Angelopoulos Panagiotis M, Vrithias Nikolaos Rafael, Viskadourakis Zacharias, Tsakiridis Petros, Vasilopoulos Konstantinos C, Peppas Antonis, Asimakopoulos Georgios, Spyrou Anastasia V, Karakassides Michael A, Taxiarchou Maria, Kenanakis George
School of Mining and Metallurgical Engineering, National Technical University of Athens, Zografou Campus, 9 Iroon Polytechniou Str., Zografou, GR-157 80 Athens, Greece.
Institute of Electronic Structure and Laser, Foundation for Research and Technology-Hellas, N. Plastira 100, Vasilika Vouton, GR-700 13 Heraklion, Greece.
Materials (Basel). 2022 Jul 19;15(14):5021. doi: 10.3390/ma15145021.
The use of amorphous microspheres as filler in composites is promising due to their light weight, low cost, incombustibility, and the ability to alter relevant properties of the final composite. Contrary to glass spheres, perlite microspheres are much cheaper and can be tailor-made to facilitate purpose-oriented alteration of the final composite. We report the use of perlite microspheres for the preparation of: (1) composites, through a compression molding (hot pressing) technique; and (2) composite filaments, in a single screw extruder, as well as their use for sample printing through Fused Deposition Modeling (FDM). Proper characterization of the produced composites allows for their evaluation in terms of physical, thermal, and mechanical properties and with regards to the manufacturing technique, the filler fraction, and size. Composite samples of acceptable quality in terms of filler survival and dispersion as well as mechanical properties were produced through compression molding using fine expanded perlite microspheres (<90 μm) up to an infill ratio of 40 vol.%. Fine fillers (<90 μm) performed well in FDM, allowing printing of composite dogbone samples with a higher Young’s modulus and elongation and similar ultimate tensile strength compared to benchmark, up to an infill ratio of 20 vol.%. Composite samples present a slightly lower burning rate compared to those produced solely by ABS. Perlite microspheres present good workability in both applications, possessing satisfactory performance as filler in the composites, and can thus be assumed a promising multifunctional filler for various thermoplastics considering their low price, environmental impact, and fire rating.
由于无定形微球重量轻、成本低、不可燃且能够改变最终复合材料的相关性能,因此将其用作复合材料的填料很有前景。与玻璃微球不同,珍珠岩微球价格便宜得多,并且可以进行定制,以促进最终复合材料的定向改性。我们报道了珍珠岩微球在以下方面的应用:(1)通过压缩成型(热压)技术制备复合材料;(2)在单螺杆挤出机中制备复合长丝,以及通过熔融沉积成型(FDM)用于样品打印。对所制备复合材料进行适当表征后,可以根据其物理、热学和力学性能以及制造技术、填料分数和尺寸对其进行评估。使用细膨胀珍珠岩微球(<90μm)通过压缩成型制备了在填料存活率、分散性以及力学性能方面质量合格的复合材料样品,填充率高达40体积%。细填料(<90μm)在FDM中表现良好,与基准样品相比,能够打印出具有更高杨氏模量和伸长率以及相似极限拉伸强度的复合狗骨形样品,填充率高达20体积%。与仅由ABS制成的样品相比,复合材料样品的燃烧速率略低。珍珠岩微球在这两种应用中均具有良好的加工性能,在复合材料中作为填料具有令人满意的性能,因此考虑到其低价格、环境影响和防火等级,可以认为它是一种适用于各种热塑性塑料的有前景的多功能填料。