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基于热效应数值分析的氢化锂陶瓷微波加热烧结-静置策略

A Sintering-Resting Strategy of Microwave Heating for Lithium Hydride Ceramic Based on Numerical Analysis of Thermal Effects.

作者信息

Zhang Wenyan, Chen Huayan, Shuai Maobing, Zeng Xiangguo, Huang Bin

机构信息

College of Architecture and Environment, Sichuan University, Chengdu 610065, China.

Key Laboratory of Deep Underground Science and Engineering, Ministry of Education, Sichuan University, Chengdu 610065, China.

出版信息

Materials (Basel). 2025 Jun 16;18(12):2832. doi: 10.3390/ma18122832.

Abstract

Lithium hydride (LiH) is one promising material for nuclear reactor shielding due to its high hydrogen content, but its poor mechanical strength and thermal conductivity pose challenges for fabricating large, crack-free ceramic components via conventional sintering. This study explores microwave sintering as a potential solution to enhance heating uniformity and reduce thermal stress during densification of bulk LiH ceramics. Using implicit function and level set methods, we numerically simulated the microwave field distribution and thermal response in both stationary and rotating samples. The results show that rotational heating improves temperature uniformity by up to 12.9% for specific samples, although uniform temperature control remains difficult through rotation alone. To mitigate stress accumulation from thermal gradients, we propose a cyclic sintering-resting strategy, which leverages LiH's tensile strength-temperature envelope to guide safe and efficient processing. This strategy successfully reduced total sintering time from several days to 1.63 h without inducing cracks. Our findings offer practical insights into optimizing microwave sintering parameters for large-scale LiH ceramic production and contribute to enabling its application in advanced nuclear shielding systems.

摘要

氢化锂(LiH)因其高氢含量而成为一种很有前景的核反应堆屏蔽材料,但其机械强度和热导率较差,给通过传统烧结制备大型无裂纹陶瓷部件带来了挑战。本研究探索微波烧结作为一种潜在的解决方案,以提高整体LiH陶瓷致密化过程中的加热均匀性并降低热应力。使用隐函数和水平集方法,我们对静态和旋转样品中的微波场分布和热响应进行了数值模拟。结果表明,对于特定样品,旋转加热可将温度均匀性提高多达12.9%,尽管仅通过旋转仍难以实现均匀的温度控制。为了减轻热梯度引起的应力积累,我们提出了一种循环烧结-静置策略,该策略利用LiH的拉伸强度-温度包络来指导安全高效的加工。该策略成功地将总烧结时间从几天缩短至1.63小时,且未产生裂纹。我们的研究结果为优化大规模LiH陶瓷生产的微波烧结参数提供了实际见解,并有助于其在先进核屏蔽系统中的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8ab5/12195609/9b8f0649dfc2/materials-18-02832-g001.jpg

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