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Rodgers S, Atkinson J, Cryer D, Storm C, Nezich R, Ebert MA, Rowshanfarzad P. Construction and validation of an infant chest phantom for paediatric computed tomography. Phys Eng Sci Med 2024; 47:491-501. [PMID: 38315414 PMCID: PMC11166826 DOI: 10.1007/s13246-023-01379-5] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/13/2022] [Accepted: 12/21/2023] [Indexed: 02/07/2024]
Abstract
Paediatric imaging protocols should be carefully optimised to maintain the desired image quality while minimising the delivered patient dose. A paediatric chest phantom was designed, constructed and evaluated to optimise chest CT examinations for infants. The phantom was designed to enable dosimetry and image quality measurements within the anthropomorphic structure. It was constructed using tissue equivalent materials to mimic thoracic structures of infants, aged 0-6 months. The phantom materials were validated across a range of diagnostic tube voltages with resulting CT numbers found equivalent to paediatric tissues observed via a survey of clinical paediatric chest studies. The phantom has been successfully used to measure radiation dose and evaluate various image quality parameters for paediatric specific protocols.
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Affiliation(s)
- Seonaid Rodgers
- Department of Medical Technology and Physics, Sir Charles Gairdner Hospital, Hospital Avenue, Nedlands, WA, 6009, Australia.
- School of Physics, Mathematics and Computing, University of Western Australia, Crawley, WA, Australia.
| | - Janette Atkinson
- Department of Medical Technology and Physics, Sir Charles Gairdner Hospital, Hospital Avenue, Nedlands, WA, 6009, Australia
| | - David Cryer
- Department of Medical Technology and Physics, Sir Charles Gairdner Hospital, Hospital Avenue, Nedlands, WA, 6009, Australia
| | - Cameron Storm
- Department of Medical Technology and Physics, Sir Charles Gairdner Hospital, Hospital Avenue, Nedlands, WA, 6009, Australia
| | - Rikki Nezich
- Department of Medical Technology and Physics, Sir Charles Gairdner Hospital, Hospital Avenue, Nedlands, WA, 6009, Australia
| | - Martin A Ebert
- School of Physics, Mathematics and Computing, University of Western Australia, Crawley, WA, Australia
- Department of Radiation Oncology, Sir Charles Gairdner Hospital, Nedlands, WA, Australia
- Centre for Advanced Technologies in Cancer Research (CATCR), Perth, WA, Australia
| | - Pejman Rowshanfarzad
- School of Physics, Mathematics and Computing, University of Western Australia, Crawley, WA, Australia
- Centre for Advanced Technologies in Cancer Research (CATCR), Perth, WA, Australia
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Fisk M, Rowshanfarzad P, Pfefferlé D, Fernandez de Viana M, Cabrera J, Ebert MA. Development and optimisation of grid inserts for a preclinical radiotherapy system and corresponding Monte Carlo beam simulations. Phys Med Biol 2024; 69:055010. [PMID: 38262060 DOI: 10.1088/1361-6560/ad21a1] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 08/02/2023] [Accepted: 01/23/2024] [Indexed: 01/25/2024]
Abstract
Objective. To develop a physical grid collimator compatible with the X-RAD preclinical radiotherapy system and create a corresponding Monte Carlo (MC) model.Approach. This work presents a methodology for the fabrication of a grid collimator designed for utilisation on the X-RAD preclinical radiotherapy system. Additionally, a MC simulation of the grid is developed, which is compatible with the X-RAD treatment planning system. The grid was manufactured by casting a low melting point alloy, cerrobend, into a silicone mould. The silicone was moulded around a 3D-printed replica of the grid, enabling the production of diverging holes with precise radii and spacing. A MC simulation was conducted on an equivalent 3D grid model and validated using 11 layers of GAFChromic EBT-3 film interspersed in a 3D-printed water-equivalent phantom. A 3D dose distribution was constructed from the film layers, enabling a direct comparison with the MC Simulation.Main results. The film and the MC dose distribution demonstrated a gamma passing rate of 99% for a 1%, 0.5 mm criteria with a 10% threshold applied. The peak-to-valley dose ratio and output factor at the surface were determined to be 20.4 and 0.79, respectively.Significance. The pairing of the grid collimator with a MC simulation can significantly enhance the practicality of grid therapy on the X-RAD. This combination enables further exploration of the biological implications of grid therapy, supported by a knowledge of the complex dose distributions. Moreover, this methodology can be adapted for use in other systems and scenarios.
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Affiliation(s)
- Marcus Fisk
- School of Physics, Mathematics, and Computing, University of Western Australia, Crawley WA, Australia
- Riverina Cancer Care Centre, Wagga Wagga NSW, Australia
| | - Pejman Rowshanfarzad
- School of Physics, Mathematics, and Computing, University of Western Australia, Crawley WA, Australia
- Centre for Advanced Technologies in Cancer Research (CATCR), Perth, Australia
| | - David Pfefferlé
- School of Physics, Mathematics, and Computing, University of Western Australia, Crawley WA, Australia
| | | | | | - Martin A Ebert
- School of Physics, Mathematics, and Computing, University of Western Australia, Crawley WA, Australia
- Centre for Advanced Technologies in Cancer Research (CATCR), Perth, Australia
- Department of Radiation Oncology, Sir Charles Gairdner Hospital, Hospital Ave, Nedlands WA, Australia
- 5D Clinics, Claremont, Western Australia, Australia
- School of Medicine and Public Health, University of Wisconsin, Madison WI, United States of America
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