Installation and technique of experimental investigations of composite materials based on beryllium

IF 0.2 Q4 PHYSICS, MULTIDISCIPLINARY
Ye.А. Kenzhin
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Abstract

Interest in beryllium-based composite materials has emerged recently, when intermetallic compounds such as titanium beryllide Be12Ti began to be considered as a promising material for neutron multiplication in thermonuclear fusion facilities, such as ITER and DEMO. Titanium beryllide stands out from other beryllides because it has the highest neutron multiplication rates and also has the added benefit of being more thermally stable than beryllium metal. Titanium beryllide interacts much weaker with water vapor, excluding the possibility of the formation of explosive hydrogen in the blanket body, is less prone to gas swelling, and, unlike metallic beryllium, retains a smaller amount of accumulated tritium. It has also been confirmed that the compatibility of titanium beryllide with structural materials is much higher than that of beryllium. To use titanium beryllide, it is important to study the parameters of its interaction with hydrogen isotopes. One of the most well-known methods for is the method of thermal desorption spectroscopy (TDS). The objective of this paper is the development of a specialized experimental setup for TDS research and the development of a methodology for performing experiments. The results of methodical experiments are presented, in which the procedures for saturation of samples in a deuterium medium and procedures for conducting TDS experiments were worked out. Methodical experiments on studying the parameters of the interaction of deuterium with samples of monolithic titanium beryllide were carried out on the material produced by Ulba Metallurgical Plant JSC, saturated in deuterium at atmospheric pressure and a sample temperature of 973 K. linear heating rates of 10 and 20 K/min. Based on the results of the development of the technique for conducting experimental studies of titanium beryllide, a differential mode of the TDS method was recommended. In this case, it is necessary to use a hydrogen isotope, deuterium, as a control probe.
铍基复合材料实验研究的装置与技术
当金属间化合物如铍化钛Be12Ti开始被认为是热核融合设施(如ITER和DEMO)中中子增殖的有前途的材料时,人们对铍基复合材料的兴趣最近出现了。铍化钛从其他铍化物中脱颖而出,因为它具有最高的中子增殖率,并且比铍金属更热稳定。铍化钛与水蒸气的相互作用要弱得多,排除了在毯体中形成爆炸性氢的可能性,不太容易发生气体膨胀,而且与金属铍不同,铍化钛保留了较少的累积氚。还证实了铍化钛与结构材料的相容性远高于铍。为了使用铍化钛,研究其与氢同位素相互作用的参数是很重要的。热解吸光谱法(TDS)是其中最著名的方法之一。本文的目的是为TDS研究开发一个专门的实验装置,并开发一种进行实验的方法。给出了系统的实验结果,给出了样品在氘介质中饱和的步骤和进行TDS实验的步骤。以Ulba冶金厂JSC生产的材料为材料,在常压下饱和氘,样品温度为973 K,线性加热速率为10和20 K/min,进行了研究氘与整体铍化钛样品相互作用参数的系统实验。根据铍化钛实验研究技术的发展结果,推荐了一种差别化的TDS方法。在这种情况下,有必要使用氢同位素氘作为控制探针。
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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