Agitator mill
12251703 · 2025-03-18
Assignee
Inventors
- Udo Enderle (Arzberg, DE)
- Thomas Goller (Schwarzenbach/Saale, DE)
- Holger Möschl (Selb, DE)
- Witali Sudermann (Marktredwitz, DE)
- Lars-Peter Weiland (Schönwald, DE)
Cpc classification
International classification
Abstract
An agitator mill including a grinding chamber containing grinding bodies and an agitator shaft, which revolves therein around a horizontal axis and which supports several grinding disks, which are connected thereto and which are spaced apart from one another in the direction of the horizontal axis and which move the grinding bodies, wherein grinding disks preferably in each case have slits or apertures, wherein adjacent grinding disks are arranged on the agitator shaft so that the ratio of the grinding chamber length to the radial grinding chamber height is greater than or equal to 2:3, and that the radial distance between the outer jacket surface of the grinding disks and the inner wall of the grinding container limiting the grinding chamber is more than 20% of the radial grinding chamber height.
Claims
1. An agitator mill comprising: a grinding container limiting a grinding chamber containing grinding bodies and an agitator shaft, which revolves therein around a horizontal axis and has a plurality of grinding disks connected thereto, the grinding disks are spaced apart from one another in a direction of the horizontal axis and cause the grinding bodies to move, wherein each grinding disk has slits or apertures, wherein adjacent ones of the grinding disks are arranged on the agitator shaft so that a ratio of a grinding chamber length to a radial grinding chamber height is greater than or equal to 2:3, and so that a radial distance between an outer jacket surface of the grinding disks and an inner wall of the grinding container is more than 20% of the radial grinding chamber height, wherein the agitator shaft forms a rotor disk on an end of the agitator shaft, the rotor disk comprises rotor bars protruding from the rotor disk in a longitudinal direction of the agitator shaft and forming openings between adjacent ones of the rotor bars, and the rotor disk further comprises recesses in fluid communication with the openings, wherein the recesses are smaller than the openings at least in a circumferential direction of the rotor disk.
2. The agitator mill according to claim 1, wherein the grinding disks have a plurality of blades arranged one behind another in a circumferential direction in a rotational alignment and positioned spaced apart from one another in the circumferential direction.
3. The agitator mill according to claim 1, wherein the end of the agitator shaft faces a separating system, and the rotor disk limits the grinding chamber from the separating system.
4. The agitator mill according to claim 1, wherein the recesses of the rotor disk extend into a region of the rotor disk located radially below the rotor bars.
5. The agitator mill according to claim 2, wherein the end of the agitator shaft faces a separating system, and the rotor disk limits the grinding chamber from the separating system.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
DETAILED DESCRIPTION
(5)
(6) The grinding chamber height a, the grinding chamber length b, and the radial distance c are furthermore depicted.
(7) It can be seen well by means of
(8) With all this, it can be advantageous when the rotor disk 15 has a smaller diameter than the grinding disks 8 or than the imaginary rotational body of the individual bodies, such as blades or the like, which form the grinding disks. It can be seen well by means of
(9)
(10) The shape of the grinding disk can additionally be recognized on the left in the sectional view. The other setup of the agitator mill corresponds to the setup of the first alternative.
(11) The grinding chamber height a, the grinding chamber length b and the radial distance c are additionally also depicted here.
(12) It can be recognized quite well that each grinding disk consists of several blades, which are arranged one behind the other in the circumferential direction in a rotational alignment and which are separated from one another in the circumferential direction by means of continuous slits. A dimensional matching with the grinding bodies takes place here because the slit size, the size of the grinding bodies and the radial gap distance between the grinding disks and the grinding container inner wall or the grinding container inner circumferential surface, respectively, has to be selected so that the grinding bodies remain mobile in spite of frictional and self-locking forces, and do not block the blades.