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Low energy electron beam accelerator design for surface sterilization of aseptic food packaging materials.

机译:低能电子束加速器设计,用于无菌食品包装材料的表面灭菌。

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摘要

A low energy, compact size, and low cost electron beam accelerator has been developed to investigate the feasibility of using low energy electrons (55-65 keV) for surface sterilization of food packaging materials. An electromagnetic field analysis code SIMION was used to model the beam focusing system. Based on the findings of the SIMION modeling, a filament-off-center technique was used to simplify the inner structure of the accelerator. The energy delivery mechanism of the accelerator was characterized. The relationship between the absorbed dose rates and the thickness of the air gap was obtained experimentally. Experimental results showed that air gap should be minimized for low energy electrons in order to effectively irradiate food packaging materials. Microbiological experiments using Bacillus pumilus spores were conducted to measure the deactivation characteristics of low energy electrons.; A Monte Carlo analysis of the dose-depth distribution of 55 {dollar}sim{dollar} 65 keV electrons in the surface of food packaging materials was conducted. Theoretical predictions of both the penetration depth of electrons in the packaging materials, and the absorbed dose received by the surface of the packaging materials, were obtained. The penetration depth of electrons was observed experimentally by examining 50 micron thick slices of irradiated dose films under a microscope. Both measured dose rates and penetration depths are consistent with the results of the theoretical analysis.; A finite element analysis code ANSYS was used to model the heat transfer behavior of the accelerator chamber to find the steady state temperature of the extraction window. The accelerator undergoes thermal radiation from the filament, electron energy conversion into thermal energy to heat the window, forced air convection outside the chamber, and thermal conduction inside the metal wall of the chamber. Both the modeling and experiments showed that the steady state temperatures of the extraction window cooled by an air flow of 4.7 m/s were well below the melting temperatures of the window materials even under some extreme conditions.
机译:为了研究使用低能量电子(55-65 keV)对食品包装材料进行表面灭菌的可行性,开发了一种低能量,紧凑尺寸和低成本的电子束加速器。使用电磁场分析代码SIMION对束聚焦系统进行建模。根据SIMION建模的结果,采用细丝偏心技术简化了加速器的内部结构。表征了加速器的能量传递机理。通过实验获得吸收剂量率与气隙厚度之间的关系。实验结果表明,对于低能电子,应使气隙最小化,以便有效地辐照食品包装材料。进行了使用短小芽孢杆菌孢子的微生物实验,以测量低能电子的失活特性。对食品包装材料表面的55 {sim} {keol} 65 keV电子的剂量深度分布进行了蒙特卡洛分析。获得了电子在包装材料中的渗透深度以及包装材料表面接收的吸收剂量的理论预测。通过在显微镜下检查50微米厚的辐照剂量薄膜切片,实验观察了电子的渗透深度。所测得的剂量率和穿透深度均与理论分析的结果一致。使用有限元分析代码ANSYS对加速器腔室的传热行为进行建模,以找到抽气窗的稳态温度。加速器受到灯丝的热辐射,电子能量转换成热能以加热窗口,在腔室外部强制对流以及在腔室金属壁内部进行热传导。建模和实验均表明,即使在某些极端条件下,以4.7 m / s的气流冷却的抽气窗的稳态温度也远低于窗材料的熔化温度。

著录项

  • 作者

    Wang, Zi.;

  • 作者单位

    North Carolina State University.;

  • 授予单位 North Carolina State University.;
  • 学科 Engineering Nuclear.; Engineering Agricultural.
  • 学位 Ph.D.
  • 年度 1994
  • 页码 109 p.
  • 总页数 109
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 原子能技术;农业工程;
  • 关键词

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