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The experimental study of glass multilayer columns using digital image correlation

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Purpose: The purpose of the research is to study the deformability of glass multilayer columns at the central compression using digital image correlation. It becomes possible to use the method of digital image correlation for the experimental study of load bearing building structures of glass. Design/methodology/approach: The approach which has been used to solve the above problems is to conduct an experimental study of glass columns on central compression, in which deformations were measured using digital image correlation. Findings: The possibility of using load bearing building structures of glass triplex has been discovered. A program of experimental studies was developed. It included the testing of prototype samples on central compression with rigid fastening. On the basis of the obtained results, a graph of dependence of relative deformations on normal tension, graphs of the dependence of the bending of columns on load in different planes, and a modulus of elasticity of triplex glass have been determined. Research limitations/implications: The lack of a calculation methodology and regulatory documents for designing load bearing building structures of triplex glass increases their cost, since each project is individual and requires the experimental research. Practical implications: Using the approaches developed in the paper, the method of digital image correlation, which is to measure deformations when testing glass structures on central compression can be applied. Originality/value: The experimental study is probably the first one in which deformations of glass columns are determined using the method of digital image correlation, so it is new and original. The lack of a calculation methodology and regulatory documents for designing load bearing building structures of triplex glass, increases their cost, since each project is individual and requires the experimental research.
Rocznik
Strony
32--41
Opis fizyczny
Bibliogr. 28 poz..
Twórcy
autor
  • Department of Building Structures and Bridges, Institute of Building and Environmental Engineering, Lviv Polytechnic National University, 12 Bandera Street, Lviv, 79013, Ukraine
autor
  • Department of Building Structures and Bridges, Institute of Building and Environmental Engineering, Lviv Polytechnic National University, 12 Bandera Street, Lviv, 79013, Ukraine
autor
  • Department of Building Structures and Bridges, Institute of Building and Environmental Engineering, Lviv Polytechnic National University, 12 Bandera Street, Lviv, 79013, Ukraine
Bibliografia
  • [1] C. Amadio, M. Asce, C. Bedon, Buckling of laminated glass elements in compression, Journal of Structural Engineering 137/8 (2011) 803-810.
  • [2] K. Vaer, J. Anton, A. Klauson, M. Eerme, E. Ounapuu, P. Tsukrejev, Material characterization for laminated glass composite panel, Journal of Achievements in Materials and Manufacturing Engineering 81/1 (2017) 11-17.
  • [3] B. Demchyna, T. Osadchuk, The Study of deformation of multilayer glass plates with the help of correlation of digital images, Communal Economy of Cities. Series: Engineering and Architecture, KhNUCE, Kharkiv 134 (2017) 153-163 (in Ukrainian).
  • [4] V. Berezin, The Study of the Field of Deformation of the Flat Surface of Samples of Materials by the Method of Correlation of Digital Images (Static Pressure), V.B. Berezin, M.H. Chausov (Eds.), Technical Diagnostics and Non-destructive Control, No. 2, 2011, 15-20 (in Ukrainian).
  • [5] Ya. Kovalchyk, Prospects for the Usage of the Method of Digital Image Correlation for the Study of Building Structures, in: Ya. I. Kovalchyk, Collection of Scientific Works of the Poltava National Technical University Named After Y. Kondratyuk: Sectoral Engineering, Construction, Issue 5, 2012, 92-100 (in Ukrainian).
  • [6] M. Cherevko, B. Demchyna, Research of strength and deformability of glass beams with vertical placement of layers, UDC 624.072.001.5 + 666.11, 2016, US- 116 (in Ukrainian).
  • [7] B. Demchyna, T. Osadchuk, Flexural strength of glass using Weibull statistic analysis, Journal of Achievements in Materials and Manufacturing Engineering 87/2 (2018) 49-61.
  • [8] Digital Image Correlation (DIC) Measurement Principles, Available from: www.dantecdynamics.com/measurement-principles-of-dic.
  • [9] M. Helfrick, An investigation of 3D digital image correlation for structural health monitoring and vibration measurement, ProQuest, 2008, 192.
  • [10] S. Yoneyama, Digital Image Correlation, in: S. Yoneyama, G. Murasawa (Eds.), Experimental Mechanics, Encyclopedia of Life Support Systems (EOLSS), Eolss Publishers, Oxford, UK, 2009.
  • [11] V. Pickerd, Optimisation and Validation of the ARAMIS Digital Image Correlation System for use in Large-scale High Strain-rate Events, DSTO Defence Science and Technology Organisation, 2013, 32.
  • [12] P. Del Linz, Reaction forces of laminated glass windows subject to blast loads, in: P. Del Linz, P.A. Hooper, H. Arora, D. Smith, L. Pascoe, D. Cormie, B.R.K. Blackman, J.P. Dear (Eds.), Composite Structures, Vol. 131,2015, 193-206.
  • [13] J. Walraven, Proceedings of the 5th International PhD Symposium in Civil Engineering, J. Walraven, J. Blaauwendraad (Eds.), Taylor & Francis. 2004, 1532.
  • [14] C. Louter, Proceedings of the Challenging Glass 4 & COST Action TU0905 Final Conference, C. Louter, F. Bos, J. Belis, J.P. Lebet (Eds.), CRC Press, 2014, 852.
  • [15] DSTU B.V.2.7-122: 2009 Sheet Glass. Specifications. - K.: The Ministry of Regional Development of Ukraine, 2010, 52 (in Ukrainian).
  • [16] DSTU 2825-94 Calculations and Strength Tests. Terms and Definitions of Key Concepts. - K., 1998, 42 (in Ukrainian).
  • [17] M. Nixon, A. Aguado, Feature Extraction and Image Processing, Second Edition, Academic Press, 2008.
  • [18] Y. Zhuravel, Kratkyi kurs teoryy obrabotky yzobrazhenyi, 1999.
  • [19] D. Jauffres, C. Morri, J. Sherwood, J. Chen, Discrete mesoscopic modeling for the simulation of woven- fabric reinforcement forming,. International Journal of Material Forming 3/2 (2009) 1205-1216.
  • [20] GOM Correlate Video Tutorial -2- Object Preparation and 2D Image Acquisition, Available from: https://www.youtube.com/watch?v=U9FTmAZK6Yo.
  • [21] Image Processing Toolbox - Obrabotka syhnalov y yzobrazhenyi, Available from: http://matlab.exponenta.ru/imageprocess/.
  • [22] R. Eriksen, C. Berggreen, S. Boyd, J. Dulieu-Barton, Towards high velocity deformation characterisation of metals and composites using Digital Image Correlation, EPJ Web of Conferences, 6, 31013, 2010, 1-8.
  • [23] GOM Correlate (GOM mbH, Germany), Available from: http://www.gom.com/3d-software/gom-correlate.html.
  • [24] GOM Correlate Professional. V8 SRI Manual Basic, Available from: http://213.8.45.88/PDF/gom_correlate_prof_basic_v8.pdf.
  • [25] A. Reichman, Development of Nano-characterization System for Polymer Film Measurement and Single BGA Solder Joint Forming Experiment, ProQuest, 2007.
  • [26] B. Ghiassi, J. Xavier, D. Oliveira, P. Lourenfo, Application of digital image correlation in investigating the bond between FRP and masonry, Composite Structures 106 (2013) 340-349.
  • [27] J. Mersch, On the Hydraulic Bulge Testing of Thin Sheet, Master of Science in Engineering Thesis, University of Texas, Austin, 2013, 94.
  • [28] C. Louter, F. Bos, J. Belis, J. Lebet, Challenging Glass 4 & COST Action TU0905 Final Conference, CRC Press, 2014.
Uwagi
PL
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-a9eaae14-81bf-4ef9-abb0-93cc4389c918
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