|
|
Acoustic Response Characteristics of Acoustic Emission Induced by Eddy Current Exciting |
Cai Zhichao1, Liu Suzhen1, Zhang Chuang1, Yang Qingxin1, 2 |
1. Province-Ministry Joint Key Laboratory of Electromagnetic Field and Electrical Apparatus Reliability Hebei University of Technology Tianjin 300130 China; 2. Key Laboratory of Advanced Electrical Engineering and Energy Technology Tianjin Polytechnic University Tianjin 300387 China |
|
|
Abstract Due to the contactless local loading of electromagnectic acoustic emission, this paper provides a method for the damage online inspection under severe working conditions, which is a beneficial supplement of traditional acoustic emission technology. This paper studies the acoustic response characteristics arising from electromagnetic acoustic emission under various electromagnetic loads. According to the electroplastic theory and free-electron theory, the mechanism of acoustic emission energy release and the rate variations of the crack tip dislocation slip are analyzed. Thus, the various acosutic responses of the electronic directional movement under different magnetic field directions can be obtained. The electromagnetic acoustic emission signal analysis based on Hilbert- Huang transform (HHT) is an effective tool to extract the features. The experimental results show the stress wave characteristics are closely related to electromagnetic loading. Therefore, this process is the specific acoustic response between the directional mobile electronic and obstacle barrier.
|
Received: 30 July 2015
Published: 03 January 2017
|
|
|
|
|
[1] 张闯, 刘素贞, 金亮, 等. 基于大电流直接加载的电磁声发射试验[J]. 电工技术学报, 2013, 28(1): 101-105. Zhang Chuang, Liu Suzhen, Jin Liang, et al. Experimental study of electromagnetically induced acoustic emission based on high current loading directly[J]. Transactions of China Electrotechnical Society, 2013, 28(1): 101-105. [2] 刘素贞, 庄东超, 商士博, 等. 高频涡流加载下闭合裂纹的动态响应特征[J]. 电工技术学报, 2015, 30(18): 246-252. Liu Suzhen, Zhuang Dongchao, Shang Shibo, et al. Dynamic response characteristics of closed crack with the high frequency eddy current loading[J]. Transactions of China Electrotechnical Society, 2015, 30(18): 246-252. [3] 刘素贞, 李丽滨, 蔡智超, 等. 电磁超声检测系统中消除电磁干扰电路的设计[J]. 电工技术学报, 2016, 31(1): 80-84. Liu Suzhen, Li Libin, Cai Zhichao, et al. The design for electromagnetic interference eliminating circuits in electromagnetic ultrasonic testing systems[J]. Transactions of China Electrotechnical Society, 2016, 31(1): 80-84. [4] Lei G, Tang G, Paul K C. Recent advances and challenges in electroplastic manufacturing processing of metals[J]. Journal of Materials Research, 2010, 25(7): 1215-1224. [5] Molotskii M I. Theoretical basis for electro- and magnetoplasticity[J]. Materials Science and Engin- eering, 2000, 287(2): 248-258. [6] Golovin Y I. Magnetoplastic effects in solids[J]. Physics of the Solid State, 2004, 46(5): 769-803. [7] Alshits V I, Darinskaya E V, Koldaeva M V, et al. Magnetoplastic effect in nonmagnetic crystals[M]. North Holland: Elsevier, 2008. [8] Sprecher A F, Mannan S L, Conrad H. Overview no. 49: on the mechanisms for the electroplastic effect in metals[J]. Acta Metallurgica, 1986, 34(7): 1145-1162. [9] Conrad H. Thermally activated plastic flow of metals and ceramics with an electric field or current[J]. Materials Science and Engineering A, 2002, 322(1-2): 100-107. [10] Antolovich S D, Conrad H. The effects of electric currents and fields on deformation in metals, ceramics, and ionic materials: an interpretive survey[J]. Materials and Manufacturing Processes, 2004, 19(4): 587-610. [11] 付宇明, 王俊丽, 郑丽娟. 含埋藏裂纹构件脉冲放电相变应力分析[J]. 中国机械工程, 2014, 25(8): 1117-1121. Fu Yuming, Wang Junli, Zheng Lijuan. Analysis on phase transformation stress after pulse current discharging of metal component with buried crack[J]. China Mechanical Engineering, 2014, 25(8): 1117- 1121. [12] Li D, Yu E, Liu Z. Microscopic mechanism and numerical calculation of electroplastic effect on metal's flow stress[J]. Materials Science and Engin- eering A, 2013, 580: 410-413. [13] Li D, Yu E. Computation method of metal's flow stress for electroplastic effect[J]. Materials Science and Engineering A, 2009, 505(1): 62-64. [14] Chandra B P, Anubha S G, Chandra V K, et al. Dislocation unpinning model of acoustic emission from alkali halide crystals[J]. Indian Academy of Sciences, 2004, 62(6): 1281-1292. [15] Gronostajski Z. The constitutive equations for FEM analysis[J]. Journal of Materials Processing Tech- nology, 2000, 106(1): 40-44. [16] Chung J B, Asibu E K. Acoustic emission from plastic deformation of a pure single crystal[J]. Journal of Applied Physics, 1992, 72(5): 1812-1820. |
|
|
|