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首页> 外文期刊>Journal of Composites for Construction >Repair of Cracked Aluminum Overhead Sign Structures with Glass Fiber Reinforced Polymer Composites
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Repair of Cracked Aluminum Overhead Sign Structures with Glass Fiber Reinforced Polymer Composites

机译:玻璃纤维增​​强聚合物复合材料修复破裂的铝架空标志结构

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Transportation departments have been using aluminum overhead sign structures since the 1950s. It is well documented that cracks develop in the welds between diagonal and chord members due to fatigue stresses from wind-induced vibration of the slender members. The cracks propagate to complete failure of the members, which can cause collapse of the truss and inflict injuries. The original design of overhead sign structures did not consider fatigue as a limit state. In addition, field welding of aluminum structures for any possible repairs is prohibited. A repair method for the cracked aluminum welded connections between diagonals and chord members using glass fiber reinforced polymer composites (GFRPs) is proposed. The static load carrying capacity of the welded connection, and the cracked connection repaired with GFRP composites are established. The paper describes the surface preparation of the aluminum tubular members, and the architecture and application sequence of the GFRP composite to retrofit the connection. Experimental results are presented from static tests of welded aluminum connections, welded aluminum connections retroftted with GFRP composites, and new aluminum connections that depend only on GFRP composite elements for their strength. The results from monotonic static tests carried out on cracked welded specimens from actual sign structures show that the retrofitted connection with GFRP reinforcement achieved 1. 17 to 1.25 times the capacity of the welded aluminum connection without any visible cracks. This result, and the minimal traffic disruption anticipated in the actual field application, makes this retrofit method a good candidate for implementation.
机译:自1950年代以来,运输部门一直在使用铝制高架标牌结构。大量文献证明,由于细长构件的风致振动引起的疲劳应力,在对角线和弦构件之间的焊缝中会产生裂纹。裂纹蔓延到构件完全失效,这可能导致桁架坍塌并造成伤害。高架标牌结构的原始设计并未将疲劳视为极限状态。此外,禁止对铝结构进行现场焊接以进行任何可能的维修。提出了一种使用玻璃纤维增​​强的聚合物复合材料(GFRP)修复对角线和弦杆之间的裂纹铝焊接连接的方法。建立了焊接连接的静态承载能力,以及用GFRP复合材料修复的裂纹连接。本文介绍了铝制管状构件的表面处理,以及玻璃纤维增​​强复合材料用于改型连接的结构和应用顺序。通过对焊接铝连接件,用GFRP复合材料加固的焊接铝连接件以及仅依赖GFRP复合材料元件的强度的新型铝连接件的静态测试,给出了实验结果。对从实际标志结构开裂的焊接试样进行单调静态测试的结果表明,采用GFRP加固的改型连接达到了焊接铝连接能力的1. 17至1.25倍,而没有任何可见的裂纹。这一结果以及实际现场应用中预期的最小流量中断,使这种改造方法成为实施的理想选择。

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