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首页> 外文期刊>Materials science & engineering >Mechanical characterization of the static and fatigue compressive properties of a new glass/flax/epoxy composite material using digital image correlation, thermographic stress analysis, and conventional mechanical testing
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Mechanical characterization of the static and fatigue compressive properties of a new glass/flax/epoxy composite material using digital image correlation, thermographic stress analysis, and conventional mechanical testing

机译:使用数字图像关联,热成像应力分析和常规机械测试对新型玻璃/亚麻/环氧复合材料的静态和疲劳压缩特性进行机械表征

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摘要

This study characterized the static and fatigue compressive properties of a new hybrid composite material made of synthetic and natural fibers with an epoxy matrix. The glass/flax/epoxy composite material was manufactured as a sandwich structure with a Type A configuration (i.e. [0(G2)/0(F12)/0(G2)] using unidirectional glass (G) and flax (F) fibers) and Type B configuration (i.e. [0(G2)/ +/- 45(F12)/0(G2)] using unidirectional glass (G) and +/- 45 degrees oblique flax (F) fibers). Digital image correlation was used to obtain the static properties of compressive elastic modulus (Type A, 24.4 GPa; Type B, 14.7 GPa), ultimate compressive strength (Type A, 261.7 MPa; Type B, 231.9 MPa), and Poisson's ratio (Type A, 0.37; Type B, 0.58). Thermographic stress analysis was used to measure a high cycle fatigue strength (HCFS) of 53% (Type A and B) of ultimate compressive strength. Conventional experimental fatigue methods (i.e. stress vs. number of cycles to failure) yielded a HCFS of 5661% (Type A) and 5156% (Type B), as well as almost constant dynamic compressive moduli of 15 GPa (Type A) and 10 GPa (Type B) over the entire loading regime. This new composite material may have various potential applications, such as aerospace, automotive, biomechanics, sports, etc., based on the compressive properties measured.
机译:这项研究表征了一种新型的混合复合材料的静态和疲劳压缩特性,该复合材料由合成纤维和天然纤维与环氧基质制成。玻璃/亚麻/环氧树脂复合材料被制造为具有A型配置的夹心结构(即[0(G2)/ 0(F12)/ 0(G2)]使用单向玻璃(G)和亚麻(F)纤维) B型配置(即使用单向玻璃(G)和+/- 45度斜亚麻(F)光纤的[0(G2)/ + /-45(F12)/ 0(G2)])。使用数字图像相关性获得压缩弹性模量(A型,24.4 GPa; B型,14.7 GPa),极限抗压强度(A型,261.7 MPa; B型,231.9 MPa)和泊松比(类型)的静态特性。 A,0.37; B型,0.58)。热应力分析用于测量极限抗压强度的53%(A型和B型)的高循环疲劳强度(HCFS)。常规实验疲劳方法(即应力与失效循环数)得出的HCFS为5661%(A型)和5156%(B型),以及几乎恒定的动态压缩模量为15 GPa(A型)和10在整个加载过程中的GPa(B型)。根据测得的压缩性能,这种新的复合材料可能具有各种潜在的应用,例如航空航天,汽车,生物力学,运动等。

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