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首页> 外文期刊>International Journal of Medical Physics, Clinical Engineering and Radiation Oncology >Measurement of the Energy Spectrum of a 6 MV Linear Accelerator Using Compton Scattering Spectroscopy and Monte Carlo-Generated Corrections
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Measurement of the Energy Spectrum of a 6 MV Linear Accelerator Using Compton Scattering Spectroscopy and Monte Carlo-Generated Corrections

机译:使用Compton散射光谱和蒙特卡罗产生的矫正的6 MV线性加速器能谱测量

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Purpose: The energy spectrum of a linear accelerator used for dose calculations is determined during beam commissioning by iteratively adjusting the spectrum and comparing calculated and measured percent depth-dose curves. Direct measurement of the energy spectrum using pulse mode detectors is particularly challenging because of the high-energy, high fluence nature of these beams and limitations of the detector systems. This work implements a Compton scattering (CS) spectroscopy setup and presents detector corrections and spectral unfolding techniques to measure the spectrum of a 6 MV linear accelerator using a pulse mode detector. Methods: Spectral measurements were performed using a Varian Clinac 21EX linear accelerator and a high-purity germanium (HPGe) detector. To reduce fluence to the detector, a custom-built lead shield and a CS spectrometry setup were used. The detector was placed at CS angles of 46 ° , 89 ° , and 125 ° . At each of these locations, a detector response function was generated to account for photon interactions within the experimental geometry. Gold’s deconvolution algorithm was used to unfold the energy spectrum. The measured spectra were compared to simulated spectra, which were obtained using an experimentally benchmarked model of the Clinac 21EX in MCNP6. Results: Measurements were acquired and detector response corrections were calculated for all three CS angles. A comparison of spectra for all CS angles showed good agreement with one another. The spectra for all three angles were averaged and showed good agreement with the MCNP6 simulated spectrum, with all points above 400 keV falling within 4%, which was within the uncertainty of the measurement and statistical uncertainty. Conclusions: The measurement of the energy spectrum of a 6 MV linear accelerator using a pulse-mode detector is presented in this work. For accurate spectrum determination, great care must be taken to optimize the detector setup, determine proper corrections, and to unfold the spectrum.
机译:目的:通过迭代调整光谱和比较计算和测量的深度剂量曲线,在光束调试期间确定用于剂量计算的线性加速器的能谱。由于这些光束的高能量,高通量性质和探测器系统的限制,使用脉冲模式检测器的直接测量使用脉冲模式检测器的能谱特别具有挑战性。该工作实现了Compton散射(CS)光谱设置,并呈现了使用脉冲模式检测器测量6 MV线性加速器的光谱的探测器校正和光谱展开技术。方法:使用Varian Clarac 21ex线性加速器和高纯度锗(HPGE)检测器进行光谱测量。为了减少对探测器的流量,使用定制的引线屏蔽和CS光谱设置。将检测器放置在46°,89°和125°的CS角度。在这些位置中的每一个,产生检测器响应函数以考虑实验几何形状内的光子相互作用。黄金的解压力算法用于展开能谱。将测量的光谱与模拟光谱进行比较,这些光谱使用MCNP6中的Clarac 21ex的实验基准模型获得。结果:获取测量,并针对所有三个CS角度计算检测器响应校正。所有CS角度的光谱比较彼此吻合良好。所有三个角度的光谱都是平均的,并与MCNP6模拟光谱进行了良好的一致性,并且所有点以上400 keV落在4%以内,这在测量和统计不确定性的不确定范围内。结论:在这项工作中提出了使用脉冲模式检测器的6mV线性加速器的测量。对于精确的频谱测定,必须谨慎地进行优化检测器设置,确定正确的校正,并展开光谱。

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