3D micromechanical modeling of orthogonal hole saw cutting on CFRP composites

IF 3.6 4区 材料科学 Q2 MATERIALS SCIENCE, COMPOSITES
A. Hassouna, S. Mzali, S. Mezlini, N. Alrasheedi, Khalil Hajlaoui
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Abstract

In the interest of developing a comprehensive understanding of the drilling process using the hole saw tool, this article aims to build a three-dimensional (3D) micromechanical model representing the orthogonal cutting of CFRP using one tooth of the hole saw tool. For this purpose, a finite element model is developed using Abaqus Explicit code. The influence of various drilling parameters like rake angle, inclination angle and cutting-edge radius on the drilling quality is explored. Especially, chip formation mechanisms, cutting force and lateral damage are analyzed. Through finite element simulations and computational analyses, it is found that these outputs results are highly influenced by drilling parameters. When the fiber orientation angle is set to 0°, increasing the rake angle results in a change in the chip formation mechanism from buckling to bending. In contrast, with a fiber orientation angle of 90°, bending and shear governs the chip formation process, irrespective of the rake angle. In both cases, whether the fiber orientation angle is 0° or 90°, chips tend to fragment more favorably with increasing the inclination angle. Regarding the cutting-edge radius, when the fiber orientation angle is 0°, an increase in the cutting-edge radius leads to a transition in the chip-forming mechanism from buckling to bending. However, for a fiber orientation angle of 90°, the chip formation remains governed by bending even as the cutting-edge radius changes. Decreasing the rake angle, the inclination angle, and the cutting-edge radius contribute to a reduction of the cutting force. As the inclination angle and the cutting-edge radius increase, the lateral damage increases, while the rake angle has showed a negligible impact on the damage. These results provide a guidance on the appropriate hole saw tool parameters for a good drilling quality namely, a rake angle of 20°, an inclination angle of 5° and a cutting-edge radius of 0.03 mm.
CFRP 复合材料上正交孔锯切割的三维微机械建模
为了全面了解使用孔锯工具进行钻孔的过程,本文旨在建立一个三维(3D)微机械模型,该模型代表了使用孔锯工具的一个齿对 CFRP 进行正交切割的过程。为此,我们使用 Abaqus Explicit 代码建立了一个有限元模型。研究了各种钻孔参数(如前角、倾角和切削刃半径)对钻孔质量的影响。特别是对切屑形成机制、切削力和横向损伤进行了分析。通过有限元模拟和计算分析发现,这些输出结果受钻孔参数的影响很大。当纤维取向角设置为 0°时,增加前角会导致切屑形成机制从屈曲变为弯曲。与此相反,当纤维取向角为 90°时,切屑形成过程受弯曲和剪切的影响,与前角无关。在这两种情况下,无论纤维取向角是 0°还是 90°,切屑都会随着倾角的增大而破碎。关于切削刃半径,当纤维取向角为 0°时,切削刃半径的增加会导致切屑形成机制从屈曲过渡到弯曲。然而,当纤维取向角为 90° 时,即使切削刃半径发生变化,切屑形成仍受弯曲控制。减小前角、倾角和切削刃半径有助于减小切削力。随着倾斜角和切削刃半径的增大,横向损伤也随之增大,而前角对损伤的影响微乎其微。这些结果为获得良好的钻孔质量提供了合适的孔锯工具参数,即前角 20°、倾角 5°和切削刃半径 0.03 mm。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Thermoplastic Composite Materials
Journal of Thermoplastic Composite Materials 工程技术-材料科学:复合
CiteScore
8.00
自引率
18.20%
发文量
104
审稿时长
5.9 months
期刊介绍: The Journal of Thermoplastic Composite Materials is a fully peer-reviewed international journal that publishes original research and review articles on polymers, nanocomposites, and particulate-, discontinuous-, and continuous-fiber-reinforced materials in the areas of processing, materials science, mechanics, durability, design, non destructive evaluation and manufacturing science. This journal is a member of the Committee on Publication Ethics (COPE).
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