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首页> 外文期刊>Medical Physics >TU‐H‐BRA‐01: The Physics of High Power Radiofrequency Isolation in a Novel Compact Linear Accelerator Based MRI Guided Radiation Therapy System
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TU‐H‐BRA‐01: The Physics of High Power Radiofrequency Isolation in a Novel Compact Linear Accelerator Based MRI Guided Radiation Therapy System

机译:TU-H-BRA-01:基于小型线性加速器的MRI引导辐射治疗系统的高功率射频隔离物理学

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摘要

Purpose: To develop a method for isolating the radiofrequency waves emanating from linear accelerator components from the magnetic resonance imaging (MRI) system of an integrated MRI‐linac. Methods: An MRI‐guided radiation therapy system has been designed that integrates a linear accelerator with simultaneous MR imaging. The radiofrequency waves created by the accelerating process would degrade MR image quality, so a method for containing the radiofrequency waves and isolating the MR imager from them was developed. The linear accelerator radiofrequency modulator was placed outside the room, so a filter was designed to eliminate the radiofrequency corresponding to the proton Larmour frequency of 14.7 MHz. Placing the radiofrequency emitting components in a typical Faraday cage would have reduced the radiofrequency emissions, but the design would be susceptible to small gaps in the shield due to the efficiency of the Faraday cage reflecting internal radiofrequency emissions. To reduce internal radiofrequency reflections, the Faraday cage was lined with carbon fiber sheets. Carbon fiber has the property of attenuating the radiofrequency energy so that the overall radiofrequency field inside the Faraday cage is reduced, decreasing any radiofrequency energy emitted from small gaps in the cage walls. Results: Within a 1.2 MHz band centered on the Larmor frequency, the radiofrequency (RF) leakage from the Faraday cage was measured to be ?90 dB with no RF on, ?40 dB with the RF on and no shield, returning to ?90 dB with the RF on and shields in place. The radiofrequency filter attenuated the linear accelerator modulator emissions in the 14.7 MHz band by 70 dB. Conclusions: One of the major challenges in designing a compact linear accelerator based MRI‐guided radiation therapy system, that of isolating the high power RF system from the MRI, has been solved. The measured radiofrequency emissions are sufficiently small to enable system integration. This research was funded by ViewRay, Inc., Oakwood, OH
机译:目的:开发一种从集成的MRI-LINAC的磁共振成像(MRI)系统中隔离从线性加速器组件发出的射频波的方法。方法:设计了MRI引导的放射治疗系统,其集成了线性加速器,同时将线性加速器集成在一起。由加速过程产生的射频波会降低MR图像质量,因此开发了一种用于含有射频波和隔离它们的MR Imager的方法。线性加速器射频调制器放置在房间外,因此设计过滤器,以消除对应于14.7MHz的质子Larmour频率的射频。将射频发射组件放置在典型的法拉第笼中会降低射频排放,但由于法拉第笼的效率反映了内部射频排放的效率,设计将易受屏蔽中的小空隙。为了减少内部射频反射,法拉第笼含有碳纤维片。碳纤维具有衰减射频能量的性质,使得法拉第笼内的总体射频场减少,减少了在笼壁上的小隙中排放的任何射频能量。结果:在1.2 MHz乐队中,在位于大频频率上,从法拉第笼中的射频(RF)泄漏被测量为90 dB,没有RF ON,其中40 dB与RF ON和没有屏蔽,返回?90 DB与RF on和屏蔽到位。射频过滤器衰减了70 dB的14.7 MHz带中的线性加速器调制器排放。结论:设计了一种基于紧凑的线性加速器的MRI引导辐射治疗系统的主要挑战之一,已经解决了从MRI中隔离高功率RF系统。测量的射频排放足够小以实现系统集成。这项研究由Viewray,Inc.,Oakwood,哦,哦

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