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Rheology of High-Melt-Strength Polypropylene for Additive Manufacturing

机译:添加剂制造用高熔体强度聚丙烯的流变性

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摘要

Acrylonitrile butadiene styrene (ABS) is a widely used material for additive manufacturing (AM) fused deposition modeling (FDM). The rheological properties of high-melt-strength polypropylene (HMS-PP) were compared to commercially available ABS 250 filament to study the possibility of using this material for FDM. The aim of this research contribution was to generate a full description of the viscosity in a plate-to-plate rheometer. Moreover, the materials were used in an FDM process focusing on the investigation of possible improvements of HMS-PP over ABS. The latter material showed specific disadvantages in terms of thermal stability. In particular, the storage modulus G’, loss modulus G”, and complex viscosity were measured at temperatures between 170 °C and 250 °C and brought to superimpose using the time-temperature superposition method to create master curves of the two materials. The comparison of the time sweep allowed the conclusion that HMS-PP is more stable by showing less variation during the studied period of two hours. The master curves of ABS concluded that data measured at 250 °C deviates significantly from the curves derived from measurements at lower temperatures. In particular, the storage modulus and complex viscosity data of ABS 250 could not be used to enlarge the master curve values. HMS-PP showed a more stable behavior at the studied temperatures, and all data points were suitable to create the master curves. Practical studies to determine adapted extrusion parameters for HMS-PP were carried out using an FDM machine. ABS was extruded through a J-Head extruder with 0.4 mm nozzle-diameter and 243 °C extrusion temperature. The extrusion was performed in a vertical direction with gravitational forces pointing in the extrusion direction. The fused filament depended on the extrusion speed and diameter, resulting in an optimal printing speed of 60 to 80 mm/min. The HMS-PP granule was extruded into a filament of 1.75 mm diameter and then extruded through a J-Head and E3D with 0.4 mm nozzle-diameter and 200 to 240 °C. A comparison of the primary material with the printed material showed negligible changes in the measurement curves which might lead to the conclusion that the degradation of HMS-PP during the FDM process is as low as the degradation of ABS.
机译:丙烯腈丁二烯苯乙烯(ABS)是一种广泛用于增材制造(AM)熔融沉积建模(FDM)的材料。将高熔体强度聚丙烯(HMS-PP)的流变特性与市售的ABS 250细丝进行了比较,以研究将该材料用于FDM的可能性。这项研究贡献的目的是对板对板流变仪中的粘度进行完整描述。此外,这些材料被用于FDM工艺,重点是研究HMS-PP相对于ABS的可能改进。后一种材料在热稳定性方面显示出特定的缺点。特别地,在170℃至250℃之间的温度下测量储能模量G’,损耗模量G”和复数粘度,并使用时间-温度叠加法将其叠加以创建两种材料的主曲线。时间扫描的比较可以得出这样的结论,即HMS-PP在研究的两个小时内显示较少的变化,因此更加稳定。 ABS的主曲线得出结论,在250°C下测得的数据与在较低温度下测得的曲线显着不同。特别是,ABS 250的储能模量和复数粘度数据不能用于扩大主曲线值。 HMS-PP在所研究的温度下表现出更稳定的行为,并且所有数据点都适合创建主曲线。使用FDM机器进行了确定HMS-PP的合适挤出参数的实践研究。通过J-Head挤出机以0.4mm喷嘴直径和243℃的挤出温度挤出ABS。在垂直方向上进行挤出,其中重力指向挤出方向。熔融的长丝取决于挤出速度和直径,从而导致60到80 mm / min的最佳印刷速度。将HMS-PP颗粒挤出为直径1.75 mm的长丝,然后通过J-Head和E3D挤出,喷嘴直径为0.4 mm,温度为200至240°C。原始材料与印刷材料的比较表明,测量曲线的变化可忽略不计,这可能导致得出结论,即FDM过程中HMS-PP的降解与ABS的降解一样低。

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