Banerjee Shib Shankar, Burbine Stephen, Kodihalli Shivaprakash Nischay, Mead Joey
Nanomanufacturing Center, Department of Plastic Engineering, University of Massachusetts Lowell, 1 University Avenue, Lowell, MA 01854, USA.
Polymers (Basel). 2019 Feb 17;11(2):347. doi: 10.3390/polym11020347.
Currently, material extrusion 3D printing (ME3DP) based on fused deposition modeling (FDM) is considered a highly adaptable and efficient additive manufacturing technique to develop components with complex geometries using computer-aided design. While the 3D printing process for a number of thermoplastic materials using FDM technology has been well demonstrated, there still exists a significant challenge to develop new polymeric materials compatible with ME3DP. The present work reports the development of ME3DP compatible thermoplastic elastomeric (TPE) materials from polypropylene (PP) and styrene-(ethylene-butylene)-styrene (SEBS) block copolymers using a straightforward blending approach, which enables the creation of tailorable materials. Properties of the 3D printed TPEs were compared with traditional injection molded samples. The tensile strength and Young's modulus of the 3D printed sample were lower than the injection molded samples. However, no significant differences could be found in the melt rheological properties at higher frequency ranges or in the dynamic mechanical behavior. The phase morphologies of the 3D printed and injection molded TPEs were correlated with their respective properties. Reinforcing carbon black was used to increase the mechanical performance of the 3D printed TPE, and the balancing of thermoplastic elastomeric and mechanical properties were achieved at a lower carbon black loading. The preferential location of carbon black in the blend phases was theoretically predicted from wetting parameters. This study was made in order to get an insight to the relationship between morphology and properties of the ME3DP compatible PP/SEBS blends.
目前,基于熔融沉积建模(FDM)的材料挤出3D打印(ME3DP)被认为是一种适应性强且高效的增材制造技术,可利用计算机辅助设计来开发具有复杂几何形状的部件。虽然使用FDM技术对多种热塑性材料的3D打印过程已得到充分证明,但开发与ME3DP兼容的新型聚合物材料仍然存在重大挑战。本工作报道了采用直接共混方法,由聚丙烯(PP)和苯乙烯-(乙烯-丁烯)-苯乙烯(SEBS)嵌段共聚物开发与ME3DP兼容的热塑性弹性体(TPE)材料,这使得能够制造出可定制的材料。将3D打印TPE的性能与传统注塑样品进行了比较。3D打印样品的拉伸强度和杨氏模量低于注塑样品。然而,在较高频率范围内的熔体流变性能或动态力学行为方面未发现显著差异。3D打印和注塑TPE的相形态与其各自的性能相关。使用增强炭黑来提高3D打印TPE的机械性能,并且在较低的炭黑负载量下实现了热塑性弹性体性能和机械性能的平衡。从润湿性参数理论预测了炭黑在共混相中的优先位置。进行这项研究是为了深入了解与ME3DP兼容的PP/SEBS共混物的形态与性能之间的关系。