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Friction performance assessment of Non-Asbestos Organic (NAO) composite-to-steel interface and Polytetrafluoroethylene (PTFE) composite-to-steel interface: Experimental evaluation and application in seismic resistant structures

机译:非石棉有机(NAO)钢-钢界面和聚四氟乙烯(PTFE)钢-钢界面的摩擦性能评估:在抗震结构中的实验评估和应用

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This paper presents an experimental research program for assessing the mechanical performance of two types of friction interfaces: i.e. Non-Asbestos Organic (NAO) friction composite against steel and Polytetrafluoroethylene (PTFE) composite against steel. A shear device was designed for testing the friction interface, and the compressive force on the interface was realized by a pretension high strength bolt. Cyclic loading tests were conducted for evaluating the friction performance of the interfaces, and loading frequency, loading amplitude, and magnitude of compressive force on the interface were considered as main influencing parameters. Experimental results showed that with the same magnitude of compressive force on the interface, the sliding shear force of the PTFE-steel interface was much smaller than that of the NAO-steel interface. An average friction coefficient of 0.12 was obtained for the NAO-steel interface, while an average friction coefficient of 0.025 was obtained for the PTFE-steel interface. Both friction interfaces exhibited stable and predictable behavior. The interfaces were further utilized in a slip friction damping device developed for upgrading the seismic performance of a novel timber-steel hybrid seismic resistant structure, and analytical results revealed that both structural damage and unrecoverable deformation of the structure were significantly decreased with the application of the damping devices. (C) 2018 Elsevier Ltd. All rights reserved.
机译:本文提供了一个实验研究程序,用于评估两种类型的摩擦界面的机械性能:即非石棉有机(NAO)摩擦复合材料对钢的摩擦力和聚四氟乙烯(PTFE)复合材料对钢的摩擦力。设计了用于测试摩擦界面的剪切装置,并通过预拉伸高强度螺栓实现了界面上的压缩力。进行循环载荷测试以评估界面的摩擦性能,并且界面上的载荷频率,载荷幅度和压缩力的大小被视为主要影响参数。实验结果表明,在界面上施加相同大小的压缩力时,PTFE-钢界面的滑动剪切力远小于NAO-钢界面的滑动剪切力。 NAO-钢界面的平均摩擦系数为0.12,而PTFE-钢界面的平均摩擦系数为0.025。两个摩擦界面均表现出稳定和可预测的行为。该界面还用于开发用于提高新型木钢混合抗震结构的抗震性能的滑动摩擦阻尼装置中,分析结果表明,随着应用,该结构的结构损伤和不可恢复的变形都大大降低了。阻尼装置。 (C)2018 Elsevier Ltd.保留所有权利。

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