Mechanical behaviors and seismic performance of a novel rotary amplification friction damper (RAFD): Experimental and analytical studies

IF 4 2区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY
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Abstract

Friction dampers are widely used energy dissipators for the seismic fortification of engineering structures, due to their efficiency, reliability, and cost-effectiveness. Since the friction force is proportional to the normal load applied on the sliding interfaces for given friction materials, increasing the applied normal load is always the only approach to enhance the energy dissipation capacity of friction dampers. However, a large applied normal load may result in serious wear problems at the interfaces, which in turn affects the functionality of the damper. To address the above issue, a novel rotary amplification friction damper (RAFD) is proposed in the present study, which can realize several times amplified friction force for a given normal load due to the adopted amplification system. The conceptual design and working mechanism of the proposed RAFD are first introduced. Subsequently, a damper prototype was manufactured and experimental studies were carried out to examine the behaviors of RAFD. Then, a nonlinear mechanical model considering the gap between the gear and rack is developed based on the experimental results. Finally, an analytical model of a single-degree-of-freedom (SDOF) system equipped with RAFD is established to investigate the control performance of RAFD in reducing the structural seismic responses and evaluate the influences of various parameters including gap and earthquake types (far-field and near-field ground motions). The analytical and experimental results demonstrate that the proposed RAFD showcases superior seismic control effectiveness compared to the traditional friction damper; the presence of a gap would reduce the control effectiveness of RAFD to some extent, while earthquake types have minimal impact.
新型旋转放大摩擦阻尼器(RAFD)的机械行为和抗震性能:实验和分析研究
摩擦阻尼器因其高效、可靠和成本效益高而被广泛用于工程结构的抗震加固。对于给定的摩擦材料,摩擦力与施加在滑动界面上的法向载荷成正比,因此增加施加的法向载荷始终是提高摩擦阻尼器消能能力的唯一方法。然而,过大的外加法向载荷可能会导致界面出现严重的磨损问题,进而影响阻尼器的功能。针对上述问题,本研究提出了一种新型旋转放大摩擦阻尼器(RAFD),由于采用了放大系统,该阻尼器可在给定法向载荷下实现数倍的摩擦力放大。首先介绍了所提议的 RAFD 的概念设计和工作机制。随后,制造了阻尼器原型,并进行了实验研究,以检验 RAFD 的行为。然后,根据实验结果建立了一个考虑到齿轮和齿条之间间隙的非线性机械模型。最后,建立了配备 RAFD 的单自由度(SDOF)系统的分析模型,以研究 RAFD 在降低结构地震响应方面的控制性能,并评估包括间隙和地震类型(远场和近场地面运动)在内的各种参数的影响。分析和实验结果表明,与传统的摩擦阻尼器相比,所提出的 RAFD 具有更优越的地震控制效果;间隙的存在会在一定程度上降低 RAFD 的控制效果,而地震类型的影响则微乎其微。
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来源期刊
Journal of Constructional Steel Research
Journal of Constructional Steel Research 工程技术-工程:土木
CiteScore
7.90
自引率
19.50%
发文量
550
审稿时长
46 days
期刊介绍: The Journal of Constructional Steel Research provides an international forum for the presentation and discussion of the latest developments in structural steel research and their applications. It is aimed not only at researchers but also at those likely to be most affected by research results, i.e. designers and fabricators. Original papers of a high standard dealing with all aspects of steel research including theoretical and experimental research on elements, assemblages, connection and material properties are considered for publication.
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