Skip navigation
  • Home
  • Browse
    • Communities
      & Collections
    • Browse Items by:
    • Publication Date
    • Author
    • Title
    • Subject
    • Department
  • Sign on to:
    • My MacSphere
    • Receive email
      updates
    • Edit Profile


McMaster University Home Page
  1. MacSphere
  2. Open Access Dissertations and Theses Community
  3. Open Access Dissertations and Theses
Please use this identifier to cite or link to this item: http://hdl.handle.net/11375/28387
Title: Numerical Modelling of Tuned Liquid Dampers Using Implicit Smoothed Particle Hydrodynamics
Other Titles: Numerical Modelling of Tuned Liquid Dampers Using Implicit SPH
Authors: Awad, Bishoy Nadi
Advisor: Tait, Michael
Department: Civil Engineering
Keywords: Smoothed Particle Hydrodynamics (SPH);Tuned Liquid Dampers (TLD);Macroscopic Screen Modelling;Ergun's Equation;Different tank bottom geometries;Dual-function Tanks
Publication Date: 2023
Abstract: Tuned liquid dampers (TLDs) are one of the most common systems used to control the resonant response of buildings due to their simplicity and affordability. A TLD comprises a partially water-filled tank, which can be of different shapes, installed near the top of the building and tuned to the natural frequency of the building. Typically, the inherent damping of the TLD is improved by adding additional damping devices, such as screens. Studying the nonlinear flow of TLDs is imperative for designers in order to understand their response, and numerical modelling is essential for their effective design. Existing numerical models are typically restricted to a range of liquid depths, excitation amplitudes, tank-bottom geometries, and screen implementation configurations or require significant computational time and resources. Motivated by designer needs and existing limitations described above, this research aims to develop a computationally efficient numerical model to simulate TLDs equipped with screens without the current restrictions. The model is based on solving the free-surface flow of the TLD using the mesh-free Smoothed Particle Hydrodynamics (SPH) method. The model is complemented by a novel macroscopic screen model, which allows for larger computational resolution and a significant reduction in computational time compared to explicitly modelling the screens. Model results are validated using a wide range of experimental data, with a good agreement observed. The model is expanded to include tanks with irregular bottom geometries using an efficient particle-generating algorithm, and their response is studied under large harmonic excitation amplitudes. Finally, the model is used to investigate a realistic situation of a dual-function tank coupled to a structure to study its response under random excitation. It is found that the model efficiently captured the response of the structure under a range of excitation amplitudes using reasonable computational time and resources.
URI: http://hdl.handle.net/11375/28387
Appears in Collections:Open Access Dissertations and Theses

Files in This Item:
File Description SizeFormat 
Awad_Bishoy_Nadi_March_PhD.pdf
Access is allowed from: 2024-03-20
Thesis7.39 MBAdobe PDFView/Open
Show full item record Statistics


Items in MacSphere are protected by copyright, with all rights reserved, unless otherwise indicated.

Sherman Centre for Digital Scholarship     McMaster University Libraries
©2022 McMaster University, 1280 Main Street West, Hamilton, Ontario L8S 4L8 | 905-525-9140 | Contact Us | Terms of Use & Privacy Policy | Feedback

Report Accessibility Issue