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The relationship between electromechanical cyclic loading and the performance degradation of a smart bending piezoelectric actuator

机译:机电循环载荷与智能弯曲压电致动器性能下降之间的关系

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摘要

This paper presents the relationship between electromechanical cyclic loading and the performance degradation of a smart bending piezoelectric actuator under a fully reversed condition. For this, the authors have fabricated two types of smart bending piezoelectric actuators, PCA and PCAWB, and then cyclic tests with different loading conditions have been carried out with a sinusoidal loading waveform at the resonant frequency along with monitoring of their performance degradation. The displacement performance and the cyclic-induced damage process of the actuators have been measured and monitored to assess their health. Comparisons between purely electric loading and electromechanical loading were made in relation to the performance degradation. The results revealed that the damage to the actuators began in the PZT layer in the form of transgranular fracture and then local intergranular cracking grew on the PZT surface. In particular, the intergranular cracking propagated along the center line of the PZT surface, where virtually maximum bending stresses took place, and sometimes extended transversely into the internal PZT layer thereby inducing a large performance degradation of the actuators. Final failure was observed only in PCAWB under electromechanical loading because of wear and a local discharge between the crack faces. The performance degradation rate for PCA was even smaller than that for PCAWB because the protective bottom layer retarded the growth of transgranular fracture in the PZT layer and impeded cracks from propagating in the PZT ceramic layer. The electromechanical cyclic cases were worse for both PCA and PCAWB than the electric cyclic cases, i.e. greater damage such as intergranular fracture, frictional wear, and sliding between the transverse cracking faces was inflicted on the PZT layer in the electromechanical cyclic tests.
机译:本文介绍了在完全反向的情况下,电动机械循环负载与智能弯曲压电致动器性能下降之间的关系。为此,作者制造了两种类型的智能弯曲压电致动器PCA和PCAWB,然后在谐振频率下以正弦负载波形对不同负载条件进行了循环测试,并监测了它们的性能下降。已经测量并监视了执行器的位移性能和循环引起的损坏过程,以评估其健康状况。就性能下降而言,对纯电动负载和机电负载进行了比较。结果表明,对致动器的破坏始于PZT层的穿晶断裂形式,然后在PZT表面上出现局部晶间裂纹。尤其是,沿PZT表面的中心线(实际上发生了最大的弯曲应力)传播的晶间裂纹有时会横向延伸到内部PZT层中,从而导致执行器的性能大幅下降。由于磨损和裂纹面之间的局部放电,仅在机电负载下的PCAWB中观察到最终失效。 PCA的性能降级速率甚至比PCAWB的性能降级速率还要小,这是因为保护性底层阻止了PZT层中穿晶断裂的增长,并阻止了裂纹在PZT陶瓷层中扩展。 PCA和PCAWB的机电循环情况都比电循环情况差,即在机电循环测试中,PZT层造成了更大的破坏,例如晶间断裂,摩擦磨损和横向裂纹面之间的滑动。

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