DOI: 10.3390/ma19153287 ISSN: 1996-1944

Post-Cracking Flexural Performance of HTPP Fiber-Reinforced EPS Concrete and Its Application to Wind-Loaded Exterior Wall Panels

Huadong Cui, Yuhao Shang, Hanying Shou, Leiting Ye, Ji Yuan, Peixuan He, Ruige Li, Haijie He, Zihang Ding, Ziyu Mao

Expanded polystyrene concrete (EPSC) offers low density and thermal insulation but is limited by brittle flexural failure. This study evaluates whether high-toughness modified polypropylene (HTPP) fibers can improve the post-cracking response of EPSC and translate the material-level gains into exterior wall-panel design under wind loading. Six mixtures containing 0, 0.3, 0.6, 0.9, 1.2, and 1.5 vol% HTPP fibers were prepared. Compressive tests, four-point bending tests, and scanning electron microscopy were conducted. Flexural toughness was assessed using average residual flexural strength together with the Nemkumar, literature-based, JSCE-SF4, and modified PCER methods. The mechanical indices generally increased and then declined as fiber content rose, with the best overall performance at 0.9 vol%. Relative to plain EPSC, this mixture increased compressive strength by 21.5%, flexural strength by 277.2%, and average residual flexural strength by 681.3%. The four toughness evaluation approaches produced consistent trends and showed that HTPP fibers most strongly improved post-peak load retention and energy absorption. Microscopic observations indicated that fiber bridging, crack-path deflection, stress transfer, and interfacial energy dissipation contributed to the enhanced toughness, whereas excessive fiber addition reduced the benefits. Using the measured residual capacity in a wind-load design model showed that HTPP fiber reinforcement can enlarge the allowable unsupported span of EPSC exterior wall panels. These findings identify an effective fiber dosage and provide a basis for the structural use of lightweight EPSC panels.

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