Production of Polymer Frame Composites Using Industrial Robots

J. Mlýnek, Michal Petrů, Tomás Martinec, R. Knobloch
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Abstract

Polymer frame composites are increasingly applied in aerospace and automotive industry. These composites are primarily preferred due to their excellent mechanical and physical properties, in particular their eminent tensile strength and exquisite flexibility as well as high resistance to harsh weather conditions and corrosion. In the frame composites production frames with circular cross-sections are frequently used. The frames are often composed of several parts with different cross-section radii (for instance composites for car door reinforcement elements). Correct winding angles and homogeneity of fibre windings on a given 3D shaped non-bearing frame are necessary prerequisites for the production of high-quality frame composites. This article presents an overview of a new method to ensure compliance with these two important conditions. A fiber-processing head and industrial robot are used in the process of winding the fibres onto the frame. To keep the correct winding angles and homogeneity for the given frame, an optimized robot trajectory is calculated off-line using a mathematical model of the winding process, matrix calculus and a differential evolution algorithm. The computational procedure is independent of the type of industrial robot and its software tools. The method is programmed in the Delphi development environment system. The scheme of the calculation procedure forms an integral part of this article. The presented method was verified in experimental laboratory tests.
利用工业机器人生产聚合物框架复合材料
聚合物框架复合材料在航空航天和汽车工业中的应用越来越广泛。这些复合材料主要是由于其优异的机械和物理性能,特别是其卓越的抗拉强度和精致的柔韧性,以及对恶劣天气条件和腐蚀的高抵抗力。在框架复合材料生产中,经常使用圆形截面的框架。框架通常由几个具有不同截面半径的部件组成(例如车门加固元件的复合材料)。正确的缠绕角度和纤维缠绕的均匀性在给定的三维形状非轴承框架是生产高质量的框架复合材料的必要前提。本文概述了一种确保符合这两个重要条件的新方法。在将纤维缠绕到机架上的过程中,使用了纤维加工头和工业机器人。为了保证给定机架的正确绕线角度和均匀性,利用绕线过程的数学模型、矩阵演算和微分进化算法离线计算出优化后的机器人轨迹。计算过程与工业机器人的类型及其软件工具无关。该方法是在Delphi开发环境系统中编写的。计算程序的方案是本文的一个组成部分。该方法在实验室试验中得到了验证。
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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