A new type of composite voided slab, the TUBEDECK (TD), which utilizes the structural function of profiled steel decks, has recently been proposed. Previous studies have confirmed that the flexural strength of TD slabs can be calculated based on the full composite contribution of the steel deck, but for long-span flexural members, the deflection serviceability requirement is often dominant. Herein, we derived a novel deflection prediction approach using the results of flexural tests on slab specimens, focusing on TD slabs. First, deflection prediction based on modifications of the current code was proposed. Results revealed that TD slabs exhibited smaller long-term deflections and at least 10% longer maximum span lengths than solid slabs, indicating their greater efficiency. Second, a novel rational method was derived for predicting deflections without computing the effective moment of inertia. The ultimate deflections predicted by the proposed method correlated closely with the deflection under maximum bending moments. To calculate immediate deflections, variation functions for the concrete strain at the extreme compression fiber and neutral axis depth were assumed with predictions in good agreement with experiments. The proposed procedure has important implications in highlighting a new perspective on the deflection prediction of reinforced concrete and composite flexural members.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7829972PMC
http://dx.doi.org/10.3390/ma14020421DOI Listing

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Article Synopsis
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  • Seven beams were created with different reinforcement ratios, heights, and materials, and subjected to concentrated loading to analyze their behavior and compare findings with existing empirical formulas.
  • Results showed that cracking and deflection are influenced by reinforcement and material combinations, with modified empirical formulas proving to be largely applicable, though some adjustments were still needed to align experimental findings.
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