DOI QR코드

DOI QR Code

Experimental research on masonry mechanics and failure under biaxial compression

  • Xin, Ren (School of Civil Engineering, Xi'an University of Architecture and Technology) ;
  • Yao, Jitao (School of Civil Engineering, Xi'an University of Architecture and Technology) ;
  • Zhao, Yan (School of Civil Engineering, Harbin Institute of Technology)
  • Received : 2016.06.06
  • Accepted : 2016.09.09
  • Published : 2017.01.10

Abstract

This study aimed to develop a simple and effective method to facilitate the experimental research on mechanical properties of masonry under biaxial compressive stress. A series of tests on full-scale brick masonry panels under biaxial compression have been performed in limited principal stress ratios oriented at various angles to the bed joints. Failure modes of tested panels were observed and failure features were analyzed to reveal the mechanical behavior of masonry under biaxial compression. Based on the experimental data, the failure curve in terms of two orthotropic principal stresses has been presented and the failure criterion of brick masonry in the form of the tensor polynomial has been established, which indicate that the anisotropy for masonry is closely related to the difference of applied stress as well as the orientation of bed joints. Further, compared with previous failure curves and criteria for masonry, it can be found that the relative strength of mortar and block has a considerable effect on the degree of anisotropy for masonry. The test results demonstrate the validity of the proposed experimental method for the approximation of masonry failure under biaxial compressive stress and provide valuable information used to establish experimentally based methodologies for the improvement of masonry failure criteria.

Keywords

Acknowledgement

Supported by : Natural Science Foundation of China

References

  1. Andreaus, U. (1996), "Failure criteria for masonry panels under in-plane loading", J. Struct. Eng., 122(1), 37-46. https://doi.org/10.1061/(ASCE)0733-9445(1996)122:1(37)
  2. Asteris, P.G. (2013), "Unified yield surface for the nonlinear analysis of brittle anisotropic materials", Nonlin. Sci. Lett. A., 14(2), 46-56.
  3. Asteris, P.G. and Syrmakezis, C.A. (2009), "Non-dimensional masonry failure criterion under biaxial stress state", 11th Masonry Symposium, Toronto, Canada, June.
  4. Badarloo, B., Tasnimi, A.A. and Mohammadi, M.S. (2009), "Failure criteria of unreinforced grouted brick masonry based on a biaxial compression test", Scientia Iranica Transaction A Civil Eng., 16(6), 502-511.
  5. Dhanasekar, M., Page, A.W. and Kleeman, P.W. (1985), "The failure of brick masonry under biaxial stresses", Proc. Instn Civ. Engrs, Part 2, 79(2), 295-313.
  6. Liu, L., Tang, D. and Zhai, X. (2006), "Failure criteria for grouted concrete block masonry under biaxial compression", Adv. Struct. Eng., 9(2), 229-239. https://doi.org/10.1260/136943306776987001
  7. Liu, L., Tang, D., Zhai, X. and Ma, J. (2009), "Experimental study of grouted concrete block masonry's biaxial compressive strength", J. HUST, Urban Science Edition, 26(3), 18-22.
  8. Liu, L., Wang, Z., Zhai, C. and Zhai, X. (2010), "Constitutive law of grouted concrete block masonry in plain stress state", Struct. Eng. Mech., 34(3), 391-394. https://doi.org/10.12989/sem.2010.34.3.391
  9. Naraine, K. and Sinha, S. (1991), "Cyclic behavior of brick masonry under biaxial compression", J. Struct. Eng., 117(5), 1336-1355. https://doi.org/10.1061/(ASCE)0733-9445(1991)117:5(1336)
  10. Nazar, M. and Sinha, S. (2006), "Influence of bed joint orientation on interlocking grouted stabilized mud-flyash brick masonry under cyclic compressive loading", Struct. Eng. Mech., 24, 585-599. https://doi.org/10.12989/sem.2006.24.5.585
  11. Page, A.W. (1981), "The biaxial compressive strength of brick masonry", Proceedings of the Institution of Civil Engineers Part Research & Theory, 71(3), 893-906. https://doi.org/10.1680/iicep.1981.1825
  12. Plevris, V. and Asteris, P.G. (2014), "Modeling of masonry failure surface under biaxial compressive stress using Neural Networks", Constr. Build. Mater., 55(55), 447-461. https://doi.org/10.1016/j.conbuildmat.2014.01.041
  13. Senthivel, R. and Uzoegbo, H.C. (2004), "Failure criterion of unreinforced masonry under biaxial pseudo dynamic loading", J. South Afri. Inst. Civil Eng., 46(4), 20-24.
  14. Shan, R. and Tang, D. (1988), "Experimental study of the strength of brick masonry under biaxial compression", J. Harbin Univ. Civil Eng. Arch., 21(2), 39-46.
  15. Sun, Z. and Tang, D. (2010), "Failure criterion of grouted concrete block Masonry's biaxial strength", New Masonry Structural System and Wall Materials-Compilation of Research Results of Reinforced Block Masonry, July.
  16. Syrmakezis, C.A. and Asteris, P.G. (2001), "Masonry failure criterion under biaxial stress state", J. Mater. Civil Eng., 13(1), 58-64. https://doi.org/10.1061/(ASCE)0899-1561(2001)13:1(58)
  17. Tsai, S.W. and Wu, E.M. (1971), "A general failure criterion for anisotropic materials", J. Compos. Mater., 5, 58-80 https://doi.org/10.1177/002199837100500106
  18. Ural, A. and Dogangun, A. (2012), "Crack development depending on bond design for masonry walls under shear", Struct. Eng. Mech., 44(2), 257-266. https://doi.org/10.12989/sem.2012.44.2.257
  19. Ushaksaraei, R. and Pietruszczak, S. (2002), "Failure criterion for structural masonry based on critical plane approach", J. Eng. Mech., 128(7), 769-778. https://doi.org/10.1061/(ASCE)0733-9399(2002)128:7(769)
  20. Xin, R. and Zhang, C. (2016), "Experimental research on masonry structure strength under biaxial tensile-compressive stress", Eng. Mech., 33(10), 183-188.
  21. Yang, W.J., Li, Y. and Jiang, N. (2012), "The research of masonry failure criterion based on orthogonal anisotropic strength theory", Adv. Mater. Res., 450-451, 1646-1651. https://doi.org/10.4028/www.scientific.net/AMR.450-451.1646
  22. Yao, J., Xin, R. and Dong, Z. (2015) "Experimental method of biaxial mechanical properties for masonry structure", China, ZL201210261488.4.

Cited by

  1. Seismic behavior and shear strength of new-type fired perforated brick walls with high void ratio pp.2048-4011, 2018, https://doi.org/10.1177/1369433218802690
  2. Nonlinear analysis of contemporary and historic masonry vaulted elements externally strengthened by FRP vol.65, pp.5, 2017, https://doi.org/10.12989/sem.2018.65.5.611
  3. Experimental investigation into brick masonry arches' (vault and rib cover) behavior reinforced by FRP strips under vertical load vol.67, pp.5, 2018, https://doi.org/10.12989/sem.2018.67.5.481
  4. A simplified method for estimating the fundamental period of masonry infilled reinforced concrete frames vol.74, pp.6, 2017, https://doi.org/10.12989/sem.2020.74.6.821
  5. Seismic performance study on critically damaged masonry piers retrofitted using shear-compressive metal dampers vol.34, pp.None, 2017, https://doi.org/10.1016/j.istruc.2021.10.022