Testing and modelling of the damping effects for fluid-based inerters

Xiaofu Liu, Jason Zheng Jiang, Branislav Titurus, Andrew J.L. Harrison, Daniel McBryde

Research output: Contribution to journalConference articlepeer-review

Abstract

The inerter is a dynamic physical dual of a capacitor via the force-current analogy, having the property that the force across the terminals is ideally proportional to their relative acceleration. Fluid-based forms of inerter have physical advantages of improved durability, inherent damping and simplicity of design in comparison to mechanical flywheel-based forms. Apart from the inertial effect, linear and nonlinear damping also occur in the helical-tube fluid inerter arrangement. In previous studies, discrepancies between experimental and theoretical results have been found. These are believed to arise from imperfect modelling of damping and pressure losses within the helical tube. To model these effects more accurately, this paper introduces a new experimental set-up. Pressure gauges are used to measure the pressure drop across the helical channel during constant velocity tests. This approach delivers improved agreement between experimental and theoretical results. The sources of minor remaining discrepancies are further analysed. Furthermore, a new fluid-based inerter design is first proposed with different damping characteristics, the theoretical damping comparison is also presented between these two designs.

Original languageEnglish
Pages (from-to)435-440
Number of pages6
JournalProcedia Engineering
Volume199
DOIs
Publication statusPublished - 2017
Externally publishedYes
Event10th International Conference on Structural Dynamics, EURODYN 2017 - Rome, Italy
Duration: 10 Sep 201713 Sep 2017

Keywords

  • damping
  • fluid
  • helical-tube
  • inerter
  • meander-tube
  • pressure gauge

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