Shape sensing of composite shell using distributed fibre optic sensing

IF 7.1 1区 工程技术 Q1 ENGINEERING, MECHANICAL International Journal of Mechanical Sciences Pub Date : 2025-01-15 DOI:10.1016/j.ijmecsci.2024.109859
Yingwu Li, Zahra Sharif-Khodaei
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Abstract

Shape sensing is critically important throughout the lifecycle of composite shell structures, including the design, manufacturing, service, retirement, and reuse phases. In the service phase, for instance, shape-based structural integrity assessments can inform maintenance strategies, significantly reducing regular maintenance costs. To achieve high-fidelity shape sensing, a novel approach is proposed for strain acquisition and interpolation in carbon fibre reinforced polymer (CFRP) shell structures, utilizing distributed fibre optic sensing. This method is designed to enhance the performance of the inverse finite element method (iFEM). The approach introduces a new strain acquisition strategy based on distributed fibre optic sensors and a strain interpolation technique leveraging single image super-resolution (SISR). In the strain acquisition process, a fundamental sensing block capable of capturing both normal and shear strain is employed for sensor network design, which can be easily implemented using fibre optic sensors. The goal of this acquisition strategy is to standardize sensor network design and provide a digital representation, offering novel insights into shape reconstruction for different composite shells across various applications. Utilizing the obtained strain field, the SISR-based strain interpolation method generates a displacement field with enhanced spatial resolution through iFEM. Experimental evaluation of the SISR-based interpolation demonstrates its efficacy in capturing high-fidelity displacement fields in both smooth and non-smooth strain regions of CFRP shell structures. The introduction of SISR in strain field interpolation, for the first time, offers a potential solution to the challenge of interpolating non-smooth strain fields, providing a reference for addressing complex strain field interpolation in practical applications.

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基于分布式光纤传感的复合材料壳体形状传感
形状感知在复合材料壳体结构的整个生命周期中至关重要,包括设计、制造、服务、退役和重用阶段。例如,在服务阶段,基于形状的结构完整性评估可以为维护策略提供信息,从而显著降低常规维护成本。为了实现高保真形状传感,提出了一种利用分布式光纤传感技术对碳纤维增强聚合物(CFRP)壳体结构进行应变采集和插值的新方法。该方法旨在提高逆有限元法(iFEM)的性能。该方法引入了一种新的基于分布式光纤传感器的应变采集策略和利用单图像超分辨率(SISR)的应变插值技术。在应变采集过程中,传感器网络设计采用了能够捕获法向应变和剪切应变的基本传感块,该传感块可以很容易地使用光纤传感器实现。该采集策略的目标是标准化传感器网络设计,并提供数字表示,为各种应用中不同复合材料外壳的形状重建提供新的见解。利用得到的应变场,基于sisr的应变插值方法通过iFEM生成空间分辨率更高的位移场。实验结果表明,该插值方法在CFRP壳结构光滑应变区和非光滑应变区均能有效捕获高保真位移场。将SISR引入到应变场插值中,首次为非光滑应变场插值提供了一种可能的解决方案,为实际应用中解决复杂应变场插值问题提供了参考。
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来源期刊
International Journal of Mechanical Sciences
International Journal of Mechanical Sciences 工程技术-工程:机械
CiteScore
12.80
自引率
17.80%
发文量
769
审稿时长
19 days
期刊介绍: The International Journal of Mechanical Sciences (IJMS) serves as a global platform for the publication and dissemination of original research that contributes to a deeper scientific understanding of the fundamental disciplines within mechanical, civil, and material engineering. The primary focus of IJMS is to showcase innovative and ground-breaking work that utilizes analytical and computational modeling techniques, such as Finite Element Method (FEM), Boundary Element Method (BEM), and mesh-free methods, among others. These modeling methods are applied to diverse fields including rigid-body mechanics (e.g., dynamics, vibration, stability), structural mechanics, metal forming, advanced materials (e.g., metals, composites, cellular, smart) behavior and applications, impact mechanics, strain localization, and other nonlinear effects (e.g., large deflections, plasticity, fracture). Additionally, IJMS covers the realms of fluid mechanics (both external and internal flows), tribology, thermodynamics, and materials processing. These subjects collectively form the core of the journal's content. In summary, IJMS provides a prestigious platform for researchers to present their original contributions, shedding light on analytical and computational modeling methods in various areas of mechanical engineering, as well as exploring the behavior and application of advanced materials, fluid mechanics, thermodynamics, and materials processing.
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