Opt Lett. 2020 Sep 15;45(18):5057-5060. doi: 10.1364/OL.400978.
This Letter presents the development of a low-cost polymer optical fiber (POF) sensor for mechanical wave monitoring. The POF is fabricated using the light polymerization spinning process (LPS-POF) with Bisphenol-A as its main component, resulting in a highly flexible fiber. The proposed LPS-POF sensor is applied on the assessment of squared waves with different amplitudes, where the amplitude and dynamic responses are compared to the ones of a piezoelectric transducer (PZT). In static conditions, a determination coefficient () of 0.990 is obtained between the reference (PZT) and proposed sensors for the amplitude assessment of the wave. In dynamic analysis, the LPS-POF viscoelasticity is compensated using viscoelastic constitutive models, resulting in a of 0.988 between the sensor responses, which indicate a mean error reduction of 21% when compared to the uncompensated responses in the amplitudes of different square waves. The dynamic analysis also shows the sensor capability of operating in frequencies as high as 25 Hz. Then, the sensor's responses, compared to the input squared wave, show the possibility of wave velocity measurement. Therefore, with a LPS-POF sensor array, it is possible to monitor these parameters in practical applications.
这封信件介绍了一种用于机械波监测的低成本聚合物光纤(POF)传感器的研制。该 POF 是使用双酚 A 作为主要成分的光聚合纺丝工艺(LPS-POF)制造的,具有高度的柔韧性。所提出的 LPS-POF 传感器应用于不同幅度方波的评估,其中幅度和动态响应与压电换能器(PZT)进行了比较。在静态条件下,对于波的幅度评估,参考(PZT)和提出的传感器之间获得了 0.990 的决定系数()。在动态分析中,使用粘弹性本构模型补偿 LPS-POF 的粘弹性,导致传感器响应之间的 0.988,这表明与不同方波幅度的未补偿响应相比,平均误差降低了 21%。动态分析还表明,传感器能够在高达 25 Hz 的频率下工作。然后,传感器的响应与输入方波相比,表明了测量波速的可能性。因此,使用 LPS-POF 传感器阵列,可以在实际应用中监测这些参数。