Niki Loura, E. Gkartzou, A. Trompeta, G. Konstantopoulos, P. Klonos, A. Kyritsis, C. Charitidis
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引用次数: 0
摘要
在本研究中,我们在实验室环境中合成了一系列基于回收热塑性聚氨酯(TPU)基体和 MWCNT 填料的碳基纳米复合材料,这些复合材料具有不同的负载量,并评估了它们在挤出式 3D 打印技术中自愈合应用的功能性热、介电和流变特性以及欧姆加热能力。纳米材料的合成侧重于通过化学气相沉积(CVD)方法生产两种不同类型的碳纳米管(CNT)。使用商用纳米材料和含有 MWCNTs 的母料制成的纳米复合丝进行了比较评估和基准测试。所有聚合物纳米复合材料的样品都是在添加剂含量高达 15 wt.% 的条件下制备的,长丝原料是通过熔融挤压工艺生产的,用于 3D 打印;这些样品之前都通过流变测试进行了表征。热导率和电导率的测量结果表明,所选成分具有良好的欧姆加热能力。作为对上述样品自愈能力的初步评估,在样品表面引入了人工裂缝,并在施加电压前后对裂缝位置进行了扫描电镜分析,以衡量焦耳效应导致的材料重熔的有效性。结果表明,材料反应良好,人工裂纹部分恢复。
Development of CNT-Based Nanocomposites with Ohmic Heating Capability towards Self-Healing Applications in Extrusion-Based 3D Printing Technologies
In the present study, a series of carbon-based nanocomposites based on recycled thermoplastic polyurethane (TPU) matrix and MWCNT fillers synthesized in a laboratory environment were prepared at various loadings and assessed in terms of their functional thermal, dielectric, and rheological properties, as well as their ohmic heating capability, for self-healing applications in extrusion-based 3D printing technologies. The synthesis of nanomaterials focused on the production of two different types of carbon nanotubes (CNTs) via the chemical vapor deposition (CVD) method. A comparative assessment and benchmarking were conducted with nanocomposite filaments obtained from commercial nanomaterials and masterbatches with MWCNTs. For all the polymer nanocomposites, samples were prepared at additive contents up to 15 wt.% and filament feedstock was produced via the melt-extrusion process for 3D printing; these were previously characterized by rheological tests. The measurements of thermal and electrical conductivity resulted in a selected composition with promising ohmic heating capability. As a preliminary assessment of the self-healing ability of the above samples, artificial cracks were introduced on the surface of the samples and SEM analysis took place at the crack location before and after applying voltage as a measure of the effectiveness of the material remelting due to the Joule effect. Results indicate a promising material response with a partial restoration of artificial cracks.