Technische Universität Braunschweig, Institute for Particle Technology, Volkmaroder Straße 5, 38104 Braunschweig, Germany.
Chem Soc Rev. 2013 Sep 21;42(18):7660-7. doi: 10.1039/c3cs35455e. Epub 2013 Feb 7.
Planetary ball mills are well known and used for particle size reduction on laboratory and pilot scales for decades while during the last few years the application of planetary ball mills has extended to mechanochemical approaches. Processes inside planetary ball mills are complex and strongly depend on the processed material and synthesis and, thus, the optimum milling conditions have to be assessed for each individual system. The present review focuses on the insight into several parameters like properties of grinding balls, the filling ratio or revolution speed. It gives examples of the aspects of grinding and illustrates some general guidelines to follow for modelling processes in planetary ball mills in terms of refinement, synthesis' yield and contamination from wear. The amount of energy transferred from the milling tools to the powder is significant and hardly measurable for processes in planetary ball mills. Thus numerical simulations based on a discrete-element-method are used to describe the energy transfer to give an adequate description of the process by correlation with experiments. The simulations illustrate the effect of the geometry of planetary ball mills on the energy entry. In addition the imaging of motion patterns inside a planetary ball mill from simulations and video recordings is shown.
行星球磨机是众所周知的,并且几十年来在实验室和中试规模上用于颗粒尺寸减小,而在过去的几年中,行星球磨机的应用已经扩展到机械化学方法。行星球磨机内部的过程很复杂,并且强烈依赖于被处理的材料和合成,因此,必须针对每个单独的系统评估最佳的研磨条件。本综述重点介绍了对几个参数的深入了解,例如研磨球的特性、填充率或转速。它举例说明了研磨的各个方面,并为行星球磨机中的细化、合成产率和磨损污染等方面的建模过程提供了一些一般的指导原则。从研磨工具传递到粉末的能量非常大,对于行星球磨机中的过程来说几乎无法测量。因此,基于离散元法的数值模拟被用于描述能量传递,通过与实验的相关性给出对该过程的充分描述。这些模拟说明了行星球磨机的几何形状对能量输入的影响。此外,还展示了从模拟和视频记录中对行星球磨机内部运动模式的成像。