4.7 Article

Effect of inclination angle on hooked end steel fiber pullout behavior in ultra-high performance concrete

Journal

COMPOSITE STRUCTURES
Volume 201, Issue -, Pages 151-160

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.compstruct.2018.06.029

Keywords

Single-fiber pullout; Hooked end fiber; Ultra-high performance concrete; Inclination angle; Parametric evaluation; Pullout mechanism

Funding

  1. China Scholarship Council [201503170258]
  2. Eindhoven University of Technology
  3. Building Materials research group at TU Eindhoven: Rijkswaterstaat Grote Projecten en Onderhoud
  4. GranietImport Benelux
  5. Kijlstra Betonmortel
  6. Struyk Verwo
  7. Attero
  8. Enci
  9. Rijkswaterstaat Zee en Delta-District Noord
  10. Van Gansewinkel Minerals
  11. BTE
  12. V.d. Bosch Beton
  13. Selor
  14. GMB
  15. Icopal
  16. BN International
  17. Eltomation, Knuaf Gips
  18. Hess AAC Systems
  19. Kronos
  20. Joma
  21. CRH Europe Sustainable Concrete Centre
  22. Cement Beton Centrum
  23. Heros
  24. Inashco
  25. Keim
  26. Sirius International
  27. Boskalis
  28. NNERGY
  29. Millvision
  30. Sappi
  31. Studio Roex

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The bond relationship between the concrete matrix and steel fiber is a significant factor that affects the performance of ultra-high performance fiber reinforced concrete (UHPFRC). In the present research, pullout performances of hooked end fibers embedded in ultra-high performance concrete matrix under various inclination angles are systematically investigated, with special attention on fiber dimension and embedded length. Pullout load-slip curves are obtained and experimental observations including complete fiber pull-out, fiber rupture and matrix failure are analyzed in detail. The effects of the pullout angle are then studied quantitatively by parameter calculations and mechanism analysis. A new analytical model for evaluating the snubbing and spalling effects of the hooked end steel fiber is proposed and validated. It is shown that the influences of the inclination angle on the peak pullout load vary with different fiber types, embedded lengths and fiber diameters, which are also associated with the occurrences of the fiber rupture and the matrix failure. In addition, optical microscope and scanning electron microscopy observations at mesoscale are performed to further analyze the effects of orientation angle.

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