Ultrasonic Vibration in Melt Processing: Dynamic Mechanisms, Structural Control, and Industrial Applications

Deadline for Manuscript Submissions:   December 31, 2025

 

 

Special Issue Editors

 

Dr. Zhengwei Li Website  E-Mail: lizhengwei@hit.edu.cn
Harbin Institute of Technology, China
Interests: Sound/vibration on material processing

 

 

 

Special Issue Information

Dear Colleagues,

Ultrasonic vibration (20–40 kHz) is a dynamic energy field that induces cavitation, acoustic streaming, and resonance effects in metallic melts, offering a sustainable approach to manipulate microstructures and mechanical performance. Recent advances demonstrate its critical role in vibration-assisted defect suppression (e.g., degassing, pore elimination) and dynamic property enhancement (e.g., fatigue resistance, tensile strength). These achievements align with the growing industrial demand for high-reliability materials in aerospace, energy, and microelectronics.

 

This Special Issue seeks cutting-edge research on ultrasonic vibration mechanisms and their engineering applications in melt processing. We welcome contributions that bridge analytical modeling, in-situ measurement, and industrial validation, with emphasis on the following topics:

 

Dynamic Interactions

Ultrasonic cavitation bubble collapse kinetics and sound pressure field characterizatio

Real-time monitoring of vibration-induced melt flow and grain refinement

Vibration-Enabled Process Innovation

High-power ultrasonic equipment design for large-scale casting/brazing

Ultrasonic soldering of microelectronic joints with vibration-driven void suppression

Structural Reliability

Correlation between ultrasonic parameters and dynamic mechanical properties (fatigue, fracture toughness)

Vibration-treated materials in extreme loading environments (e.g., cyclic thermal stress)

Cross-Disciplinary Synergy

Numerical simulation of multi-physics coupling (vibration + thermal/fluid fields)

AI-driven optimization of ultrasonic processing parameters

 

We encourage submissions from academia and industry that reveal fundamental vibration principles or demonstrate translational impacts in manufacturing. Interdisciplinary studies linking acoustics, mechanics, and materials science are particularly valued.

 

 

Keywords

Ultrasonic vibration

cavitation dynamics

sound pressure measurement

dynamic material testing

vibration-assisted manufacturing

structural reliability

melt processing

industrial acoustics