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用于 FLASH 的超高剂量率辐射产生和输送系统。

Ultra-high dose rate radiation production and delivery systems intended for FLASH.

机构信息

Clinical Office, Applications of Detectors and Accelerators to Medicine, Meyrin, Switzerland.

Institute of Radiation Physics, Lausanne University Hospital, Lausanne, Switzerland.

出版信息

Med Phys. 2022 Jul;49(7):4875-4911. doi: 10.1002/mp.15659. Epub 2022 May 5.

Abstract

Higher dose rates, a trend for radiotherapy machines, can be beneficial in shortening treatment times for radiosurgery and mitigating the effects of motion. Recently, even higher doses (e.g., 100 times greater) have become targeted because of their potential to generate the FLASH effect (FE). We refer to these physical dose rates as ultra-high (UHDR). The complete relationship between UHDR and the FE is unknown. But UHDR systems are needed to explore the relationship further and to deliver clinical UHDR treatments, where indicated. Despite the challenging set of unknowns, the authors seek to make reasonable assumptions to probe how existing and developing technology can address the UHDR conditions needed to provide beam generation capable of producing the FE in preclinical and clinical applications. As a preface, this paper discusses the known and unknown relationships between UHDR and the FE. Based on these, different accelerator and ionizing radiation types are then discussed regarding the relevant UHDR needs. The details of UHDR beam production are discussed for existing and potential future systems such as linacs, cyclotrons, synchrotrons, synchrocyclotrons, and laser accelerators. In addition, various UHDR delivery mechanisms are discussed, along with required developments in beam diagnostics and dose control systems.

摘要

更高的剂量率是放射治疗机器的发展趋势,它可以缩短放射外科治疗的时间,并减轻运动的影响。最近,由于有可能产生FLASH 效应(FE),甚至更高的剂量(例如增加 100 倍)也成为了目标。我们将这些物理剂量率称为超高剂量率(UHDR)。UHDR 与 FE 之间的完整关系尚不清楚。但是,需要 UHDR 系统来进一步探索这种关系,并在需要时提供临床 UHDR 治疗。尽管存在一系列具有挑战性的未知数,但作者试图做出合理的假设,以探讨现有和开发中的技术如何满足提供能够在临床前和临床应用中产生 FE 的光束生成所需的 UHDR 条件。作为前言,本文讨论了 UHDR 和 FE 之间的已知和未知关系。在此基础上,然后根据相关的 UHDR 需求,讨论了不同的加速器和电离辐射类型。讨论了现有的和潜在的未来系统(例如直线加速器、回旋加速器、同步加速器、同步回旋加速器和激光加速器)的 UHDR 光束产生的细节。此外,还讨论了各种 UHDR 输送机制,以及对束流诊断和剂量控制系统的要求。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2459/9544515/f22975985f50/MP-49-4875-g018.jpg

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