Chen Yuran, Ni Chao, Xie Guangyuan, Liu Qingxia
School of Chemical Engineering and Technology, China University of Mining and Technology, Xuzhou 221116, Jiangsu, China; Department of Chemical and Materials Engineering, University of Alberta, Edmonton, Alberta T6G 1H9, Canada.
School of Chemical Engineering and Technology, China University of Mining and Technology, Xuzhou 221116, Jiangsu, China.
Ultrason Sonochem. 2020 Jun;64:105003. doi: 10.1016/j.ultsonch.2020.105003. Epub 2020 Feb 5.
The interactions of bubbles and coal particles in 600 kHz ultrasonic standing waves (USW) field has been investigated. A high-speed camera was employed to record the phenomena occurred under the USW treatment. The formation and behaviors of cavitation bubbles were analyzed. Under the driving of these cavitation bubbles, whose size is from several microns to dozens of microns, coal particles were aggregated and then attracted by large bubbles due to the acoustic radiation forces. The results of USW-assisted flotation show a significant improvement in recoveries at 600 kHz, which indicates that the interactions of bubbles and particles in the USW field are more efficient than that in the conventional gravitational field. Furthermore, the sound pressure distribution of the USW was measured and predicted by a hydrophone. The analysis of gravity and buoyancy, primary and secondary Bjerknes forces shows that bubble-laden particles can be attracted by the rising bubbles under large acoustic forces. This study highlights the potential for USW technology to achieve efficient bubble-particle interactions in flotation.
研究了600kHz超声驻波(USW)场中气泡与煤颗粒的相互作用。使用高速摄像机记录超声驻波处理下发生的现象。分析了空化气泡的形成和行为。在这些尺寸从几微米到几十微米的空化气泡的驱动下,煤颗粒聚集,然后由于声辐射力被大气泡吸引。超声驻波辅助浮选的结果表明,在600kHz时回收率有显著提高,这表明超声驻波场中气泡与颗粒的相互作用比传统重力场中更有效。此外,用水听器测量并预测了超声驻波的声压分布。对重力、浮力、一级和二级 Bjerknes 力的分析表明,在大的声力作用下,载有气泡的颗粒会被上升的气泡吸引。这项研究突出了超声驻波技术在浮选过程中实现高效气泡-颗粒相互作用的潜力。