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Vibration Serviceability of Cold-Formed Steel Floor Systems

机译:冷弯型钢地板系统的振动可维修性

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摘要

Excessive vibration in response to human activities has been a significant problem associated with lightweight steel floor systems, especially cold-formed steel (CFS) floors. Methods for accurately predicting these vibrations and evaluating floor systems are not readily available to the design community. The limited amount and complexity of research on the vibration serviceability of lightweight steel floor systems have shown an urgent need for further investigation.The objective of this research is to evaluate how human walking affects the performance of lightweight steel floor systems. Four important aspects that influence floor vibration performance are investigated: rotationally restrained floor joist ends, structural properties of CFS floors, human-structure interactions, and the applicable design guidelines.The investigation was carried out using an analytical approach in which CFS floor systems are modelled by equivalent orthotropic plates, and the equivalent structural properties are determined by using the Rayleigh method. The method of finite integral transform is extended to obtain the exact series solutions of the bending and vibration of orthotropic plates with rotationally restrained edges. The analytical/numerical results are compared to the results obtained in previous methods and experimental investigations. Then, the significant effects of human occupants on the dynamic properties and responses of lightweight steel floors are examined through the proposed damped plate-oscillator model, which determines frequencies and damping ratios through analytical analysis of coupled floor-occupant systems. The predicted results are compared with previous test results. Three loading models--moving force, moving damped-oscillator, and moving and stationary damped-oscillators are subsequently proposed to obtain the dynamic responses of floor systems to human walking. The analytical results from the three models are compared with the previous test results. After that, parametric studies are conducted on the effects of step frequency, damping ratio, human-to-structure mass ratio, and walking path. The foregoing investigations provide a comprehensive understanding of the dynamic performance of lightweight steel floors affected by human walking. Finally, design guidelines are developed for lightweight CFS steel floors in residential constructions. The floors are classified into three categories based on their fundamental frequencies, i.e. low-, mid-, and high-frequency floors. For each category, the corresponding design criterion and method are proposed.It is the author's desire that the contributions made in this thesis research help engineering practitioners better understand the dynamic responses and vibrational characteristics of lightweight CFS floor systems, particularly on human-structure interactions and ultimately lead to the efficient design of lightweight CFS floor systems that resisting the vibration induced by human walking.
机译:响应人类活动而产生的过度振动已成为与轻质钢地板系统(尤其是冷弯型钢(CFS)地板)相关的重大问题。准确预测这些振动并评估地板系统的方法尚不为设计人员所用。对轻质钢地板系统振动适用性的研究数量有限且复杂,这迫切需要进一步研究。本研究的目的是评估人的行走如何影响轻质钢地板系统的性能。研究了影响地板振动性能的四个重要方面:旋转约束地板托梁端部,CFS地板的结构特性,人与结构的相互作用以及适用的设计准则。使用分析方法对CFS地板系统进行建模,从而进行了研究。通过等效正交各向异性板,并通过瑞利方法确定等效结构特性。扩展了有限积分变换的方法,以获得具有受旋转约束的正交异性板的弯曲和振动的精确级数解。将分析/数值结果与先前方法和实验研究中获得的结果进行比较。然后,通过拟议的阻尼板式振动器模型,研究了人员对轻质钢地板动力特性和响应的重大影响,该模型通过耦合地板-人员系统的分析确定了频率和阻尼比。将预测结果与以前的测试结果进行比较。随后提出了三种加载模型-移动力,移动阻尼振子以及移动和固定阻尼振子,以获取地板系统对人体行走的动态响应。将这三个模型的分析结果与先前的测试结果进行比较。之后,对步进频率,阻尼比,人与结构的质量比以及步行路径的影响进行参数研究。前述研究提供了对受人步行影响的轻质钢地板的动态性能的全面理解。最后,针对住宅建筑中轻质CFS钢地板制定了设计指南。地板根据其基本频率分为三类,即低,中和高频地板。对于每种类别,都提出了相应的设计标准和方法。作者希望本论文的研究成果能帮助工程从业人员更好地了解轻质CFS地板系统的动力响应和振动特性,尤其是在人机交互作用和结构方面。最终导致轻型CFS地板系统的高效设计,该系统能够抵抗人为行走引起的振动。

著录项

  • 作者

    Zhang Sigong;

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  • 年度 2017
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  • 正文语种 en
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