Mat Serudin Anisah, Othuman Mydin Md Azree, Mohd Nawi Mohd Nasrun, Deraman Rafikullah, Sari Marti Widya, Abu Hashim Mohammad Firdaus
School of Housing, Building and Planning, Universiti Sains Malaysia, Minden 11800, Penang, Malaysia.
Disaster Management Institute (DMI), School of Technology Management and Logistics, Universiti Utara Malaysia, Sintok 06010, Kedah, Malaysia.
Materials (Basel). 2022 Aug 24;15(17):5825. doi: 10.3390/ma15175825.
Foamcrete is fabricated by combining mortar slurry and constant foam. Owing to the existence of air entrained in its cementitious matrix, foamcrete is tremendously brittle compared to normal-strength concrete. The addition of synthetic and natural plant fibers demonstrates an enhancement to foamcrete's mechanical performance yet exerts a harmful effect on long-term performance. Depreciation of natural plant fibers and corrosion of synthetic fibers impact the lifespan and durability properties of foamcrete. Hence, this study aims to investigate the mechanical properties and mode of failures of foamcrete reinforced with fiberglass mesh (FM). The parameters assessed were the compression, flexural, and splitting tensile strengths of 1100 kg/m density foamcrete confined with various layers of 145 g/m of FM. The optimal foamcrete mechanical properties enhancement was attained with three-layer jacketing. Notable augmentations of 108% in the compressive strength, 254% in flexural strength, and 349% in splitting tensile strength were achieved in comparison to the control specimens at day 28. The control foamcrete samples under compressive, flexural, and tensile loads encountered brittle failure in comparison to the confined foamcrete. The mode of failure under the tensile load indicates that only a slight crack occurred at the upper side and a perpendicular mark at the lateral section of the foamcrete with one to three layers of FM jacketing. Thus, the jacketing system of foamcrete with FM enhances the behavior and load carrying capacity of foamcrete to the extent of preventing the propagation of cracks.
泡沫混凝土是通过将砂浆和稳定的泡沫混合制成的。由于其胶凝基质中存在夹带的空气,与普通强度混凝土相比,泡沫混凝土非常脆。添加合成纤维和天然植物纤维可提高泡沫混凝土的力学性能,但对其长期性能有有害影响。天然植物纤维的降解和合成纤维的腐蚀会影响泡沫混凝土的使用寿命和耐久性。因此,本研究旨在研究用玻璃纤维网(FM)增强的泡沫混凝土的力学性能和破坏模式。评估的参数是密度为1100 kg/m³的泡沫混凝土在使用不同层数145 g/m²的FM约束下的抗压强度、抗弯强度和劈裂抗拉强度。三层包覆可实现泡沫混凝土力学性能的最佳增强。与28天龄期的对照试件相比,抗压强度显著提高了108%,抗弯强度提高了254%,劈裂抗拉强度提高了349%。与约束后的泡沫混凝土相比,对照泡沫混凝土试件在抗压、抗弯和抗拉荷载下发生脆性破坏。拉伸荷载下的破坏模式表明,对于有一到三层FM包覆的泡沫混凝土,仅在上侧出现轻微裂缝,在横向截面出现垂直痕迹。因此,FM对泡沫混凝土的包覆系统增强了泡沫混凝土的性能和承载能力,防止了裂缝的扩展。