Lou Zhaoyang, Cheng Chen, Cui Yingqi, Tian Hao
Department of Radiation Oncology, Affiliated Cancer Hospital of Zhengzhou University, Henan Cancer Hospital, Zhengzhou, China.
Institute of Atomic and Molecular Physics, Sichuan University, Chengdu, China.
J Mol Model. 2022 Jun 16;28(7):189. doi: 10.1007/s00894-022-05177-w.
Correlations of the shear viscosity of quartz nanofluids with particle concentration, particle size, and temperature were investigated with molecular dynamics simulations and density functional theory (DFT) calculations. A new understanding to the experimentally concluded correlations was addressed in terms of microscopic particle-water interfacial interaction in three aspects. First, the viscosity of quartz nanofluids at different particle concentrations, particle sizes, and temperatures were simulated using the equilibrium molecular dynamics simulations method to reproduce the experimental observations. At the same particle size, the nanofluid viscosity decreases significantly with temperature and increases with nanoparticle volume concentration, and at the same volume concentration, the nanofluid viscosity increases with the decrease of particle size. Second, DFT calculations confirm a stronger particle-water interaction than that among water molecules. The important role of particle-water interaction in the viscosity determination of nanofluids was revealed. Finally, a correlation was proposed to fit the simulated results and compared with earlier two-parameter correlations. One parameter in the correlation is indeed a constant, while the other is a function of SiO-water interaction energy. Our study proposes a physical basis for the experimentally concluded correlations on the viscosity of nanofluids.
通过分子动力学模拟和密度泛函理论(DFT)计算,研究了石英纳米流体的剪切粘度与颗粒浓度、粒径和温度之间的相关性。从微观颗粒 - 水界面相互作用的三个方面,对实验得出的相关性有了新的认识。首先,使用平衡分子动力学模拟方法模拟了不同颗粒浓度、粒径和温度下石英纳米流体的粘度,以重现实验观察结果。在相同粒径下,纳米流体粘度随温度显著降低,随纳米颗粒体积浓度增加而增加;在相同体积浓度下,纳米流体粘度随粒径减小而增加。其次,DFT计算证实颗粒 - 水相互作用比水分子之间的相互作用更强,揭示了颗粒 - 水相互作用在纳米流体粘度测定中的重要作用。最后,提出了一个相关性来拟合模拟结果,并与早期的双参数相关性进行比较。该相关性中的一个参数确实是常数,而另一个是SiO - 水相互作用能的函数。我们的研究为实验得出的纳米流体粘度相关性提出了物理基础。