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Detection of inner defects in industrial pipelines using transient IR thermography

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
A long time operation of pipelines can lead to the reduction of their wall thickness. This process is accelerated by high temperature and variable pressure of the transported medium and can finally cause mechanical failures along with leaks and danger of explosion. The aim of this paper is to present a new method for the detection of abraded walls in industrial pipelines using the time-frequency analysis. The results of transient temperature measurements are used for the calculation of the thermal time constants corresponding - as demonstrated - to the pipeline wall thickness.
Wydawca
Rocznik
Strony
115--118
Opis fizyczny
Bibliogr. 14 poz., rys., tab., wykr., wzory
Twórcy
autor
  • Lodz Univeristy of Technology, Insitute of Electronics, 211/215 Wólczańska St., 90-924 Lodz, Poland
  • Aristotle University of Thessaloniki, Department of Electrical and Computer Engineering, 54124 Thessaloniki, Greece
autor
  • Ghent Univeristy, Department of Electronics and Information Systems, 41 Sint-Pietersnieuwstraat, Gent 9000, Belgium
autor
  • Lodz Univeristy of Technology, Insitute of Electronics, 211/215 Wólczańska St., 90-924 Lodz, Poland
Bibliografia
  • [1] Pluvinage G.: General approaches of pipeline defect assessment. Chapter, Safety, Reliability and Risks Associated with Water, Oil and Gas Pipelines. Part of the series NATO Science for Peace and Security Series, pp. 1-22, 2008.
  • [2] Kim K., Kim K., Jung H., Chang H.: Measurement of defect thickness of the wall thinning defect pipes by lock-in thermography technique. Fourth International Conference on Mechanics. 14 April 2010.
  • [3] Weil G. J., Graf R. J.: Infrared-thermography-based pipeline leak detection system. Proc. SPIE 1467, Thermosense XIII, 1 March 1991.
  • [4] Safizadeh M. S., Azizzadeh T.: Corrosion detection of internal pipeline using NDT optical inspection system. NDT&E International. 2012; (52): 144-148.
  • [5] Kafieh R., Lotfi T., Amirfattahi R.: Automatic detection of defects on polyethylene pipe welding using thermal infrared imaging. Infrared Physics & Technology, vol. 54, pp. 317-325, 2011.
  • [6] Vavilov V. P., Chulkov A. O.: Detecting corrosion in thick metals by applying active IR thermography. Thermosense: Thermal Infrared Applications XXXIV, vol. 8354, 2012.
  • [7] Liu Z., Genest M., Krys D.: Processing thermography images for pitting corrosion quantification on small diameter ductile iron pipe. NDT&E International, vol. 47, pp. 105-115, 2012.
  • [8] Poppe A., Zhang Y., Wilson J., Farkas G., Szabó P., Parry J.: Thermal measurement and modelling of multi-die packages. 11th THERMINIC Workshop, Belgirate, Italy, September 27–30, 2005.
  • [9] T3Ster® Measurement Control Tool User and Reference Guide, Software Version 1.3, 2014.
  • [10] Szekely V., Van Bien T.: Fine structure of heat flow path in semiconductor devices: measurement and identification method. Solid State Electron. vol. 31, pp. 1363–1368, 1988.
  • [11] Kałuża M., Więcek B., De Mey G., Hatzopoulos A., Chatziathanasiou V.: Thermal impedance measurement of integrated inductors on bulk silicon substrate. Microelectronics Reliability, vol. 73, pp. 54–59, 2017.
  • [12] Łabanowski J.: The evaluation of catalytic pipes destroying process in the exploitation of the methane reformers. Technical University of Gdansk, Publishing house. Poland, 2003, ISBN 83-7348-039-0.
  • [13] Devsh Tripathi.: Practical guide to Polypropylene. Rapra Technology Limited, 2002, ISBN: 1-85957-282-0.
  • [14] Guide: Guide to the Expression of Uncertainty in Measurements, ISO/TAG, 1995, Polish edition, 1999, edited by J. Jaworski.
Uwagi
PL
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-ee62caaf-fef7-4ec3-b3af-f2661d99c5f5
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