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Sensing mechanical properties of solid materials with bimorph piezo transducers

机译:使用双压电晶片压电传感器感测固体材料的机械性能

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Mechanical properties of materials, such as Young's modulus, shear modulus and linear viscoelastic damping, are experimentally measured with a thin-film cantilever shaker. The experimental apparatus consists of a bimorph piezoelectric transducer acting as an actuator to generate base excitation to the cantilever, which is analogous to earthquake causing building vibration. The motion of the cantilever is monitored by a pair of fiber optics to measure the displacements of the fixed end and the sample. Linear viscoelastic properties of the material are measured from the resonant frequencies of the vibrating cantilever. Young's modulus and shear modulus are measured from bending and torsion resonant peaks, respectively. For high loss materials, loss tangent of the materials is obtained from the Lorenzian curve fit around the resonant peak. Material properties at various frequencies are measured by changing the length of the specimens. Furthermore, by introducing crack-like defects, the measured resonances, which may be viewed as a measure of effective moduli, are able to be adopted to locate the crack via the method of system identification.
机译:材料的机械性能,例如杨氏模量,剪切模量和线性粘弹性阻尼,是通过薄膜悬臂式振动器进行实验测量的。实验设备由一个双压电晶片压电换能器组成,该压电换能器充当致动器以产生对悬臂的基础激励,这类似于引起建筑物振动的地震。悬臂的运动由一对光纤监控,以测量固定端和样品的位移。从振动悬臂的共振频率测量材料的线性粘弹性。杨氏模量和剪切模量分别从弯曲和扭转共振峰测量。对于高损耗材料,可从共振峰周围的洛伦兹曲线拟合获得材料的损耗角正切。通过改变样品的长度来测量各种频率下的材料性能。此外,通过引入类似裂纹的缺陷,可以通过系统识别的方法将所测得的共振(可以看作是有效模量的量度)用于确定裂纹的位置。

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