Sound Transmission Properties of Composite Layered Structures in the Lower Frequency Rangee

Abstract

This study aims to predict the sound transmission properties of composite layered plates structures in the lower frequency range. In present paper a novel procedure to derive the sound isolation parameters for layered plates is under discussion. This paper presents a new stress analysis method for the accurate determination of the detailed stress distributions in laminated plates subjected to cylindrical bending. Some approximate methods for the stress state predictions for laminated plates are presented here. The theoretical model described here incorporates deformations of each sheet of the lamina, which account for the effects of transverse shear deformation, transverse normal strain-stress and nonlinear variation of displacements with respect to the thickness coordinate. The main advantage of the present method is that it does not rely on strong assumptions about the model of the plate. Comparison with the Timoshenko beam theory is systematically made for analytical and approximation variants. The geometrical and mechanical parameters dependent frequency response functions and damping are presented for an arbitrary layered beam. The effective stiffness constants of equivalent to lamina Timoshenko beam (TB) and their damping properties have been determined by using a procedure based on multi-level numerical schemes and eigenfrequencies comparison. Numerical evaluations obtained for the vibration of the equivalent TB have been used to determine the sound transmission properties of laminated composite beams with the system of dynamic vibration absorbers (DVA’s). The optimization of beams – DVA’s system sound absorption properties is performed in the low frequency range. The results have shown that the presence of a DVA causes a decrease in the sound transmission in the low-frequency range. The extension of the present approach to various layered plates with various DVA’s systems will be performed in order to obtain optimal sound insulation.

Authors and Affiliations

Bohdan Diveyev

Keywords

Related Articles

Thermal Processing of ZR-1 %NB Tube in Oxygen- and Nitrogen Containing Gaseous Mediums

Zirconium alloys have unique properties (physical, mechanical, radiation) is therefore are an essential structural material for nuclear energy. A feature of these alloys is high affinity to the interstitial elements (O,...

Innovation Technologies in Training Specialists in Engineering Materials Science

The aim of educational program TEMPUS is the integration of Eastern countries in the Bologna process. Participating of Lviv Polytechnic National University in project “Modernization of two cycles (MA, BA) of competence-b...

Applied Model of Assessment of Intensity of the Stressed Deformed State of Pipelines by Evaluation of Magnetic Anisotropy of Coercive Forces. Part 1

The problem of applied diagnostics, statistically rigorous by the proposed model analogue, running stressed-deformed state of the main (trunk) shell is studied by the method of magnetic coercimetria. The relationship bet...

The Phase Difference between Components of Elliptical Oscillations of Vibratory Conveyor Providing Maximum Conveying Velocity

The piece goods conveying by the vibratory conveyor with elliptical oscillations is considered. Elliptical oscillations of the conveyor track are realized when conveyor has independent drives of oscillations in the direc...

Impact and Particle Buffered Vibration Absorbers Optimization and Design

Passive, broadband targeted energy transfer refers to the one-way directed transfer of energy from a primary subsystem to a nonlinear attachment; this phenomenon is realized in damped, coupled, essentially nonlinear impa...

Download PDF file
  • EP ID EP183621
  • DOI -
  • Views 115
  • Downloads 0

How To Cite

Bohdan Diveyev (2016). Sound Transmission Properties of Composite Layered Structures in the Lower Frequency Rangee. Український журнал із машинобудування і матеріалознавства, 2(2), 11-32. https://europub.co.uk./articles/-A-183621