Wu Wenjing, Sun Bin, Chen Shengyu, Gong Weiming, Wei Heming
Appl Opt. 2024 Apr 20;63(12):3039-3045. doi: 10.1364/AO.514872.
A fiber Bragg grating (FBG) pressure sensor is proposed, designed, and fabricated for lateral earth pressure sensing, in which the FBG sensor is mounted on a 3D printed trestle structure combined with a membrane. The applied pressure can cause a deformation on the membrane, and then this deformation applied on the trestle structure causes tensile strain on the FBG. The proposed sensor is functionalized as a high-sensitive pressure transducer capable of converting the pressure into strain on the FBG. Here, the performance of the proposed sensor is numerically and experimentally investigated. The results show that the pressure sensitivity at 30°C is 10.62 pm/kPa within a range of 0-0.6 MPa. Due to the thermal expansion of the structure, the pressure sensitivity coefficient decreases with the increase of temperature; however, the cross effect between the temperature and strain on the sensing sensitivity is investigated and can be eliminated. The fabricated sensor has advantages of high sensitivity, good stability, and high pressure resolution, so it has potential in the field of structural health monitoring.
提出、设计并制作了一种用于侧向土压力传感的光纤布拉格光栅(FBG)压力传感器,其中FBG传感器安装在与膜片相结合的3D打印支架结构上。施加的压力会使膜片产生变形,然后施加在支架结构上的这种变形会使FBG产生拉伸应变。所提出的传感器被功能化为一种能够将压力转换为FBG上应变的高灵敏度压力传感器。在此,对所提出传感器的性能进行了数值和实验研究。结果表明,在30°C时,在0 - 0.6 MPa范围内压力灵敏度为10.62 pm/kPa。由于结构的热膨胀,压力灵敏度系数随温度升高而降低;然而,研究了温度和应变对传感灵敏度的交叉效应并可将其消除。所制作的传感器具有高灵敏度、良好稳定性和高压力分辨率的优点,因此在结构健康监测领域具有潜力。