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Evaluation of Radiation Dose for Dual Energy CBCT Using Multi-Grid Device

DOI:10.14316/pmp.2016.27.1.31 期刊:Progress in Medical Physics 出版年份:2016 更新时间:2025-09-11 14:15:04
摘要: The paper discusses radiation dose of dual energy CT on which copper modulation layer, is mounted in order to improve diagnostic performance of the dual energy CT. The radiation dose is estimated using MCNPX and its results are compared with that of the conventional dual energy CT system. CT X-ray spectra of 80 and 120 kVp, which are usually used for thorax, abdominal, head, and neck CT scans, were generated by the SPEC78 code and were used for the source specification ‘SDEF’ card for MCNPX dose modeling. The copper modulation layer was located 20 cm away from a source covering half of the X-ray window. The radiation dose was measured as changing its thickness from 0.5 to 2.0 mm at intervals of 0.5 mm. Since the MCNPX tally provides only normalized values to a single particle, the dose conversion coefficients of F6 tally for the modulation layer-based dual energy CBCT should be calculated for matching the modeling results into the actual dose. The dose conversion coefficient is 7.2*104 cGy/output that is obtained from dose calibration curve between F6 tally and experimental results in which GAFCHORMIC EBT3 films were exposed by an already known source. Consequently, the dose of the modulation layer-based dual energy cone beam CT is 33~40% less than that of the single energy CT system. On the basis of the results, it is considered that scattered dose produced by the copper modulation layer is very small. It shows that the modulation layer-based dual energy CBCT system can effectively reduce radiation dose, which is the major disadvantage of established dual energy CT.
作者: Eun Bin Ju,So Hyun Ahn,Sam Ju Cho,Ki Chang Keum,Rena Lee
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Evaluating the radiation dose for dual energy CBCT using a multi-grid device to improve diagnostic performance and comparing it with conventional dual energy CT systems.

The modulation layer-based dual energy CBCT system can reduce radiation dose by 33~40% compared to single energy CT systems, with minimal scatter dose increase from the copper modulation layer. This effectively addresses the major disadvantage of higher patient dose in conventional dual energy CT systems.

The study's limitations include the potential 1% dose uncertainty due to the relative measurement sensitivity of EBT3 films at different energies and the need for further research on image quality assessment with the modulation layer.

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