Open Access

Analysis of crack propagation in a “pull-out” test


Cite

Abaqus V 6.14.2 User’s Manual. (2014). Retrieved from https://www.sharcnet.ca/Software/Abaqus/6.14.2/v6.14/books/usb/default.htm?startat=pt04ch10s07at36.htmlAbaqus V 6.14.2 User’s Manual2014Retrieved fromhttps://www.sharcnet.ca/Software/Abaqus/6.14.2/v6.14/books/usb/default.htm?startat=pt04ch10s07at36.htmlSearch in Google Scholar

Bower, A. F. (2010). Applied mechanics of solids CRC Press.BowerA. F.2010Applied mechanics of solidsCRC Press10.1201/9781439802489Search in Google Scholar

Brencich, A. (2015). A post-installed insert for pull-out tests on concrete up to 70 MPa. Construction and Building Materials 95, 788–801. https://doi.org/10.1016/J.CONBUILDMAT.2015.07.055BrencichA.2015A post-installed insert for pull-out tests on concrete up to 70 MPaConstruction and Building Materials95788801https://doi.org/10.1016/J.CONBUILDMAT.2015.07.05510.1016/j.conbuildmat.2015.07.055Search in Google Scholar

Brown, W. F., & Srawley, J. E. (1966). Plane Strain Crack Toughness Testing of High Strength Metallic Materials Philadelphia: ASTM International. https://doi.org/10.1520/STP410-EBBrownW. F.&SrawleyJ. E.1966Plane Strain Crack Toughness Testing of High Strength Metallic MaterialsPhiladelphiaASTM Internationalhttps://doi.org/10.1520/STP410-EB10.1520/STP44663SSearch in Google Scholar

Contrafatto, L., & Cosenza, R. (2014). Behaviour of post-installed adhesive anchors in natural stone. Construction and Building Materials 68, 355–369. https://doi.org/10.1016/j.conbuildmat.2014.05.099ContrafattoL.&CosenzaR.2014Behaviour of post-installed adhesive anchors in natural stoneConstruction and Building Materials68355369https://doi.org/10.1016/j.conbuildmat.2014.05.09910.1016/j.conbuildmat.2014.05.099Search in Google Scholar

Elices, M., Guinea, G. V. G., Gómez, J., Planas, J., & Gomez, J. (2002). The cohesive zone model: advantages, limitations and challenges. Engineering Fracture Mechanics 69(2), 137–163. https://doi.org/10.1016/S0013-7944(01)00083-2ElicesM.GuineaG. V. G.GómezJ.PlanasJ.&GomezJ.2002The cohesive zone model: advantages, limitations and challengesEngineering Fracture Mechanics692137163https://doi.org/10.1016/S0013-7944(01)00083-210.1016/S0013-7944(01)00083-2Search in Google Scholar

European Technical Assessment ETA-99/0009 of 06/01/2015 for Hilti HDA and HDA-R anchor. (n.d.).European Technical Assessment ETA-99/0009 of 06/01/2015 for Hilti HDA and HDA-R anchor. (n.d.)Search in Google Scholar

Gontarz, J., & Podgórski, J. (2016). Explanation of the mechanism of destruction of the cylindrical sample in the Brazilian test. In M. Kleiber, T. Burczyński, K. Wilde, J. Górski, K. Winkelmann, & Ł. Smakosz (Eds.), Advances in Mechanics : Theoretical, Computational and Interdisciplinary Issues (pp. 479–483). Gdańsk: Boca Raton.GontarzJ.&PodgórskiJ.2016Explanation of the mechanism of destruction of the cylindrical sample in the Brazilian testKleiberM.BurczyńskiT.WildeK.GórskiJ.WinkelmannK.&SmakoszŁ.(Eds.)Advances in Mechanics : Theoretical, Computational and Interdisciplinary Issues479483GdańskBoca Raton10.1201/b20057-102Search in Google Scholar

Hasanpour, R., & Choupani, N. (2008). Mixed-Mode Study of Rock Fracture Mechanics by using the Modified Arcan Specimen Test. International Journal of Geotechnical and Geological Engineering 2(5), 716–721.HasanpourR.&ChoupaniN.2008Mixed-Mode Study of Rock Fracture Mechanics by using the Modified Arcan Specimen TestInternational Journal of Geotechnical and Geological Engineering2571672110.1016/j.ijrmms.2008.07.004Search in Google Scholar

Jonak, J., Kalita, M., Siegmund, M., & Podgórski, J. (2019). Raport NCN project RODEST nr 2015/19/B/ST10/02817JonakJ.KalitaM.SiegmundM.&PodgórskiJ.2019Raport NCN project RODEST nr 2015/19/B/ST10/02817Search in Google Scholar

Mier, J. G. M. van. (1996). Fracture processes of concrete CRC Press.MierJ. G. M. van.1996Fracture processes of concreteCRC PressSearch in Google Scholar

Mohammadi, S. (Soheil). (2008). Extended finite element method for fracture analysis of structures Blackwell Pub.MohammadiS2008Extended finite element method for fracture analysis of structuresBlackwell Pub10.1002/9780470697795Search in Google Scholar

Podgórski, J. (1984). Limit state condition and the dissipation funcion for isotropic materials. Arch. Mech 36(3), 323–342.PodgórskiJ.1984Limit state condition and the dissipation funcion for isotropic materialsArch. Mech363323342Search in Google Scholar

Podgórski, J. (1985). General Failure Criterion for Isotropic Media. Journ. Eng. Mech. ASCE 111(2), 188–201.PodgórskiJ.1985General Failure Criterion for Isotropic MediaJourn. Eng. Mech. ASCE111218820110.1061/(ASCE)0733-9399(1985)111:2(188)Search in Google Scholar

Podgórski, J. (2017). The criterion for determining the direction of crack propagation in a random pattern composites. Meccanica 52(8), 1923–1934. https://doi.org/10.1007 /s11012-016-0523-yPodgórskiJ.2017The criterion for determining the direction of crack propagation in a random pattern compositesMeccanica52819231934https://doi.org/10.1007/s11012-016-0523-y10.1007/s11012-016-0523-ySearch in Google Scholar

Wang, D., Wu, D., Ouyang, C., He, S., & Sun, X. (2017). Simulation analysis of large-diameter post-installed anchors in concrete. Construction and Building Materials 143, 558–565. https://doi.org/10.1016/j.conbuildmat.2017.03.149WangD.WuD.OuyangC.HeS.&SunX.2017Simulation analysis of large-diameter post-installed anchors in concreteConstruction and Building Materials143558565https://doi.org/10.1016/j.conbuildmat.2017.03.14910.1016/j.conbuildmat.2017.03.149Search in Google Scholar

eISSN:
2083-831X
Language:
English
Publication timeframe:
4 times per year
Journal Subjects:
Geosciences, other, Materials Sciences, Composites, Porous Materials, Physics, Mechanics and Fluid Dynamics