材料科学
复合材料
熔融沉积模型
ABS树脂
弹性模量
热塑性塑料
复合数
热塑性聚氨酯
应变计
聚酰胺
模数
纤维
光栅扫描
张力(地质)
材料性能
沉积(地质)
体积分数
杨氏模量
聚碳酸酯
梁(结构)
拉伤
光栅图形
拉伸试验
熔丝制造
3D打印
先进复合材料
数字图像相关
热塑性复合材料
作者
Serovaev, Grigorii S.,Galkina, Elizaveta B.,Koniukhov, Vladislav A.
标识
DOI:10.48612/letters/2024-4-353-358
摘要
Additive manufacturing opens new possibilities for rapid prototyping and functional part production, necessitating a thorough understanding of utilized materials’ mechanical properties. This paper presents a method for determining elastic constants — the elastic modulus and Poisson’s ratio of 3D-printed materials using uniaxial tension test on rectangular cross-section samples. It is proposed to conduct longitudinal and transversal strain measurements on the surface of the samples using fiber-optic sensors based on fiber Bragg gratings, which offer comparable accuracy to standard electrical strain gages while providing advantages such as reduced size, simplified preparation, and minimal equipment requirements. The study focuses on materials manufactured by fused deposition modeling using various thermoplastic polymers: acrylonitrile butadiene styrene (ABS), ABS-based composite with 15 % carbon fiber content and Polyamide 6 (PA6) with up to 20 % volume fraction of short carbon fibers. The influence of filament deposition orientation on the Young’s modulus and Poisson’s ratio of these materials was analyzed. The results demonstrate a pronounced dependence of the elastic constants on the raster angle for the studied reinforced thermoplastics while insignificant variation of properties for traditional ABS material. The proposed application of fiber-optic sensors for strain measurement during experimental testing provides a reliable approach for characterizing the elastic properties of 3D-printed materials, contributing to the knowledge essential for their effective application in various industries.
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