...
首页> 外文期刊>Composites Science and Technology >Eco-friendly lightweight filament synthesis and mechanical characterization of additively manufactured closed cell foams
【24h】

Eco-friendly lightweight filament synthesis and mechanical characterization of additively manufactured closed cell foams

机译:环保的轻质长丝合成和增材制造的闭孔泡沫的机械特性

获取原文
获取原文并翻译 | 示例
           

摘要

Environmentally pollutant fly ash cenospheres (hollow microballoons) are utilized with most widely consumed, relatively expensive high density polyethylene (HDPE) for developing lightweight eco-friendly filament for 3D printing of closed cell foams. Cenospheres (20, 40 and 60 by volume %) are blended with HDPE and subsequently extruded in filament to be used for 3D printing. Cenosphere/HDPE blends are studied for melt flow index (MFI) and Theological properties. MFI decreases with cenospheres addition. Complex viscosity, storage and loss modulus increase with filler loading. DSC results on the filament and printed samples reveal increasing crystallization temperature and decreasing crystallinity % with no appreciable change in peak melting temperature. Cooling rate variations exhibit crystallinity differences between the filament and the prints. CTE decreases with increasing cenosphere content resulting in lower thermal stresses and under diffusion of raster leading to non-warped prints. Micrography on freeze fractured filament and prints show cenospheres uniform distribution in HDPE. Intact cenospheres lower the foam density making it lightweight. Tensile tests are carried out on filaments and printed samples while flexural properties are investigated for 3D prints. Cenospheres addition resulted in improved tensile modulus and decreased filament strength. Tensile and flexural modulus of printed foams increases with filler content. Results are also compared with injection molded samples. Printed foams registered comparable tensile strength. Specific tensile modulus is noted to be increased with cenospheres loading implying weight saving potential of 3D printed foams. Property map reveals printed foams advantage over other fillers and HDPE composites synthesized through injection and compression molding.
机译:污染环境的粉煤灰空心球(空心微气球)与最广泛使用,相对昂贵的高密度聚乙烯(HDPE)一起用于开发轻质的环保长丝,用于3D打印闭孔泡沫。将空心球(体积百分比为20、40和60)与HDPE混合,然后挤出成细丝以用于3D打印。研究了Cenosphere / HDPE共混物的熔体流动指数(MFI)和流变性能。 MCE随空心球的增加而降低。复数粘度,储能和损耗模量随填料用量的增加而增加。在长丝和印刷样品上的DSC结果显示出结晶温度升高和结晶度%降低,峰值熔融温度没有明显变化。冷却速率变化在长丝和印花之间表现出结晶度差异。随着中空层含量的增加,CTE降低,从而导致较低的热应力和光栅的扩散,从而导致印刷不翘曲。冷冻断裂的长丝和照片上的显微照片显示,空心球在HDPE中均匀分布。完整的空心球降低了泡沫密度,使其变得轻巧。在细丝和印刷样品上进行拉伸测试,同时研究3D打印的弯曲性能。添加空心球可提高拉伸模量,降低长丝强度。印刷泡沫的拉伸模量和挠曲模量随填料含量的增加而增加。还将结果与注塑样品进行比较。印刷泡沫具有相当的抗张强度。注意到,随着空心球的负载,比拉伸模量增加,这意味着3D打印泡沫具有减轻重量的潜力。特性图显示,与其他通过注塑和压塑合成的填料和HDPE复合材料相比,印刷泡沫具有优势。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号