物理
联轴节(管道)
机械
声学
计算物理学
机械工程
工程类
作者
Zeying Wang,Guo Lin,Tu Hu,Yunan Gao,Shuo Han,Jiayu Zhu,Shixing Wang,Shiwei Li,Libo Zhang
出处
期刊:Physics of Fluids
[American Institute of Physics]
日期:2025-02-01
卷期号:37 (2)
被引量:7
摘要
This study explores the innovative use of ultrasonic technology in process intensification using COMSOL multi-physics simulation. It investigates the effects of ultrasonic parameters like power (60–320 W), frequency (20–40 kHz), and horn diameter (8–30 mm) on sound-field distribution, fluid dynamics, and cavitation. The optimal frequency for sound-field uniformity and cavitation was found to be 28 kHz, with a maximum flow velocity of 0.352 mm/s. Increasing power from 60 to 320 W raised the maximum sound pressure from 1.05 × 105 to 2.43 × 106 Pa and cavitation area volume fraction from 2% to 17%. The horn diameter significantly influences sound wave diffusion and energy distribution, with larger diameters providing a higher energy density and covering larger areas with increased flow rates. Using multiple ultrasound sources enhances the acoustic and flow fields over a larger area. The simulation model's feasibility was confirmed through ultrasonic-enhanced ZnO crushing experiments with varying horn diameters. This research provides a scientific basis for optimizing ultrasonic process intensification, advancing theories on ultrasound-enhanced mass transfer and chemical reaction efficiency, and holds potential for improving the greening and efficiency of hydrometallurgical technologies.
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