Richard Patrick, Nicodemi Mario, Delannay Renaud, Ribière Philippe, Bideau Daniel
Groupe Matière Condensée et Matériaux, UMR CNRS 6626, Université de Rennes I, 35042 Rennes Cedex, France.
Nat Mater. 2005 Feb;4(2):121-8. doi: 10.1038/nmat1300.
Granular materials are of substantial importance in many industrial and natural processes, yet their complex behaviours, ranging from mechanical properties of static packing to their dynamics, rheology and instabilities, are still poorly understood. Here we focus on the dynamics of compaction and its 'jamming' phenomena, outlining recent statistical mechanics approaches to describe it and their deep correspondence with thermal systems such as glass formers. In fact, granular media are often presented as ideal systems for studying complex relaxation towards equilibrium. Granular compaction is defined as an increase of the bulk density of a granular medium submitted to mechanical perturbation. This phenomenon, relevant in many industrial processes and widely studied by the soil mechanics community, is simple enough to be fully investigated and yet reveals all the complex nature of granular dynamics, attracting considerable attention in a broad range of disciplines ranging from chemical to physical sciences.
颗粒材料在许多工业和自然过程中都具有至关重要的意义,然而,它们复杂的行为,从静态堆积的力学性能到动力学、流变学和不稳定性,目前仍知之甚少。在这里,我们聚焦于压实动力学及其“堵塞”现象,概述了最近用于描述它的统计力学方法,以及它们与诸如玻璃形成体等热系统的深刻对应关系。事实上,颗粒介质常被视为研究向平衡态复杂弛豫的理想系统。颗粒压实被定义为颗粒介质在受到机械扰动时体密度的增加。这种现象在许多工业过程中都很重要,并且受到土壤力学界的广泛研究,它足够简单,可以进行全面研究,但却揭示了颗粒动力学的所有复杂本质,在从化学到物理科学等广泛学科中引起了相当大的关注。