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基于导波的复合材料实时固化监测系统,采用压电圆盘和相移光纤布拉格光栅

Guided Wave-based System for Real-time Cure Monitoring of Composites using Piezoelectric Discs and Phase-shifted Fiber Bragg Gratings.

作者信息

Hudson Tyler B, Auwaijan Nicolas, Yuan Fuh-Gwo

机构信息

NASA Langley Research Center, Advanced Materials and Processing Branch, 6A West Taylor Street, MS 226, Hampton, VA 23681, United States.

NASA Interns and Fellowships (NIFS), 6A West Taylor Street, MS 226, Hampton, VA 23681, United States.

出版信息

J Compos Mater. 2019 Mar 1;53(7):969-979. doi: 10.1177/0021998318793512.

Abstract

A real-time, in-process cure monitoring system employing a guided wave-based concept for carbon fiber reinforced polymer (CFRP) composites was developed. The system included a single piezoelectric disc that was bonded to the surface of the composite for excitation, and an embedded phase-shifted fiber Bragg grating (PS-FBG) for sensing. The PS-FBG almost simultaneously measured both quasi-static strain and the ultrasonic guided wave-based signals throughout the cure cycle. A traditional FBG was also used as a base for evaluating the high sensitivity of the PS-FBG sensor. Composite physical properties (degree of cure and glass transition temperature) were correlated to the amplitude and time of arrival of the guided wave-based measurements during the cure cycle. In addition, key state transitions (gelation and vitrification) were identified from the experimental data. The physical properties and state transitions were validated using cure process modeling software (e.g., RAVEN®). This system demonstrated the capability of using an embedded PS-FBG to sense a wide bandwidth of signals during cure. The distinct advantages of a fiber optic-based system include multiplexing of multiple gratings along a single optical fiber, small size compared to piezoelectric sensors, ability to embed or surface mount, utilization in harsh environments, electrically passive operation, and electromagnetic interference (EMI) immunity. The embedded PS-FBG fiber optic sensor can monitor the entire life-cycle of the composite structure from curing, post-cure/assembly, and in-service creating "smart structures".

摘要

开发了一种采用基于导波概念的实时在线固化监测系统,用于碳纤维增强聚合物(CFRP)复合材料。该系统包括一个粘结在复合材料表面用于激励的单压电圆盘,以及一个用于传感的嵌入式相移光纤布拉格光栅(PS-FBG)。PS-FBG在整个固化周期内几乎同时测量准静态应变和基于超声导波的信号。传统的FBG也被用作评估PS-FBG传感器高灵敏度的基准。复合材料的物理性能(固化程度和玻璃化转变温度)与固化周期内基于导波测量的幅度和到达时间相关。此外,从实验数据中识别出关键的状态转变(凝胶化和玻璃化)。使用固化过程建模软件(如RAVEN®)对物理性能和状态转变进行了验证。该系统展示了使用嵌入式PS-FBG在固化过程中感测宽频带信号的能力。基于光纤的系统的显著优点包括沿单根光纤复用多个光栅、与压电传感器相比尺寸小、能够嵌入式或表面安装、在恶劣环境中使用、电无源操作以及抗电磁干扰(EMI)。嵌入式PS-FBG光纤传感器可以监测复合材料结构从固化、后固化/组装到服役的整个生命周期,从而创建“智能结构”。

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