Mechanism of irregular crack-propagation in thermal controlled fracture of ceramics induced by microwave

IF 1.2 4区 工程技术 Q3 ENGINEERING, MECHANICAL Mechanics & Industry Pub Date : 2020-01-01 DOI:10.1051/meca/2020077
Xiaoliang Cheng, Chunyang Zhao, Hailong Wang, Yang Wang, Zhenlong Wang
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引用次数: 1

Abstract

Microwave cutting glass and ceramics based on thermal controlled fracture method has gained much attention recently for its advantages in lower energy-consumption and higher efficiency than conventional processing method. However, the irregular crack-propagation is problematic in this procedure, which hinders the industrial application of this advanced technology. In this study, the irregular crack-propagation is summarized as the unstable propagation in the initial stage, the deviated propagation in the middle stage, and the non-penetrating propagation in the end segment based on experimental work. Method for predicting the unstable propagation in the initial stage has been developed by combining analytical models with thermal-fracture simulation. Experimental results show good agreement with the prediction results, and the relative deviation between them can be <5% in cutting of some ceramics. The mechanism of deviated propagation and the non-penetrating propagation have been revealed by simulation and theoretical analysis. Since this study provides effective methods to predict unstable crack-propagation in the initial stage and understand the irregular propagation mechanism in the whole crack-propagation stage in microwave cutting ceramics, it is of great significance to the industrial application of thermal controlled fracture method for cutting ceramic materials using microwave.
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微波致陶瓷热控断裂中不规则裂纹扩展机理
基于热控断裂的微波切割玻璃和陶瓷以其较传统的加工方法具有低能耗和高效率的优点,近年来受到了广泛的关注。然而,在此过程中存在裂纹扩展不规则的问题,阻碍了该先进技术的工业应用。在本研究中,根据实验工作,将不规则裂纹扩展归结为初始阶段的不稳定扩展,中期阶段的偏差扩展和末端段的非穿透扩展。将解析模型与热破裂模拟相结合,提出了预测初始阶段不稳定扩展的方法。实验结果与预测结果吻合较好,在部分陶瓷的切削加工中,两者的相对偏差可小于5%。通过仿真和理论分析,揭示了非穿透传播和偏差传播的机理。本研究为微波切割陶瓷材料初期不稳定裂纹扩展提供了有效的预测方法,并了解了整个裂纹扩展阶段的不规则扩展机制,对微波切割陶瓷材料的热控断裂方法的工业应用具有重要意义。
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来源期刊
Mechanics & Industry
Mechanics & Industry ENGINEERING, MECHANICAL-MECHANICS
CiteScore
2.80
自引率
0.00%
发文量
25
审稿时长
>12 weeks
期刊介绍: An International Journal on Mechanical Sciences and Engineering Applications With papers from industry, Research and Development departments and academic institutions, this journal acts as an interface between research and industry, coordinating and disseminating scientific and technical mechanical research in relation to industrial activities. Targeted readers are technicians, engineers, executives, researchers, and teachers who are working in industrial companies as managers or in Research and Development departments, technical centres, laboratories, universities, technical and engineering schools. The journal is an AFM (Association Française de Mécanique) publication.
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