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The Effects of Temperature on the Strength Properties of Aluminium Alloy 2024-T3

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This paper presents results of monotonous tensile tests of 0.16” thick samples made of non-clad plates of aluminium alloy for aircraft purposes 2024-T3. Tests were performed for samples cut out from a sheet plate in two different directions: in the parallel and perpendicular direction to sheet plate rolling direction, for eight different temperature values from the range 25°C – 200°C. The tests were performed using the hydraulic-drive testing machine INSTRON 8502 equipped with thermal chamber. The analysis of results included changes of basic strength-related parameters depending on temperature. It was also observed that the intensity of Portevin-Le Châtelier [PLC) effect depends on the temperature.
Rocznik
Strony
62--66
Opis fizyczny
Bibliogr. 11 poz., Rys.
Twórcy
autor
  • Department Laboratory for Research on Materials and Structures, Department of Mechanics and Mechanical Design Faculty of Mechanical Engineering, University of Technology and Life Sciences in Bydgoszcz Al. Prof. Sylwestra Kaliskiego 7, 85-789 Bydgoszcz,, adam.lipski@utp.edu.pl
Bibliografia
  • 1. ALCOA, Alloy 2024. Sheet and Plate, ALCOA TechSheet, ALCOA Mill Production, Inc.
  • 2. ASTM E 21 – 05 (2005), Standard Test Methods for Elevated Temperature Tension Tests of Metallic Materials, ASTM International.
  • 3. Bharathi M.S., Rajesh S., Ananthakrishna G. (2003), A dynamical model for the Portevin–Le Chatelier bands, Scripta Materialia, Vol. 48,1355–1360.
  • 4. Courtney T.H. (2000), Mechanical Behavior of Materials, McGrawHill International Editions.
  • 5. Ho K., Krempl E. (2000), Modeling of Positive, Negative and Zero Rate Sensitivity by Using the Viscoplasticity Theory Based on Overstress (VBO), Mechanics of Time-Dependent Materials, Vol. 4, 21–42.
  • 6. Huifeng J., Qingchuan Z., Xuedong Ch., Zhongjia Ch., Zhenyu J., Xiaoping W., Jinghong F. (2007), Three types of Portevin–Le Chatelier effects: Experiment and modeling, Acta Materialia, Vol. 55, 2219–2228.
  • 7. Klose F.B. (2004), Experimental and numerical studies on the Portevin-LeChâtelier effect in Cu-Al and Al-Mg in strain and stress controlled tensile tests, Dissertation, Technischen Uniwersität Carolo-Wilhelmina, Braunschweig.
  • 8. MIL-HDBK-5H (1998), Military Handbook: Metallic Materials and Elements for Aerospace Vehicle Structures, Department of Defense, USA.
  • 9. PN-EN 10002-5:2002 (2002), Metallic materials. Tensile testing. Method of test at elevated temperature, Polish Committee for Standardization (in Polish).
  • 10. Przybyłowicz K. (1999), Theoretical basics of physical metallurgy, Wydawnictwa Naukowo-Techniczne, Warszawa (in Polish).
  • 11. Przybyłowicz K. (2002), The structural aspects of the deformation of metallic materials, Wydawnictwa Naukowo-Techniczne, Warszawa (in Polish).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPB2-0068-0033
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