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The effect of materials on the reliability of reinforced concrete beams in normal and intense corrosions

Treść / Zawartość
Identyfikatory
Warianty tytułu
PL
Wpływ stosowanych materiałów na niezawodność belek żelbetowych w warunkach normalnej i silnej korozji
Języki publikacji
EN
Abstrakty
EN
Concrete structures are exposed to a variety of damages during their lifetime each of which could contribute to reducing their service life and load bearing capacity. Since most of parameters have special role in estimating capacity of members which are not certain, probabilistic evaluating the performance of concrete structures could bring more realistic perception about analysis and design of these structures. One of the most frequent probable damages is corrosion. The main focus of this study is placed on reliability assessment of flexural behavior of a reinforced concrete beam experienced pitting corrosion via Monte Carlo simulation. In addition, the effects of time to corrosion initiation, steel rebar diameter, yielding stress of rebars, strength class of cement, aggregate type and compressive strength of concrete, are included both in intense and normal pitting corrosion. The results clearly illustrate that occurrence of intense corrosion in concrete with low compressive strength, which used of higher strength class of cement and crushed stone aggregate, and less initial time for corrosion will lead to considerable reduction in service life even in some cases nearly half.
PL
W trakcie cyklu życia, konstrukcje betonowe są narażone na wiele uszkodzeń, z których każde może przyczyniać się do skrócenia ich żywotności i nośności. Ponieważ większość parametrów odgrywających szczególną rolę w szacowaniu nośności elementów cechuje niepewność, ocena probabilistyczna charakterystyk struktur betonowych może dawać bardziej realistyczny obraz analizy i projektowania tych struktur. Jednym z najczęściej występujących uszkodzeń struktur żelbetowych jest korozja. Głównym celem niniejszego badania była ocena niezawodności zachowania zginanej belki żelbetowej doświadczalnie poddanej korozji wżerowej poprzez symulację Monte Carlo. Ponadto, badano oddziaływanie czasu inkubacji korozji, średnicy stalowych prętów zbrojeniowych, granicy plastyczności tych prętów, klasy wytrzymałości cementu, rodzaju kruszywa i wytrzymałości na ściskanie betonu zarówno w warunkach silnej jak i normalnej korozji wżerowej. Wyniki jasno pokazują, że wystąpienie silnej korozji w betonie o małej wytrzymałości na ściskanie, do produkcji którego wykorzystano cement i kruszywo kamienne o wyższej klasie wytrzymałości, oraz krótszy czas inkubacji korozji prowadzą do znacznego skrócenia żywotności belek, w niektórych przypadkach nawet prawie o połowę.
Rocznik
Strony
393--402
Opis fizyczny
Bibliogr. 41 poz., rys.
Twórcy
  • Department of Civil Engineering, East Tehran Branch Islamic Azad University Tehran, Iran
  • The Centre of Excellence for Fundamental Studies in Structural Engineering Iran University of Science and Technology P.o.BoX: 16765-163; Narmak, Tehran, Iran
  • School of Civil Engineering Iran University of Science and Technology P.o. Box 16765-163, Narmak, Tehran, Iran
  • Department of Civil Engineering, Parand Branch Islamic Azad University Parand, Iran
Bibliografia
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  • 5. Bastidas-Arteaga E, Sánchez-Silva M, Chateauneuf A, Silva M R. Coupled reliability model of biodeterioration, chloride ingress and cracking for reinforced concrete structures. Structural Safety 2008; 30(2): 110-129, https://doi.org/10.1016/j.strusafe.2006.09.001.
  • 6. Bhargava K, Mori Y, Ghosh A K. Time-dependent reliability of corrosion-affected RC beams—Part 1: Estimation of time-dependent strengths and associated variability. Nuclear Engineering and Design 2011; 241(5): 1371-1384, https://doi.org/10.1016/j.nucengdes.2011.01.005.
  • 7. Building Research Establishment. Iranian Design Code for Normal Concrete Mixes. second edition 2005.
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  • 11. Darmawan M S. Pitting corrosion model for reinforced concrete structures in a chloride environment. Magazine of Concrete Research 2010; 62(2): 91-101, https://doi.org/10.1680/macr.2008.62.2.91.
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  • 14. Enright M E, Frangopol, D M. Probabilistic analysis of resistance degradation of reinforced concrete bridge beams under corrosion. Engineering Structures Journal 1998; 20(11): 960-971, https://doi.org/10.1016/S0141-0296(97)00190-9.
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  • 21. Naess A, Leira BJ, Batsevych O. System reliability analysis by enhanced Monte Carlo simulation. Structural Safety 2009; 31(5): 349-355, https://doi.org/10.1016/j.strusafe.2009.02.004.
  • 22. Nogueira C G, Leonel E D. Probabilistic models applied to safety assessment of reinforced concrete structures subjected to chloride ingress. Engineering Failure Analysis 2013; 31: 76-89, https://doi.org/10.1016/j.engfailanal.2013.01.023.
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  • 28. Shayanfar M A, Barkhordari M A, Ghanooni-Bagha M. Estimation of Corrosion Occurrence in RC Structure Using Reliability Based PSO Optimization. Periodica Polytechnica. Civil Engineering 2015; 59(4): 531-543, https://doi.org/10.3311/PPci.7588.
  • 29. Shayanfar M A, Barkhordari M A, Ghanooni-Bagha M. Probability calculation of rebars corrosion in reinforced concrete using css algorithms. Journal of Central South University 2015; 22(8): 3141-3150, https://doi.org/10.1007/s11771-015-2851-9.
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  • 31. Simioni P. Seismic response of reinforced concrete structures affected by reinforcement corrosion (Doctoral dissertation, University of Florence) 2009.
  • 32. Stewart M G, Al-Harthy A. Pitting corrosion and structural reliability of corroding RC structures, experimental data and probabilistic analysis. Reliability Engineering and System Safety 2008; 93(3), 373–382, https://doi.org/10.1016/j.ress.2006.12.013.
  • 33. Stewart M G. Mechanical behaviour of pitting corrosion of flexural and shear reinforcement and its effect on structural reliability of corroding RC beams. Structural Safety 2009; 31(1): 19-30, https://doi.org/10.1016/j.strusafe.2007.12.001.
  • 34. Stewart M G. Spatial variability of pitting corrosion and its influence on structural fragility and reliability of RC beams in flexure. Structural Safety 2004; 26(4); 453–470, https://doi.org/10.1016/j.strusafe.2004.03.002.
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  • 41. Zhang X, Wang J, Zhao Y, Tang L, Xing F. Time-dependent probability assessment for chloride induced corrosion of RC structures using the third-moment method. Construction and Building Materials 2015; 76: 232-244, https://doi.org/10.1016/j.conbuildmat.2014.10.039.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-f2f7c9e5-ff8b-4838-9997-c08d2ddd1f9a
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