价值有限无序流体的扩散,粘度和线性形学
Samuel S Gomez1, Lorenzo Rovigatti2
1Faculty of Mathematics, Natural Sciences, and Materials Engineering: Institute of Physics, University of Augsburg, Universitätsstraße 1, 86159 Augsburg, Germany.
The Journal of chemical physics
|May 8, 2024
概括
不一致的粒子的动力学由结合控制,在低温下表现出激活的行为. 斯托克斯-爱因斯坦关系持有纠正,和粒子组成调整.
科学领域:
- 软物质物理学 软物质物理学
- 材料科学 材料科学 材料科学
- 计算化学的计算化学
背景情况:
- 在材料科学中,分片粒子的无序系统至关重要.
- 了解它们的动态和质是设计新材料的关键.
研究的目的:
- 调查不齐的粒子系统的动态和线性形学.
- 分析价值,温度和结合对系统行为的影响.
- 验证理论模型和实验数据.
主要方法:
- 无序的零散粒子系统的数值模拟.
- 扩散常数和粘度的计算.
- 对存储和损失模块的分析.
主要成果:
- 系统动态被束于结合,在低温下表现出激活的行为.
- 斯托克斯-爱因斯坦关系在有限大小的校正和低温分解下是有效的.
- 通过粒子组成调整风湿反应,显示功率定律的频率依赖性.
结论:
- 结合决定了不齐的粒子系统中的动态.
- 斯托克斯-爱因斯坦关系在价值有限系统中需要仔细考虑.
- 不一致的颗粒系统为先进的材料设计提供可调节的质性质.
相关概念视频
Viscosity
5.8K
When water is poured into a glass, it falls freely and quickly, whereas if honey or maple syrup is poured over a pancake, it flows slowly and sticks to the surface of the container. This difference in the flow of different kinds of liquids arises due to the fluid friction between the liquid layers and the liquid and the surrounding material. This property of fluids is called fluid viscosity. In this example, water has a lower viscosity than honey and maple syrup.
The SI unit of viscosity is...
The SI unit of viscosity is...
5.8K
Surface Tension, Capillary Action, and Viscosity
27.7K
Surface Tension
The various IMFs between identical molecules of a substance are examples of cohesive forces. The molecules within a liquid are surrounded by other molecules and are attracted equally in all directions by the cohesive forces within the liquid. However, the molecules on the surface of a liquid are attracted only by about one-half as many molecules. Because of the unbalanced molecular attractions on the surface molecules, liquids contract to form a shape that minimizes the number...
The various IMFs between identical molecules of a substance are examples of cohesive forces. The molecules within a liquid are surrounded by other molecules and are attracted equally in all directions by the cohesive forces within the liquid. However, the molecules on the surface of a liquid are attracted only by about one-half as many molecules. Because of the unbalanced molecular attractions on the surface molecules, liquids contract to form a shape that minimizes the number...
27.7K
Viscosity of Fluid
392
Viscosity measures the resistance a fluid offers to flow and deformation. It results from internal friction between layers of fluid moving relative to one another. Dynamic viscosity, denoted by the Greek letter mu (μ), quantifies the force needed to move one fluid layer over another. For Newtonian fluids like water and air, the relationship between the shearing stress and the rate of shearing strain is linear, meaning their viscosity remains constant regardless of the applied stress.
392
Characteristics of Fluids
3.9K
When a force is applied parallel to the top surface of a solid, it resists the applied force due to the internal frictional forces between the layers of the solid known as shearing resistance. However, when the force is removed, the shearing forces restore the original shape of the solid. Other deformation forces also cause temporary changes in shape if the forces are not beyond a threshold magnitude. Solids tend to retain their shape, making the study of their rest and motion easier. Beyond...
3.9K
Van der Waals Interactions
63.8K
Atoms and molecules interact with each other through intermolecular forces. These electrostatic forces arise from attractive or repulsive interactions between particles with permanent, partial, or temporary charges. The intermolecular forces between neutral atoms and molecules are ion–dipole, dipole–dipole, and dispersion forces, collectively known as van der Waals forces.
63.8K
Behavior of Gas Molecules: Molecular Diffusion, Mean Free Path, and Effusion
29.0K
Although gaseous molecules travel at tremendous speeds (hundreds of meters per second), they collide with other gaseous molecules and travel in many different directions before reaching the desired target. At room temperature, a gaseous molecule will experience billions of collisions per second. The mean free path is the average distance a molecule travels between collisions. The mean free path increases with decreasing pressure; in general, the mean free path for a gaseous molecule will be...
29.0K


