Hongyu He, Lulu Li, Ruhan Ya, Hong Liu, Bin Luo, Zhipeng Li and Wenhuai Tian
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Results revealed that as the viscosity of vinyl silicone oil increased, the mean square displacement, fractional free volume, diffusion coefficient, and solubility parameter of the system decreased, whereas its larger radius of gyration increased. Moreover, the radial distribution function showed a weaker relative interaction between molecular chains. The calculated binding energy demonstrated that the system had better compatibility at a viscosity of 0.45 Pa s. This study provided a deeper insight into the relation between the viscosity of vinyl silicone oil and mechanical properties of the SRF. As the viscosity of vinyl silicone oil increased, the changing trend in MD simulation results of elastic modulus, shear modulus, bulk modulus, and Poisson's ratio was consistent with the experimental results. 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引用次数: 0
摘要
通过分子动力学(MD)模拟,从所有原子分子的角度研究了不同乙烯基硅油粘度下硅橡胶泡沫(SRF)的分子运动轨迹。根据均方位移、扩散系数、结合能、溶解度参数、径向分布函数和回旋半径,确定了不同粘度的乙烯基硅油对分子间相互作用、相容性和聚集度的影响。此外,还通过实验验证了 SRF 的机械性能。结果表明,随着乙烯基硅油粘度的增加,体系的均方位移、自由体积分数、扩散系数和溶解度参数降低,而回旋半径增大。此外,径向分布函数显示分子链之间的相对相互作用减弱。计算得出的结合能表明,该体系在粘度为 0.45 Pa s 时具有更好的相容性。这项研究有助于深入了解乙烯基硅油的粘度与 SRF 机械性能之间的关系。随着乙烯基硅油粘度的增加,弹性模量、剪切模量、体积模量和泊松比的 MD 模拟结果的变化趋势与实验结果一致。MD 模拟可为设计具有理想性能的 SRF 提供理论预测和科学依据。
Molecular dynamics simulation and experimental verification of the effects of vinyl silicone oil viscosity on the mechanical properties of silicone rubber foam†
The molecular motion trajectories of silicone rubber foam (SRF) at various vinyl silicone oil viscosities were studied via molecular dynamics (MD) simulation from the perspective of all atomic molecules. The influence of different viscosities of vinyl silicone oil on interaction, compatibility, and aggregation degree of molecules was determined based on the mean square displacement, diffusion coefficient, binding energy, solubility parameter, radial distribution function, and radius of gyration. The mechanical properties of the SRF were also experimentally verified. Results revealed that as the viscosity of vinyl silicone oil increased, the mean square displacement, fractional free volume, diffusion coefficient, and solubility parameter of the system decreased, whereas its larger radius of gyration increased. Moreover, the radial distribution function showed a weaker relative interaction between molecular chains. The calculated binding energy demonstrated that the system had better compatibility at a viscosity of 0.45 Pa s. This study provided a deeper insight into the relation between the viscosity of vinyl silicone oil and mechanical properties of the SRF. As the viscosity of vinyl silicone oil increased, the changing trend in MD simulation results of elastic modulus, shear modulus, bulk modulus, and Poisson's ratio was consistent with the experimental results. The MD simulations can promote theoretical predictions and scientific basis for the design of the SRF with desired performances.
期刊介绍:
An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.