In Situ Strain Monitoring of a Type IV Composite Hydrogen Storage Vessel Under Hydraulic Fatigue Using Embedded FBG Sensors
Abstract
1. Introduction
- (1)
- To develop a process-compatible and industrially deployable embedded sensing scheme for Type IV hydrogen vessels, without compromising structural strength or manufacturability.
- (2)
- To obtain high-resolution internal strain data during high-pressure cycling, enabling direct observation of layer-wise mechanical behavior and progressive stress redistribution.
- (3)
- To study the long-term stability and survivability of embedded fibers under realistic hydraulic fatigue environments, providing insights into optimal embedding strategies and sensor protection techniques.
2. Vessel Test Setup
2.1. Preparation of the In Situ Test Vessel
2.2. Hydraulic Fatigue Test Setup
3. In Situ Fatigue Monitoring Results
3.1. Strain Monitoring Signals
3.2. Fiber Survival Analysis
4. Discussion
- (1)
- microbending or fracture induced by local resin cracking or fiber–matrix debonding;
- (2)
- excessive strain concentration resulting from resin shrinkage or uneven consolidation during curing;
- (3)
- cumulative cyclic stresses causing microscopic fatigue damage in the optical fiber itself.
5. Conclusions
- (1)
- Multi-source signal fusion and life prediction model development. Subsequent work may integrate fiber strain signals with acoustic emission, temperature, and hydrogen permeation monitoring data to establish a multi-physics life prediction model, achieving closed-loop correlation from strain monitoring to fatigue assessment.
- (2)
- Expanded application of distributed fiber optic monitoring technology. Future work may incorporate DOFS and optical time-domain reflectometry to capture full-field strain distributions across vessels, enabling continuous monitoring of complex regions such as spiral zones and pole ends.
- (3)
- Integration of manufacturing processes with monitoring systems. Future vessel production will couple fiber pre-embedding with winding processes, enabling simultaneous formation of monitoring systems and structural components. This enhances production consistency and advances inspection automation.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| FBG | Fiber Bragg Grating |
| FCEVs | fuel cell electric vehicles |
| CPVs | composite pressure vessels |
| AE | acoustic emission |
| DIC | digital image correlation |
References
- Zhang, M.; Lv, H.; Kang, H.; Zhou, W.; Zhang, C. A literature review of failure prediction and analysis methods for composite high-pressure hydrogen storage tanks. Int. J. Hydrogen Energy 2019, 44, 25777–25799. [Google Scholar] [CrossRef]
- Feki, I.; Shirinbayan, M.; Nouira, S.; Bi, R.T.; Maeso, J.-B.; Thomas, C.; Fitoussi, J. Composites in high-pressure hydrogen storage: A review of multiscale characterization and mechanical behavior. Compos. Part C 2025, 16, 100555. [Google Scholar] [CrossRef]
- Hua, Z.; Gao, W.; Chi, S.; Wang, X.; Zheng, J. Development status and challenges of high-pressure gaseous hydrogen storage vessels and cylinders in China. Renew. Sustain. Energy Rev. 2025, 214, 115567. [Google Scholar] [CrossRef]
- Kim, J.H.; Lee, H.; Lee, M.-K.; Ha, S.-J. Predictive maintenance and reinspection strategies for hydrogen refueling station pressure vessels: A case study in South Korea. J. Energy Storage 2024, 97, 112860. [Google Scholar] [CrossRef]
- Bouhala, L.; Polesel, J.; Karatrantos, A.; Perbal, S.; Senf, B.; Hiekel, A.; Reinhardt, H.; Rauscher, A.; Mäder, T. Review of State-of-the-art of structural health monitoring in hydrogen composite pressure vessels. Compos. Part C Open Access 2025, 18, 100635. [Google Scholar] [CrossRef]
- Nachtane, M.; Tarfaoui, M.; Abichou, M.A.; Vetcher, A.; Rouway, M.; Aâmir, A.; Mouadili, H.; Laaouidi, H.; Naanani, H. An Overview of the Recent Advances in Composite Materials and Artificial Intelligence for Hydrogen Storage Vessels Design. J. Compos. Sci. 2023, 7, 119. [Google Scholar] [CrossRef]
- Reda, R.; Khamis, M.; Ragab, A.E.; Elsayed, A.; Negm, A.M. Numerical analysis of the impact of winding angles on the mechanical performance of filament wound type 4 composite pressure vessels for compressed hydrogen gas storage. Heliyon 2024, 10, e33796. [Google Scholar] [CrossRef]
- Hu, D.; Shao, W.; Lu, D.; Xu, Y.; Wang, J. Design and material optimization of carbon fiber composite winding reinforcement layer for Type IV hydrogen storage vessels. J. Energy Storage 2024, 100, 113459. [Google Scholar] [CrossRef]
- Eun, J.H.; Kim, D.H.; Ahn, H.C.; Lee, J.S. Compatibility of liner materials for type IV hydrogen storage vessels and the interlaminar properties of liner/CFRP composites. Int. J. Hydrogen Energy 2025, 133, 431–439. [Google Scholar] [CrossRef]
- Lin, S.; Yang, L.; Xu, H.; Jia, X.; Yang, X.; Zu, L. Progressive damage analysis for multiscale modelling of composite pressure vessels based on Puck failure criterion. Compos. Struct. 2021, 255, 113046. [Google Scholar] [CrossRef]
- Gabardi, M.; Tozzetti, L.; Faralli, S.; Solazzi, M.; Benedetti, D.; Rajbhandari, S.; Buttaro, G.; Di Pasquale, F. Embedding fiber Bragg grating sensors in carbon composite structures for accurate strain measurement. IEEE Sens. J. 2023, 23, 16882–16892. [Google Scholar] [CrossRef]
- Zhou, W.; Wang, J.; Pan, Z.-B.; Liu, J.; Ma, L.-H.; Zhou, J.-Y.; Su, Y.-F. Review on optimization design, failure analysis and non-destructive testing of composite hydrogen storage vessels. Int. J. Hydrogen Energy 2022, 47, 38862–38883. [Google Scholar] [CrossRef]
- Meemary, B.; Vasiukov, D.; Deléglise-Lagardère, M.; Chaki, S. Sensors integration for structural health monitoring in composite pressure vessels: A review. Compos. Struct. 2025, 351, 118546. [Google Scholar] [CrossRef]
- Mehdikhani, M.; Aravand, M.; Sabuncuoglu, B.; Callens, M.G.; Lomov, S.V.; Gorbatikh, L. Full-field strain measurements at the micro-scale in fiber-reinforced composites using digital image correlation. Compos. Struct. 2016, 140, 192–201. [Google Scholar] [CrossRef]
- Aramburu, A.B.; Da Cruz, J.A.; Xavier da Silva, A.A.; Acosta, A.P.; Minillo, L.Q.; de Avila Delucis, R. Non-destructive testing techniques for pressure vessels manufactured with polymer composite materials: A systematic review. Measurement 2025, 246, 116729. [Google Scholar] [CrossRef]
- Wachtarczyk, K.; Yadav, N.; Błachut, A.; Gąsior, P.; Schledjewski, R.; Kaleta, J. Fatigue and residual strain monitoring for thermoplastic composite using embedded FBG inscribed in highly-birefringent side-hole elliptical core optical fiber. Measurement 2024, 238, 115404. [Google Scholar] [CrossRef]
- Alhussein, A.N.D.; Qaid, M.R.T.M.; Agliullin, T.; Valeev, B.; Morozov, O.; Sakhabutdinov, A. Fiber Bragg Grating Sensors: Design, Applications, and Comparison with Other Sensing Technologies. Sensors 2025, 25, 2289. [Google Scholar] [CrossRef]
- Zhang, J.; Qian, K.; Qiu, D.; Zhang, G.; Long, Y.; Zhu, L.; Liu, S. FBG strain monitoring data denoising in wind turbine blades based on parameter-optimized variational mode decomposition method. Opt. Fiber Technol. 2023, 81, 103527. [Google Scholar] [CrossRef]
- Zhao, X.; Jin, K.; Yan, M.; Nan, P.; Zhou, F.; Xin, G.; Lim, K.-S.; Ahmad, H.; Zhang, Y.; Yang, H. Inverse heat transfer for real-time thermal evaluation of aircraft thermal protection structure with embedded FBG sensors. Appl. Therm. Eng. 2025, 260, 124869. [Google Scholar] [CrossRef]
- Zhu, P.; Feng, X.; Liu, Z.; Huang, M.; Xie, H.; Soto, M.A. Reliable packaging of optical fiber Bragg grating sensors for carbon fiber composite wind turbine blades. Compos. Sci. Technol. 2021, 213, 108933. [Google Scholar] [CrossRef]
- Shi, J.; Kong, D.; Li, C.; Guo, R.; Xian, G.; Liu, H.; Tan, X. Strain and damage monitoring of optical fiber sensor-embedded carbon fiber reinforced polymer confined cracked pipes. Polym. Compos. 2025, 46, 5419–5438. [Google Scholar] [CrossRef]
- Goossens, S.; Berghmans, F.; Muñoz, K.; Jiménez, M.; Karachalios, E.; Saenz-Castillo, D.; Geernaert, T. A global assessment of barely visible impact damage for CFRP sub-components with FBG-based sensors. Compos. Struct. 2021, 272, 114025. [Google Scholar] [CrossRef]
- Yu, Y.; Liu, X.; Cui, X.; Wang, Y.; Qing, X. In-situ cure monitoring of thick CFRP using multifunctional piezoelectric-fiber hybrid sensor network. Compos. Sci. Technol. 2023, 240, 110079. [Google Scholar] [CrossRef]
- Tamagawa, T.; Minakuchi, S.; Niwa, S.; Takeda, N. Consolidation deformation of composite corner depending on compression force during layup: In situ monitoring using fiber-optic-based embeddable shape sensor. Compos. Part A Appl. Sci. Manuf. 2023, 165, 107371. [Google Scholar] [CrossRef]
- Saeter, E.; Lasn, K.; Nony, F.; Echtermeyer, A.T. Embedded optical fibres for monitoring pressurization and impact of filament wound cylinders. Compos. Struct. 2019, 210, 608–617. [Google Scholar] [CrossRef]
- Fu, H.; Lv, C.; Meng, J.; He, M.; Wu, J.; Gong, L. Strength and fatigue study of on-board type III cryo-compressed hydrogen storage cylinder. Int. J. Hydrogen Energy 2024, 57, 1081–1088. [Google Scholar] [CrossRef]
- GB/T 42612–2023; Fully-Wrapped Carbon Fiber Reinforced Cylinders with a Plastic Liner for the On-Board Storage of Compressed Hydrogen. Standardization Administration of the People’s Republic of China (SAC): Beijing, China, 2023.





| v1 | v2 | v3 | v4 | v5 | v6 | |
|---|---|---|---|---|---|---|
| C1 Fatigue cycles | 1804 | 7272 | 1805 | 1800 | 1800 | 1790 |
| C1 Inactivation time | 08:53:20 | 73:09:20 | 08:53:20 | 08:53:19 | 08:53:19 | 08:53:19 |
| C2 Fatigue cycles | 0 | 28,374 | 28,374 | 28,349 | 28,337 | 28,321 |
| C2 Inactive Time | 00:00:00 | 241:49:56 | 241:49:58 | 241:49:55 | 241:49:55 | 241:49:45 |
| C3 Fatigue Count | 8619 | 8631 | 15,011 | 8592 | 14,985 | 7962 |
| C3 Inactivation Time | 80:41:48 | 80:41:25 | 144:32:30 | 80:41:37 | 144:32:19 | 77:54:48 |
| H1 Fatigue Cycles | Not deactivated | Not deactivated | Not deactivated | Not deactivated | Not deactivated | Not deactivated |
| H1 Deactivation Time | Not deactivated | Not deactivated | Not deactivated | Not deactivated | Not deactivated | Not deactivated |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Ma, X.; Zhan, W.; Dong, W.; Zhuang, Z.; He, S.; Wu, X.; Zhan, L.; Yan, Y. In Situ Strain Monitoring of a Type IV Composite Hydrogen Storage Vessel Under Hydraulic Fatigue Using Embedded FBG Sensors. Energies 2026, 19, 2269. https://doi.org/10.3390/en19102269
Ma X, Zhan W, Dong W, Zhuang Z, He S, Wu X, Zhan L, Yan Y. In Situ Strain Monitoring of a Type IV Composite Hydrogen Storage Vessel Under Hydraulic Fatigue Using Embedded FBG Sensors. Energies. 2026; 19(10):2269. https://doi.org/10.3390/en19102269
Chicago/Turabian StyleMa, Xiangdong, Wei Zhan, Wenli Dong, Zilong Zhuang, Shen He, Xiao Wu, Longyang Zhan, and Yan Yan. 2026. "In Situ Strain Monitoring of a Type IV Composite Hydrogen Storage Vessel Under Hydraulic Fatigue Using Embedded FBG Sensors" Energies 19, no. 10: 2269. https://doi.org/10.3390/en19102269
APA StyleMa, X., Zhan, W., Dong, W., Zhuang, Z., He, S., Wu, X., Zhan, L., & Yan, Y. (2026). In Situ Strain Monitoring of a Type IV Composite Hydrogen Storage Vessel Under Hydraulic Fatigue Using Embedded FBG Sensors. Energies, 19(10), 2269. https://doi.org/10.3390/en19102269

