo simulation model of the newborn patient were developed based upon their stylized mathematical expressions (ORNL and MIRD model series). The physical phantom was constructed using tissue equivalent substitutes for soft tissue, lung, and skeleton. Twenty metal–oxide–semiconductor field effect transistor (MOSFET) dosimeters were then inserted at three‐dimensional positions representing the centroids of organs assigned in the ICRP's definition of the effective dose. MOSFET‐derived point estimates of organ dose were shown to be in reasonable agreement with Monte Carlo estimates for representative newborn head, chest, and abdomen radiographic exams. Ratios of average organ dose assessed via MCNP simulations to the MOSFET‐derived point doses (point‐to‐organ dose scaling factors,are tabulated for subsequent use in clinical irradiations of the newborn phantom/MOSFET system. Values ofindicate that MOSFET measurements of point dose for in‐field exposures need to be adjusted only to within 10% to report volume‐averaged organ dose. Larger adjustments to point doses are noted for organs out‐of‐field. For walled organs, point estimates of organ dose at the content centroid are shown to underestimate the average wall dose when the organ is within the primary field:of 1.19 for the stomach (AP chest exam), andof 1.15 for the urinary bladder (AP abdomen exam).Keywords
This publication has 16 references indexed in Scilit:
- Calculation of effective doseMedical Physics, 2000
- An accurate method for computer‐generating tungsten anode x‐ray spectra from 30 to 140 kVMedical Physics, 1997
- Computation of energy imparted in diagnostic radiologyMedical Physics, 1997
- Clinical dosimetry using mosfetsInternational Journal of Radiation Oncology*Biology*Physics, 1997
- Energy imparted and effective doses in computed tomographyMedical Physics, 1996
- Simulation of the Upper Gastrointestinal Fluoroscopic Examination for Calculation of Absorbed Dose in TissueHealth Physics, 1995
- Average soft-tissue and bone models for use in radiation dosimetryThe British Journal of Radiology, 1987
- Foamed epoxy resin-based lung substitutesThe British Journal of Radiology, 1986
- Epoxy resin based tissue substitutesThe British Journal of Radiology, 1977
- The formulation of tissue substitute materials using basic interaction dataPhysics in Medicine & Biology, 1977