| Literature DB >> 30404301 |
Ke-Ping Ma1, Chao-Wei Wu2, Tso-Sheng Hsieh3, Min-Yuan Hsieh4, Chia-Chin Chiang5.
Abstract
This paper proposes an optical fiber strain sensor based on packaged long-period fiber gratings (PLPFG) which is fabricated by the micro-electromechanical systems (MEMS) process and packaged with poly-dimethylsiloxane (PDMS) polymer materials. The optical fiber sensor packaged with PDMS improves robustness effectively. The proposed PLPFG sensors have periods of 610, 650, 660 μm and fiber diameter of 48, 60, 72 μm, respectively. The resonance dip of the PLPFG grows when a strain loaded onto the sensor. The results show that the largest strain sensitivity of the PLPFG strain sensor was -0.0652 dB/με from 0⁻1200 με and the linearity (R²) was 0.9812. Accordingly, the proposed PLPFG sensor has good potential for high-sensitivity strain sensing applications.Entities:
Keywords: long-period fiber grating; optical fiber sensor; strain sensor
Year: 2016 PMID: 30404301 PMCID: PMC6190380 DOI: 10.3390/mi7080129
Source DB: PubMed Journal: Micromachines (Basel) ISSN: 2072-666X Impact factor: 2.891
Figure 1The production process of the packaged long-period fiber gratings (PLPFG) strain sensor.
Figure 2PLPFG tensile test setup diagram.
Figure 3(a) Schematics of the PLPFG; (b) Optical microscopy image of the PLPFG.
Figure 4Spectra of the PLPFG under various tensile loadings: (a) period 610 μm, diameter 48 μm, (b) period 650 μm, diameter 66 μm, and (c) period 660 μm, diameter 72 μm.
Figure 5Transmission loss versus wavelength of the PLPFG under various strain loadings: (a) period 610 μm, diameter 48 μm, (b) period 650 μm, diameter 66 μm, and (c) period 660 μm, diameter 72 μm.