Robust Localization of Low-Velocity Impacts on Honeycomb Sandwich Panels via FBG Sensor Networks
Highlights
- The proposed method can be applied to the localization of low-velocity impacts on honeycomb sandwich panels, and can achieve high positioning accuracy.
- The application of wavelet denoising and error outlier weighting in template matching method can improve the positioning accuracy.
- This work enhances the impact localization accuracy of multilayer honeycomb sandwich panels commonly used in aerospace by mitigating noise and overcoming signal attenuation, thereby enhancing flight safety and providing a structural health monitoring solution for thick multilayer structures.
Abstract
1. Introduction
2. Theoretical Principles
2.1. Operating Mechanism of FBG Sensors
- (1)
- The structure is simplified to two layers: cladding and core;
- (2)
- The optical fiber follows Hooke’s law and does not experience shear stress;
- (3)
- The variation in the photosensitive refractive index of the core is uniformly distributed across the cross-section, which does not affect the isotropic properties of the fiber;
- (4)
- All stresses are static stresses.
2.2. Denoising Principles of Sym5 Wavelet Transform
3. Experimental Setup and Process
3.1. Low Velocity Impact Monitoring System
3.2. Procedure for Low Velocity Impact Tests
4. Template Matching Method Based on Error Outliers
4.1. Comparison of Impact Signals
4.2. Calculation of Normalized Error Outliers
4.3. Impact Localization Principle Based on Template Matching
5. Results and Discussion
5.1. Results of Impact Localization
5.2. Analysis of Impact Positioning Results
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| BVID | Barely Visible Impact Damage |
| TDOA | Time Difference of Arrival |
| FBG | Fiber Bragg Grating Sensors |
| SHM | Structural Health Monitoring |
| LEO | Low Earth Orbit |
| CFRP | Carbon Fiber Reinforced Plastic |
| FFT | Fast Fourier Transform |
| PCA | Principal Component Analysis |
| BP | Back Propagation |
References
- Li, S.; Yang, R.; Sun, S.; Niu, B. Advances in the Analysis of Honeycomb Structures: A Comprehensive Review. Compos. Part B Eng. 2025, 296, 112208. [Google Scholar] [CrossRef] [Scilit]
- Wang, W.; Li, Z.; Feng, Y.; Luo, C.; Liu, S.; Wang, Y.; Zhu, L. Damage Mechanism and Bending Properties Degradation of Aviation Composite Honeycomb Sandwich Structures under Laser Irradiation. Opt. Laser Technol. 2025, 181, 111635. [Google Scholar] [CrossRef] [Scilit]
- Tan, Y.; Zhou, Y. Improved Crashworthiness of Sandwich Wing Structures by Using Negative Poisson’s Ratio Honeycomb Cores. Thin-Walled Struct. 2025, 213, 113223. [Google Scholar] [CrossRef] [Scilit]
- Luo, H.; Gao, Q.; Zhou, J.; Zhang, Y.; Bao, F.; Chen, J.; Cui, Y.; Wang, L.; Wang, X. Hybrid Honeycombs with Re-Entrant Auxetic and Face-Centered Cubic Cells: Design and Mechanical Characteristics. Eng. Struct. 2025, 328, 119731. [Google Scholar] [CrossRef] [Scilit]
- Ding, H.; Xie, S.; Wang, H.; Jing, K.; Zhang, J.; Yan, H.; Zhang, F.; He, G. In-Plane Energy Absorption Capacity of a Novel Locally Enhanced Re-Entrant Honeycomb Metamaterial. Thin-Walled Struct. 2025, 210, 113062. [Google Scholar] [CrossRef] [Scilit]
- Xia, H.; Fang, X.; Wang, S.; Sun, Q. Vehicle Impact Prevention Behavior of RC Bridge Piers with UHPC-Bio-Inspired Honeycomb Column Thin-Walled Structure (UHPC-BHTS). Structures 2024, 70, 107566. [Google Scholar] [CrossRef] [Scilit]
- Qiao, Y.P.; Ren, J.; Wu, J.; Chen, S.J. A New Heat Resistant Load Bearing System Incorporating Honeycomb Structured Cementitious Composite Investigated via Experiments and Modelling. Case Stud. Constr. Mater. 2023, 19, e02379. [Google Scholar] [CrossRef] [Scilit]
- Gao, Y.; Li, Z.; Wei, X.; Du, Y.; Zhou, Z.; Xiong, J. Carbon Fiber Reinforced Composite 3D Origami-Inspired Auxetic Honeycomb with Omni-Directional High Stiffness. Int. J. Solids Struct. 2024, 297, 112860. [Google Scholar] [CrossRef] [Scilit]
- Li, R.; Zhao, Z.; Bao, H.; Pan, Y.; Wang, G.; Liu, B.; Liao, T.; Li, J. Bio-Inspired Honeycomb Structures to Improve the Crashworthiness of a Battery-Pack System. Eng. Fail. Anal. 2024, 158, 108041. [Google Scholar] [CrossRef] [Scilit]
- Shafiei Ghazani, A.; Nasiraei, H.; Najafzadeh, M.; Fathollahzadehsardroudi, A. Thermal Management of Photovoltaic Panel by Honeycomb-like Metal Structure Filled with Phase Change Material. Int. Commun. Heat Mass Transf. 2024, 156, 107649. [Google Scholar] [CrossRef] [Scilit]
- Li, C.; Li, X.; Chen, J.; Liang, X.; Yu, L.; Ai, F.; Yuan, C.; Cao, H. Optimization Design of Thermal Protective Characteristics of Special- Shaped Honeycomb Structure. Case Stud. Therm. Eng. 2024, 60, 104657. [Google Scholar] [CrossRef] [Scilit]
- Li, M.; Gong, Z.; Liu, G. Frontier technology and system development of space debris surveillance and active removal. Chin. Sci. Bull. 2018, 63, 2570–2591. [Google Scholar] [CrossRef] [Scilit]
- Reifsnider, K. Fatigue Behavior of Composite Materials. Int. J. Fract. 1980, 16, 563–583. [Google Scholar] [CrossRef] [Scilit]
- Goossens, S.; Muñoz, K.; Jiménez, M.; Mendíaz, M.M.; Berghmans, F. Barely Visible Impact Damage Detection and Location on a Real Scale Curved CFRP Fuselage Panel with Optical Fibre Bragg Grating Sensors. Procedia Struct. Integr. 2024, 52, 647–654. [Google Scholar] [CrossRef] [Scilit]
- Goossens, S.; Berghmans, F.; Sharif Khodaei, Z.; Lambinet, F.; Karachalios, E.; Saenz-Castillo, D.; Geernaert, T. Practicalities of BVID Detection on Aerospace-Grade CFRP Materials with Optical Fibre Sensors. Compos. Struct. 2021, 259, 113243. [Google Scholar] [CrossRef] [Scilit]
- Tabatabaeian, A.; Jerkovic, B.; Harrison, P.; Marchiori, E.; Fotouhi, M. Barely Visible Impact Damage Detection in Composite Structures Using Deep Learning Networks with Varying Complexities. Compos. Part B Eng. 2023, 264, 110907. [Google Scholar] [CrossRef] [Scilit]
- Huo, Y.-Z.; Yang, J.-S.; Suo, Z.; Zhao, T.; Wang, W.-J.; Tong, Y.-H.; Wang, X.-W. Low Velocity Impact Response of Carbon Fiber Reinforced Thermoplastic Composite Honeycomb Sandwich Structure Considering Mesoscopic Damage Behavior. Compos. Part A Appl. Sci. Manuf. 2025, 194, 108898. [Google Scholar] [CrossRef] [Scilit]
- Wang, Y.; Wei, X.; Li, Z.; Gong, C.; Xue, P.; Xiong, J. Low-Velocity Impact Responses and Failure of Sandwich Structure with Carbon Fiber Composite Honeycomb Cores. Int. J. Impact Eng. 2024, 192, 105034. [Google Scholar] [CrossRef] [Scilit]
- Ma, W.; Tuo, H.; Deng, Q.; Li, X. Damage Behavior of Composite Honeycomb Sandwich Structure Subject to Low-Velocity Impact and Compression-after-Impact Using Experimental and Numerical Methods. Thin-Walled Struct. 2024, 205, 112594. [Google Scholar] [CrossRef] [Scilit]
- Zhang, C.; Tan, K.T. Low-Velocity Impact Response and Compression after Impact Behavior of Tubular Composite Sandwich Structures. Compos. Part B Eng. 2020, 193, 108026. [Google Scholar] [CrossRef] [Scilit]
- He, W.; Liu, J.; Wang, S.; Xie, D. Low-Velocity Impact Response and Post-Impact Flexural Behaviour of Composite Sandwich Structures with Corrugated Cores. Compos. Struct. 2018, 189, 37–53. [Google Scholar] [CrossRef] [Scilit]
- Chen, Y.; He, Q.; Chen, X. Numerical Study on Debris Cloud and Channeling Effect of Honeycomb Sandwich Shields under Hypervelocity Impact. Thin-Walled Struct. 2023, 191, 111052. [Google Scholar] [CrossRef] [Scilit]
- Tuzzolino, A.J.; McKibben, R.B.; Simpson, J.A.; BenZvi, S.; Voss, H.D.; Gursky, H. The Space Dust (SPADUS) Instrument Aboard the Earth-Orbiting ARGOS Spacecraft: I—Instrument Description. Planet. Space Sci. 2001, 49, 689–703. [Google Scholar] [CrossRef] [Scilit]
- Tang, E.L.; Wang, L.; Han, Y.F. Space Debris Positioning Based on Two-Dimensional PVDF Piezoelectric Film Sensor. Adv. Space Res. 2019, 63, 2410–2421. [Google Scholar] [CrossRef] [Scilit]
- Schäfer, F.; Janovsky, R. Impact Sensor Network for Detection of Hypervelocity Impacts on Spacecraft. Acta Astronaut. 2007, 61, 901–911. [Google Scholar] [CrossRef] [Scilit]
- Perelli, A.; De Marchi, L.; Marzani, A.; Speciale, N. Acoustic Emission Localization in Plates with Dispersion and Reverberations Using Sparse PZT Sensors in Passive Mode. Smart Mater. Struct. 2012, 21, 025010. [Google Scholar] [CrossRef] [Scilit]
- Theodosiou, A. Recent Advances in Fiber Bragg Grating Sensing. Sensors 2024, 24, 532. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yu, J.; Liu, J.; Peng, Z.; Gan, L.; Wan, S. Localization of Impact on CFRP Structure Based on Fiber Bragg Gratings and CNN-LSTM-Attention. Opt. Fiber Technol. 2024, 87, 103943. [Google Scholar] [CrossRef] [Scilit]
- Lan, C.; Zhang, H.; Hu, G.; Han, F.; Han, H. Comprehensive Monitoring Method for Diaphragm Wall Deformation Combining Distributed and Point Monitoring in Key Areas. Sensors 2025, 25, 2232. [Google Scholar] [CrossRef] [Scilit]
- Kapogianni, E.; Sakellariou, M. Applications of Optical Fiber Sensors in Geotechnical Engineering: Laboratory Studies and Field Implementation at the Acropolis of Athens. Sensors 2025, 25, 1450. [Google Scholar] [CrossRef] [Scilit]
- Limweshasin, N.; Castro, I.A.; Korposh, S.; Morgan, S.P.; Hayes-Gill, B.R.; Faghy, M.A.; Correia, R. Respiratory Rate Monitoring via a Fibre Bragg Grating-Embedded Respirator Mask with a Wearable Miniature Interrogator. Sensors 2024, 24, 7476. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Juwet, T.; Luyckx, G.; Lamberti, A.; Creemers, F.; Voet, E.; Missinne, J. Monitoring of Composite Structures for Re-Usable Space Applications Using FBGs: The Influence of Low Earth Orbit Conditions. Sensors 2024, 24, 306. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Okabe, Y.; Minakuchi, S.; Takeda, N. Identification of Impact Damage in Sandwich Structures by Application of High Speed MEMS-OSA to FBG Sensors. In Proceedings of the Volume 5758, Smart Structures and Materials 2005: Smart Sensor Technology and Measurement Systems; Udd, E., Inaudi, D., Eds.; SPIE: Bellingham, WA, USA, 2005; pp. 105–113. [Google Scholar]
- van der Veek, B.; Gutierrez, H.; Wise, B.; Kirk, D.; van Barschot, L. Vibration Control of Flexible Launch Vehicles Using Fiber Bragg Grating Sensor Arrays. Sensors 2025, 25, 204. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Duan, C.; Cao, J.; Wang, H.; Yan, X.; Tian, Y.; Lewis, E.; Zhang, J. FBG Array Arrangement Optimization for Impact Localization. Meas. Sci. Technol. 2024, 35, 025206. [Google Scholar] [CrossRef] [Scilit]
- Yu, F.; Okabe, Y. Linear Damage Localization in CFRP Laminates Using One Single Fiber-Optic Bragg Grating Acoustic Emission Sensor. Compos. Struct. 2020, 238, 111992. [Google Scholar] [CrossRef] [Scilit]
- Chen, K.; Fan, H.; Bao, H. Discontinuous Deformation Monitoring of Smart Aerospace Structures Based on Hybrid Reconstruction Strategy and Fiber Bragg Grating. Sensors 2024, 24, 3603. [Google Scholar] [CrossRef] [Scilit]
- Ciminello, M.; Sikorski, B.; Galasso, B.; Pellone, L.; Mercurio, U.; Concilio, A.; Apuleo, G.; Cozzolino, A.; Kressel, I.; Shoham, S.; et al. Preliminary Results of a Structural Health Monitoring System Application for Real-Time Debonding Detection on a Full-Scale Composite Spar. Sensors 2023, 23, 455. [Google Scholar] [CrossRef] [Scilit]
- Li, C.; Sun, L.; Liu, Z.; Wang, K.; Yan, W. Structural Damage Identification and Experiment Based on FBG Sensors and PCA-KNN Approach. Opt. Fiber Technol. 2025, 89, 104062. [Google Scholar] [CrossRef] [Scilit]
- Qiu, B.; Li, W.; Feng, C.; Qu, X.; Liu, H.; Li, X. Efficient Localisation of Impact Load for Composite Structure Based on Response Similarity Search and Optimisation. Exp. Mech. 2024, 64, 1311–1331. [Google Scholar] [CrossRef] [Scilit]
- Kirkby, E.; de Oliveira, R.; Michaud, V.; Månson, J.A. Impact Localisation with FBG for a Self-Healing Carbon Fibre Composite Structure. Compos. Struct. 2011, 94, 8–14. [Google Scholar] [CrossRef] [Scilit]
- Sai, Y.; Jiang, M.; Sui, Q.; Lu, S.; Jia, L. Multi-Source Acoustic Emission Localization Technology Research Based on FBG Sensing Network and Time Reversal Focusing Imaging. Optik 2016, 127, 493–498. [Google Scholar] [CrossRef] [Scilit]
- Chen, B.-L.; Shin, C.-S. An Improved Impact Source Locating System Using FBG Rosette Array. Sensors 2019, 19, 3453. [Google Scholar] [CrossRef] [Scilit]
- Sai, Y.; Jiang, M.; Sui, Q.; Jia, L.; Lu, S. Low Velocity Impact Localization System Using FBG Array and MVDR Beamforming Algorithm. Photonic Sens. 2015, 5, 357–364. [Google Scholar] [CrossRef] [Scilit]
- Sai, Y.; Jiang, M.; Sui, Q.; Lu, S.; Jia, L. Composite Plate Low Energy Impact Localization System Based on FBG Sensing Network and Hybrid Algorithm. Opt. Fiber Technol. 2015, 24, 84–88. [Google Scholar] [CrossRef] [Scilit]
- Zheng, Z.; Lu, J.; Liang, D. Low-Velocity Impact Localization on a Honeycomb Sandwich Panel Using a Balanced Projective Dictionary Pair Learning Classifier. Sensors 2021, 21, 2602. [Google Scholar] [CrossRef] [Scilit]
- Zhao, G.; Li, S.; Hu, H.; Zhong, Y.; Li, K. Impact Localization on Composite Laminates Using Fiber Bragg Grating Sensors and a Novel Technique Based on Strain Amplitude. Opt. Fiber Technol. 2018, 40, 172–179. [Google Scholar] [CrossRef] [Scilit]
- Li, J.; Yu, Y.; Qing, X. Embedded FBG Sensor Based Impact Identification of CFRP Using Ensemble Learning. Sensors 2021, 21, 1452. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wen, X.; Sun, Q.; Li, W.; Ding, G.; Song, C.; Zhang, J. Localization of Low Velocity Impacts on CFRP Laminates Based on FBG Sensors and BP Neural Networks. Mech. Adv. Mater. Struct. 2022, 29, 5478–5487. [Google Scholar] [CrossRef] [Scilit]
- Shrestha, P.; Kim, J.-H.; Park, Y.; Kim, C.-G. Impact Localization on Composite Structure Using FBG Sensors and Novel Impact Localization Technique Based on Error Outliers. Compos. Struct. 2016, 142, 263–271. [Google Scholar] [CrossRef] [Scilit]
- Huan, S.; Lu, L.; Shen, T.; Du, J. Low Velocity Impact Monitoring of Composite Tubes Based on FBG Sensors. Sensors 2024, 24, 1279. [Google Scholar] [CrossRef] [Scilit]
- Sun, D.; Mao, J.; Liu, M.; Liu, H.; Zhang, S.; Li, B.; Jiang, X.; Ma, J. A Fiber Bragg Grating (FBG)-Strain Sensing Tube for Deep Displacement Measurement. Opt. Laser Technol. 2025, 188, 112938. [Google Scholar] [CrossRef] [Scilit]
- Hegde, G.; Asokan, S.; Hegde, G. Fiber Bragg Grating Sensors for Aerospace Applications: A Review. ISSS J. Micro Smart Syst. 2022, 11, 257–275. [Google Scholar] [CrossRef] [Scilit]
- Zhang, M.; Zhu, H.; Yang, J.; Qiu, C.; Javadi, A.A. Experimental Study of a 3D Printed Geogrid Embedded with FBG Sensor for Reinforcement of Subgrade with Underlying Cave. Geotext. Geomembr. 2023, 51, 81–92. [Google Scholar] [CrossRef] [Scilit]
- Lu, J.Y.; Wang, B.F.; Lang, D.K. Identification of Impact Location by Using FBG Based on Wavelet Packet Feature Extraction and SVR. Opt. Precis. Engine. 2020, 20, 712–718. [Google Scholar] [CrossRef] [Scilit]
- Zhu, S.; Wang, Y.; Xu, Y.; Qi, Y.; Liu, Y.; Zhang, F. Asymmetric Fiber Grating Overlapping Spectrum Demodulation Technology Based on Convolutional Network and Wavelet Transform Noise Reduction. Opt. Fiber Technol. 2025, 90, 104132. [Google Scholar] [CrossRef] [Scilit]
- Golmohammadi, A.; Hasheminejad, N.; Hernando, D.; Vanlanduit, S.; Van den bergh, W. Performance Assessment of Discrete Wavelet Transform for De-Noising of FBG Sensors Signals Embedded in Asphalt Pavement. Opt. Fiber Technol. 2024, 82, 103596. [Google Scholar] [CrossRef] [Scilit]
- Sun, Q.L.; Li, A.H.; Liu, M.Q. Research on Electromagnetic Guided Wave Signal Noise Reduction Technology Based on Lifting Wavelet Transform. In Proceedings of the 2013 IEEE International Conference on Applied Superconductivity and Electromagnetic Devices, Beijing, China, 25–27 October 2013; pp. 399–402. [Google Scholar]
- Guo, J.; Si, Z.; Xiang, J. A Compound Fault Diagnosis Method of Rolling Bearing Based on Wavelet Scattering Transform and Improved Soft Threshold Denoising Algorithm. Measurement 2022, 196, 111276. [Google Scholar] [CrossRef] [Scilit]
- Ding, G.; Chang, L.; Zhou, N.; Gao, X.; Li, M. Localization of Low Velocity Impact on CFRP Laminate Using Normalized Error Outlier-Based Algorithm Cooperating with Db3-Wavelet Threshold Noise Reduction and FBG Sensors. Opt. Fiber Technol. 2023, 80, 103455. [Google Scholar] [CrossRef] [Scilit]
- Liu, T.; Li, X.; Lyu, M.; Yan, S. A Bearing Fault Extraction Method Combining Time–Frequency Mode Decomposition Based on Local Maxima with Amplitude z-Scores. Adv. Eng. Inform. 2025, 64, 103002. [Google Scholar] [CrossRef] [Scilit]
- Liang, D.; Yuan, S.; Liu, M. Distributed Coordination Algorithm for Impact Location of Preciseness and Real-Time on Composite Structures. Measurement 2013, 46, 527–536. [Google Scholar] [CrossRef] [Scilit]
- Bahl, P.; Padmanabhan, V.N. RADAR: An in-Building RF-Based User Location and Tracking System. In Proceedings of the IEEE INFOCOM 2000. Conference on Computer Communications. Nineteenth Annual Joint Conference of the IEEE Computer and Communications Societies (Cat. No.00CH37064), Tel Aviv, Israel, 26–30 March 2000; Volume 2, pp. 775–784. [Google Scholar]
- Blumenthal, J.; Grossmann, R.; Golatowski, F.; Timmermann, D. Weighted Centroid Localization in Zigbee-Based Sensor Networks. In Proceedings of the 2007 IEEE International Symposium on Intelligent Signal Processing, Alcalá de Henares, Spain, 3–5 October 2007; pp. 1–6. [Google Scholar]
- Sai, Y.; Jiang, M.; Sui, Q.; Lu, S.; Jia, L. Acoustic Emission Location Technology Research Based on FBG Sensor Network and Time Reversal Focusing Imaging Method. Chin. J. Laser 2014, 41, 0805003. [Google Scholar] [CrossRef] [Scilit]
- Park, S.O.; Jang, B.W.; Lee, Y.G.; Kim, Y.Y.; Kim, C.G.; Park, C.Y.; Lee, B.W. Detection of Impact Location for Composite Stiffened Panel Using FBG Sensors. In Proceedings of the Multi-Functional Materials and Structures III, PTS 1 and 2; Trans Tech Publications Ltd.: Durnten-Zurich, Switzerland, 2010; Volume 123–125, p. 895. [Google Scholar]
- Hiche, C.; Coelho, C.K.; Chattopadhyay, A.; Seaver, M. Impact Localization on Complex Structures Using FBG Strain Amplitude Information. In Proceedings of the Nondestructive Characterization for Composite Materials, Aerospace Engineering, Civil Infrastructure, and Homeland Security 2010; Shull, P.J., Diaz, A.A., Wu, A.F., Eds.; Spie-Int Soc Optical Engineering: Bellingham, WA, USA, 2010; Volume 7649, p. 764903. [Google Scholar]
- Frieden, J.; Cugnoni, J.; Botsis, J.; Gmuer, T. Low Energy Impact Damage Monitoring of Composites Using Dynamic Strain Signals from FBG Sensors—Part I: Impact Detection and Localization. Compos. Struct. 2012, 94, 438–445. [Google Scholar] [CrossRef] [Scilit]
- Jang, B.-W.; Lee, Y.-G.; Kim, J.-H.; Kim, Y.-Y.; Kim, C.-G. Real-Time Impact Identification Algorithm for Composite Structures Using Fiber Bragg Grating Sensors. Struct. Control Health Monit. 2012, 19, 580–591. [Google Scholar] [CrossRef] [Scilit]
- Du, L.; Jiang, W.; Luo, Z.; Song, H.; Yang, L.; Li, H. Multi FBG Sensor-Based Impact Localization with a Hybrid Correlation Interpolation Method. Meas. Sci. Technol. 2022, 33, 075002. [Google Scholar] [CrossRef] [Scilit]














| Similarity Metric | Avg. Error (mm) | Std. Dev (mm) | Variance (mm2) | 95% CI (mm) | Processing Time (s) |
|---|---|---|---|---|---|
| Pearson Correlation | 8.34 | 7.95 | 63.17 | [7.46, 9.22] | 349.09 |
| Cosine Similarity | 8.34 | 7.95 | 63.17 | [7.46, 9.22] | 280.28 |
| Manhattan Distance | 11.57 | 10.13 | 102.58 | [10.50, 12.69] | 275.11 |
| Dynamic Time Warping (DTW) | 7.99 | 8.09 | 65.38 | [7.10, 8.89] | 17,200.79 |
| Euclidean Distance without outlier weighting | 21.29 | 17.13 | 293.32 | [19.47, 23.21] | 258.34 |
| Euclidean Distance without noise reduction | 12.36 | 11.65 | 135.72 | [11.08, 13.64] | 261.71 |
| Euclidean Distance with noise reduction and outlier weighting | 8.53 | 8.25 | 68.03 | [7.62, 9.44] | 270.24 |
| Ref. N. | Structure Type & Thickness | Validation Coverage (Test Area/Total Area) (mm × mm) | N. of Sensors | Noise Mitigation/Algorithm | Avg. Error (mm) | Ref. |
|---|---|---|---|---|---|---|
| 1 | CFRP laminate, N/A | Not specified | 8 | Error outlier method | 20.07 | Ding et al., (2023) [60] |
| 2 | Quasi-isotropic composite structure, 4.7 mm | 500/ 690) | 4 | Error outlier method | 10.7 | Shrestha et al., (2016) [50] |
| 3 | CFRP laminates, 3 mm | 400/ 500) | 9 | BP neural network (PCA/FFT) | 21.0 | Wen et al., (2022) [49] |
| 4 | Aluminum alloy single-layer plate, 2.0 mm | 400/ 500) | 4 | Morlet wave and Time reversal focusing model | 20 | Sai et al., (2014) [65] |
| 5 | Composite flat plate, 5.0 mm | Not specified | 4 | TDOA and MLP | 9.17 | Park et al., (2010) [66] |
| 6 | Woven composite plates, N/A | Not specified | 5 | TDOA | 68 | Hiche et al., (2010) [67] |
| 7 | CFRP laminates, 4.2 mm | 180/ 300) | 4 | TDOA | 10.0 | Frieden et al., (2012) [68] |
| 8 | Composite flat plate, N/A | 250/ 690) | 4 | BP neural network | 8.2 | Jang et al., (2012) [69] |
| 9 | Composite flat plate, 3.0 mm | 400/ 650) | 4 | TDOA | 9.74 | Du et al., (2022) [70] |
| This study | Honeycomb Sandwich, 20 mm | 71%, (420 × 420/ 500 × 500) | 16 | Sym5 and Outlier Weighting | 8.53 |
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Zhou, Z.; Yang, Y.; Xu, X.; Peng, K.; Han, Y.; Song, G.; Li, J.; Lin, Z.; Guo, L. Robust Localization of Low-Velocity Impacts on Honeycomb Sandwich Panels via FBG Sensor Networks. Sensors 2026, 26, 1715. https://doi.org/10.3390/s26051715
Zhou Z, Yang Y, Xu X, Peng K, Han Y, Song G, Li J, Lin Z, Guo L. Robust Localization of Low-Velocity Impacts on Honeycomb Sandwich Panels via FBG Sensor Networks. Sensors. 2026; 26(5):1715. https://doi.org/10.3390/s26051715
Chicago/Turabian StyleZhou, Zhengwen, Yibo Yang, Xin Xu, Kexia Peng, Yihong Han, Guangming Song, Jingtai Li, Zhe Lin, and Liangjie Guo. 2026. "Robust Localization of Low-Velocity Impacts on Honeycomb Sandwich Panels via FBG Sensor Networks" Sensors 26, no. 5: 1715. https://doi.org/10.3390/s26051715
APA StyleZhou, Z., Yang, Y., Xu, X., Peng, K., Han, Y., Song, G., Li, J., Lin, Z., & Guo, L. (2026). Robust Localization of Low-Velocity Impacts on Honeycomb Sandwich Panels via FBG Sensor Networks. Sensors, 26(5), 1715. https://doi.org/10.3390/s26051715

