The Influence of High-Temperature Tests on the Resistance to Degradation and Reduction in Strength Properties of Lithium-Containing Ceramics Used as Blanket Materials for Tritium Breeding

IF 3 Q2 MATERIALS SCIENCE, COMPOSITES
A. Kozlovskiy, G. Z. Moldabayeva, D. Shlimas, D. Borgekov, Vyacheslav S. Rusakov
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Abstract

Conducting high-temperature tests on ceramics-containing lithium, which are employed as tritium breeding materials, plays a crucial role in comprehending their ability to withstand degradation and maintain their strength properties throughout operation. From the standpoint of fusion research, it is imperative to grasp these phenomena in order to guarantee the safety and effectiveness of reactors. Additionally, these factors could impact the choice of particular materials and designs for blanket materials. The primary objective of this research is to evaluate alterations in the strength characteristics of ceramics-containing lithium when subjected to high-temperature thermal stability tests, while also preserving the hardness stability and resistance to cracking in ceramics subjected to cyclic tests. Lithium-containing ceramics based on lithium titanate (Li2TiO3), lithium orthosilicate (Li4SiO4), and lithium methacyrconate (Li2ZrO3), having a high structural ordering degree and good strength properties, were chosen as objects for assessing resistance to high-temperature degradation. During the studies, it was discovered that the presence of interphase boundaries in the composition of ceramics linked to the development of impurity phases results in crack resistance growth during long-term high-temperature tests simulating the stress effect on the material. At the same time, an assessment of high-temperature aging as a result of modeling destruction processes showed that ceramics based on lithium metazirconate are the most resistant to degradation of strength properties. By simulating high-temperature aging processes, it became feasible to establish connections between structural alterations resulting from the thermal expansion of the crystal lattice and oxygen migration phenomena occurring at elevated temperatures. These factors collectively contribute to a detrimental reduction in the strength properties of ceramics-containing lithium.
高温试验对用作氚培育坯料的含锂陶瓷的抗降解性和强度性能降低的影响
对含锂陶瓷(用作氚增殖材料)进行高温测试,对于了解其在整个运行过程中承受降解和保持强度性能的能力至关重要。从核聚变研究的角度来看,为了保证反应堆的安全性和有效性,必须掌握这些现象。此外,这些因素可能会影响特定材料的选择和毛毯材料的设计。本研究的主要目的是评估含锂陶瓷在经受高温热稳定性试验时强度特性的变化,同时在经受循环试验时保持陶瓷的硬度稳定性和抗开裂性。以钛酸锂(Li2TiO3)、正硅酸锂(Li4SiO4)和甲基氰酸锂(Li2ZrO3)为基体的含锂陶瓷为研究对象,研究其结构有序度高、强度性能好。在研究过程中,发现在模拟材料应力效应的长期高温试验中,陶瓷成分中存在与杂质相发展有关的相间边界导致抗裂性增长。与此同时,对高温老化的评估表明,基于偏锆酸锂的陶瓷是最耐强度性能退化的。通过模拟高温时效过程,可以建立由晶格热膨胀引起的结构变化与高温下发生的氧迁移现象之间的联系。这些因素共同导致含锂陶瓷强度特性的有害降低。
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来源期刊
Journal of Composites Science
Journal of Composites Science MATERIALS SCIENCE, COMPOSITES-
CiteScore
5.00
自引率
9.10%
发文量
328
审稿时长
11 weeks
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