Key Laboratory for Advanced Materials Processing Technology, Ministry of Education, School of Materials Science and Engineering, Tsinghua University, Beijing 100084, China.
Key Laboratory for Advanced Materials Processing Technology, Ministry of Education, School of Materials Science and Engineering, Tsinghua University, Beijing 100084, China.
Ultrasonics. 2015 Mar;57:11-7. doi: 10.1016/j.ultras.2014.10.004. Epub 2014 Nov 1.
The effect of ultrasonic treatment of the melts is mainly ultrasonic streaming and cavitation. In this paper, the ultrasonic streaming in water, aluminum and steel melts was numerically simulated and compared. And the simulated results of streaming in water were validated by experimental results. In the experiment, the ultrasonic booster was immersed vertically into water, the ultrasonic streaming phenomenon was observed by high-speed CCD (Charge-coupled Device) system, then the streaming velocity and streamlines were obtained. The cavitation area and threshold in aluminum and steel melts were compared. The results show that the effective streaming and cavitation area in steel melt is smaller than that in aluminum melt, and far smaller than that in water. A symmetrical vortex forms both in water and aluminum melt by the drive of downward ultrasonic streaming caused by the booster tip. However, in steel melt, a double-vortex structure, including a vortex in the upper part and a vortex with reverse cycling in the lower part appears in the flow field. As a result, inclusions and air bubbles may be trapped in steel melt. The density and viscosity of the fluids are the main factors influencing ultrasonic streaming and cavitation. The results provide references for the application of ultrasonic treatment in metal melts.
熔体超声处理的作用主要是超声空化和超声流。本文对水、铝和钢熔体中的超声流进行了数值模拟和比较,并通过实验结果对水的流场模拟结果进行了验证。在实验中,将超声振荡器垂直浸入水中,通过高速 CCD(电荷耦合器件)系统观察超声流现象,然后获得流场速度和流线。比较了铝和钢熔体中的空化区域和空化阈值。结果表明,钢熔体中的有效超声流和空化区域小于铝熔体,远小于水。在水和铝熔体中,由于振荡器尖端引起的向下超声流的驱动,形成了对称的旋涡。然而,在钢熔体中,流场中出现了双涡结构,包括上部的涡和下部反向循环的涡。因此,夹杂物和气泡可能被困在钢熔体中。流体的密度和粘度是影响超声流和空化的主要因素。研究结果为超声处理在金属熔体中的应用提供了参考。