Alvarez Gómez Mario, Moreno Nieto Daniel, Moreno Sánchez Daniel, Sanz de León Alberto, Molina Rubio Sergio
Departamento de Ingeniería Mecánica y Diseño Industrial, Escuela Superior de Ingeniería, IMEYMAT, Campus Río San Pedro, Universidad de Cádiz, Puerto Real, 11510 Cádiz, Spain.
Departamento de Ciencia de los Materiales e Ingeniería Metalúrgica y Química Inorgánica, F. Ciencias, IMEYMAT, Campus Río San Pedro, Universidad de Cádiz, Puerto Real, 11510 Cádiz, Spain.
Polymers (Basel). 2023 Aug 3;15(15):3291. doi: 10.3390/polym15153291.
Among the material extrusion technologies of additive manufacturing, fused granular fabrication is playing a bigger role in the industry. The increase in the size of printers demands extrusion systems with higher deposition rates that facilitate printing larger parts in shorter times with a need for cost reduction. This cost reduction in fused granular fabrication systems is due to the utilisation of pellets as the material source for the prints, such as pellets that are the most common way of distributing polymeric materials in industry and do not need the usual previous transformation into filaments. Most of the polymers in the industry can be found in the shape of pellets, so the opportunities for developing new materials beside the traditional filaments found in the market are expanding. In this research, a novel composite material has been developed based on the blending of commercial thermoplastic polyurethane (TPU) and cork particles obtained from industrial waste at different concentrations. These materials have been processed at a laboratory scale, and their mechanical, thermal and rheological properties have been studied. Despite a 53.52% reduction in the maximum stress on the x-axis, an 81.82% decrease in the values obtained with specimens oriented on the z-axis and a shortage in the deformation values, the results reveal a remarkable weight reduction leading to 21.31% when compared to the TPU of the blends,. These results may open a path to further explore these blends and find suitable applications in industry as proposed.
在增材制造的材料挤出技术中,熔融粒料制造在该行业中发挥着越来越重要的作用。打印机尺寸的增大要求挤出系统具有更高的沉积速率,以便在更短的时间内打印更大的部件,同时需要降低成本。熔融粒料制造系统中的成本降低是由于使用粒料作为打印的材料来源,例如粒料是工业中聚合物材料最常见的分布方式,并且不需要通常预先转化为长丝。工业中的大多数聚合物都可以制成粒料的形状,因此除了市场上常见的传统长丝之外,开发新材料的机会正在增加。在这项研究中,基于商业热塑性聚氨酯(TPU)与不同浓度的工业废料制成的软木颗粒的混合,开发了一种新型复合材料。这些材料已在实验室规模上进行了加工,并对其机械、热学和流变学性能进行了研究。尽管x轴上的最大应力降低了53.52%,z轴方向试样的所得值降低了81.82%,并且变形值有所不足,但结果显示与TPU相比,混合物的重量显著减轻,达到了21.31%。这些结果可能为进一步探索这些混合物并在工业中找到合适的应用开辟一条道路。