Chen Yu, Yin Xuyang, Udoessiet Ndukeabasi Peter, Wang Jiale, Zhu Jiawen, Luo Shimei
Department of Civil Engineering, Faculty of Civil Engineering and Mechanics, Jiangsu University, Zhenjiang, People's Republic of China.
J Mol Model. 2024 Oct 2;30(11):360. doi: 10.1007/s00894-024-06164-z.
This research assesses the influence of polypropylene (PP) fibers, both homopolymer and hydroxylated (PPOH), on the tensile properties of calcium silicate hydrate (C-S-H) composites through molecular dynamics (MD) simulations. Our models explore C-S-H matrices integrated with PP and PPOH fibers at varying polymerization degrees. The results demonstrate that both PP and PPOH fibers significantly influence the tensile strength and Young's modulus of the composites. Notably, PPOH fibers contribute to more substantial mechanical enhancements than PP, attributed to the increased polarity and enhanced intermolecular interactions from the hydroxyl groups. The study reveals a nonlinear relationship between polymer additive content and mechanical performance, with optimal properties at a polymerization degree of 20. Additionally, stress-strain analysis indicates that PPOH composites exhibit superior ductility and fracture energy, particularly at polymerization degrees of 20, showing enhanced ultimate strain and fracture energy by up to 9.6% and 13.9%, respectively, compared to PP counterparts. These results highlight the crucial role of tailored polymer additive composition and chemical modifications in maximizing the mechanical efficacy of C-S-H-based materials, enhancing their durability and structural performance.
All MD simulations were conducted using LAMMPS. The models employed a combination of Clayff and Cvff force fields. During the entire tensile simulation, the system was configured under the NPT ensemble at 300 K.
本研究通过分子动力学(MD)模拟评估了均聚物聚丙烯(PP)纤维和羟基化聚丙烯(PPOH)纤维对硅酸钙水合物(C-S-H)复合材料拉伸性能的影响。我们的模型探索了不同聚合度下与PP和PPOH纤维结合的C-S-H基体。结果表明,PP和PPOH纤维均显著影响复合材料的拉伸强度和杨氏模量。值得注意的是,PPOH纤维比PP对机械性能的增强作用更大,这归因于羟基增加了极性并增强了分子间相互作用。该研究揭示了聚合物添加剂含量与机械性能之间的非线性关系,在聚合度为20时性能最佳。此外,应力-应变分析表明,PPOH复合材料表现出优异的延展性和断裂能,特别是在聚合度为20时,与PP复合材料相比,极限应变和断裂能分别提高了9.6%和13.9%。这些结果突出了定制聚合物添加剂组成和化学改性在最大化C-S-H基材料机械效能、提高其耐久性和结构性能方面的关键作用。
所有MD模拟均使用LAMMPS进行。模型采用了Clayff和Cvff力场的组合。在整个拉伸模拟过程中,系统在300 K的NPT系综下配置。