Studies on abrasive waterjet machining of black granite through design of experiments

被引:0
|
作者
M. Kantha Babu
O. V. Krishnaiah
机构
[1] SSN College of Engineering,Department of Mechanical Engineering
[2] Indian Institute of Technology Madras,Department of Mechanical Engineering
来源
Experimental Techniques | 2003年 / 27卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Abrasive waterjet machining is emerging as an effective machining technique. In this context, optimizing the process parameters for effective utilization is essential. This paper discusses the machining of black granite with the use of a design of experiments approach and includes establishing the response equations. The influence of P, TR, and AFR for specially formulated abrasive samples having three different abrasive particle size distributions are analysed on the target parameters namely top kerf width, bottom kerf width, and kerf taper. At the 1% significance level, the top kerf width is influenced by high traverse rate and includes an interaction effect P × AFR. The bottom kerf width is influenced by abrasive sample AS3, and a high traverse rate TR3. Fragmentation of abrasives at the nozzle exit is higher due to the presence of larger size particles in the sample AS3. The interaction effects P × AS, AFR × AS, and PL × ASL are also found to yield minimum kerf width at the bottom. This is in addition to the jet instability influencing the bottom kerf width considerably. In the case of kerf taper, no parameters are clearly dominant at the 1% significance level, though kerf taper appears to be affected by a combination of all the independent parameters taken together. However, TR, TRL, and TRq are found to be significant at the 5% level. The response equations developed in this study will be useful to the manufacturing engineers to select a suitable combination of parameters for a specific application of black granite cutting. The numerical values reported in this study are specific to the cutting of black granite. Research with other types of granite is planned.
引用
收藏
页码:49 / 54
页数:5
相关论文
共 50 条
  • [11] High-precision machining by the abrasive waterjet. Abrasive waterjet finecutting - To open up new vistas for the abrasive waterjet cutting
    Löser, Carsten
    Seim, Thomas
    Pile, Rolf
    Dürr, Holger
    ZWF Zeitschrift fuer Wirtschaftlichen Fabrikbetrieb, 2009, 104 (7-8): : 632 - 636
  • [12] Erosion mechanisms during abrasive waterjet machining: Model microstructures and single particle experiments
    Mieszala, M.
    Torrubia, P. Lozano
    Axinte, D. A.
    Schwiedrzik, J. J.
    Guo, Y.
    Mischler, S.
    Michler, J.
    Philippe, L.
    JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2017, 247 : 92 - 102
  • [13] Modelling of abrasive waterjet machining: A new approach
    ElTobgy, M
    Ng, EG
    Elbestawi, MA
    CIRP ANNALS-MANUFACTURING TECHNOLOGY, 2005, 54 (01): : 285 - 288
  • [14] Study on removal model of abrasive waterjet machining
    Zhang, Chengguang
    Zhang, Yong
    Zhang, Feihu
    Luan, Dianrong
    Jixie Gongcheng Xuebao/Journal of Mechanical Engineering, 2015, 51 (07): : 188 - 196
  • [15] Machining of different materials with abrasive waterjet cutting
    Maros, Zs
    XXIII INTERNATIONAL CONFERENCE ON MANUFACTURING (MANUFACTURING 2018), 2018, 448
  • [16] Towards agile abrasive-waterjet machining
    Hashish, M
    13TH INTERNATIONAL CONFERENCE ON JETTING TECHNOLOGY, 1996, (21): : 549 - 561
  • [17] Abrasive waterjet machining simulation by SPH method
    Wang Jianming
    Gao Na
    Gong Wenjun
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2010, 50 (1-4): : 227 - 234
  • [18] Model for abrasive-waterjet (AWJ) machining
    Hashish, Mohamed, 1600, (111):
  • [19] The Development of Micro Abrasive Waterjet Machining Technology
    Luo, W. S.
    Wang, C. Y.
    Wang, J.
    Song, Y. X.
    HIGH SPEED MACHINING, 2011, 188 : 733 - +
  • [20] A MODEL FOR ABRASIVE-WATERJET (AWJ) MACHINING
    HASHISH, M
    JOURNAL OF ENGINEERING MATERIALS AND TECHNOLOGY-TRANSACTIONS OF THE ASME, 1989, 111 (02): : 154 - 162