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FULLY REVERSED ELECTRIC FATIGUE BEHAVIOR OF A PIEZOELECTRIC COMPOSITE ACTUATOR

机译:压电复合执行器的完全反向电疲劳行为

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摘要

The aim of this study is to investigate fully reversed electric fatigue behavior of a piezoelectric composite actuator (PCA). For that purpose, fatigue tests with different loading conditions have been conducted and the performance degradation has been monitored. During a preset number of loading cycles, non-destructive acoustic emission (AE) tests were used for monitoring the damage evolution in real time. The displacement-cycle curves were obtained in fully reversed cyclic bending loading. The microstructures and fracture surfaces of PCA were examined to reveal their fatigue damage mechanism. The results indicated that the AE technique was applicable to fatigue damage assessment in the piezoelectric composite actuator. It was shown that the initial damage mechanism of PCAs under fully reversed electric cyclic loading originated from the transgranular fracture in the PZT ceramic layer; with increasing cycles, local intergranular cracking initiated and the either developed onto the surface of the PZT ceramic layer or propagated into the internal layer, which were some different depending on the drive frequencies and the lay-up sequence of the PCA.
机译:这项研究的目的是研究压电复合致动器(PCA)的完全反向电疲劳行为。为了这个目的,已经进行了在不同负载条件下的疲劳测试,并监测了性能下降。在预设数量的加载周期内,非破坏性声发射(AE)测试用于实时监控损伤的演变。位移循环曲线是在完全反向的循环弯曲载荷下获得的。检查PCA的微观结构和断裂表面,以揭示其疲劳损伤机理。结果表明,声发射技术适用于压电复合材料致动器的疲劳损伤评估。结果表明,在完全逆向循环载荷下,PCA的初始破坏机理是由PZT陶瓷层的沿晶断裂引起的。随着周期的增加,局部晶间裂纹开始出现,并要么发展到PZT陶瓷层的表面上,要么传播到内层,这取决于驱动频率和PCA的铺层顺序而有所不同。

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  • 来源
  • 会议地点 Ellicott City MD(US);Ellicott City MD(US);Ellicott City MD(US)
  • 作者

    Sung-Choong Woo; Nam Seo Goo;

  • 作者单位

    Artificial Muscle Research Center, Konkuk University, 1 Hwayang-dong, Gwangjin-gu, Seoul 143-701, Republic of Korea;

    Smart Microsystem Research Laboratory, Department of Advanced Technology Fusion, Artificial Muscle Research Center and Future Robot Research Center, Konkuk University, 1 Hwayang-dong, Gwangjin-gu, Seoul 143-701, Republic of Korea;

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  • 正文语种 eng
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