纳米Al2O3协同聚丙烯腈纤维增强地聚物材料力学性能研究

Study on the mechanical properties of nano Al2O3 synergistic polyacrylonitrile fiber-reinforced geopolymers

  • 摘要: 随着全球工业化和城市化的快速发展,固体废弃物数量急剧增加,固废堆放等问题亟待解决。以矿渣(SP)、粉煤灰(FA)和硅藻土(DE)作为胶凝材料,煤矸石(CG)作为细骨料,以氢氧化钠做激发剂,创制地聚物(GP)材料。为了提升地聚物(GP)强度和韧性,添加聚丙烯腈纤维(PAN)和纳米Al2O3(NA)进行协同强化。对养护28 d的试件进行强度测试,加入PAN纤维可以显著提高GP的强度,当选用12 mm纤维体积分数为0.3%时,强度提升最大,相较于未添加纤维试样抗压、抗折和劈拉强度分别提升了36.06%、66.21%和50.6%,达到了11.62 MPa、1.71 MPa和0.91 MPa。加入不同质量分数的纳米Al2O3(NA)协同PAN纤维改良能进一步提升GP强度,当NA添加量为2%时,强度提升最大,GP的抗压、抗折和劈拉强度进一步提升了17.7%、14.37%和18.3%,达到了13.69 MPa、1.958 MPa和1.08 MPa。利用SEM、TGA和MIP进行详细机制分析研究发现,PAN的加入在GP中形成了三维网状结构,可承受因塑性收缩引起的拉应力,从而阻止或减少裂缝的生成。而NA的加入则促进了水化反应,生成了更多的凝胶物质,附着在纤维表面,增加了纤维的粗糙度,使其与基体间的摩擦力更大,同时填补了孔隙,降低了孔隙率和有害孔的数量。纳米材料和纤维协同增强地聚物的力学性能研究较少,对固废材料在混凝土中的综合利用具有一定的科研指导价值。

     

    Abstract: With the rapid development of global industrialization and urbanization, the volume of solid waste has increased dramatically, and the issue of solid waste disposal is urgently needing to be addressed.GP material was created using slag (SP), fly ash (FA), and diatomaceous earth (DE) as cementitious materials, and coal gangue (CG) as fine aggregate. To enhance the strength and toughness of GP, polyacrylonitrile fibers (PAN) and nano Al2O3 (NA) were added for synergistic reinforcement. Strength tests were conducted on specimens cured for 28 days, and the addition of PAN fibers significantly improved the strength of GP. When a volume fraction of 0.3% of 12 mm fibers was selected, the strength improvement was the greatest. Compared with specimens without added fibers, the compressive, flexural, and splitting tensile strengths increased by 36.06%, 66.21%, and 50.6%, respectively, reaching 11.62 MPa, 1.71 MPa, and 0.91 MPa. The addition of nano Al2O3 (NA) with different mass fractions in synergy with PAN fibers can further enhance the strength of GP. When the NA addition amount is 2%, the strength improvement is the greatest, and the compressive, flexural, and splitting tensile strengths of GP are further increased by 17.7%, 14.37%, and 18.3%, reaching 13.69 MPa, 1.958 MPa, and 1.08 MPa. Through detailed mechanism analysis using SEM, TGA, and MIP, it was found that the addition of PAN forms a three-dimensional network structure in GP, which can withstand tensile stress caused by plastic shrinkage, thereby preventing or reducing the formation of cracks. However, the addition of NA promotes the hydration reaction, generates more gel materials, adheres to the fiber surface, increases the roughness of the fiber, increases the friction between the fiber and the matrix, fills the pores, and reduces the porosity and the number of harmful pores.Research on the synergistic enhancement of mechanical properties of geopolymers by using nanomaterials and fibers is relatively scarce, which has certain scientific research guiding value for the comprehensive utilization of solid waste materials in concrete.

     

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