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Theoretical And Practical Investigations Of V-Block Waviness Measurement Of Cylindrical Parts

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The paper relates to the problem of adaptation of V-block methods to waviness measurements of cylindrical surfaces. It presents the fundamentals of V-block methods and the principle of their application. The V-block methods can be successfully used to measure the roundness and waviness deviations of large cylinders used in paper industry, shipping industry, or in metallurgy. The concept of adaptation of the V-block method to waviness measurements of cylindrical surfaces was verified using computer simulations and experimental work. The computer simulation was carried out in order to check whether the proposed mathematical model and V-block method parameters are correct. Based on the simulation results, a model of measuring device ROL-2 for V-block waviness measurements was developed. Next, experimental research was carried out consisting in evaluation of waviness deviation, initially using a standard non-reference measuring device, and then using the tested device based on the V-block method. Finally, accuracy of the V-block experimental method was calculated.
Rocznik
Strony
181--192
Opis fizyczny
Bibliogr. 23 poz., fot., rys., tab., wykr.
Twórcy
autor
  • Kielce University of Technology, Chair of Mechanical Technology and Metrology, Al. 1000-lecia P. P. 7, 25-314 Kielce, Poland
autor
  • Kielce University of Technology, Chair of Mechanical Technology and Metrology, Al. 1000-lecia P. P. 7, 25-314 Kielce, Poland
autor
  • Kielce University of Technology, Chair of Mechanical Technology and Metrology, Al. 1000-lecia P. P. 7, 25-314 Kielce, Poland
Bibliografia
  • [1] Costa, R., Angelico, D., Reis, M.S., Ataide, J.M., Saraiva, P.M. (2005). Paper superficial waviness: Conception and implementation of an industrial statistical measurement system. Analytica Chimica Acta. 554, 135-142.
  • [2] Whitehouse, D.J. (2011). Handbook of Surface and Nanometrology. 2nd ed. University of Warwick Coventry.
  • [3] Bąkowski, A., Radziszewski, L. (2015). Determining selected diesel engine combustion descriptors based on the analysis of the coefficient of variation of in-chamber pressure. Bulletin of The Polish Academy of Sciences Technical Sciences. (in press)
  • [4] Humienny, Z. (2009). State of art in standardization in GPS area. CIRP Journal of Manufacturing Science and Technology, 2, 1-7.
  • [5] Poniatowska, M., Werner, A., (2010). Fitting spatial models of geometric deviations of free-form surfaces determined in coordinate measurements. Metrol. Meas. Syst., 12(4), 599-610.
  • [6] Humienny, Z., Berta, M. (2013). New multimedia geometrical tolerancing course. Procedia Engineering Procedia CIRP, 10, 312-316
  • [7] Kaczmarska, B., Starzyk, J., Grzeszczak, W., Kowalski, W. (1993). The influence of hemodialysis on the function of the left ventricle in patients with chronic renal failure - assessment with isotopic ventriculography. Polish Archives of Internal Medicine, 90(3), 185-191.
  • [8] Boryczko, A. (2013). Effect of waviness and roughness components on transverse profiles of turned surfaces. Measurments, 46(1), 688–696.
  • [9] Cedro, L. (2014). Linearization and Identification a Mathematical Model of an Excavator. 15th International Carpathian Control Conference - ICCC, Czech Republic, IEEE Catalog Number: CFP1442L-CDR, 73–79.
  • [10] Fargo, F.T., Curtis, M.A. (1997). Handbook of dimensional measurement. 3th ed. Industrial Press Inc., New Jork, 379.
  • [11] Ratajczyk, E. (2013). Coordinate measuring machines employed in the production environment. Part II. Hybrid construction machines. Mechanik, 07/13, 497–504.
  • [12] Berndt, G. (1943). Messung dreiseitiger gleichdicke mit spitze ecken in V-nut und Reiter. Zeitschrift fur Instrumentenkundle, 63(1).
  • [13] Witzke, F.W. (1965). Method and apparatus for roundness measurement. Patent 3, 274, 693.
  • [14] Kuosmanen, P. (2004). Predictive 3D roll grinding method for reducting paper quality variations in coating machines. Helsinki University of Technology Publications. Machine Design 2/2004.
  • [15] Jeonga, GB., Kim, D.H., Jang, D.Y. (2005). Real time monitoring and diagnosis system development in turning through measuring a roundness error based on three-point method. Internat. J. of Machine Tools & Manufact., (45), 1494-1503.
  • [16] Okuyamaa, E., Gohob, K., Mitsui, K. (2003). New analytical method for V-block three-point method. Precision Engineering, (27), 234-244.
  • [17] Adamczak, S. et al. (1997). Concept of Reference Methods for Accurate Measurements of Roundness of Machine Elements. Science Report KBN No. 7T07D04008, Kielce University of Technology, Kielce.
  • [18] Adamczak, S., Janecki, D., Stępień, K. (2011). Cylindricity measurement by the V-block method – Theoretical and practical problems. Measurement, 44, 164-173.
  • [19] Mitsui, K., Katsurada, K., Hayashi, A. (2001). Development of a Cylindricity Measurement System for Parallel Rollers Based on a V-Block Method. Proc. of The Annual Meeting – American Society for Precision Engineering, 305-308.
  • [20] Adamczak, S., Zmarzły, P., Stępień, K. (2013). Mathematical model of V-block measurements of form deviation and waviness of cylindrical elements. Mechanik, 7(13), 518-522.
  • [21] Adamczak, S., Janusiewicz, A., Makieła, W., Stępień, K. (2011). Statistical validation of the method for measuring radius variations of components on the machine tool. Metrol. Meas. Syst, 18(1), 35-46.
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Uwagi
EN
This work is an extended and updated version of the conference paper “Investigating mathematical models of waviness measurements of cylindrical elements by the V-block method through computer simulations” presented at the 11th International Symposium on Measurement and Quality Control - ISMQC 2013, Cracow-Kielce, Sept. 2013.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-07e26374-b916-47b8-9f45-1226f078f660
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