Standard-static method for measuring piezoelectric coefficient of d15 of piezoelectric materials
A piezoelectric material and piezoelectric coefficient technology, applied in the field of functional materials and testing technology research, can solve problems such as difficult operation and complicated process, and achieve the effects of easy operation, simple process and wide application range
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Embodiment 1
[0050] According to step 3, adjust the signal generator so that when the vibration frequency is 80 Hz, the excitation voltages are 100, 200, 300, 400, 500, 600, 800 and 1000 mV respectively. According to the ANSYS finite element simulation, the resonance frequency is about 4KHz, which is much larger than the vibration frequency of the cantilever beam, so the cantilever beam can be considered as quasi-static. Using an accelerometer and a charge amplifier, it is possible to measure Figure 5 The relationship between acceleration and output charge is shown, so Q / a=8.523×10 -2 pC.s 2 / m, then Q F =Q / (Ma)=121.87pC / N.
[0051] According to step 4, according to Table 1, the piezoelectric coefficient of PZT-51 can be obtained as 678m / V. Comparing this result with the piezoelectric coefficient (700m / V) of the material provided by the manufacturer, the relative error is 3.1%; compared with the piezoelectric coefficient (670m / V) simulated by ANSYS finite element, the relative error i...
Embodiment 2
[0053] According to step 3, build figure 2 The device is shown to measure the output charge of the piezoelectric laminated cantilever. Adjust the signal generator so that when the vibration frequency is 80Hz, the excitation voltages are 100, 200, 300, 400, 500, 600, 800 and 1000mV respectively. According to the ANSYS finite element simulation, the resonance frequency is about 4KHz, which is much larger than the vibration frequency of the cantilever beam, so the cantilever beam can be considered as quasi-static. Using an accelerometer and a charge amplifier, it is possible to measure Image 6 The relationship between acceleration and output charge is shown, so Q / a=6.126×10 -2 pC.s 2 / m, then Q F =Q / (Ma)=87.60pC / N.
[0054] According to step 4, according to Table 2, the piezoelectric coefficient of PMN can be obtained as 656m / V. This result is compared with the piezoelectric coefficient (660m / V) of the material provided by the manufacturer, and the relative error is 0.6%;...
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