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Fabrication and Characterization of Multiscale PLA Structures Using Integrated Rapid Prototyping and Gas Foaming Technologies

机译:使用集成的快速原型制作和气体发泡技术制造和表征多尺度PLA结构

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摘要

Multiscale structured polymers have been considered as a promising category of functional materials with unique properties. We combined rapid prototyping and gas foaming technologies to fabricate multiscale functional materials of superior mechanical and thermal insulation properties. Through scanning electron microscope based morphological characterization, formation of multiscale porous structure with nanoscale cellular pores was confirmed. Improvement in mechanical strength is attributed to rearrangement of crystals within CO2 saturated grid sample. It is also shown that a post-foaming temperature higher than the glass transition temperature deteriorates mechanical strength, providing process guidelines. Thermal decomposition of filament material sets the upper limit of temperature for 3D printed features, characterized by simultaneous differential scanning calorimetry and thermogravimetric analysis. Porosity of the fabricated 3D structured polylactic acid (PLA) foam is controllable by suitable tuning of foaming conditions. The fabricated multiscale 3D structures have potential for thermal insulation applications with lightweight and reasonable mechanical strength.
机译:多尺度结构化聚合物被认为是具有独特性能的功能材料的有前途的类别。我们将快速成型和气体发泡技术相结合,以制造出具有出色机械和隔热性能的多尺度功能材料。通过基于扫描电镜的形态学表征,证实了形成具有纳米级孔的多尺度多孔结构。机械强度的提高归因于CO2饱和网格样品中晶体的重排。还表明,发泡后温度高于玻璃化转变温度会降低机械强度,从而提供了工艺指导。灯丝材料的热分解为3D打印特征设定了温度上限,其特征是同时进行差示扫描量热法和热重分析。可以通过适当调节发泡条件来控制制造的3D结构化聚乳酸(PLA)泡沫的孔隙率。所制造的多尺度3D结构具有轻巧合理的机械强度,可用于绝热应用。

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