Chu Jin Kiat, Tiong T Joyce, Chong Siewhui, Asli Umi Aisah, Yap Yeow Hong
Department of Chemical and Environmental Engineering, University of Nottingham Malaysia Campus, Jalan Broga, 43500 Semenyih, Selangor, Malaysia.
Department of Bioprocess and Polymer Engineering, Faculty of Chemical and Energy Engineering, Universiti Teknologi Malaysia, 81310 Johor Bahru, Malaysia.
Ultrason Sonochem. 2021 Dec;80:105818. doi: 10.1016/j.ultsonch.2021.105818. Epub 2021 Nov 5.
Recently, multi-frequency systems were reported to improve performance in power ultrasound applications. In line with this, digital prototyping of multi-frequency sonoreactors also started gaining interest. However, the conventional method of simulating multi-frequency acoustic pressure fields in the time-domain led to many challenges and limitations. In this study, a multi-frequency sonoreactor was characterised using frequency domain simulations in 2-D. The studied system consists of a hexagonal sonoreactor capable of operating at 28, 40 and 70 kHz. Four frequency combinations were studied: 28-40, 28-70, 40-70 and 28-40-70 kHz. A semi-empirical, modified Commander and Prosperetti model was used to describe the bubbly-liquid effects in the sonoreactor. The root-mean-squared acoustic pressure was compared against experimental validation results using sonochemiluminescence (SCL) images and was noted to show good qualitative agreement with SCL results in terms of antinode predictions. The empirical phase speed calculated from SCL measurements was found to be important to circumvent uncertainties in bubble parameter specifications which reduces error in the simulations. Additionally, simulation results also highlighted the importance of geometry in the context of optimising the standing wave magnitudes for each working frequency due to the effects of constructive and destructive interference.
最近,有报道称多频系统可提高功率超声应用的性能。与此一致的是,多频声化学反应器的数字原型设计也开始受到关注。然而,在时域中模拟多频声压场的传统方法带来了许多挑战和限制。在本研究中,使用二维频域模拟对多频声化学反应器进行了表征。所研究的系统由一个能够在28、40和70kHz运行的六边形声化学反应器组成。研究了四种频率组合:28 - 40、28 - 70、40 - 70和28 - 40 - 70kHz。使用半经验的、改进的Commander和Prosperetti模型来描述声化学反应器中的气泡液效应。将均方根声压与使用声致化学发光(SCL)图像的实验验证结果进行比较,发现在波腹预测方面与SCL结果显示出良好的定性一致性。从SCL测量计算得到的经验相速度对于规避气泡参数规格中的不确定性很重要,这减少了模拟中的误差。此外,模拟结果还突出了在考虑由于相长干涉和相消干涉的影响而优化每个工作频率的驻波幅度时几何形状的重要性。