Numerical Analysis of Acoustic-vibration Coupling Mechanism of Structure

 

Submission Deadline

December 31 2026

 

Guest Editor(s)

Dr. Cong Gao  Website  E-Mail: conggao@hrbeu.edu.cn

Harbin Engineering University, China.

 

Dr. Haichao Li  Website  E-Mail: lihaichao@hrbeu.edu.cn

Harbin Engineering University, China.

 

Prof. Dr. Fuzhen Pang  Website  E-Mail: pangfuzhen@hrbeu.edu.cn

Harbin Engineering University, China.

 

Dr. Yuan Du E-Mail: duyuan@mail.sysu.edu.cn

Sun Yat Sen University, China.

 

Special Issue Information

In recent years, the global focus on human health and environmental sustainability has led to the introduction of increasingly strict regulations aimed at reducing the levels of vibration and acoustic radiation to which people and their working environments are exposed. These regulations reflect the growing awareness that excessive noise and vibration can have significant adverse effects on human well-being, including hearing impairment, psychological stress, and even long-term health issues. In industrial settings, high levels of vibration and acoustic radiation can also lead to equipment failure, reduced operational efficiency, and compromised safety standards. As a result, the study of the acoustic-vibration coupling mechanism has gained substantial importance. This field of research explores how vibrations and acoustic waves interact, propagate, and influence each other, providing essential insights for the development of effective noise and vibration control strategies.

The current research status of the acoustic-vibration coupling mechanism reflects significant advancements and ongoing efforts to address complex interactions between acoustic fields and structural vibrations. The current research on acoustic-vibration coupling mechanisms is characterized by a combination of theoretical, numerical, and experimental approaches, with a focus on practical applications and advanced control techniques. These efforts are essential for addressing the challenges posed by stringent regulations on noise and vibration levels in modern engineering and environmental contexts.

In this context, this special issue is dedicated to presenting multidisciplinary approaches and recent advances in the field of acoustic-vibration coupling mechanism, providing a platform for researchers and practitioners to share their insights and innovations in this rapidly evolving field. Practical applications in various fields will also be discussed in this special issue. This journal aims to provide a comprehensive overview of cutting-edge research and practical applications, covering a wide range of topics, including but not limited to the following topics:

Acoustic-Vibration Coupling Mechanism
Vibration Caused by Noise Radiation
Low Frequency Vibration and Noise Control
Theoretical, Numerical, and Experimental Studies on Vibration and Noise
Dynamic Characteristics of Vehicles, Ships, Aircraft Landing, and Mechanical Equipment
Fluid-Structure Interaction Effect in Engineering
Dynamic Characteristics of Bubbles and Gas Nuclei
Detection, Measurement, and Analysis Methods of Vibration and Acoustic Radiation
Applications of Smart Materials and Structures in Vibration and Noise Control
Multi-physics Coupling Modeling and Simulation
Design of New Damping Materials and Damping Devices
Application of Active Control and Adaptive Technology in Vibration Suppression

 

Keywords

structural vibration; sound; acoustic-vibration coupling; experiment; vibration control