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基于压电超声共振法的小尺寸螺栓预紧力测量技术研究

Research on the Measurement Technology for Pretension Stress on Small-Sized Bolts Based on the Piezoelectric Ultrasonic Resonance Method.

作者信息

Chen Bing, Luo Chunlang, Xia Li, Xu Lintao, Yan Guanglong, Qiu Feifei, Gou Guoqing

机构信息

Key Laboratory of Advanced Technologies of Materials, Ministry of Education, School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu 610031, China.

Zhejiang Academy of Special Equipment Science, Hangzhou 310009, China.

出版信息

Materials (Basel). 2024 Nov 26;17(23):5802. doi: 10.3390/ma17235802.

Abstract

With the widespread application of small-sized bolts in aerospace and other fields, the demand for measuring their connection structures is increasing. Currently, although ultrasonic longitudinal wave methods are commonly used for bolt pretension stress measurement, their accuracy is limited for small-sized bolts. This paper proposes a piezoelectric acoustic resonance method (PZTAR) for small-sized bolt pretension stress measurement based on acoustic elasticity theory, ultrasonic resonance principles, and a bolt stress-strain model. The method involves analyzing the ultrasonic time-domain signals of small-sized bolts under load in the frequency domain to better evaluate the changes in the ultrasonic frequencies under different pretension stress. The effectiveness of this method is verified through pretension stress measurement experiments. The results indicate that the proposed ultrasonic resonance method achieves an average error of less than 5% for M5 specification bolts. Compared to traditional ultrasonic time delay methods, the proposed method demonstrates higher measurement accuracy. Additionally, the ultrasonic resonance method exhibits better robustness during the measurement process.

摘要

随着小型螺栓在航空航天等领域的广泛应用,对其连接结构进行测量的需求日益增加。目前,虽然超声纵波方法常用于螺栓预紧应力测量,但对于小型螺栓,其精度有限。本文基于声弹性理论、超声共振原理和螺栓应力应变模型,提出了一种用于小型螺栓预紧应力测量的压电声共振方法(PZTAR)。该方法通过在频域中分析加载状态下小型螺栓的超声时域信号,以更好地评估不同预紧应力下超声频率的变化。通过预紧应力测量实验验证了该方法的有效性。结果表明,所提出的超声共振方法对于M5规格螺栓的平均误差小于5%。与传统超声时延方法相比,该方法具有更高的测量精度。此外,超声共振方法在测量过程中表现出更好的稳健性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1d80/11642192/858c3ada8b2c/materials-17-05802-g001.jpg

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