Tan Yan, Long Junyu, Xiong Wei, Chen Xingxiang, Zhao Ben
Department of Architecture and Environment, Hubei University of Technology, Wuhan 430068, China.
Department of Architecture and Engineering, Wuhan City Polytechnic, Wuhan 430064, China.
Polymers (Basel). 2022 Sep 27;14(19):4054. doi: 10.3390/polym14194054.
In order to study the effect of polypropylene fibers on the frost resistance of natural sand and machine-made sand concrete, polypropylene fibers (PPF) of different volumes and lengths were mixed into natural sand and machine-made sand concrete, respectively. The freeze-thaw cycle test was carried out on polypropylene-fiber-impregnated natural sand concrete (PFNSC) and polypropylene-fiber-impregnated manufactured sand concrete (PFMSC), respectively, and the apparent structural changes before and after freezing and thawing were observed. Its strength damage was analyzed. A freeze-thaw damage model and a response surface model (RSM) were established used to analyze the antifreeze performance of PFMSC, and the effects of the fiber content, fiber length, and freeze-thaw times on the antifreeze performance of PFMSC were studied. The results show that with the increase in the number of freeze-thaw cycles, the apparent structures of the PFMSC gradually deteriorated, the strength decreased, and the degree of freeze-thaw damage increased. According to the strength damage model, the optimum volume of PPF for the PFNSC specimens is 1.2%, and the optimum volume of PPF for the PFMSC specimens is 1.0%. According to the prediction of RSM, PFNSC can maintain good antifreeze performance within 105 freeze-thaw cycles, and when the PPF length is 11.8 mm, the antifreeze performance of PFNSC reaches the maximum, its maximum compressive strength value is 33.8 MPa, and the split tensile strength value is 3.1 MPa; PFMSC can maintain a good antifreeze performance within 96 freeze-thaw cycles. When the length of PPF is 9.1 mm, the antifreeze performance of PFMSC reaches the maximum, its maximum compressive strength value is 45.8 MPa, and its split tensile strength value is 3.2 MPa. The predicted values are in good agreement with the measured values, and the model has high reliability.
为研究聚丙烯纤维对天然砂和机制砂混凝土抗冻性的影响,将不同体积和长度的聚丙烯纤维(PPF)分别掺入天然砂和机制砂混凝土中。分别对掺聚丙烯纤维的天然砂混凝土(PFNSC)和掺聚丙烯纤维的机制砂混凝土(PFMSC)进行冻融循环试验,观察冻融前后的表观结构变化,并分析其强度损伤。建立了冻融损伤模型和响应面模型(RSM)来分析PFMSC的抗冻性能,研究了纤维含量、纤维长度和冻融次数对PFMSC抗冻性能的影响。结果表明,随着冻融循环次数的增加,PFMSC的表观结构逐渐劣化,强度降低,冻融损伤程度增加。根据强度损伤模型,PFNSC试件的PPF最佳体积为1.2%,PFMSC试件的PPF最佳体积为1.0%。根据RSM预测,PFNSC在105次冻融循环内可保持良好的抗冻性能,当PPF长度为11.8 mm时,PFNSC的抗冻性能达到最大值,其最大抗压强度值为33.8 MPa,劈裂抗拉强度值为3.1 MPa;PFMSC在96次冻融循环内可保持良好的抗冻性能。当PPF长度为9.1 mm时,PFMSC的抗冻性能达到最大值,其最大抗压强度值为45.8 MPa,劈裂抗拉强度值为3.2 MPa。预测值与实测值吻合良好,模型具有较高的可靠性。