纤维增强塑料和金属高应力多材料设计的先进焊接技术

Holger Seidlitz, S. Fritzsche, M. Ambrosio, Alexander Kloshek
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引用次数: 3

摘要

由纤维增强热塑性塑料制成的有机板材能够为增加设计的轻量化潜力做出重要贡献。它们表现出高比强度和刚度性能,良好的阻尼特性和回收能力,同时能够表现出比同类金属结构更高的能量吸收能力。如今,多材料设计是汽车行业结合金属和纤维增强塑料优点的一种既定方式。目前大规模生产中使用的有机板材与金属的连接技术有机械连接技术和粘合技术。这两种技术都需要在零件设计中不需要的大重叠区域。此外,机械连接通常与“破坏纤维”的预钻和冲孔工艺相结合。这将通过引起不必要的纤维和纤维间破坏和诱导临界缺口应力来干扰连接位置的力通量。因此,纤维增强热塑性塑料与金属的复合材料设计需要优化连接技术,使其不中断力通量,从而诱导更高的载荷,充分发挥FRP材料的优势。本文重点介绍了一种基于冷金属转移(CMT)焊接工艺的新连接技术的特性,该技术允许以负载路径优化的方式与短周期时间连接有机板材和金属。这是通过在连接区域周围插入薄金属引脚来重新定向纤维来实现的。纤维的路径将类似于在自然界中发现的结构内部的纤维路径,例如树内部的节孔。由于关节采用仿生纤维设计,可以获得较高的连接强度。在基于DIN EN ISO 14273的剪切试验中,用不锈钢和正交异性增强复合材料进行了与盲铆接相比接缝强度的增加。采用新型CMT销连接技术连接的试件强度均高于采用盲钉连接的试件。用两排或三排销钉连接的试件比用两排盲钉连接的试件具有更高的强度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advanced Welding Technology for Highly Stressable Multi-Material Designs with Fiber-Reinforced Plastics and Metals
Organic sheets made out of fiber-reinforced thermoplastics are able to make a crucial contribution to increase the lightweight potential of a design. They show high specific strength- and stiffness properties, good damping characteristics and recycling capabilities, while being able to show a higher energy absorption capacity than comparable metal constructions. Nowadays, multi-material designs are an established way in the automotive industry to combine the benefits of metal and fiber-reinforced plastics. Currently used technologies for the joining of organic sheets and metals in large-scale production are mechanical joining technologies and adhesive technologies. Both techniques require large overlapping areas that are not required in the design of the part. Additionally, mechanical joining is usually combined with “fiber-destroying” pre-drilling and punching processes. This will disturb the force flux at the joining location by causing unwanted fiber- and inter-fiber failure and inducing critical notch stresses. Therefore, the multi-material design with fiber-reinforced thermoplastics and metals needs optimized joining techniques that don’t interrupt the force flux, so that higher loads can be induced and the full benefit of the FRP material can be used. This article focuses on the characterization of a new joining technology, based on the Cold Metal Transfer (CMT) welding process that allows joining of organic sheets and metals in a load path optimized way, with short cycle times. This is achieved by redirecting the fibers around the joining area by the insertion of a thin metal pin. The path of the fibers will be similar to paths of fibers inside structures found in nature, e.g. a knothole inside of a tree. As a result of the bionic fiber design of the joint, high joining strengths can be achieved. The increase of the joint strength compared to blind riveting was performed and proven with stainless steel and orthotropic reinforced composites in shear-tests based on the DIN EN ISO 14273. Every specimen joined with the new CMT Pin joining technology showed a higher strength than specimens joined with one blind rivet. Specimens joined with two or three pin rows show a higher strength than specimens joined with two blind rivets.
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