[1] Ge M, Sun C, Zhang G, et al. Combined suppression effects on hydrodynamic cavitation performance in Venturi-type reactor for process intensification[J]. Ultrasonics Sonochemistry,2022,86:106035 doi: 10.1016/j.ultsonch.2022.106035
[2] Xu B, Liu K, Deng J, et al. Thermodynamic effect on attached cavitation and cavitation-turbulence interaction around a hydrofoil[J]. Ocean Engineering,2023,281:114764 doi: 10.1016/j.oceaneng.2023.114764
[3] Pandit A V, Sarvothaman V P, Ranade V V. Estimation of chemical and physical effects of cavitation by analysis of cavitating single bubble dynamics[J]. Ultrasonics Sonochemistry,2021,77:105677 doi: 10.1016/j.ultsonch.2021.105677
[4] Darandale G R, Jadhav M V, Warade A R, et al. Hydrodynamic cavitation a novel approach in wastewater treatment: A review[J]. Materials Today:Proceedings,2023,77:960−968 doi: 10.1016/j.matpr.2022.12.075
[5] Song Y, Hou R, Zhang W, et al. Hydrodynamic cavitation as an efficient water treatment method for various sewage: -A review[J]. Water Science and Technology,2022,86(2):302−320 doi: 10.2166/wst.2022.201
[6] Hou R, Song Y, Liu J, et al. Experimental and numerical investigation on the disinfection characteristics of a novel rotor-radial groove hydrodynamic cavitation reactor[J]. Process Safety and Environmental Protection,2023,169:260−269 doi: 10.1016/j.psep.2022.11.019
[7] Mohod A V, Teixeira A C S C, Bagal M V, et al. Degradation of Organic Pollutants from Wastewater using Hydrodynamic Cavitation: A review[J]. Journal of Environmental Chemical Engineering, 2023: 109773
[8] Yu Y, Mahmud M, Vyas N, et al. Cavitation in a periodontal pocket by an ultrasonic dental scaler: A numerical investigation[J]. Ultrasonics Sonochemistry,2022,90:106178 doi: 10.1016/j.ultsonch.2022.106178
[9] Castro-Muñoz R, Boczkaj G, Jafari S M. The role of hydrodynamic cavitation in tuning physicochemical properties of food items: A comprehensive review[J]. Trends in Food Science & Technology, 2023
[10] Zheng H, Zheng Y, Zhu J. Recent developments in hydrodynamic cavitation reactors: cavitation mechanism, reactor design, and applications[J]. Engineering, 2022
[11] 郭姣. 旋转式水力空化器外特性及其水消毒应用研究[D]. 山东:山东大学, 2021(in Chinese) Guo Jiao. Study on the external characteristics and water disinfection application of rotating hydraulic cavitator[D]. Shandong:Shandong University, 2021
[12] Badve M P, Bhagat M N, Pandit A B. Microbial disinfection of seawater using hydrodynamic cavitation[J]. Separation and Purification Technology,2015,151:31−38 doi: 10.1016/j.seppur.2015.07.020
[13] 陈乐, 董志勇, 刘昶, 等. 方孔多孔板水力空化杀灭大肠杆菌的实验研究[J]. 水力发电学报,2016,35(09):48−54(in Chinese) Chen Le, Dong Zhiyong, Liu Chang, et al. Experimental study on hydraulic cavitation of square porous plate for killing Escherichia coli[J]. Journal of Hydroelectric Power Generation,2016,35(09):48−54
[14] 孙浩胜. 双并联孔板水力空化降解碱性有机染料及产热的研究[D]. 沈阳:辽宁大学, 2022(in chinese) Sun Haosheng. Study on the degradation of alkaline organic dyes and heat generation by hydraulic cavitation with double parallel orifice plates[D]. Shenyang:Liaoning University, 2022
[15] Song Y, Hou R, Liu Z, et al. Cavitation characteristics analysis of a novel rotor-radial groove hydrodynamic cavitation reactor[J]. Ultrasonics Sonochemistry,2022,86:106028 doi: 10.1016/j.ultsonch.2022.106028
[16] 李浩. 大型立式轴流泵空化特性及其对机组稳定性影响研究[D]. 扬州:扬州大学, 2023(in Chinese) Li Hao. Research on cavitation characteristics of large vertical axial flow pumps and their impact on unit stability[D]. Yangzhou:Yangzhou University, 2023
[17] 周忠亮. 离心泵叶轮前盖板小叶片对空化特性影响研究[D]. 兰州:兰州理工大学, 2022(in Chinese) Zhou Zhongliang. Research on the influence of small blades in the front cover plate of centrifugal pump impeller on cavitation characteristics[D]. Lanzhou:Lanzhou University of Technology, 2021
[18] Ji B, Luo X, Arndt R E A, et al. Numerical simulation of three dimensional cavitation shedding dynamics with special emphasis on cavitation–vortex interaction[J]. Ocean Engineering,2014,87:64−77 doi: 10.1016/j.oceaneng.2014.05.005
[19] 陈琪. 小流量工况离心泵不稳定流动及空化特性研究[D]. 成都: 西华大学, 2022(in Chinese) Chen Qi. Study on the unstable flow and cavitation characteristics of centrifugal pumps under low flow conditions[D]. Chengdu: Xihua University, 2022
[20] 王芊婷, 王均宇, 张克鹏, 等. 典型截止节流阀空化特性分析[J]. 真空科学与技术学报,2023,43(08):715−723(in Chinese) Wang Qianting, Wang Junyu, Zhang Kepeng, et al. Analysis of cavitation characteristics of typical cut-off throttle valves[J]. Journal of Vacuum Science and Technology,2023,43(08):715−723