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Dielectric Spectroscopy and Thermal Properties of Poly(lactic) Acid Reinforced with Carbon-Based Particles: Experimental Study and Design Theory

机译:用碳基颗粒增强聚(乳酸)酸的介电光谱和热性质:实验研究与设计理论

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In the present study, polylactic acid (PLA) enriched with carbonaceous particles like multi-walled carbon nanotubes (MWCNTs), graphene nanoplates (GNPs) or a combination of both up 12 wt % of loading are used for producing 3D-printed specimens with fused deposition modeling (FDM) technology which are then experimentally and theoretically investigated. The goal is to propose a non-conventional filaments indicated for additive manufacturing process with improved dielectric and thermal properties, compared to the performances exhibited by the unfilled polymer. In the light of the above, a wide dielectric spectroscopy and a thermal analysis, supported by a morphological investigation, are performed. The results highlight that the introduction of 1-dimensional filler (MWCNTs) are more suitable for improving the dielectric properties of the resulting materials, due to the enhancement of the interfacial polarization and the presence of functionalized groups, whereas 2-dimensional nanoparticles (GNPs) better favor the thermal conduction mechanisms thanks to the lower thermal boundary resistance between the two phases, polymer/filler. In particular, with a loading of 12 wt % of MWCNTs the relative permittivity reaches the value of 5.35 × 10 3 much greater than that of 3.7 measured for unfilled PLA while for the thermal conductivity the enhancement with 12 wt % of GNPs is about 261% respect the thermal behavior of the neat polymer. The experimental results are correlated to theoretical findings, whereas a design of experiment (DoE) approach is adopted for investigating how the different fillers influence the dielectric and thermal performances of the 3D-printed parts, thus assisting the design of such innovative materials that appear promising for development and applications in the electromagnetic (EM) field and heat transfer.
机译:在本研究中,富含多壁碳纳米管(MWCNT),石墨烯纳米板(GNP)的聚乳酸(PLA)富含碳质颗粒,up10wt%的载荷组合用于生产3D印刷试样用稠合的标本沉积建模(FDM)技术在实验和理论上研究。与未填充聚合物表现出的性能相比,该目标是提出针对具有改善的电介质和热性能的添加剂制造方法的非常规长丝。鉴于上述方式,进行宽介电光谱和通过形态学研究支持的热分析。结果突出显示1-尺寸填料(MWCNT)的引入更适合于改善所得材料的电介质性质,由于界面极化和官能化基团的存在,而2维纳米粒子(GNPS)由于两阶段,聚合物/填料之间的较低的热界电阻,更好地利用热传导机制。特别地,由于12wt%的MWCNTS的负载率达到5.35×10 3的值远比未填充的PLA测量的3.7的值,而导热率为12wt%的GNPS的增强约为261%尊重整齐聚合物的热行为。实验结果与理论上的结果相关,而实验(DOE)方法的设计是用于研究不同填充剂如何影响3D印刷部件的电介质和热性能,从而有助于设计这种似乎有前途的创新材料用于电磁(EM)场和传热中的开发和应用。

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