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Research of the Load Bearing Capacity of Shape-Optimized Metal Inserts Embedded in CFRP under Different Types of Stresses

机译:不同类型应力下CFRP中嵌入式优化金属插入物的承载力的研究

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An efficient implementation of lightweight design is the use of continuous carbon fiber reinforced plastics (CFRP) due to their outstanding specific mechanical properties. Embedded metal elements, so-called inserts, can be used to join metal-based attachments to structural CFRP parts in the context of multi-material design. They differ from other mechanical fasteners and have distinctive benefits. In particular, drilling of the components to be joined can be avoided and, depending on the preforming, fiber continuity can be maintained using such elements. Thus, no local bearing stress is anticipated. Previous work published by the authors [1] dealt with a systematic research of the influence of different types of stresses on the load bearing capacity of welded inserts. This contribution aims at the investigation of the performance of shape-optimized inserts under the same types of loading to compare with the results of the welded inserts serving as a reference. For that purpose, the respective load bearing capacities were evaluated after preinduced damages from impact tests and thermal-cycling. In addition, dynamic high-speed tensile tests (pull-out) were conducted under different loading velocities. It is shown that the load bearing capacities increased up to 19% for high velocities (250 mm/s) in comparison to quasi-static loading conditions (1.5mm/min) showing an obvious strain rate dependency of the CFRP. Quasi-static residual strength measurements under tensile loading identified the influence of the respective preinduced damages of the insert. Influence of the thermal loading condition was evaluated by placing the specimens in a climate chamber and exposing it to various numbers of temperature cycles from -40 °C to +80 °C with a duration time of 1.5 hours each. Here, it turned out that already 10 temperature cycles decreased the quasi-static load bearing capacity up to 31%. According to DIN EN 6038 the specimens were loaded with different impact energies and the residual strength were measured carrying out pull-out tests. It could be shown that the damage tolerance is significantly lower for the shape-optimized insert due to failure-critical delamination. The optimized insert also endured lower impact energies and the influence on the performance was higher.
机译:轻质设计的有效实施是由于其出色的特定机械性能,使用连续碳纤维增强塑料(CFRP)。嵌入式金属元件,所谓的插入物,可用于将金属基附件加入到多材料设计的背景下的结构CFRP部件。它们与其他机械紧固件不同,具有独特的益处。特别地,可以避免待连接的部件的钻孔,并且根据预成形,可以使用这种元件保持光纤连续性。因此,预计不会预期局部轴承应力。作者刊登的以前的工作[1]处理对不同类型应力对焊接插入件承载能力的影响的系统研究。此贡献旨在调查在相同类型的装载下的形状优化插入件的性能,以与用作参考的焊接插入件的结果进行比较。为此目的,在从冲击试验和热循环的损坏后评估各自的承载能力。此外,在不同的加载速度下进行动态高速拉伸试验(拉出)。结果表明,与准静态加载条件(1.5mm / min)相比,负载承载能力增加高达19%的高速度(250 mm / s),显示出CFRP的明显应变速率依赖性。在拉伸载荷下的准静态残余强度测量确定了各个预先损伤的插入物的影响。通过将样品放置在气候室中并将其暴露于-40℃至+ 80℃的各种数量的温度循环来评价热负载条件的影响,每次为1.5小时。在此,它证明已经10个温度循环降低了准静态承载能力,高达31%。根据DIN EN 6038,用不同的冲击能量装载样品,测量残余强度进行拉出试验。可以表明,由于故障关键分层,形状优化的插入件的损坏容差显着降低。优化的插入件也持续了较低的冲击能量,并且对性能的影响更高。

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