电工技术学报  2023, Vol. 38 Issue (9): 2519-2527    DOI: 10.19595/j.cnki.1000-6753.tces.212063
高电压与放电 |
基于声弹效应的芳纶增强环氧复合材料残余应力检测技术研究
李进1, 薛润东1, 赵仁勇1, 何金2, 陈允3
1.天津大学电气自动化与信息工程学院智能电网教育部重点试验室 天津 300072;
2.国网天津市电力公司电力科学研究院 天津 300384;
3.中国电力科学研究院有限公司 北京 100192
Residual Stress Detection Technology for Aramid Reinforced Epoxy Composites Based on Acoustic-Elastic Effect
Li Jin1, Xue Rundong1, Zhao Renyong1, He Jin2, Chen Yun3
1. Key Laboratory of Smart Grid of Education Ministry School of Electrical and Information Engineering Tianjin University Tianjin 300072 China;
2. State Grid Tianjin Electric Power Research Institute Tianjin 300384 China;
3. China Electric Power Research Institute Beijing 100192 China
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摘要 生产或加工过程中浸渍、固化工艺或外力等因素有可能使芳纶增强环氧复合绝缘件内部产生残余应力,交接或操作条件下的拉伸或压缩载荷会与残余应力叠加,当所受应力超过绝缘材料的耐受极限时,就会形成微裂纹等损伤,进而引发机械故障或绝缘击穿。该文采用超声纵波反射法对芳纶纤维增强环氧树脂试样标块进行检测,研究了试样所受垂直压应力与试样中超声纵波声速的关系,验证了声弹效应,并对标准试样超声传播方向垂直于应力的纵波声弹性系数进行计算。对比固化工艺条件对芳纶纤维增强环氧复合绝缘材料残余应力的影响规律发现,固化温度和固化时间的改变均会产生不同程度的残余应力。
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李进
薛润东
赵仁勇
何金
陈允
关键词 芳纶增强环氧复合材料残余应力声弹效应固化工艺    
Abstract:Aramid fiber reinforced epoxy composites have mismatching at the interface between fiber and epoxy resin, and it is easy to produce residual stress in the curing process. The tensile or compressive load under field tests or operation conditions is usually superimposed with the residual stress. When the mechanical stress exceeds the tolerance limit of the insulating material, micro cracks and other damages will be formed, which will lead to mechanical operation failure or insulation breakdown and other accidents. Therefore, it is in urgent need to explore effective detection technology of residual stress.
In this paper, a uniaxial stress detection platform based on the acoustic elastic effect of insulated pull rods was built. The relationship between the ultrasonic P-wave velocity and uniaxial stress of aramid reinforced epoxy composites was studied. The acoustic-elastic coefficient of the ultrasonic P-wave propagation direction perpendicular to the compressive stress in the sample was calculated. Then the residual stress of aramid reinforced epoxy composites under different curing conditions was measured and discussed.
The results show that there is a highly linear correlation between the ultrasonic P-wave velocity and the vertical compressive stress in the aramid fiber reinforced epoxy composites, which verifies the acoustic-elastic effect. Besides, the ultrasonic path will increase linearly with the increase of vertical compressive stress, so the influence of sample deformation should be considered when calculating the acoustic elastic coefficient. The acoustic elastic coefficient of ultrasonic P-wave in standard epoxy and aramid fiber reinforced epoxy composites is 6.519×10-5 and 10.195×10-5 respectively. The change of curing temperature and curing time will lead to the increase of residual stress in the composite, the maximum of which reaches over 70 MPa. When the curing temperature and curing time increase, the residual stress of the sample increases. The higher curing temperature results in higher the conversion rate of partial cross-linking. In this way, the epoxy material will reach the stability value of curing degree faster and lead to the increase of residual stress of the sample. With the increase of curing time, the final curing degree of epoxy material also increases, resulting in an unbalanced shrinkage during crosslinking reaction. When the curing temperature and curing time decrease, the residual stress of the sample also increases. This is because the reduction of curing temperature and curing time will make the conversion rate of cross-linking reaction lower, resulting in insufficient cross-linking curing reaction and lower curing degree of epoxy materials. There may still remain some unreacted epoxy molecules in the network, and the interaction between them will increase the residual stress of the sample. Moreover, the shortening of curing time will also lead to the uneven curing curve and uneven curing rate, resulting in higher residual stress. Therefore, in order to reduce the residual stress in aramid reinforced epoxy composites, it is necessary to select the appropriate curing process and improve the consistency of process control.
Key wordsAramid fiber reinforced epoxy composites    residual stress    acoustic-elastic effect    curing process   
收稿日期: 2021-12-21     
PACS: TM216  
基金资助:国家自然科学基金项目(51807136)和国网天津市电力公司科技项目(KJ22-1-26)资助
通讯作者: 李 进 男,1988年生,博士,副教授,研究方向为超/特高压GIS/GIL绝缘设计、环氧树脂基础配方工艺、绝缘缺陷无损检测。E-mail:lijin@tju.edu.cn   
作者简介: 薛润东 女,1999年生,硕士研究生,研究方向为纤维增强复合材料绝缘失效机理、无损检测、固化工艺提升等。E-mail:xuerundong123@163.com
引用本文:   
李进, 薛润东, 赵仁勇, 何金, 陈允. 基于声弹效应的芳纶增强环氧复合材料残余应力检测技术研究[J]. 电工技术学报, 2023, 38(9): 2519-2527. Li Jin, Xue Rundong, Zhao Renyong, He Jin, Chen Yun. Residual Stress Detection Technology for Aramid Reinforced Epoxy Composites Based on Acoustic-Elastic Effect. Transactions of China Electrotechnical Society, 2023, 38(9): 2519-2527.
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