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Effect of the cavitation generation unit structure on the performance of an advanced hydrodynamic cavitation reactor for process intensifications

Authors
Sun, XunYou, WeibinXuan, XiaoxuJi, LiXu, XingtaoWang, GuichaoZhao, ShanBoczkaj, GrzegorzYoon, Joon YongChen, Songying
Issue Date
May-2021
Publisher
ELSEVIER SCIENCE SA
Keywords
Sonochemistry; Hydrodynamic cavitation reactor; Numerical simulation; Geomerical structure; Cavitation generation efficiency; Process intensification
Citation
CHEMICAL ENGINEERING JOURNAL, v.412, pp.1 - 15
Indexed
SCIE
SCOPUS
Journal Title
CHEMICAL ENGINEERING JOURNAL
Volume
412
Start Page
1
End Page
15
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/411
DOI
10.1016/j.cej.2021.128600
ISSN
1385-8947
Abstract
The advanced rotational hydrodynamic cavitation reactors (ARHCRs) that appeared recently have shown obvious advantages compared with conventional devices in various process intensifications. In ARHCRs, the cavitation generation unit (CGU) located on the rotor and stator basically determines their performance. For the first time, the present study investigated the effect of the CGU structure on the performance of a representative ARHCR by utilizing computational fluid dynamics. The amount of generated cavitation and required torque of the axis for various shapes, diameters, interaction distances, heights, and inclination angles of the CGU were analyzed. The results indicate that the interaction-type ARHCR (cavitation is generated by stator-rotor interaction) was far superior to the non-interaction type one. In addition, the hemisphere-shaped CGU demonstrates the best performance compared with that with cone-cylinder, cone, and cylinder shapes. Moreover, by evaluating the effects of various geometrical factors, the hemisphere-shaped CGU with a diameter of 12 mm, an interaction distance of 1 mm, a height of 1 mm, and an inclination angle of 10? achieved the highest performance. The reasons leading to different performance were elaborated in accordance with the flow and pressure field distributions, as well as the generated cavitation patterns. The findings of this work can strongly support the fundamental understanding, design, and application of ARHCRs for process intensifications.
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YOON, JOON YONG
ERICA 공학대학 (DEPARTMENT OF MECHANICAL ENGINEERING)
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