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MONTE CARLO CALCULATION OF RADIATION ENERGY ABSORBED IN PLASTIC SCINTILLATORS

机译:塑料闪烁体吸收辐射能的蒙特卡罗计算

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Monte Carlo calculations of the rate of absorbed energy from a photon beam were carried out to compare the response of commercial plastic scintillators with that of air in the energy region below 1 MeV. We have found that for photon energies above 100 keV, the response of different kinds of plastics is proportional to that of air, while below this value of energy, we have obtained differences between the responses of plastics and air. In a literature search, we have also found discrepancies with other authors as well as among them. In this paper, we investigate the possibilities of eliminating these differences and explaining discrepancies. We found that doping a plastic scintillator with silicon makes the composite material behave like air from 2 keV up to 600 keV, making the ratio of absorbed energy constant. This energy region is of interest in radiology and surface radiotherapy and we conclude that a plastic scintillator with truly air-equivalent behavior is of importance to carry out more precise dosimetry. Other elements such as fluorine and magnesium were also considered, but silicon was found to be more appropriate due to its greater atomic number and its interchangeability with carbon in hydrocarbon molecules.
机译:对光子束吸收能量的速率进行了蒙特卡洛计算,以比较商用塑料闪烁体的响应与低于1 MeV能量区域中空气的响应。我们发现,对于高于100 keV的光子能量,不同种类的塑料的响应与空气成正比,而低于此能量值,我们已经获得了塑料和空气的响应之间的差异。在文献搜索中,我们还发现了与其他作者以及其他作者之间的差异。在本文中,我们研究了消除这些差异并解释差异的可能性。我们发现,用硅掺杂塑料闪烁体会使复合材料的行为像空气,从2 keV到600 keV,使吸收的能量之比恒定。这个能量区域是放射学和表面放射治疗中的关注点,我们得出的结论是,具有真正等效于空气行为的塑料闪烁体对于进行更精确的剂量测定至关重要。还考虑了其​​他元素,例如氟和镁,但由于硅的原子数更大且与烃分子中的碳具有互换性,因此发现硅更合适。

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