Multifunctional MENs Doped Adhesives for Bond Quality Evaluation

Ping Wang, D. Gil, M. Pajon, B. Hernandez, Juliette Dubon, B. Boesl, S. Khizroev, B. Arkook, D. McDaniel
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引用次数: 1

Abstract

Adhesive bonding for composite structures offers multiple advantages over traditional fasteners such as reducing the weight, creating a more uniformly distributed stress state in the joint, and elimination of stress concentration factors due to joining. However, the strength of adhesive bonds can be reduced due to environmental exposure, contamination, mechanical damage and fatigue and assurances of long-term durability and bond strength are not available. Before adhesive bonding of composites can be used on primary structures, a method for guaranteeing the bonds strength must be developed. Due to magneto-electric principles, magneto-electric nanoparticles (MENs) can be used to detect minute changes of electric fields at the molecular level through detectable changes of the nanoparticles’ magnetization. As a result, when integrated into epoxy based adhesives, MENs are capable of detecting chemical or mechanical induced material imperfections at the molecular level. Current efforts are focused on developing a field tool that can be used to obtain magnetic signatures from doped adhesives similar to those obtained via laboratory scale equipment (vibrating sample magnetometer). To achieve similar sensitivities, FIU is investigating the use of a B-H looper system. In this approach, the MENs material is probed with a specifically designed setup that includes small electric coils wrapped around the sample. The coils are arranged into a noisecancellation configuration to measure the magnetic susceptibility of the sample under various conditions with a lock-in amplifier. With the goal to identify signature response characteristics of specific environmental and mechanical effects, various epoxy based adhesive samples were doped with 30 nm diameter MENs. Differences in magnetic signatures were observed between environmentally aged samples and baseline samples, demonstrating the viability of the B-H looper system as a bond inspection tool.
多功能掺杂MENs胶粘剂的粘结质量评价
与传统紧固件相比,复合材料结构的粘接具有多种优势,例如减轻重量,在接头中产生更均匀分布的应力状态,以及消除由于连接而产生的应力集中因素。然而,由于环境暴露、污染、机械损伤和疲劳,粘合剂的强度可能会降低,并且无法保证长期耐用性和粘合强度。在将复合材料粘接在初级结构上之前,必须研究一种保证粘接强度的方法。由于磁电原理,磁电纳米粒子(MENs)可以通过检测纳米粒子磁化强度的变化来检测分子水平上电场的微小变化。因此,当集成到环氧基粘合剂中时,MENs能够在分子水平上检测化学或机械引起的材料缺陷。目前的工作重点是开发一种现场工具,该工具可用于从掺杂粘合剂中获得类似于通过实验室规模设备(振动样品磁力计)获得的磁特征。为了达到类似的灵敏度,FIU正在研究B-H环形系统的使用。在这种方法中,MENs材料是用一个专门设计的装置来探测的,该装置包括包裹在样品周围的小线圈。线圈被布置成消噪结构,用锁相放大器测量样品在各种条件下的磁化率。为了确定特定环境和机械效应的特征响应特性,我们在不同的环氧基胶粘剂样品中掺杂了直径为30 nm的MENs。在环境老化样品和基线样品之间观察到磁特征的差异,证明了B-H环套系统作为粘结检测工具的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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