Individual Pulse Monitoring and Dose Control System for Pre-Clinical Implementation of FLASH-RT
M. Ramish Ashraf, Mahbubur Rahman, Xu Cao, Kayla Duval, Benjamin B., Williams, P. Jack Hoopes, David J. Gladstone, Brian W. Pogue, Rongxiao Zhang,, Petr Bruza

TL;DR
This paper presents a novel real-time dose monitoring and control system for ultra-high dose rate LINACs, enabling precise dose delivery and in vivo dosimetry crucial for FLASH radiotherapy research.
Contribution
It introduces the first real-time dose-based control system for a modified LINAC at ultra-high dose rates, with in vivo dose monitoring capabilities.
Findings
Scintillator linearity within +/- 3% for dose rates 40-380 Gy/s
Effective dose gating with accurate pulse control
Observed ramp-up phase in in vivo dose delivery
Abstract
Ultra-high dose rate electron sources require dose rate independent dosimeters and a calibrated dose control system for accurate delivery. In this study, we developed a single-pulse dose monitoring and a real-time dose-based control system for a converted clinical linear accelerator (LINAC). A point scintillator detector was coupled to a gated amplifier and a real-time controller for dose monitoring and feedback control loop. The controller was programmed to integrate dose and measure pulse width of each radiation pulse and gate the LINAC beam when the prescribed dose was delivered. The scintillator was mounted in solid water phantom and placed underneath mice skin for in vivo dose monitoring. Additionally, the scintillator was characterized in terms of its radiation stability, mean dose-rate, and dose per pulse dependence. Dose integration was performed for each radiation pulse and…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
