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马清和,等:
7050 铝合金腐蚀疲劳裂纹扩展的声发射监测
制和贡献度各不相同,通过聚类分析,定量评估了不 techniques[J]. Experimental Mechanics,1974,14(2):
同损伤类型对整体损伤演化的贡献。 71-81.
(3)使用声发射技术对铝合金CFCG的损伤类 [10] MCBRIDE S L,MACLACHLAN J W,PARADIS
型进行聚类模式识别,并结合演化分析,为深入理解 B P.Acoustic emission and inclusion fracture in
7075 aluminum alloys[J]. Journal of Nondestructive
铝合金腐蚀疲劳损伤机制、优化材料性能以及提高
Evaluation,1981,2(1):35-41.
结构安全性提供了有力支持。不仅丰富了铝合金腐
[11] BELLENGER F,MAZILLE H,IDRISSI H.Use
蚀疲劳损伤的研究手段,也为其他金属材料的损伤
of acoustic emission technique for the early detection
识别和演化分析提供了有益的参考。 of aluminum alloys exfoliation corrosion[J]. NDT & E
International,2002,35(6):385-392.
参考文献:
[12] 耿荣生,傅刚强. 铝合金材料腐蚀损伤的声发射评
[1] RICHARD S,SARRAZIN-BAUDOUX C,PETIT J. 价[J]. 声学学报,2004,29(1):6-11.
Fatigue crack propagation in new generation aluminium [13] CHANG H,HAN E H,WANG J Q,et al.Analysis of
alloys[J]. Key Engineering Materials,2011,488/489: modal acoustic emission signals of LY12CZ aluminum
476-479. alloy at anodic and cathodic polarization[J]. NDT & E
[2] MAGNIN T.Recent advances for corrosion fatigue International,2006,39(1):8-12.
mechanisms[J]. ISIJ International,1995,35(3):223-233. [14] TRDAN U,GRUM J.Analysis of NS-Laser
[3] 沈功田. 声发射检测技术及应用[M]. 北京:科学出版 Peening Effect on Corrosion Behaviour by Acoustic
社,2015:5-20. Emission[C]//14th International Conference of the
[4] MAY Z,ALAM M K,NAYAN N A.Recent advances Slovenian Society for Non-Destructive Testing.
in nondestructive method and assessment of corrosion Slovenia:[s.n],2017(9):4-6.
undercoating in carbon-steel pipelines[J]. Sensors,2022, [15] ERLINGER T,KRALOVEC C,SCHAGERL M.
22(17):6654. Monitoring of atmospheric corrosion of aircraft
[5] 张真,殷爱鸣,金绪良,等. 海上风电腐蚀监测技术研 aluminum alloy AA2024 by acoustic emission
究现状[J]. 分布式能源,2022,7(5):39-45. measurements[J]. Applied Sciences,2022,13(1):370.
[6] DUBUC B,SITAROPOULOS K,EBRAHIMKHANLOU [16] 王娟. 2A14合金疲劳行为研究[D]. 哈尔滨:哈尔滨工
A,et al.Acoustic emission diagnostics of corrosion 业大学,2013.
monitoring in prestressed concrete using hidden [17] 王池权,熊峻江. 3. 5%NaCl腐蚀环境下2种航空铝合
Markov and semi-Markov models[J]. Structural Health 金材料疲劳性能试验研究[J]. 工程力学,2017,34(11):
Monitoring,2021,20(6):2899-2916. 225-230.
[7] ALKHATEEB S,RICCIOLI F,MORALES F L,et al. [18] 苏豪展,陈凯,张乐福,等. 316LN不锈钢在高温高压
Non-contact acoustic emission monitoring of corrosion 水环境下的腐蚀疲劳行为研究[J]. 核动力工程,2020,
under marine growth[J]. Sensors,2022,23(1):161. 41(1):37-42.
[8] PARK J,KIM J S,LEE D Y,et al.Real-time [19] DAVIES D L,BOULDIN D W.A cluster separation
monitoring of stress corrosion cracking in 304L stainless measure[J]. IEEE Transactions on Pattern Analysis and
steel pipe using acoustic emission[J]. Journal of Nuclear Machine Intelligence,1979,1(2):224-227.
Materials,2022,571:154009. [20] CALINSKI T,HARABASZ J.A dendrite method for
[9] HARRIS D O,DUNEGAN H L.Continuous cluster analysis[J]. Communications in Statistics-Theory
monitoring of fatigue-crack growth by acoustic-emission and Methods,1974,3(1):78.
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2024 年 第 46 卷 第 11 期
无损检测

