Simulation Studies on the Interactions of Electron Beam with Wastewater

Xi Li, H. Baumgart, G. Ciovati, F. Hannon, Shaoheng Wang
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Abstract

High energy electron beam irradiation is capable of removing harmful organic compounds from industrial manufacturing, which are hard to be degraded by the conventional wastewater treatment methods. This paper utilizes FLUKA code to evaluate the electron beam-wastewater interaction effects with different energy, space and divergence distributions of the electron beam. With 8 MeV average energy, the electron beam exits from a 0.0127 cm thick titanium window, travels through a 4.3 cm distance in air and through a second 0.0127 cm thick stainless sample container window with 2.43 cm radius, and finally is injected into the wastewater sample container, which has a volume of around 75 cubic cm. The distributions of the electron beam are obtained from the GPT (General Particle Tracer) simulations for the UITF (Upgraded Injector Test Facility) in Jefferson lab. By varying the parameters of the electron beam, the dose distributions through the water, the contributions from the electrons and bremsstrahlung photons are scored and compared. It is found that a spatially uniform electron beam results for the case of the most uniform dose distribution and the electrons are the main source for the dose. In addition, the electron differential fluence through the multiple planes of the has been modelled, which provides the base for the further electron beam requirements study.
电子束与废水相互作用的模拟研究
高能电子束辐照能够去除工业制造中传统废水处理方法难以降解的有害有机化合物。本文利用FLUKA程序对不同能量、空间和发散分布的电子束-废水相互作用效果进行了评价。电子束以8 MeV的平均能量从0.0127 cm厚的钛合金窗口出来,在空气中穿过4.3 cm的距离,再穿过半径为2.43 cm的另一个0.0127 cm厚的不锈钢样品容器窗口,最后注入到体积约为75立方cm的废水样品容器中。通过对杰斐逊实验室UITF(升级注入器测试装置)的GPT(一般粒子示踪剂)模拟,得到了电子束的分布。通过改变电子束的参数,对水中的剂量分布、电子和轫致辐射光子的贡献进行评分和比较。结果表明,在剂量分布最均匀的情况下,产生空间均匀的电子束,电子是剂量的主要来源。此外,还建立了电子在不同平面上的差分通量模型,为进一步研究电子束需求提供了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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