材料科学
线性低密度聚乙烯
复合材料
韧性
高密度聚乙烯
结晶度
熔丝制造
极限抗拉强度
聚乙烯
聚合物
聚丙烯
制作
注塑成型
低密度聚乙烯
艾氏冲击强度试验
复配
流变学
3D打印
图像扭曲
粘度
混溶性
相(物质)
流变仪
熔融沉积模型
聚合物混合物
热处理
热的
热稳定性
延伸率
原材料
作者
Animesh Gopal,Aman Chaubal,Kadhiravan Shanmuganathan
摘要
ABSTRACT The incorporation of recycled polymers in additive manufacturing offers a sustainable pathway to reduce plastic waste while enabling cost‐effective production of functional components. High‐density polyethylene (HDPE) is an attractive material for 3D printing owing to its low density, chemical resistance, and recyclability. However, its high crystallinity and tendency to shrink often lead to warpage and poor interlayer adhesion. This study proposes a blend‐based strategy to overcome these limitations by incorporating tough linear low‐density polyethylene (LLDPE) into recycled HDPE (rHDPE). The blends were prepared through melt extrusion, and their mechanical, rheological, morphological, and thermal properties, and 3D printability were comprehensively evaluated. rHDPE/LLDPE blends showed a remarkable improvement in elongation at break (from 3.2% to 84.7%) and toughness without compromising tensile strength. Addition of LLDPE led to a moderate reduction in the crystallinity of rHDPE/LLDPE blends (from 69% to 52.5%) but a significant reduction in the warpage of 3D printed samples (from 27% to 7.6%). Rheological and morphological analyses confirmed good miscibility and uniform phase distribution in the blends, with increasing LLDPE content enhancing complex viscosity and melt elasticity. Overall, the rHDPE/LLDPE blends exhibit superior mechanical performance and reduced warpage, establishing their potential for FFF 3D printing applications.
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