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Title of the project

The aim of the research project is to derive the design value of the post-cracking tensile strength for ultra-high performance fibre-reinforced concrete (UHPFRC). By taking the size effect of the scatter into account, sufficient reliability is to be ensured without compromising the efficiency of execution.

Pfeil in Beton

Project description

The aim of the research project is to derive the design value of the post-cracking tensile strength for ultra-high performance fibre-reinforced concrete (UHPFRC). By taking the size effect of the scatter into account, sufficient reliability is to be ensured without compromising the efficiency of execution.

Compared to (normal-strength) steel fibre-reinforced concrete covered by the DAfStb Guideline "Steel Fibre Reinforced Concrete", the fibre volume fraction in UHPFRC is significantly higher. Accordingly, the nominal contribution of the steel fibres to the overall load-bearing capacity is considerable, so that even for members subject to bending, no further reinforcement (e.g. in terms of shear reinforcement, splitting tensile reinforcement, etc.) is required in addition to (pretensioned) prestressing. This enables a significantly less massive construction, a high degree of prefabrication, an increased service life and high resource efficiency. However, implementing new kinds of design and execution in construction practice requires that the nominal performance of the cost-intensive steel fibres can actually be taken into account. In this respect, in addition to reliability, the ability of appropriate design for the material involved and the question of efficiency of execution are directly linked to the question of defining an appropriate design value of the post-cracking tensile strength. 

A particular difficulty in assessing a safety concept for steel fibre-reinforced concrete is that the spread of the post-cracking tensile strength depends largely on the size of the tensioned cross-sectional area: regarding small cross-sections, such as those used in building material testing, there is a high probability that the number of fibres in a section is very large or very small, resulting in very high coefficients of variation for the post-cracking tensile strength compared to other strength parameters. As the size of the cross-sectional area increases, it becomes increasingly unlikely that the number of fibres shows an extreme value.

Based on these fundamental considerations, the investigations within the research project will focus on quantifying the effects described. The data will then be used to derive a design value of the post-cracking tensile strength for UHPFRC . The concept will be based on the principles of the DAfStb Guideline "Steel Fiber Reinforced Concrete" and will take into account the size effect on the scatter. 

Publications

LEUTBECHER, T.; HECK, L., 2026. Safety concept for ultra-high-performance fiber-reinforced concrete subjected to tension | Sicherheitskonzept für zugbeanspruchten stahlfaserbewehrten ultrahochfesten Beton. In: Kongressunterlagen 70. BetonTage: Märkte für Menschen. Ulm, 10.-12. März 2026. Betonwerk und Fertigteil-Technik/Concrete Plant and Precast Technology. 92(3), 70. ISSN 0373-4331 

Everything at a glance
  • Icon Kalender

    Duration
    01.02.2025 - 01.02.2026 (Ongoing)

  • Icon Tag

    Research area
    Civil engineering

  • Icon Abzeichen Euro

    Funding
    German Committee for Reinforced Concrete (DAfStb): €175,000

     

     

Your contact person

Lennart Heck M.Sc.

Lennart Heck, M.Sc.

Room: PB-A 107
+49 271 740-2174
heck@bau.uni-siegen.de