GRASP, CESAM - Physics Department, University of Liège, B-4000, Liège, Belgium.
F.R.S.-FRNS, B-1000, Bruxelles, Belgium.
Sci Rep. 2017 Aug 10;7(1):7778. doi: 10.1038/s41598-017-07917-y.
The influence of a magnetic field on the aggregation process of superparamagnetic colloids has been well known on short time for a few decades. However, the influence of important parameters, such as viscosity of the liquid, has received only little attention. Moreover, the equilibrium state reached after a long time is still challenging on some aspects. Indeed, recent experimental measurements show deviations from pure analytical models in extreme conditions. Furthermore, current simulations would require several years of computing time to reach equilibrium state under those conditions. In the present paper, we show how viscosity influences the characteristic time of the aggregation process, with experimental measurements in agreement with previous theories on transient behaviour. Afterwards, we performed numerical simulations on equivalent systems with lower viscosities. Below a critical value of viscosity, a transition to a new aggregation regime is observed and analysed. We noticed this result can be used to reduce the numerical simulation time from several orders of magnitude, without modifying the intrinsic physical behaviour of the particles. However, it also implies that, for high magnetic fields, granular gases could have a very different behaviour from colloidal liquids.
磁场对超顺磁胶体聚集过程的影响在几十年的短时间内已经得到了很好的认识。然而,对于一些重要参数的影响,如液体的粘度,却很少受到关注。此外,在很长一段时间后达到的平衡状态在某些方面仍然具有挑战性。事实上,最近的实验测量结果表明,在极端条件下,与纯分析模型存在偏差。此外,在这些条件下,要达到平衡状态,目前的模拟需要数年的计算时间。在本文中,我们展示了粘度如何影响聚集过程的特征时间,实验测量结果与瞬态行为的先前理论一致。之后,我们在具有较低粘度的等效系统上进行了数值模拟。在粘度的临界值以下,观察到并分析了向新的聚集状态的转变。我们注意到,这个结果可以用来将数值模拟时间从几个数量级减少,而不改变颗粒的内在物理行为。然而,这也意味着,对于高强度磁场,颗粒气体的行为可能与胶体液体有很大的不同。