Evaluation of vibration properties of an 18-story mass timber–concrete hybrid building by on-site vibration tests

被引:0
|
作者
Yuji Miyazu
Cristiano Loss
机构
[1] Tokyo University of Science,Department of Architecture
[2] The University of British Columbia,Sustainable Engineered Structural Solutions Laboratory, Department of Wood Science
关键词
Tall timber buildings; Hybrid timber systems; Cross-laminated timber diaphragms; Lateral vibration properties; Operational modal analysis; Finite-element modeling;
D O I
暂无
中图分类号
学科分类号
摘要
Timber–concrete hybrid structural systems are a practical option to provide tall mass timber buildings with a lateral load-resisting system. This paper discusses the dynamic behavior of an 18-story timber–concrete hybrid building based on the vibration properties evaluated by on-site vibration tests. First, microtremor measurements and human-powered excitation tests were carried out and the obtained vibration data were analyzed using a stochastic subspace identification method to derive natural frequencies, damping ratios, and mode shapes. Then, a finite-element (FE) model was developed based on detailed structural design information, and its eigenvalues and eigenvectors were compared with the test results. The vibration test results showed various mode shapes, including in-plane deformation of the floor diaphragm composed of cross-laminated timber (CLT) panels. The damping ratios in all the modes were scattered between 1 and 3%, and no frequency dependency was observed. The modal properties of the FE model agreed well with the test results by considering the additional stiffness of non-structural components. In order to simulate the in-plane deformation of the CLT floor diaphragm, detailed modeling of the connection between each CLT floor panel and the connection between CLT floor panels and concrete cores is recommended. The findings provide practitioners with an insight into dynamic properties and FE modeling methods of tall timber–concrete hybrid buildings.
引用
收藏
页码:909 / 929
页数:20
相关论文
共 18 条
  • [1] Evaluation of vibration properties of an 18-story mass timber-concrete hybrid building by on-site vibration tests
    Miyazu, Yuji
    Loss, Cristiano
    [J]. JOURNAL OF CIVIL STRUCTURAL HEALTH MONITORING, 2024, 14 (04) : 909 - 929
  • [2] Lateral vibration data of an 18-story timber-concrete hybrid building obtained by on-site vibration tests
    Miyazu, Yuji
    Loss, Cristiano
    [J]. DATA IN BRIEF, 2023, 50
  • [3] An Ambient Vibration Test of an R/C Wall of an 18-Story Wood Building at the UBC Campus
    Kaya, Yavuz
    Ventura, Carlos E.
    Taale, Alireza
    [J]. DYNAMICS OF CIVIL STRUCTURES, VOL 2, 2017, : 315 - 320
  • [4] Dynamic Characterization and Vibration Analysis of a Four-Story Mass Timber Building
    Mugabo, Ignace
    Barbosa, Andre R.
    Riggio, Mariapaola
    [J]. FRONTIERS IN BUILT ENVIRONMENT, 2019, 5
  • [5] Ambient Vibration Measurement Data of a Four-Story Mass Timber Building
    Mugabo, Ignace
    Barbosa, Andre R.
    Riggio, Mariapaola
    Batti, James
    [J]. FRONTIERS IN BUILT ENVIRONMENT, 2019, 5
  • [6] FORCED AND AMBIENT VIBRATION TESTS OF A SIX-STORY PRECAST CONCRETE BUILDING
    Celik, O. C.
    [J]. 7TH IOMAC: INTERNATIONAL OPERATIONAL MODAL ANALYSIS CONFERENCE, 2017, : 238 - 241
  • [7] Forced-Vibration Tests of a Reinforced Concrete Four-Story Building Structure
    De-la-Colina, Jaime
    Valdes-Gonzalez, Jesus
    [J]. JOURNAL OF STRUCTURAL ENGINEERING, 2021, 147 (07)
  • [8] VIBRATION AND SOIL-STRUCTURE INTERACTION TESTS OF A 9-STORY REINFORCED CONCRETE BUILDING
    JENNINGS, PC
    KUROIWA, JH
    [J]. BULLETIN OF THE SEISMOLOGICAL SOCIETY OF AMERICA, 1968, 58 (03) : 891 - &
  • [9] Analysis of Seismic Responses and Vibration Serviceability in a High-Rise Timber-Concrete Hybrid Building
    Zong, Chao
    Zhai, Jiajun
    Sun, Xiaoluan
    Liu, Xingxing
    Cheng, Xiaowu
    Wang, Shenshan
    [J]. BUILDINGS, 2024, 14 (09)
  • [10] Vibration Performance and Stiffness Properties of Mass Timber Panel-Concrete Composite Floors with Notched Connections
    Zhang, Lei
    Zhou, Jianhui
    Chui, Ying Hei
    Li, Geng
    [J]. JOURNAL OF STRUCTURAL ENGINEERING, 2022, 148 (09)