Polarization Maintaining Fiber Optic Sensors for Guided Wave-Based Structural Integrity Assessment
Autour(s)
- Wafa Mohammed Almalki, Mudasser Husain and Vineet Tirth
Abstract
Polarization maintaining fiber optic sensors have emerged as a promising technology for structural health monitoring, particularly in the context of guided wave-based integrity assessment. These sensors offer distinct advantages over conventional approaches due to their inherent immunity to electromagnetic interference, high sensitivity, and ability to maintain polarization states under varying environmental and structural conditions. The use of guided ultrasonic waves in combination with polarization maintaining fibers provides an advanced mechanism for detecting and localizing defects such as cracks, delaminations, and corrosion across diverse engineering structures. Recent developments highlight the potential of polarization orientation, mode discrimination, and optimized sensor placement strategies in enhancing detection accuracy and minimizing false positives. Unlike traditional electrical sensing methods, fiber optic sensors allow for distributed monitoring over large structural areas while remaining minimally invasive. This makes them particularly suitable for aerospace, marine, energy, and civil infrastructure applications where real-time data acquisition is critical. Additionally, improvements in mode identification algorithms and signal processing techniques have significantly increased the interpretability of guided wave signals, allowing for more accurate distinction between symmetric and antisymmetric modes. This has advanced the ability of engineers to diagnose damage mechanisms at earlier stages. Despite these advancements, challenges remain in achieving robustness under variable environmental loading, long-term reliability in harsh environments, and the integration of sensor networks into existing structural systems. Nonetheless, ongoing research continues to demonstrate that polarization maintaining fiber optic sensors represent a transformative tool for smart monitoring, capable of redefining structural integrity assessment through enhanced sensitivity, precision, and durability.