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A Review on Fatigue Performance of Concrete Structures Part II, Material Parameters and Environmental Factors


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Aas-Jakobsen K: “Fatigue of concrete beams and columns”. Division of Concrete Structures, Norwegian Inst. of Technology, Trondheim, Norway, 1970. Search in Google Scholar

Hilsdorf H K: “Fatigue strength of concrete under varying flexural stresses”. ACI Journal Proceedings, 1966. Search in Google Scholar

Jinawath P: “Cumulative fatigue damage of plain concrete in compression”. University of Leeds, UK, 1974. Search in Google Scholar

Isojeh B, El-Zeghayar M & Vecchio F J: “Concrete damage under fatigue loading in uniaxial compression”. ACI Mater, 114 (2), 2017, pp. 225-235. Search in Google Scholar

Viswanath S, Kuchma D A & LaFave J M: “Experimental investigation of concrete fatigue in axial compression”. ACI Structural Journal, 118 (1), 2021, pp. 263-276. Search in Google Scholar

CEB: “Fatigue of Concrete Structures: State of the Art Report”. Comite Euro-International Du Beton, 1988. Search in Google Scholar

Simon K M & Kishen J C: “Influence of aggregate bridging on the fatigue behavior of concrete”. International Journal of Fatigue, 90, 2016, pp. 200-209. Search in Google Scholar

Tomann C & Oneschkow N: “Influence of moisture content in the microstructure on the fatigue deterioration of high‐strength concrete”. Structural Concrete, 20 (4), 2019, pp. 1204-1211. Search in Google Scholar

Isojeh B, El-Zeghayar M & Vecchio F J: “Numerical analysis of reinforced concrete and steel-fiber concrete elements under fatigue loading”. Journal of Structural Engineering, 145 (11), 2019. Search in Google Scholar

Mohammad Afaghi, Anja Klausen & Øverli J A: “A Review on Fatigue Performance of Concrete Structures Part I: Loading Parameters, Current Prediction Models and Design Approaches”. Nordic Concrete Research, NCR 68, 2023, pp. 106-127. Search in Google Scholar

Neville A M: “Properties of concrete”, Vol. 4, Longman, London, UK, 1995. Search in Google Scholar

Lü P, Li Q & Song Y: “Behavior of concrete under nonproportional biaxial fatigue stresses with one constant”. ACI materials journal, 104 (1), 2007. Search in Google Scholar

Breitenbücher R, Ibuk H & Yüceoglu S: “Beeinflusst die Kornsteifigkeit der Gesteinskörnung im Beton den Degradationsprozess infolge zyklischer Druckbeanspruchung?”. Beton-und Stahlbetonbau, 103 (5), 2008, pp. 318-323. (In German)- Search in Google Scholar

Scheiden T & Oneschkow N: “Influence of coarse aggregate type on the damage mechanism in high‐strength concrete under compressive fatigue loading”. Structural Concrete, 20 (4), 2019, pp. 1212-1219. Search in Google Scholar

Saini B S & Singh S: “Flexural fatigue strength prediction of self compacting concrete made with recycled concrete aggregates and blended cements”. Construction and Building Materials, 264, 2020. Search in Google Scholar

Golewski G: “An analysis of fracture toughness in concrete with fly ash addition, considering all models of cracking”. Proceedings, IOP Conference Series: Materials Science and Engineering, 2018, IOP Publishing. Search in Google Scholar

Sun W, Liu J, Qin H, Zhang Y, Jin Z & Qian M: “Fatigue performance and equations of roller compacted concrete with fly ash”. Cement and concrete research, 28 (2), 1998, pp. 309-315. Search in Google Scholar

Baktheer A & Chudoba R: “Experimental and theoretical evidence for the load sequence effect in the compressive fatigue behavior of concrete”. Materials and Structures, 54 (2), 2021. Search in Google Scholar

Larbi J: “Microstructure of the interfacial zone around aggregate particles in concrete”. NASA STI/Recon Technical Report N, 94, 1993. Search in Google Scholar

Gan Y, Zhang H, Liang M, Zhang Y, Schlangen E, van Breugel K & Šavija B: “Flexural strength and fatigue properties of interfacial transition zone at the microscale”. Cement and Concrete Composites, 133, 2022. Search in Google Scholar

Seitl S, Benešová A, Pascual Á P, Malíková L, Bujdoš D & Bílek V: “Fatigue and fracture properties of concrete mixtures with various water to cement ratio and maximum size of aggregates”. Procedia Structural Integrity, 42, 2022, pp. 1512-1519. Search in Google Scholar

Ahmad Shah M S, Kueh A B H, Tamin M N, Kim J-H J, Ab. Kadir M A, Yahaya N & Md. Noor N: “Water–Cement Ratio on High-Cycle Fatigue in the Theory of Critical Distances of Plain Concrete”. Iranian Journal of Science and Technology, Transactions of Civil Engineering, 46 (6), 2022, pp. 4281-4290. Search in Google Scholar

Raithby K & Galloway J: “Effects of moisture condition age, and rate of loading on fatigue of plain concrete”. ACI Special Publication, 41, 1974, pp. 15-35. Search in Google Scholar

Cornelissen H & Reinhardt H: “Uniaxial tensile fatigue failure of concrete under constantamplitude and programme loading”. Magazine of concrete Research, 36 (129), 1984, pp. 216-226. Search in Google Scholar

Petkovic G: “Properties of concrete related to fatigue damage with emphasis on highstrength concrete”. University of Trondheim, Norway, 1993. Search in Google Scholar

Petkovic G, Lenschow R, Stemland H & Rosseland S: “Fatigue of high-strength concrete”. ACI Special Publication, 121, 1990, pp. 505-526. Search in Google Scholar

Mor A, Hester W & Gerwick B: “Fatigue of high-strength reinforced concrete”. Materials Journal, 89 (2), 1992, pp. 197-207. Search in Google Scholar

Winkler H: “Über mechanische Eigenschaften von normalfestem und hochfestem Beton unter besonderer Berücksichtigung des Elastizitätsmoduls”, Bundesanstalt für Materialforschung und-prüfung (BAM), 2010. (In German) Search in Google Scholar

Du Béton: Fédération Internationale: “fib model code for concrete structures 2010”, Wiley-vch Verlag Gmbh, 2013. Search in Google Scholar

DNV-OS-C502: “Offshore Concrete Structures”. Det Norske Veritas: Høvik, Norway, 2010. Search in Google Scholar

Arthur P, Earl J C & Hodgkiess T: “Corrosion fatigue in concrete for marine applications”. ACI Special Publication, 75, 1982, pp. 1-24. Search in Google Scholar

Paterson W: “Fatigue of reinforced concrete in sea water”. ACI Special Publication, 65, 1980, pp. 419-436. Search in Google Scholar

Martın-Pérez B, Zibara H, Hooton R & Thomas M: “A study of the effect of chloride binding on service life predictions”. Cement and Concrete Research, 30 (8), 2000, pp. 1215-1223. Search in Google Scholar

Kassir M K & Ghosn M: “Chloride-induced corrosion of reinforced concrete bridge decks”. Cement and Concrete Research, 32 (1), 2002, pp. 139-143. Search in Google Scholar

Saito M & Ishimori H: “Chloride permeability of concrete under static and repeated compressive loading”. Cement and Concrete Research, 25 (4), 1995, pp. 803-808. Search in Google Scholar

Ahn W & Reddy D: “Galvanostatic testing for the durability of marine concrete under fatigue loading”. Cement and Concrete Research, 31 (3), 2001, pp. 343-349. Search in Google Scholar

Holmen J O: “Fatigue of concrete by constant and variable amplitude loading”. ACI Special Publication, 75, 1982, pp. 71-110. Search in Google Scholar

von der Haar C & Marx S: “A strain model for fatigue‐loaded concrete”. Structural Concrete, 19 (2), 2018, pp. 463-471. Search in Google Scholar

Balazs G L: “Fatigue of bond”. Materials Journal, 88 (6), 1992, pp. 620-630. Search in Google Scholar

Rehm G & Eligehausen R: “Bond of ribbed bars under high cycle repeated loads”. University of Stuttgart, Germany, 1979. Search in Google Scholar

Sun Y, Gu Z x, Li A & Shao G j: “Effect of structural features and loading parameters on bond in reinforced concrete under repeated load”. Structural Concrete, 18 (6), 2017, pp. 862-871. Search in Google Scholar

EN 1992-1-1 Eurocode 2: “Design of concrete structures-Part 1-1: General ruels and rules for buildings. Brussels”. Brussels, Belgium: European Committee for Standardization (CEN), 2004. Search in Google Scholar

Saito T, Chijiwa N, Shinozaki H & Iwanami M: “Mitigating bond deterioration under cyclic loading and water exposure”. ACI Structural Journal, 117 (6), 2020, pp. 17-30. Search in Google Scholar

Krstulovic-Opara N, Haghayeghi A R, Haidar M & Krauss P D: “Use of conventional and high-performance steel-fiber reinforced concrete for bridge deck overlays”. Materials Journal, 92 (6), 1995, pp. 669-677. Search in Google Scholar

Lee M & Barr B: “An overview of the fatigue behaviour of plain and fibre reinforced concrete”. Cement and Concrete Composites, 26 (4), 2004, pp. 299-305. Search in Google Scholar

Grzybowski M & Meyer C: “Damage accumulation in concrete with and without fiber reinforcement”. Materials Journal, 90 (6), 1993, pp. 594-604. Search in Google Scholar

Paskova T & Meyer C: “Low-cycle fatigue of plain and fiber-reinforced concrete”. Materials Journal, 94 (4), 1997, pp. 273-286. Search in Google Scholar

Cachim P B: “Experimental and numerical analysis of the behaviour of structural concrete under fatigue loading with applications to concrete pavements”. University of Porto, Portugal, 1999, pp. 246. Search in Google Scholar

Do M-T, Chaallal O & Aïtcin P-C: “Fatigue behavior of high-performance concrete”. Journal of Materials in Civil Engineering, 5 (1), 1993, pp. 96-111. Search in Google Scholar

Johnston C D & Zemp R W: “Flexural fatigue performance of steel fiber reinforced concrete--influence of fiber content, aspect ratio, and type”. Materials Journal, 88 (4), 1991, pp. 374-383. Search in Google Scholar

Chang D-I & Chai W-K: “Flexural fracture and fatigue behavior of steel-fiber-reinforced concrete structures”. Nuclear Engineering and Design, 156 (1-2), 1995, pp. 201-207. Search in Google Scholar

Zhang B, Phillips D & Wu K: “Effects of loading frequency and stress reversal on fatigue life of plain concrete”. Magazine of concrete research, 48 (177), 1996, pp. 361-375. Search in Google Scholar

Zhang B, Phillips D & Wu K: “Further research on fatigue properties of plain concrete”. Magazine of concrete research, 49 (180), 1997, pp. 241-252. Search in Google Scholar

Shi X, Fwa T & Tan S: “Flexural fatigue strength of plain concrete”. Materials Journal, 90 (5), 1993, pp. 435-440. Search in Google Scholar

Bazant Z P & Schell W F: “Fatigue fracture of high-strength concrete and size effect”. ACI Materials Journal, 90, 1993, pp. 472-472. Search in Google Scholar

Oh B H: “Fatigue life distributions of concrete for various stress levels”. Materials Journal, 88 (2), 1991, pp. 122-128. Search in Google Scholar

Singh S & Kaushik S: “Flexural fatigue life distributions and failure probability of steel fibrous concrete”. Materials Journal, 97 (6), 2000, pp. 658-667. Search in Google Scholar

Ramakrishnan V, Wu G Y & Hosalli G: “Flexural fatigue strength, endurance limit and impact strength of fiber reinforced concretes”. Transportation Research Record, 1226, 1989, pp. 17-24. Search in Google Scholar

Nanni A: “Fatigue behaviour of steel fiber reinforced concrete”. Cement and Concrete Composites, 13 (4), 1991, pp. 239-245. Search in Google Scholar

Naaman A & Hammoud H: “Fatigue characteristics of high performance fiber-reinforced concrete”. Cement and Concrete Composites, 20 (5), 1998, pp. 353-363. Search in Google Scholar

Huang C & Zhao G: “Properties of steel fibre reinforced concrete containing larger coarse aggregate”. Cement and Concrete Composites, 17 (3), 1995, pp. 199-206. Search in Google Scholar

Carpinteri A, Lacidogna G, Corrado M & Di Battista E: “Cracking and crackling in concrete-like materials: A dynamic energy balance”. Engineering Fracture Mechanics, 155, 2016, pp. 130-144. Search in Google Scholar

Zhang B: “Relationship between pore structure and mechanical properties of ordinary concrete under bending fatigue”. Cement and concrete research, 28 (5), 1998, pp. 699-711. Search in Google Scholar

Shi J & Zhao Y: “Pore structure of concrete under fatigue load in areas with large temperature differences”. Structural Concrete, 23 (4), 2022, pp. 2132-2149. Search in Google Scholar

Pipilikaki P & Beazi-Katsioti M: “The assessment of porosity and pore size distribution of limestone Portland cement pastes”. Construction and Building Materials, 23 (5), 2009, pp. 1966-1970. Search in Google Scholar

Fan Z & Sun Y: “Detecting and evaluation of fatigue damage in concrete with industrial computed tomography technology”. Construction and Building Materials, 223, 2019, pp. 794-805. Search in Google Scholar

Vicente M A, González D C, Mínguez J, Tarifa M A, Ruiz G & Hindi R: “Influence of the pore morphology of high strength concrete on its fatigue life”. International Journal of Fatigue, 112, 2018, pp. 106-116. Search in Google Scholar

Blanks R & McNamara C: “Mass concrete tests in large cylinders”. in ACI Journal Proceedings, 1935. Search in Google Scholar

Zhang J, Li V C & Stang H: “Size effect on fatigue in bending of concrete”. Journal of materials in civil engineering, 13 (6), 2001, pp. 446-453. Search in Google Scholar

Tada H, Paris P C & Irwin G R: “The stress analysis of cracks”. Handbook, Del Research Corporation, 34 (1973), 1973. Search in Google Scholar

Assimacopoulos B M, Warner R F & Ekberg C E: “High speed fatigue tests on small specimens of plain concrete”. Journal of Prestressed Concrete Institute, 4 (2), 1959, pp. 53-70. Search in Google Scholar

Elsmeier K & Lohaus L: “Temperature development of concrete due to fatigue loading”. in Proceedings of 10th international PhD symposia in Civil Engineering, Quebec, 2014. Search in Google Scholar

Otto C, Elsmeier K & Lohaus L: “Temperature Effects on the Fatigue Resistance of High-Strength-Concrete and High-Strength-Grout”. in “High Tech Concrete: Where Technology and Engineering Meet”. Proceedings, 2017 fib Symposium, Netherlands, 2017, 2018, Springer. Search in Google Scholar

Hümme J, von der Haar C, Lohaus L & Marx S: “Fatigue behaviour of a normal‐strength concrete–number of cycles to failure and strain development”. Structural Concrete, 17 (4), 2016, pp. 637-645. Search in Google Scholar

Afaghi M, Klausen A & Øverli J A: “A Review on Fatigue Performance of Concrete Structures Part I: Loading Parameters, Current Prediction Models and Design Approaches”. Nordic Concrete Research (NCR) 68, 2023, pp. 105-126. Search in Google Scholar

eISSN:
2545-2819
Language:
English
Publication timeframe:
2 times per year
Journal Subjects:
Materials Sciences, Materials Processing