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TU‐H‐BRA‐03: Performance of a Clinical Gridded Electron Gun in Magnetic Fields: Implications for MRI‐Linac Therapy

机译:TU-H-BRA-03:磁场中临床包装电子枪的性能:MRI-LINAC治疗的影响

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Purpose: Recent advances towards MRI Linac radiotherapy have motivated a wide range of studies characterizing electromagnetic interactions between the two devices. One of the most sensitive components is the linac electron gun. To data, only non gridded (diode) guns have been investigated however, most linac vendors utilize gridded (triode) guns, which enable efficient and robust beam gating. The purpose of this study was to develop a realistic model of a gridded gun used clinically, and to characterize its performance in magnetic fields. Methods: The gridded electron gun used on Varian high energy machines was measured using 3D laser scanning quoted as accurate to 0.1mm. Based on the scane, a detailed CAD mode was developed. From this, key geometry was extracted and a FEM model was developed (Opera/SCALA). Next, the high voltage (HV), grid voltage, and emission current were read from six dose matched TrueBeam linacs for the 6X, 10X and 15X photon modes (0 B‐field). The mean values were used to represent each mode, which was simulated I constant magnetic fields from 0–200G in‐line, and 0–35G perpendicular. Results: Experimentally measured HV, grid voltage, and emission current from 6X, 10X and 15X modes were respectively: 15±.03kV, 10±.08kV, 11±.03kV; 93±7V, 41±3V, and 70±6V; 327±27mA, 129±10mA, and 214±19mA. The error in simulated emission current of each mode was 3%,6%, and 3%. For in‐line fields, 50% beam loss occurred at 114, 96, and 97G; for perpendicular; at 12, 13 and 14G. Sensitivity for a given geometry is primarily determined by HV setting. Conclusion: Future MRI‐Linac systems will almost certainly use gridded guns. We present the first model of a clinical gridded gun, and match the experimental emission current to within 6% across three different operating modes. This clinical gun shows increased sensitivity to magnetic fields than previous work,and different modes show different sensitivity.
机译:目的:迄今为止迈尔LINAC放疗的最新进展促进了各种研究,表征了两个设备之间的电磁相互作用。最敏感的组件之一是Linac电子枪。对于数据,只有未包装(二极管)枪已经研究过,大多数LinaC供应商利用网格(三极管)枪,其能够高效且鲁棒的光束门控。本研究的目的是开发临床上使用的包装枪的现实模型,并在磁场中表征其性能。方法:采用3D激光扫描,使用3D激光扫描为0.1mm测量瓦里亚高能量机上使用的网格上的电子枪。基于SCANE,开发了详细的CAD模式。由此,提取关键几何形状并开发了有限元模型(Opera / Scala)。接下来,从6倍,10x和15x光子模式(0b字段)从六个剂量匹配的真空线圈读取高电压(HV),电网电压和发射电流。平均值用于表示每种模式,该模式被模拟I-200g在线0-200g的恒定磁场,垂直于0-35g。结果:实验测量的HV,电网电压和6倍,10x和15x模式的发射电流分别:15±0.03kV,10±0.08kV,11±0.03kV; 93±7V,41±3V,70±6V; 327±27mA,129±10mA和214±19mA。每个模式的模拟发射电流中的误差为3%,6%和3%。对于在线领域,在114,96和97g处发生50%波束损失;垂直;在12,13和14g。给定几何体的灵敏度主要由HV设置确定。结论:未来的MRI-LINAC系统几乎肯定会使用包装枪。我们介绍了临床包装枪的第一款,并将实验排放电流与三种不同的操作模式相匹配到6%以内。该临床枪显示对磁场的敏感性比以前的工作相比,不同的模式显示出不同的灵敏度。

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