热成型模拟所需热塑性复合材料成型性能的测定

R. I. Solovyov, A. Safin, D. Balkaev, V. V. Batrakov, L. Amirova
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引用次数: 0

摘要

复合固结板成型是一个复杂的过程。为了获得无缺陷的产品,我们必须记住,用织物增强的热塑性塑料实际上不会拉伸,它们的成型行为取决于层内或层间的剪切变形机制,取决于复合材料在模具表面滑动的过程以及固化板的弯曲刚度。由于材料在变形过程中的复杂行为,通过试错法对热成形过程进行优化在实施上是相当昂贵的,并且可以成功地由初步模拟代替。用于热成型过程建模的可用软件包提供了与实际相符的材料的正确模型的构建,需要引入固化板的褶皱,其弯曲刚度,层与层之间的摩擦系数和工具的输入参数。然而,到目前为止,还没有测量它们的标准,这极大地阻碍了基于热塑性粘合剂的固化板热成型产品的建模过程。我们介绍了基于聚丙烯PP01030的碳纤维增强塑料的一些物理和机械性能的实验数据,包括样品的拉伸-位移试验,用于评估热塑性复合材料剪切性能的移动框架试验,以及用于确定层间摩擦和复合材料与工具摩擦的试验。考虑到国外研究小组在热塑性复合材料物理和机械测试方面的经验,在基体熔化温度下使用专门的工具进行了测试。提出了一种测定热塑性碳纤维增强塑料抗弯刚度的方法。所提出的工具不需要应用复杂的力,只需要试验机的标准拉伸测试夹具。物理力学试验数据可用于固结复合材料板热成形过程的虚拟建模。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Determination of the shaping behavior of thermoplastic composite materials required for simulation of thermoforming
The shaping of composite consolidated plates into products is a complex process. To obtain a defect-free product, we have to bear in mind that thermoplastics reinforced with a fabric practically do not stretch, and their shaping behavior is determined by the mechanisms of shear deformations within a layer or between layers, by the processes of sliding a composite over the surface of tooling and by the flexural rigidity of the consolidated plates. Due to the complex behavior of the material during deformation, the optimization of the thermoforming process by trial and error is rather expensive in implementation and can be successfully replaced by a preliminary simulation. The available software packages intended for modeling the thermoforming process which provide construction of a correct model of the material consistent with the reality, require the introduction of input parameters for the drape of the consolidated plate, its flexural stiffness, the coefficient of friction between layers and with tooling. However, until now there are no standards for their measurement, which significantly hinders the process of modeling the thermoforming of products from consolidated plates based on thermoplastic binders. We present experimental data on the determination of some physical and mechanical properties of carbon fiber reinforced plastics based on polypropylene PP01030, including tensile-displacement tests of the sample, tests with a moving frame that provide evaluating the shear behavior of thermoplastic composite materials, as well as tests for determining the interlayer friction and friction of a composite with tooling. The tests were carried out at the melting temperature of the matrix using specialized tooling, made taking into account the experience of foreign research groups in physical and mechanical testing of thermoplastic composite materials. A method for determining the flexural rigidity of thermoplastic carbon fiber reinforced plastics is proposed. The presented tooling does not require the application of a complex force, and needs only standard tensile test clamps of the testing machine. The data obtained from the physicomechanical tests can be used in virtual modeling of the thermoforming process of consolidated composite plates.
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