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Auteurs principaux: Schwarze, Miriam, Looe, Hui Khee, Poppe, Björn, Thomas, Leo, Rabus, Hans
Format: Preprint
Publié: 2025
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Accès en ligne:https://arxiv.org/abs/2510.21992
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author Schwarze, Miriam
Looe, Hui Khee
Poppe, Björn
Thomas, Leo
Rabus, Hans
author_facet Schwarze, Miriam
Looe, Hui Khee
Poppe, Björn
Thomas, Leo
Rabus, Hans
contents Cross-section data unavailability for non-water materials in track structure simulation software necessitates nanodosimetric quantity transformation from water to other materials. Cluster dose calculation transformation initially employed mass-density-based scaling - an approach resulting in a physically unrealistic material-independence of the cluster dose equation. This study introduces an alternative scaling method based on material-specific ionization cross-sections. The mean free path ratio of the materials for both the primary particles of the track structure simulation and for the secondary electrons served as the scaling factor. The approach was demonstrated through a cluster dose calculation for a carbon ion beam in a realistic head geometry and compared to the previous scaling method. The proposed cross-section-based scaling method resulted in a physically expected increase in cluster dose values for denser materials, which was not visible in the original scaling approach. The introduced scaling approach can be used to determine cluster dose distributions in heterogeneous geometries, a fundamental requirement for its integration into radiotherapy treatment planning frameworks.
format Preprint
id arxiv_https___arxiv_org_abs_2510_21992
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Cross-Section-Based Scaling Method for Material-Specific Cluster Dose Calculations -- A Proof of Concept
Schwarze, Miriam
Looe, Hui Khee
Poppe, Björn
Thomas, Leo
Rabus, Hans
Medical Physics
Cross-section data unavailability for non-water materials in track structure simulation software necessitates nanodosimetric quantity transformation from water to other materials. Cluster dose calculation transformation initially employed mass-density-based scaling - an approach resulting in a physically unrealistic material-independence of the cluster dose equation. This study introduces an alternative scaling method based on material-specific ionization cross-sections. The mean free path ratio of the materials for both the primary particles of the track structure simulation and for the secondary electrons served as the scaling factor. The approach was demonstrated through a cluster dose calculation for a carbon ion beam in a realistic head geometry and compared to the previous scaling method. The proposed cross-section-based scaling method resulted in a physically expected increase in cluster dose values for denser materials, which was not visible in the original scaling approach. The introduced scaling approach can be used to determine cluster dose distributions in heterogeneous geometries, a fundamental requirement for its integration into radiotherapy treatment planning frameworks.
title Cross-Section-Based Scaling Method for Material-Specific Cluster Dose Calculations -- A Proof of Concept
topic Medical Physics
url https://arxiv.org/abs/2510.21992