Dang Cong-Thuat, Pham My, Dinh Ngoc-Hieu
Faculty of Civil Engineering, The University of Danang-University of Science and Technology, 54 Nguyen Luong Bang, Danang 550000, Vietnam.
Materials (Basel). 2023 Jun 19;16(12):4457. doi: 10.3390/ma16124457.
This paper aims to experimentally study the compressive and flexural characteristics of cement-based composites developed for fabricating thin, lightweight, and high-performance components of buildings. Expanded hollow glass particles with a 0.25-0.5 mm particle size were used as lightweight fillers. Hybrid fibers made of amorphous metallic (AM) and nylon fibers were used to reinforce the matrix with a total volume fraction of 1.5%. The primary test parameters included the expanded glass-to-binder (EG/B) ratio, the fiber volume content ratio, and the length of the nylon fibers in the hybrid system. The experimental results demonstrate that the EG/B ratio and the volume dosage of the nylon fibers exhibited insignificant effects on the compressive strength of the composites. Additionally, the utilization of nylon fibers with a longer length of 12 mm resulted in a slight compressive strength reduction of approximately 13% compared to that of the 6 mm nylon fibers. Further, the EG/G ratio exhibited an insignificant effect on the flexural behavior of lightweight cement-based composites in terms of their initial stiffness, strength, and ductility. Meanwhile, the increasing AM fiber volume fraction in the hybrid system from 0.25% to 0.5% and 1.0% improved flexural toughness by 42.8% and 57.2%, respectively. In addition, the nylon fiber length significantly affected the deformation capacity at the peak load and the residual strength in the post-peak stage.
本文旨在通过实验研究用于制造建筑物薄型、轻质和高性能部件的水泥基复合材料的压缩和弯曲特性。使用粒径为0.25 - 0.5毫米的膨胀中空玻璃颗粒作为轻质填料。由非晶态金属(AM)和尼龙纤维制成的混杂纤维用于增强基体,总体积分数为1.5%。主要测试参数包括膨胀玻璃与粘结剂(EG/B)的比例、纤维体积含量比例以及混杂体系中尼龙纤维的长度。实验结果表明,EG/B比例和尼龙纤维的体积用量对复合材料的抗压强度影响不显著。此外,与6毫米尼龙纤维相比,使用长度为12毫米的尼龙纤维导致抗压强度略有降低,约为13%。进一步研究发现,EG/G比例对轻质水泥基复合材料的弯曲性能,包括其初始刚度、强度和延性,影响不显著。同时,混杂体系中AM纤维体积分数从0.25%增加到0.5%和1.0%时,弯曲韧性分别提高了42.8%和57.2%。此外,尼龙纤维长度对峰值荷载下的变形能力和峰值后阶段的残余强度有显著影响。