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Review of the advanced microscopy techniques used for diagnostics of grinding wheels with ceramic bond

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
A wide range of abrasive tools is used in modern removal machining techniques. Their condition has significant influence on the quality of the shaped surfaces of the produced elements and the functions they perform. Abrasive tools diagnostics is in this case an essential element of the production process, connected with assessment of the abrasive tool surface condition. Such an assessment can be carried out with microscopic methods The work presents selected microscopic techniques on the cutting edge of technology such as: digital microscopy, confocal laser scanning microscopy and scanning electron microscopy. Characteristics of each of the methods and the applied devices were briefly presented. The experimental part presents exemplary results of measurements and analyses carried out using the described methods. The works were carried out on, among others, grinding wheels with ceramic bond used in internal cylindrical grinding processes. The assessed tools were characterized by a number of features such as impregnated active surface, modified bond microstructure or smearing the active surface with chips of the machined material. The obtained results confirmed the possibility of application of the above-mentioned microscopic techniques in abrasive tools diagnostics.
Słowa kluczowe
Rocznik
Strony
81--98
Opis fizyczny
Bibliogr. 41 poz., tab., rys.
Twórcy
autor
  • Subject Group of Metrology and Quality, Department of Production Engineering, Faculty of Mechanical Engineering, Koszalin University of Technology,Raclawicka 15-17, 75-620, Koszalin, Poland
autor
  • Department of Production Engineering, Faculty of Mechanical Engineering, Koszalin University of Technology, Raclawicka 15-17, 75-620, Koszalin, Poland
Bibliografia
  • [1] ROWE W.B., 2009, Principles of Modern Grinding Technology, William Andrew Applied Science Publishers, Burligton.
  • [2] HUANG H., YIN L., ZHOU, L., 2003, High Speed Grinding of Silicon Nitride with Resin Bond Diamond Wheels, Journal of Materials Processing Technology, 141/3, 329–336.
  • [3] WANG S., LI C.H., 2012, Application and Development of High-efficiency Abrasive Process, International Journal of Advanced Science and Technology, 47, 51–64.
  • [4] HOU Y., LI C., ZHOU Y., 2010, Applications of High-Efficiency Abrasive Process with CBN Grinding Wheel, Engineering, 2, 184–189.
  • [5] CHAKRABORTY K., CHATTOPADHYAY A.B., CHAKRABARTI A.K. , 2003, A Study on the Grindability of Niobium Microalloyed Forging Quality HSLA Steels, Journal of Materials Processing Technology, 141/3, 404–410.
  • [6] DUSCHA M., KLOCKE F., WEGNER H., 2011, Residual Stress Model for Speed-Stroke Grinding of Hardened Steel with CBN Grinding Wheels, International Journal of Automation Technology, 5/3, 439–444.
  • [7] TONSHOFF H.K., FRIEMUTH T., BECKER J.C., 2000, Continuous Path Controlled Grinding of Crankshafts, Abrasives Magazine, 1, 25–29.
  • [8] NADOLNY K., SLOWINSKI B., 2011, The Effects of Wear upon the Axial Profile of a Grinding Wheel in the Construction of Innovative Grinding Wheels for Internal Cylindrical Grinding, Advances in Tribology, ID 516202, DOI:10.1155/2011/516202, (11 pages).
  • [9] OHASHI K., HE G., TSUKAMOTO S., 2007, Improvement of Machining Accuracy in Micro Cylindrical Traverse Grinding, Key Engineering Materials, 329, 39-44.
  • [10] SLUDER G., WOLF D.E. (Eds.), 2008, Digital Microscopy (3rd Edition), Methods in Cell Biology series, 81, Academic Press, New York.
  • [11] HAND W.G., 2001, A Practical Guide to Digital Microscopy, Photonics Spectra, 10, 100–104.
  • [12] KEYENCE CORP., 2008, Digital Microscope VHX-600, Brochure, (32 pages).
  • [13] KEYENCE CORP., 2010, General catalog for Lenses and Stands, Catalog, (40 pages).
  • [14] KEYENCE CORP., 2009, Digital Microscope VHX-600 Generation II, Brochure, (32 pages).
  • [15] BADARINARAYANA H., SHIA Y., LIA X., OKAMOTOB K., 2009, Effect of Tool Geometry on Hook Formation and Static Strength of Friction Stir Spot Welded Aluminum 5754-O Sheets, International Journal of Machine Tools and Manufacture, 49/11, 814–823.
  • [16] LIU X., SHEN Z., WANG X., WANG H., TAO M., 2010, Numerical Simulation and Experimentation of a NovelMicro Scale Laser High Speed Punching, International Journal of Machine Tools and Manufacture, 50/5, 491–494.
  • [17] DURAKBASA N.M, OSANNA P.H., BAS G., DEMIRCIOGLU P., CAKMAKCI M., HORNIKOVA A., 2012, Novel Developments in Dimensional Nanometrology in the Context of Geometrical Product Specifications and Verification (GPS), Journal of Automation, Mobile Robotics & Intelligent Systems, 6/2, 22–25.
  • [18] CLAXTON N.S., FELLERS T.J., DAVIDSON M.W., 2010, Laser Scanning Confocal Microscopy, available from: http://www.olympus fluoview.com /theory/LSCMIntro.pdf.
  • [19] YATSUNENKO S., FABICH M., 2009, 3D Laser Microscopy for Nanotechnology and Metrology, Acta Physica Polonica A, 116, 194–195.
  • [20] MINSKY M., 1988, Memoir on Inventing the Confocal Scanning Microscope, Scanning, 10/4, 128–138.
  • [21] AMOS, W.B., WHITE, J.G., 2003,How the Confocal Laser Scanning Microscope entered Biological Research,Biology of the Cell, 95/6, 335–342.
  • [22] EVANS A.A., DONAHUE R.E., 2008, Laser Scanning Confocal Microscopy: A Potential Technique for the Study of Lithic Microwear, Journal of Archaeological Science, 35/8, 2223–2230.
  • [23] KATOM.K. N., ONARIE., ARISAWAE. A.L., DA SILVAN. S., RAMOSA. S., 2009, Osseointegration Features of Orthopedic Ti–10Si–5B Implants, Materials Science and Engineering C, 29/3, 980–986.
  • [24] HAO X., WANGA L. WANG Q., GUO F., TANG Y., DING Y., LU B., 2011, Surface Micro-Texturing of Metallic Cylindrical Surface with Proximity Rolling-Exposure Lithography and Electrochemical, Micromachining, Applied Surface Science, 257/21, 8906–8911.
  • [25] OLYMPUS CORP., 2007, Confocal Laser Scanning Microscope LEXT OLS3100, Brochure,(16 pages).
  • [26] OLYMPUS CORP., 2009, Confocal Laser Scanning Microscope LEXT OLS4000, Brochure,(9 pages).
  • [27] NADOLNY K., KAPŁONEK W., 2012, Confocal Laser Scanning Microscopy for Characterisation of Surface Microdiscontinuities of Vitrified Bonded Abrasive Tools, International Journal of Mechanical Engineering and Robotics Research, 1/1, 14–29.
  • [28] KAPLONEK W., NADOLNY K., 2012, Advanced 3D Laser Microscopy for Measurements and Analysis of Vitrified Bonded Abrasive Tools, Journal of Engineering Science & Technology, 7/6, 714–732.
  • [29] MCMULLAN, D., 1995, Scanning Electron Microscopy 1928–1965, Scanning, 17, 175–185.
  • [30] KNOLL M., RUSKA E., 1932, Das Elektronenmikroskop, Zeitschrift für Physik, 78, 318–339.
  • [31] VON ARDENNE, M., 1938, Das Elektronen-Rastermikroskop. Praktische Ausführung, Zeitschrift für technische Physik, 19, 407–416.
  • [32] SMITH K.C.A., OATLEY, C.W., 1955, The Scanning Electron Microscope and its Fields of Application, British Journal of Applied Physics, 6, 391–399.
  • [33] OATLEY C.W., NIXON W.C., PEASE R.F.W., 1965, Scanning Electron Microscopy, Advances in Electronics and Electron Physics, 21,181–247.
  • [34] WATT I.M., 1997, The Principles and Practice of Electron Microscopy (2nd Edition), Cambridge University Press.
  • [35] REIMER L., 1998, Scanning Electron Microscopy: Physics of Image Formation and Microanalysis (2nd Edition),Springer-Verlag, Berlin.
  • [36] EGERTON, R.F., 2005, Physical Principles of Electron Microscopy: An Introduction to TEM, SEM, and AEM,Springer Science+Business Media, Inc., New York.
  • [37] SMIRNOV A., BARTOLOMÉ J.F., 2012, Mechanical Properties and Fatigue Life of ZrO2–Ta Composites prepared by Hot Pressing, Journal of the European Ceramic Society, 32/15, 3899–3904.
  • [38] LUO T., CHEN Z., HUN A., LI M., 2012, Study on Melt Properties, Microstructure, Tensile Properties of Low Ag Content Sn–Ag–Zn Lead-Free Solders, Materials Science and Engineering A, 556, 885–890.
  • [39] SWETHA C., KUMAR R., 2011, Quasi-Static Uni-Axial Compression Behaviour of Hollow Glass Microspheres/Epoxy based Syntactic Foams, Materials & Design, 32/8-9, 4152–4163.
  • [40] KAPLONEK W., NADOLNY K., 2013,Assessment of condition of the grinding wheel active surface using SEM and image analysis techniques, Journal of the Brazilian Society of Mechanical Science & Engineering. (in press).
  • [41] PHENOM-WORLD BV, 2011, Phenom G2™ Pro, Specification Sheet. (2 pages)
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-60cf1d13-d43d-4895-87c2-6c88a6ed7ae1
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