Investigation of mechanical characteristics of braided carbon fiber

Mykhailo Bohatyr, G. Lvov, O. Vodka, O. Chepeliuk
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Abstract

The use of composite materials in various branches of modern industry is rapidly increasing due to their high strength properties, low weight and good manufacturability. A wide variety of materials used, types of reinforcement and internal structures creates a need for studies of the static and dynamic properties of composite materials. Due to the latest advances in technology, composite materials are widely used in a variety of industrial applications. As a result, there is considerable interest in studying and understanding the behavior of composite structures. Analysis of composite structures, study of resonance frequencies, damping factors and modal shapes played an important role in determining the dynamic characteristics of the structure, detecting damage and monitoring the state of the composite structure. In this paper, the results of computational and experimental researches of the Young’s modulus, natural frequencies and modes of vibration, damping properties of the composite material are presented. The researches were carried out on samples of the woven ten-layer carbon fiber reinforced plastic. The investigated carbon fiber reinforced plastic has a plain weave. Samples were cut in three directions: warp (0 °), weft (90 °) and 45 °. Nine samples were prepared for each direction. To study the Young’s modulus, a tensile testing machine was used, and a vibration stand was used to determine the natural frequencies and modes of vibration. Damping properties are calculated by the Oberst method, based on the amplitude-frequency characteristics of the samples. Statistical processing of the experimental results was carried out and the values ​​of the mathematical expectation and variance were obtained. Geometric and finite element models of сarbon fiber reinforced plastic samples were built, their natural frequencies and vibration modes were determined. Comparison of the computational and experimental data with numerous calculations using the finite element method is carried out.
编织碳纤维的力学特性研究
复合材料由于具有强度高、重量轻、可制造性好等特点,在现代工业的各个部门中的应用正在迅速增加。使用的各种各样的材料,类型的增强和内部结构创造了研究复合材料的静态和动态特性的需要。由于技术的最新进步,复合材料被广泛应用于各种工业应用中。因此,人们对研究和理解复合材料结构的行为非常感兴趣。复合材料结构的分析、共振频率、阻尼因子和模态振型的研究对确定复合材料结构的动力特性、检测复合材料结构的损伤和监测复合材料结构的状态起着重要的作用。本文介绍了复合材料的杨氏模量、固有频率和振型、阻尼性能的计算和实验研究结果。对编织的十层碳纤维增强塑料试样进行了研究。所研究的碳纤维增强塑料具有平纹组织。样品在三个方向上切割:经线(0°),纬线(90°)和45°。每个方向制备9个样品。为了研究杨氏模量,使用了拉伸试验机,并使用振动台来确定振动的固有频率和模态。根据样品的幅频特性,采用奥伯斯特方法计算阻尼特性。对实验结果进行统计处理,得到数学期望值和方差。建立了碳纤维增强塑料试样的几何模型和有限元模型,确定了其固有频率和振型。用有限元法进行了大量的计算,并对计算数据和实验数据进行了比较。
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