Influence of Proportion of Abrasive Particles in conveyor Liquid on Ultrasonic Cavitation Machining Process

被引:0
|
作者
Hadi, Mehdi [1 ]
机构
[1] Univ Tabriz, Mfg Dept, Tabriz 51664, Iran
关键词
Abrasive particles; Ultrasonic cleaner; Ultrasonic cavitation machining; workpiece surface; STAINLESS-STEEL; EROSION; TEMPERATURE; BEHAVIOR;
D O I
暂无
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
Utilizing the energy which is released of collapsing a bubble to remove molecules (or atoms) from the workpiece surface is called cavitation machining (CM) process. This energy is applied to abrasive particles in liquid and threshes them to the workpiece surface. On the base of procedure the bubbles are produced, cavitation machining is classified in two categories: Hydrodynamic Cavitation Machining (HCM), and Ultrasonic Cavitation Machining (UCM). In these processes, Material Removal Rate (MRR) is effectively conducted by two categories of parameters: first, the parameters which are associated with abrasive particles, and the second, are the parameters which determine cavitation rate in conveyor liquid. Proportion of abrasive particles in conveyor liquid is an important parameter which is associated with abrasive particles. Altering the amount of abrasive particles in liquid can change Material Removal Rate (MRR). This paper shows experimental results on influence of proportion of abrasive particles in conveyor liquid on ultrasonic cavitation machining process. Also a proper ratio in which the material removal rate is maximized will be presented.
引用
收藏
页码:2594 / 2598
页数:5
相关论文
共 50 条
  • [31] Influence of the process parameters on the liquid bridges between particles in SLS
    Jhabvala, Jamasp
    Boillat, Eric
    Glardon, Remy
    Dafflon, Melanie
    [J]. VIRTUAL AND RAPID MANUFACTURING: ADVANCED RESEARCH IN VIRTUAL AND RAPID PROTOTYPING, 2008, : 553 - +
  • [32] Influence of machining gap on surface integrity of 904L stainless steel finished by CBN magnetic abrasive particles
    Du, Jia-Jing
    Zhang, Gui-Xiang
    Zhu, Pei-Xin
    Jiang, Lin-Zhi
    Chen, Hao-Xin
    Liu, Ning
    [J]. Surface Technology, 2021, 50 (06): : 338 - 346
  • [33] Process of pulsations of the spherical cavity in a liquid under the influence of ultrasonic vibrations
    Kuznetsova, Elena L.
    Starovoitov, Eduard, I
    Vakhneevlb, Sergey
    Kutina, Elena, V
    [J]. ADVANCES IN AIRCRAFT AND SPACECRAFT SCIENCE, 2022, 9 (02): : 95 - 102
  • [34] Influence of process variables in the abrasive mixed electrical discharge machining of Ti-6Al-4V
    Shard, Abhinav
    Vinayak, Karan Singh
    Deepshikha
    [J]. MATERIALS TODAY-PROCEEDINGS, 2022, 59 : 107 - 114
  • [35] Influence of garnet abrasive in drilling of Basalt-Kevlar-Glass fiber reinforced polymer cross ply laminate by Abrasive Water Jet Machining process
    Sathishkumar, N.
    Selvam, R.
    Kumar, K. M.
    Abishini, A. H.
    Rahman, T. Khaleelur
    Mohanaranga, S.
    [J]. MATERIALS TODAY-PROCEEDINGS, 2022, 62 : 1361 - 1368
  • [36] Investigation of impact load and erosion behaviors on Ti-Ta alloy surface through the synergistic effect of ultrasonic cavitation and micro-abrasive particles
    Fu, Yingze
    Zhu, Xijing
    Wang, Jianqing
    Gong, Tai
    Sun, Shaohuan
    Li, Jing
    Ye, Linzheng
    Li, Xiangmeng
    [J]. JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2023, 26 : 3893 - 3904
  • [37] Process Parameter Optimization of Abrasive Jet, Ultrasonic, Laser Beam, Electrochemical, and Plasma Arc Machining Processes Using Optimization Techniques: A Review
    Pandey, Arun Kumar Sriram
    Saroj, Ankit
    Srivastava, Anshuman
    [J]. SAE INTERNATIONAL JOURNAL OF MATERIALS AND MANUFACTURING, 2023, 16 (03) : 245 - 279
  • [38] Towards understanding the influence of process parameters during the abrasive jet machining of cemented carbides via response surface method
    Hu, Yan
    Zhang, Jincheng
    Liu, Youyu
    Pan, Jiabao
    [J]. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 2024, 46 (12)
  • [39] Nanoscale metal oxide particles produced in the plasma discharge in the liquid phase upon exposure to ultrasonic cavitation. 1. Method for producing particles
    Bulychev, N. A.
    Kazaryan, M. A.
    Chaikov, L. L.
    Burkhanov, I. S.
    Krasovskii, V. I.
    [J]. BULLETIN OF THE LEBEDEV PHYSICS INSTITUTE, 2014, 41 (09) : 264 - 268
  • [40] Nanoscale metal oxide particles produced in the plasma discharge in the liquid phase upon exposure to ultrasonic cavitation. 1. Method for producing particles
    N. A. Bulychev
    M. A. Kazaryan
    L. L. Chaikov
    I. S. Burkhanov
    V. I. Krasovskii
    [J]. Bulletin of the Lebedev Physics Institute, 2014, 41 : 264 - 268