-反照吸收技术在主要尺寸参数(厚度、表面密度、涂层)纳米材料生产中构建无损器件的可行性

V. G. Fedorkov
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引用次数: 0

摘要

解释了使用相对未知的β -反射率吸收(BAA)技术的可行性,这是作者博士论文的研究课题,用于创建现代的,世界上任何地方都无与伦比的无损检测(NDT)系统,用于生产纳米材料,其主要尺寸参数(厚度,表面密度和涂层)在纳米橙中,即实际上从零到几百纳米。这个问题的重要性是由目前俄罗斯和世界各地在实际缺乏无损检测装置的开发和生产的情况下,不同类型的纳米材料生产的紧张发展决定的。给出了BAA测量几何主要定量特征的解析表达式,即在反射气体或空气介质参数变量处的径向密度分布和积分电子后向散射系数。描述了BAA方法的最佳测量几何原理,该原理不依赖于反射介质参数的变化,并使测量误差最小化。最后给出了所研制的探测器的设计。对BAA方法的进一步实验研究提出了以下建议,旨在为纳米橙的参数测量提供可能性:使用最大光谱能量值较低的工业β源;增加β源的活度或测量时间;采用特殊滤波器对β源发射光谱进行降解;使用辐射探测器,测量面积最大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
FEASIBILITY OF THE BETA-ALBEDO-ABSORPTION TECHNIQUE APPLICATION FOR BUILDING NON-DESTRUCTIVE DEVICES APPLIED IN THE PRODUCTION OF NANOMATERIALS WITH MAIN DIMENSION PARAMETERS (THICKNESS, SURFACE DENSITY, AND COATING)
The explanation is given of the feasibility of using of a relatively unknown beta-albedo-absorption (BAA) technique, which was the research topic of the PHD thesis of the author, for the creation of a modern, unparalleled anywhere in the world, non-destructive testing (NDT) system to be used for the production of nanomaterials with main dimension parameters (thickness, surface density, and coating) in the nanorange, i.e., practically from zero to several hundreds of nanometers. The importance of the problem is determined by the present time intense development both in Russia and all over the world of the production of nanomaterials of different types in the practical absence of the development and production of NDT devices. Analytical expressions are given for the calculation of the main quantitative characteristics of BAA measurement geometry, namely, the radial density distribution and the integral electron backscattering coefficient at the variables of the parameters of the reflecting gas or air medium. The principle of developing the optimum measurement geometry, little dependent on changing parameters of the reflecting medium and minimizing measurement errors for BAA method, is described. The design of the developed detectors is shown. The following recommendations are given on additional experimental studies of the BAA method aiming to provide a possibility of parameter measurement in the nanorange: using the industrial beta sources with a lower value of the maximum beta spectrum energy; increasing the activity of beta sources or measurement time; using special filters for degradation of the beta source emission spectrum; and using beta radiation detectors with the largest possible measurement area.
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