Plavec Roderik, Horváth Vojtech, Hlaváčiková Slávka, Omaníková Leona, Repiská Martina, Medlenová Elena, Feranc Jozef, Kruželák Ján, Přikryl Radek, Figalla Silvestr, Kontárová Soňa, Baco Andrej, Danišová Lucia, Vanovčanová Zuzana, Alexy Pavol
Institute of Natural and Synthetic Polymers, Faculty of Chemical and Food Technology, Slovak University of Technology, Radlinského 9, 812 37 Bratislava, Slovakia.
Institute of Materials Chemistry, Faculty of Chemistry, Brno University of Technology, Purkyňova 464/118, 612 00 Brno, Czech Republic.
Polymers (Basel). 2022 May 11;14(10):1947. doi: 10.3390/polym14101947.
This study focused on material recycling of a biodegradable blend based on PLA and PHB for multiple applications of biodegradable polymeric material under real conditions. In this study, we investigated the effect of multiple processing of a biodegradable polymer blend under the trade name NONOILEN, which was processed under laboratory as well as industrial conditions. In this article, we report on testing the effect of blending and multiple processing on thermomechanical stability, molecular characteristics, as well as thermophysical and mechanical properties of experimental- and industrial-type tested material suitable for FDM 3D technology. The results showed that the studied material degraded during blending and subsequently during multiple processing. Even after partial degradation, which was demonstrated by a decrease in average molecular weight and a decrease in complex viscosity in the process of multiple reprocessing, there was no significant change in the material's thermophysical properties, either in laboratory or industrial conditions. There was also no negative impact on the strength characteristics of multiple processed samples. The results of this work show that a biodegradable polymer blend based on PLA and PHB is a suitable candidate for material recycling even in industrial processing conditions. In addition, the results suggest that the biodegradable polymeric material NONOILEN 3D 3056-2 is suitable for multiple uses in FDM technology.
本研究聚焦于基于聚乳酸(PLA)和聚羟基丁酸酯(PHB)的可生物降解共混物的材料回收利用,以在实际条件下实现可生物降解聚合物材料的多种应用。在本研究中,我们调查了以商品名NONOILEN销售的可生物降解聚合物共混物在实验室及工业条件下进行多次加工的效果。在本文中,我们报告了对共混和多次加工对适用于熔融沉积成型(FDM)3D技术的实验型和工业型测试材料的热机械稳定性、分子特性以及热物理和机械性能的影响进行的测试。结果表明,所研究的材料在共混过程中以及随后的多次加工过程中发生降解。即使在多次再加工过程中平均分子量降低和复数粘度下降表明发生了部分降解之后,在实验室或工业条件下,该材料的热物理性能也没有显著变化。多次加工后的样品的强度特性也没有受到负面影响。这项工作的结果表明,基于PLA和PHB的可生物降解聚合物共混物即使在工业加工条件下也是材料回收利用的合适候选材料。此外,结果表明,可生物降解聚合物材料NONOILEN 3D 3056 - 2适用于FDM技术的多种用途。