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Passive sensing of a microparticle modified hybrid, fiber-reinforced composite

机译:微粒改性杂交,纤维增强复合材料的被动感测

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The widespread commercial adoption of high-performance, fiber-reinforced composites has pushed research interests toward the next generation of composites. These new composites are tasked with integrating additional functionalities into the structures without causing a trade-off in mechanical performance. One such functionality that has received significant interest is sensing. This is especially important for composites using high-performance fibers (e.g., carbon fiber) because their strain-to-failure is relatively low, resulting in brittle fracture. Besides, fiber damage can be hidden within the composite, potentially leading to premature catastrophic failure if not detected. In prior research, we demonstrated continuous feed-through deposition of ceramic nanoparticles on carbon fiber's surface that simultaneously enhanced both the piezoresistive response and interlaminar shear strength. In this work, a similar continuous feed-through deposition process was used to demonstrate passive sensing and energy harvesting by integrating ferroelectric microparticles on the surface of electrically nonconductive fibers. The sensing and energy harvesting capabilities were characterized by mechanically straining composite beams and measuring the power generated. The improvements in mechanical properties are shown through interlaminar shear strength tests. Therefore, this research aims to demonstrate a high throughput, commercially scalable approach to coat fibers with ferroelectric microparticles that enable passive sensing as well as improved mechanical performance when fabricated into a fiber-reinforced composite.
机译:广泛的商业采用高性能,纤维增强复合材料推动了下一代复合材料的研究兴趣。这些新的复合材料是任务的,将附加功能集成到结构中,而不会导致机械性能的折衷。一个接受重大兴趣的这种功能是感知。这对于使用高性能纤维(例如,碳纤维)的复合材料尤其重要,因为它们的应变对破坏相对较低,导致脆性骨折。此外,纤维损坏可以隐藏在复合材料中,可能导致暴过灾难性失败,如果未检测到。在现有研究中,我们证明了陶瓷纳米颗粒对碳纤维表面的连续馈送,同时增强了压阻响应和层间剪切强度。在这项工作中,通过将铁电微粒集成在电不导电纤维表面上,使用类似的连续馈送沉积工艺来证明被动感测和能量收集。感测和能量收集能力的特征在于机械紧张复合梁并测量产生的功率。通过层间剪切强度测试显示机械性能的改善。因此,该研究旨在展示一种高通量,商业可扩展的方法来涂覆具有铁电微粒的纤维,使得被动感测以及在制造成纤维增强复合材料时改善的机械性能。

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