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iFLASH系统的楼层振动实验与适用性测试

Floor Vibration Experiment and Serviceability Test of iFLASH System.

作者信息

Lee Jong Ho, Park Min Jae, Yoon Sung Won

机构信息

Department of Architecture, Seoul National University of Science & Technology, 232, Gongneung-ro, Nowon-gu, Seoul 01811, Korea.

Department of Civil, Environmental and Architectural Engineering, Korea University, Seoul 02841, Korea.

出版信息

Materials (Basel). 2020 Dec 17;13(24):5760. doi: 10.3390/ma13245760.

Abstract

Studies on novel composite structures that can decrease floor height and improve constructional efficiency in order to increase spatial efficiency and lease revenue have been actively conducted. An innovative fire-proof, lightweight, absorbed, shallow, and hybrid (iFLASH) system was developed to solve construction site issues, such as improving constructability, reducing construction time, and attaining structural efficiency by reducing the weight of the building structure. This system can shorten the construction duration and decrease the floor height and structural weight, owing to features such as a low thickness and light weight. However, studies on the vibration characteristics of this new floor system have not been performed yet. As the general thickness of the iFLASH system ranges from 25 to 30 mm, it must have a sufficient floor vibration performance in order to be utilized. To evaluate the floor vibration performance of the iFLASH system, an experiment was performed in two buildings where the system was applied. This paper presents the results of the dynamic characteristics and serviceability testing as basic data for the vibration characteristics of the iFLASH system.

摘要

为了提高空间效率和租赁收入,人们积极开展了关于新型复合结构的研究,这种结构可以降低楼层高度并提高施工效率。为了解决施工现场的问题,如提高可施工性、减少施工时间以及通过减轻建筑结构重量来实现结构效率,开发了一种创新的防火、轻质、吸能、浅型和混合型(iFLASH)系统。由于具有厚度低、重量轻等特点,该系统可以缩短施工工期,降低楼层高度和结构重量。然而,尚未对这种新型楼板系统的振动特性进行研究。由于iFLASH系统的一般厚度在25至30毫米之间,为了能够使用,它必须具有足够的楼板振动性能。为了评估iFLASH系统的楼板振动性能,在两座应用了该系统的建筑物中进行了实验。本文介绍了动态特性和适用性测试的结果,作为iFLASH系统振动特性的基础数据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c735/7766618/51be0f82ba17/materials-13-05760-g001.jpg

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