School of Physics and Information Technology, Shaanxi Normal University, Xi'an 710062, China.
School of Physics and Information Technology, Shaanxi Normal University, Xi'an 710062, China.
Ultrason Sonochem. 2021 Aug;76:105626. doi: 10.1016/j.ultsonch.2021.105626. Epub 2021 Jun 9.
In this paper, the effects of ultrasonic probe position, vessel shape, and ultrasonic input power on the sound pressure distribution in the reactor were investigated by solving the Helmholtz equation using COMSOL Multiphysis software. Three different types of glass containers were used in the study, which are beaker, Erlenmeyer flask, and round bottom flask. The maximum value of sound pressure in the three containers will gradually increase when the distance between the probe and the bottom of the container decreases. When the distance decreases, the area of the high acoustic pressure region in the round bottom flask does not change significantly, while the area of the high acoustic pressure region in the beaker and Erlenmeyer flask increases sharply, which means that the use of the round bottom flask can reduce the influence of the dead zone on the preparation of nanomaterials. In addition, the change in power increases the value of the peak negative acoustic pressure in the vessel, enhancing the response efficiency of ultrasonic cavitation.
本文通过使用 COMSOL Multiphysics 软件求解亥姆霍兹方程,研究了超声探头位置、容器形状和超声输入功率对反应器中声压分布的影响。研究中使用了三种不同类型的玻璃容器,即烧杯、平底烧瓶和圆底烧瓶。在这三种容器中,当探头与容器底部的距离减小时,声压的最大值会逐渐增加。当距离减小时,圆底烧瓶中高声压区域的面积变化不大,而烧杯和平底烧瓶中高声压区域的面积急剧增加,这意味着使用圆底烧瓶可以减少死区对纳米材料制备的影响。此外,功率的变化会增加容器中峰值负声压的值,从而提高超声空化的响应效率。