Short carbon fiber reinforced poly(lactic acid) and its thermoplastic polyurethane blends: The effect of carbon fiber, polyurethane, and compatibilizer amounts

Çağrıalp Arslan, Ayşegül Erdem, Özkan Özmen, Ümit Tayfun, Mehmet Doğan
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Abstract

Lightweight and multifunctional carbon fiber‐reinforced composites with low production costs are crucial for aerospace and logistics applications. In this study, the integration of compatibilizer to polylactic acid (PLA)/thermoplastic polyurethane (TPU) blends filled with carbon fiber (CF) is performed due to cost‐lowering, besides enhanced mechanical performance and processability. Composite sample loaded with 30% CF is selected and optimized by the varied amount of polymeric MDI (pM) inclusions. As the tensile resistance of PLA/TPU/30CF and PLA/TPU/30CF/pM is compared, it is found that pM additions led to enhancements in tensile strength and tensile modulus. A total of 5% of pM inclusion results in 43% increament in tensile strength of the tensile strength of PLA/TPU/30CF. Similarly, the flexural modulus and flexural strength of composites are improved by a high amount of pM. The impact resistance of PLA significantly increases after CF inclusion. The incorporation of TPU and compatibilizer shifts impact strength to higher levels. 204% improvement is achieved for PLA/TPU blend involving 5 wt% of pM concerning unfilled PLA. According to the thermo‐mechanical analysis of composites, the presence of pM yields a higher elastic modulus for PLA/TPU/CF composites. Additionally, reductions in the glass transition temperature of PLA and composites are observed since the polymer gains ductility by elastomer and compatibilizer inclusions. Scanning electron microscopy (SEM) investigations of composites visualize these findings. Results postulated that pM integration can be utilized in large‐scale production of CF‐reinforced PLA‐TPU blend systems for cost reduction and performance improvement of composite parts in logistics and aerospace applications.Highlights The compatibilizing effect of pMDI on the PLA/TPU/CF blend system is investigated. pMDI inclusions yield improvement in the mechanical resistance of composites. CF‐reinforced PLA/TPU composites gain ductile behavior by the addition of TPU. The increase in elastic modulus ensures an efficient enhancement of compatibility.
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短碳纤维增强聚乳酸及其热塑性聚氨酯混合物:碳纤维、聚氨酯和相容剂用量的影响
生产成本低的轻质多功能碳纤维增强复合材料对于航空航天和物流应用至关重要。本研究将相容剂与填充碳纤维(CF)的聚乳酸(PLA)/热塑性聚氨酯(TPU)混合物相结合,以降低成本,同时提高机械性能和加工性能。通过改变聚合物 MDI(pM)夹杂物的用量,选择并优化了含有 30% CF 的复合材料样品。通过比较聚乳酸/热塑性聚氨酯/30CF 和聚乳酸/热塑性聚氨酯/30CF/pM 的抗拉强度,发现添加 pM 可提高拉伸强度和拉伸模量。添加 5%的 pM 会使聚乳酸/热塑性聚氨酯/30CF 的拉伸强度提高 43%。同样,大量 pM 的加入也提高了复合材料的弯曲模量和弯曲强度。加入 CF 后,聚乳酸的抗冲击性明显提高。加入热塑性聚氨酯和相容剂后,抗冲击强度提高了。与未填充的聚乳酸相比,含有 5 wt% pM 的聚乳酸/热塑性聚氨酯混合物的抗冲击强度提高了 204%。根据复合材料的热机械分析,pM 的存在使 PLA/TPU/CF 复合材料的弹性模量更高。此外,聚乳酸和复合材料的玻璃化转变温度也有所降低,因为聚合物通过弹性体和相容剂夹杂物获得了延展性。对复合材料进行的扫描电子显微镜(SEM)研究可以直观地看到这些发现。研究结果推测,pMDI 可用于大规模生产 CF 增强聚乳酸-热塑性聚氨酯(PLA-TPU)共混体系,从而降低成本并提高物流和航空航天应用中复合材料部件的性能。添加热塑性聚氨酯后,CF 增强聚乳酸/热塑性聚氨酯复合材料具有延展性。弹性模量的增加确保了相容性的有效提高。
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