Effect of different ceramic fillers filled with GF/PTFE on the tensile and compressive properties of the composites

Guang-hui Yang, Xin Ji
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Abstract

In this article, six ceramic-filled glass fiber (GF)/PTFE-based composites were fabricated using 15 wt.% mass fraction GF and 80 wt.% PTFE as matrix materials and 5 wt.% mass fraction ceramic materials such as Al2O3, MoS2, TiO2, BaSO4, hollow glass beads (HGB), and solid glass beads (SGB) as filler materials, respectively, at 44 MPa molding pressure and sintering temperature of 370°C. The tensile strength, elongation at break, and compressive strength at room temperature and 250°C were investigated for six composites. Finally, the surface morphology of the composites was characterized using the ultradeep field electron microscope. The results show that MoS2 has the best synergistic strengthening effect with GF in PTFE matrix, but the toughening effect is less obvious, so MoS2/GF/PTFE exhibits the maximum hardness (66) and tensile strength (18.16 MPa) and the minimum elongation at break (94.72%), while HGB/GF/PTFE composites exhibit the minimum hardness (61) and tensile strength (15.04 MPa) and the maximum elongation at break (360.36%). In addition, the MoS2/GF/PTFE exhibited the maximum compressive strength (9.29 MPa) at 250°C, but then the SGB/GF/PTFE composite exhibited the maximum compressive strength (24.28) at room temperature. A comprehensive analysis of the modification mechanism shows that the type, morphology, particle size, strength, and interfacial bonding with the PTFE matrix of the ceramic filler all influence the filling effect of the composite.
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填充 GF/PTFE 的不同陶瓷填料对复合材料拉伸和压缩性能的影响
本文以质量分数为 15% 的玻璃纤维 (GF) 和质量分数为 80% 的聚四氟乙烯为基体材料,以质量分数为 5% 的 Al2O3、MoS2、TiO2、BaSO4、空心玻璃微珠 (HGB) 和实心玻璃微珠 (SGB) 等陶瓷材料为填充材料,在 44 MPa 成型压力和 370°C 烧结温度下制备了六种陶瓷填充玻璃纤维 (GF) / 聚四氟乙烯基复合材料。研究了六种复合材料在室温和 250°C 下的拉伸强度、断裂伸长率和压缩强度。最后,使用超深场电子显微镜对复合材料的表面形态进行了表征。结果表明,MoS2 与 GF 在 PTFE 基体中的协同增强效果最好,但增韧效果不明显,因此 MoS2/GF/PTFE 的硬度(66)和抗拉强度(18.16 兆帕)最大,断裂伸长率(94.72%)最小;而 HGB/GF/PTFE 复合材料的硬度(61)和抗拉强度(15.04 兆帕)最小,断裂伸长率(360.36%)最大。此外,MoS2/GF/PTFE 在 250°C 时表现出最大抗压强度(9.29 兆帕),但随后 SGB/GF/PTFE 复合材料在室温下表现出最大抗压强度(24.28)。对改性机理的综合分析表明,陶瓷填料的类型、形态、粒度、强度以及与聚四氟乙烯基体的界面结合力都会影响复合材料的填充效果。
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