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Carbon Fiber Reinforced Polymer Cables: Why? Why Not? What If

机译:碳纤维增强聚合物电缆:为什么?为什么不?如果

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摘要

Cables of suspended structures are suffering due to increased corrosion and fatigue loading. Since 1980, EMPA and BBR Ltd. in Switzerland have been developing carbon fiber-reinforced polymer (CFRP) parallel wire bundles as cables for suspended structures. The excellent properties of those bundles include corrosion resistance, very high specific strength and stiffness, superior equivalent moduli and outstanding fatigue behavior. An anchoring scheme produced with gradient materials based upon ceramics and epoxy is described. For the first time, large CFRP cables were applied in 1996 on the vehicular cable-stayed Stork Bridge with 124 m span in Winterthur, Switzerland. The performance of these cables and later applications was and still is monitored with sophisticated fiber-optical systems. Up to date, these results are fully matching the high expectations. Under the assumptions that (1) the behavior of the pilot applications of CFRP cables described in this paper will be further on fully satisfactory, (2) active systems for distributed mitigation of wind-induced vibrations are going to be successful and (3) there is a need for extremely long-span bridges to cross straits like that of Bab el Mandeb, Messina, Taiwan or Gibraltar, why should the next generation of structural engineers not use CFRP cables for such extremely long-span bridges? This would open spectacular new opportunities.
机译:悬挂结构的电缆由于腐蚀和疲劳载荷的增加而受到影响。自1980年以来,瑞士的EMPA和BBR Ltd.一直在开发碳纤维增强聚合物(CFRP)平行线束,作为悬挂结构的电缆。这些束的优异性能包括耐腐蚀性,很高的比强度和刚度,优异的等效模量和出色的疲劳性能。描述了由基于陶瓷和环氧树脂的梯度材料生产的锚固方案。大型CFRP电缆于1996年首次在瑞士温特图尔的跨距124 m的斜拉式鹳桥上应用。这些电缆和以后的应用程序的性能曾经并且仍通过复杂的光纤系统进行监控。迄今为止,这些结果完全符合人们的期望。在以下假设的前提下:(1)本文所述的CFRP电缆试验性应用的性能将进一步令人满意,(2)分布式缓解风致振动的主动系统将获得成功,(3)是否需要超长跨度的桥梁来跨过像Bab el Mandeb,墨西拿,台湾或直布罗陀这样的海峡,为什么下一代结构工程师不应该将CFRP电缆用于这种超长跨度的桥梁?这将带来壮观的新机会。

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