Starkova Olesja, Sabalina Alisa, Voikiva Vanda, Osite Agnese
Institute for Mechanics of Materials, University of Latvia, Jelgavas 3, LV-1004 Riga, Latvia.
Institute of Chemical Physics, University of Latvia, Jelgavas 1, LV-1004 Riga, Latvia.
Polymers (Basel). 2022 Jun 29;14(13):2651. doi: 10.3390/polym14132651.
Sheep wool is an eco-friendly, renewable, and totally recyclable material increasingly used in textiles, filters, insulation, and building materials. Recently, wool fibers have become good alternatives for reinforcement of polymer composites and filaments for 3D printing. Wool fibers are susceptible to environmental degradation that could shorten their lifetime and limit applications. This study reports on the mechanical properties of sheep wool fibers under the impact of humid air and UV irradiation. The results of single fiber tensile tests showed a noticeable gauge length effect on the fibers' strength and failure strain. Long (50 mm) fibers possessed about 40% lower characteristics than short (10 mm) fibers. Environmental aging decreased the elastic modulus and strength of the fibers. Moisture-saturated fibers possessed up to 43% lower characteristics, while UV aging resulted in up to a twofold reduction of the strength. The most severe degradation effect is observed under the coupled influence of UVs and moisture. The two-parameter Weibull distribution was applied for the fiber strength and failure strain statistical assessment. The model well predicted the gauge length effects. Moisture-saturated and UV-aged fibers were characterized by less extensive strength dependences on the fiber length. The strength and failure strain distributions of aged fibers were horizontally shifted to lower values. The results will contribute to be reliable predictions of the environmental durability of sheep wool fibers and will extend their use in technical applications.
羊毛是一种环保、可再生且完全可回收的材料,越来越多地用于纺织品、过滤器、隔热材料和建筑材料中。最近,羊毛纤维已成为增强聚合物复合材料和用于3D打印的长丝的良好替代品。羊毛纤维易受环境降解影响,这可能会缩短其使用寿命并限制其应用。本研究报告了在潮湿空气和紫外线辐射影响下羊毛纤维的力学性能。单纤维拉伸试验结果表明,标距长度对纤维强度和断裂应变有显著影响。长(50毫米)纤维的性能比短(10毫米)纤维低约40%。环境老化降低了纤维的弹性模量和强度。水分饱和的纤维性能降低高达43%,而紫外线老化导致强度降低高达两倍。在紫外线和水分的共同影响下观察到最严重的降解效应。采用双参数威布尔分布对纤维强度和断裂应变进行统计评估。该模型很好地预测了标距长度效应。水分饱和和紫外线老化的纤维的强度对纤维长度的依赖性较小。老化纤维的强度和断裂应变分布水平向较低值移动。这些结果将有助于可靠预测羊毛纤维的环境耐久性,并将扩大其在技术应用中的使用。