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Impact of Plastic and Steel Fibre Reinforcement on the Strength of Steel Anchors


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American Concrete Institute Committee (2001). Code requirements for nuclear safety related structures (ACI 349-01). Farmington Hills: American Concrete Institute.Search in Google Scholar

American Concrete Institute Committee (2008). Building code requirements for structural concrete and commentary (ACI 318-08). Farmington Hills: American Concrete Institute.Search in Google Scholar

Balaguru, N. & Shah, S. P. (1992). Fiber-reinforced cement composites. New York: McGraw-Hill.Search in Google Scholar

Bentur, A. & Mindess, S. (2006). Fibre reinforced cementitious composites. New York: Taylor & Francis.10.1201/9781482267747Search in Google Scholar

Brandt, A. M. (2009). Cement based composites: materials mechanical properties and performance. New York: Taylor & Francis.Search in Google Scholar

Dudek, D. & Kadela, M. (2016). Pull-out strength of resin anchors in non-cracked and cracked concrete and masonry substrates. Procedia Engineering, 161, 864–867.10.1016/j.proeng.2016.08.734Search in Google Scholar

Dudek, D. (2017). Influence of cyclic loading on pull-out strength of expansion anchors in cracked concrete (unpublished doctoral thesis). Instytut Techniki Budowlanej, Warszawa.Search in Google Scholar

Eligehausen, R. & Fuchs, W. (1992). Beton und Stahlbetonbau. Design of fastenings for use in concrete. Berlin: Ernst & Sohn.Search in Google Scholar

Eligehausen, R., Mallée, R. & Silva, J. F. (2006). Anchorage in concrete construction. Berlin: Ernst & Sohn.Search in Google Scholar

International Federation for Structural Concrete [fib] (2011). Design of anchorages in concrete: Guide to good practice. fib Bulletin 58. Lausanne: International Federation for Structural Concrete (Fédération internationale du béton).Search in Google Scholar

Fuchs, W., Eligehausen, R. & Breen, J. E. (1995). Concrete capacity design (CCD) approach for fastening to concrete. ACI Structural Journal, 92, 73–94.Search in Google Scholar

Hoehler, M. & Eligehausen, R. (2008). Behavior of anchors in cracked concrete under tension cycling at near-ultimate loads. ACI Structural Journal, 105, 71–91.Search in Google Scholar

Karmažínova, M., Melcher, J. & Štrba, M. (2009). Fastening of steel structural members to concrete using post-installed mechanical fasteners. In D. Lam (Ed.) ASCCS 2009: 9th International Conference on Steel Concrete Composite and Hybrid Structures. 8-10 July 2009 University of Leeds, Leeds, UK: proceedings. Singapore: Research Publishing Services [CD].Search in Google Scholar

Kim, S., Yu, C. & Yoon, Y. (2014). Sleeve type expansion anchor behavior in cracked and non-cracked concrete. Nuclear Engineering and Design, 1–3, 273–281.Search in Google Scholar

Maidl, B. R. (1995). Steel fibre reinforced concrete. Berlin: Erns & Sohn.Search in Google Scholar

Nilforoush, R., Nilsson, M., Elfgren, L., Ožbolt, J., Hof-mann, J. & Eligehausen, R. (2016a). Tensile capacity of anchor bolts in non-cracked concrete: influence of member thickness and anchor’s head size. ACI Structural Journal, 114, 1519–1530.10.14359/51689503Search in Google Scholar

Nilforoush, R., Nilsson, M., Elfgren, L., Ožbolt, J., Hof-mann, J. & Eligehausen, R. (2016b). Influence of surface reinforcement, member thickness and cracked concrete on tensile capacity of anchor bolts. ACI Structural Journal, 114, 1543–1556.10.14359/51689505Search in Google Scholar

Pregartner, T. (2009). Einführung mit Beispielen. Bemes-sung von Befestigungen in Beton. Berlin: Ernst & Sohn.Search in Google Scholar

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Architecture and Design, Architecture, Architects, Buildings, Cities, Regions, Landscape Architecture, Construction, Materials