Zhang Runqi, Huang Guojiao, Song Zezhuo, Zheng Jiaqiang, Wu Peng, Zhang Chenyang, Lu Yipin, Wang Zhengjie, Dai Chengjiang
School of Earth Sciences and Engineering, Hohai University, Nanjing 210098, China.
Geoscience Paris-Saclay, Paris-Saclay University, 91405 Orsay, France.
Polymers (Basel). 2023 Nov 25;15(23):4528. doi: 10.3390/polym15234528.
Natural sand has a loose and porous structure with low strength, and is prone to many geoengineering problems that cause huge losses. In this study, an organic polymer-polymer-fiber blend was used to improve the strength of sand. Using a series of laboratory and numerical simulation tests, researchers have investigated the microdamage behavior of an organic polymer and fiber-treated sand in various types of mechanical tests and explored the improvement mechanism. The results showed that the polymer- and fiber-treated sand enhanced the integrity and exhibited differential damage responses under different test conditions. The increase in polymer content induced uniform force transfer, leading to a wider range of particle motion and crack initiation, whereas the fibers adhered and confined the surrounding particles, inducing an arching force chain and dispersive/buckling cracking. Polymer- and fiber-treated sands increased their energy-carrying capacity and improved their energy release, which affected the damage characteristics. Organic polymers, fibers, and sand particles were wrapped around each other to form an effective interlocking structure, which enhances the integrity and mechanical properties of sand. This study provides novel ideas and methods in the polymer-fiber composite treatment of sand in the microscopic field.
天然砂具有松散多孔的结构,强度较低,容易引发许多地质工程问题,造成巨大损失。在本研究中,使用有机聚合物 - 聚合物 - 纤维混合物来提高砂的强度。通过一系列实验室和数值模拟试验,研究人员研究了有机聚合物和纤维处理后的砂在各种力学试验中的微观损伤行为,并探索了其增强机制。结果表明,聚合物和纤维处理后的砂增强了整体性,并在不同试验条件下表现出不同的损伤响应。聚合物含量的增加导致力的传递均匀,使颗粒运动和裂纹萌生范围更广,而纤维粘附并限制周围颗粒,形成拱形力链和分散/屈曲裂纹。聚合物和纤维处理后的砂提高了其能量承载能力并改善了能量释放,这影响了损伤特性。有机聚合物、纤维和砂粒相互缠绕形成有效的联锁结构,增强了砂的整体性和力学性能。本研究为微观领域砂的聚合物 - 纤维复合处理提供了新的思路和方法。