The Research and Simulation (Modelling) of the Destruction of a Single Abrasive Particle during Waterjet Cutting

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The article presents the results of experimental studies of differences in the nature of impact destruction of single garnet grains penetrating the target material, and presents the results of numerical simulation (modeling) of the contact interaction of an abrasive particle with a flat obstacle, which allowed determining the volume ablation of the material under the action of a single abrasive particle, and makes it possible to predict the performance of waterjet cutting.

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235-241

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May 2020

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© 2020 Trans Tech Publications Ltd. All Rights Reserved

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[1] F.F. Salenko, et al. Cutting of polycrystalline superhard materials by jet methods, Journal of Superhard Materials, (2016) 351-362.

DOI: 10.3103/s1063457616050063

Google Scholar

[2] Y.S. Stepanov, G.V. Barsukov, S.G. Bishutin, Technological Fundamentals for Efficiency Control of Hydroabrasive Cutting, Procedia Engineering, (2016) 717-725.

DOI: 10.1016/j.proeng.2016.07.093

Google Scholar

[3] A.A. Fomin, V.G. Gusev, Z.G. Sattarova, Geometrical errors of surfaces milled with convex and concave profile tools, Solid State Phenomena, Trans Tech Publications, 284 (2018) 281-288.

DOI: 10.4028/www.scientific.net/ssp.284.281

Google Scholar

[4] G. Barsukov, O. Kozhus, T. Zhuravleva, Increasing of Efficiency of Environmentally Friendly Technology of AWJ of a Glass Fiber Plastic, IOP Conference Series: Earth and Environmental Science. 50(1) IOP Publishing, (2017).

DOI: 10.1088/1755-1315/50/1/012001

Google Scholar

[5] G. Barsukov, O. Kozhus, T. Zhuravleva, Quality of Hydroabrasive Waterjet Cutting Machinability, Procedia Engineering, 206 (2017) 1034-1038.

DOI: 10.1016/j.proeng.2017.10.590

Google Scholar

[6] Barsukov, O. Kozhus, T. Zhuravleva, Methodics of Quality of Hydroabrasive Waterjet Cutting Machinability Assessment, In International Conference on Industrial Engineering, (2018) 1677-1685.

DOI: 10.1007/978-3-319-95630-5_179

Google Scholar

[7] M.I. Abashin, et al. Using ultrastream diagnostics for evaluating the quality of welded joints, Welding International 29.9 (2015) 730-733.

DOI: 10.1080/09507116.2014.970333

Google Scholar

[8] R.A. Tikhomirov, et al. High-pressure jetcutting, Mechanical Engineering 114.6 (1992) 88.

Google Scholar

[9] A.I. Ansari, M. Hashish, Effect of abrasive waterjet parameters on volume removal trends in turning, Journal of engineering for industry 117.4 (1995) 475-484.

DOI: 10.1115/1.2803524

Google Scholar

[10] R.A. Tikhomirov, Waterjet cutting: process and equipment, Russian Engineering Research, 17.6 (1997) 98.

Google Scholar

[11] A. Chillman, M. Hashish, M. Ramulu, Potential of waterjet peening for mainstream industrial applications, Shot Peener, 27.2 (2013) 34-38.

Google Scholar

[12] M. Hashish, Erosion modes during AWJ lathe slotting, American Society of Mechanical Engineers, Manufacturing Engineering Division, MED, (1995).

Google Scholar

[13] I. Ajmal, M. Hashish, Volume removal trends in abrasive waterjet turning effect of abrasive waterjet parameters, American Society of Mechanical Engineers, Production Engineering Division (Publication) PED, (1993).

DOI: 10.1115/1.2803524

Google Scholar

[14] W. Koenig, et al. Machining of fibre reinforced plastics. CIRP Annals, 34.2 (1985) 537-548.

DOI: 10.1016/s0007-8506(07)60186-3

Google Scholar

[15] M. Hashish, Machining of advanced composites with abrasive-waterjets, Machining composites, (1988) 1-18.

Google Scholar

[16] M. Hashish, Characteristics of surfaces machined with abrasive-waterjets, Journal of Engineering Materials and Technology, 113.3 (1991) 354-362.

DOI: 10.1115/1.2903418

Google Scholar

[17] A.F. Salenko, V. T. Shchetinin, and A. N. Fedotyev, Improving accuracy of profile hydro-abrasive cutting of plates of hardmetals and superhard materials, Journal of Superhard Materials, 36.3 (2014) 199-207.

DOI: 10.3103/s1063457614030083

Google Scholar

[18] V. Orel, et al. The use of controlled cracking to improve the efficiency of waterjet cutting, Eastern-European Journal of Enterprise Technologies, 1.7 (79) (2016) 45-56.

Google Scholar

[19] I.N. Bobrovskij, Burnishing Systems: a Short Survey of the State-of-the-art, IOP Conference Series: Materials Science and Engineering. Vol. 302. No. 1. IOP Publishing, (2018).

DOI: 10.1088/1757-899x/302/1/012041

Google Scholar

[20] I.N. Bobrovski, How to Select the most Relevant Roughness Parameters of a Surface: Methodology Research Strategy, IOP Conference Series: Materials Science and Engineering. Vol. 302. No. 1. IOP Publishing, (2018).

DOI: 10.1088/1757-899x/302/1/012066

Google Scholar

[21] V.V. Markov, L. I. Lebedeva, and N. V. Kanatnikov, Results of research on causes of the defects of laser marking articles, IOP Conference Series: Materials Science and Engineering. Vol. 91. No. 1. IOP Publishing, (2015).

DOI: 10.1088/1757-899x/91/1/012027

Google Scholar

[22] A. Tarapanov, et al. Improving Efficiency of Gear Shaping of Wheels with Internal Non-involute Gears, IOP Conference Series: Materials Science and Engineering. Vol. 127. No. 1. IOP Publishing, (2016).

DOI: 10.1088/1757-899x/127/1/012052

Google Scholar