High-Resolution Fabry–Pérot Interferometric Strain Sensor for Mortar

Continuous measurement of small deformation in cementitious materials requires both sensitive displacement readout and control of environmental effects. This study develops a long-gauge strain sensor based on a low-finesse extrinsic Fabry–Pérot interferometer (EFPI). Axial displacement of a 250 mm mortar prism is transferred to an external reflector, and the air cavity length is recovered from swept-wavelength reflection spectra. Loading–unloading measurements cover a nominal strain range of 0–10,000 µε. A separate incremental test resolves a nominal 2 nm displacement step, equivalent to 8 nε, with a local strain-response slope of 0.960 and R2 = 0.99550. For 100 consecutive readings at a chamber setting of 20 °C, the sample standard deviation is 1.162 nε; division by the local response slope gives an estimated input-referred noise-equivalent strain of 1.21 nε (1σ). These short-term metrics do not establish long-term accuracy. During 14-day monitoring, individual mortar prisms with water-to-cement ratios of 0.4, 0.5, and 0.6 reach apparent compressive strains of 452.0, 532.5, and 599.7 µε, respectively. The results demonstrate the feasibility of continuous long-gauge optical monitoring.

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Publication Details

Journal
Photonics
Published
2026-09-17
DOI
https://doi.org/10.3390/photonics13090876
Primary Topic
Advanced Fiber Optic Sensors
Type
article
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High-Resolution Fabry–Pérot Interferometric Strain Sensor for Mortar

Yan Tang, Zewei Wu, Jie Huang, Zihui Liu et al.
Photonics
Advanced Fiber Optic Sensors
article

High-Resolution Fabry–Pérot Interferometric Strain Sensor for Mortar

Yan Tang, Zewei Wu, Jie Huang, Zihui Liu, Biyao Shi, Shan Wang
article en

Abstract

Continuous measurement of small deformation in cementitious materials requires both sensitive displacement readout and control of environmental effects. This study develops a long-gauge strain sensor based on a low-finesse extrinsic Fabry–Pérot interferometer (EFPI). Axial displacement of a 250 mm mortar prism is transferred to an external reflector, and the air cavity length is recovered from swept-wavelength reflection spectra. Loading–unloading measurements cover a nominal strain range of 0–10,000 µε. A separate incremental test resolves a nominal 2 nm displacement step, equivalent to 8 nε, with a local strain-response slope of 0.960 and R2 = 0.99550. For 100 consecutive readings at a chamber setting of 20 °C, the sample standard deviation is 1.162 nε; division by the local response slope gives an estimated input-referred noise-equivalent strain of 1.21 nε (1σ). These short-term metrics do not establish long-term accuracy. During 14-day monitoring, individual mortar prisms with water-to-cement ratios of 0.4, 0.5, and 0.6 reach apparent compressive strains of 452.0, 532.5, and 599.7 µε, respectively. The results demonstrate the feasibility of continuous long-gauge optical monitoring.

PhotonicsVol. 13(9)
North China Electric Power University (CN), China Electric Power Research Institute
Life in Land
Openalex Percentile: Top 20%
Advanced Fiber Optic Sensors
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High-Resolution Fabry–Pérot Interferometric Strain Sensor for Mortar — Yan Tang, Zewei Wu, et al. · Photonics (2026) | TGRS Research Map | TGRS