WEAR-RESISTANT ELEMENT FOR A COMMINUTION DEVICE
20220410169 · 2022-12-29
Assignee
Inventors
Cpc classification
B02C15/005
PERFORMING OPERATIONS; TRANSPORTING
B02C2210/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A wear-resistant element is configured to be mounted on a comminuting device or a silo. The wear-resistant element may be formed from a ceramic that comprises yttrium-stabilized, tetragonal polycrystalline zirconia (TPZ). The TPZ makes up a proportion of the ceramic of at least 60% by volume, in some cases at least 80%, or even 95% to 100%. The ceramic may have a porosity of less than 5%. The ceramic may have a ratio of monoclinic to tetragonal zirconia of 10% to 40%. An yttrium-stabilized zirconia of the ceramic may have a grain size D50 of less than 1.5 μm. The ceramic may have an yttrium content of 2 to 4 mol % Y2O3.
Claims
1.-8. (canceled)
9. A wear-resistant element that is mountable on a comminuting device or a silo, wherein the wear-resistant element is formed completely from a ceramic that comprises yttrium-stabilized, tetragonal polycrystalline zirconia (TPZ), wherein the TPZ makes up at least 60% by volume of the ceramic.
10. The wear-resistant element of claim 9 wherein the ceramic has a porosity of less than 5%.
11. The wear-resistant element of claim 9 wherein the ceramic has a porosity of less than 3%.
12. The wear-resistant element of claim 9 wherein the ceramic has a ratio of monoclinic to tetragonal zirconia of 10% to 40%.
13. The wear-resistant element of claim 9 wherein the ceramic has a ratio of monoclinic to tetragonal zirconia of 10% to 20%.
14. The wear-resistant element of claim 9 wherein an yttrium-stabilized zirconia of the ceramic has a grain size D50 of less than 1.5 μm.
15. The wear-resistant element of claim 9 wherein an yttrium-stabilized zirconia of the ceramic has a grain size D50 of less than 1.0 μm.
16. The wear-resistant element of claim 9 wherein an yttrium-stabilized zirconia of the ceramic has a grain size D50 of less than 0.8 μm.
17. The wear-resistant element of claim 9 wherein the ceramic has an yttrium content of 2 to 4 mol % Y2O3.
18. The wear-resistant element of claim 9 wherein the ceramic has less than 0.1 per mm.sup.2 of pores with a size of more than 200 μm.
19. A comminuting device comprising: a wear area; and a wear-resistant element that is mounted at least partially in a recess in a surface of the wear area, wherein the wear-resistant element is formed completely from a ceramic that comprises yttrium-stabilized, tetragonal polycrystalline zirconia (TPZ), wherein the TPZ makes up at least 60% by volume of the ceramic
20. The comminuting device of claim 19 wherein the wear-resistant element is bonded substance-to-substance to the wear area.
21. The comminuting device of claim 19 wherein the wear-resistant element is welded to the wear area.
22. The comminuting device of claim 19 wherein the wear-resistant element is adhesively bonded to the wear area.
23. The comminuting device of claim 19 wherein the wear-resistant element is soldered to the wear area.
24. The comminuting device of claim 19 wherein the ceramic has a porosity of less than 3%.
25. The comminuting device of claim 19 wherein the ceramic has a ratio of monoclinic to tetragonal zirconia of 10% to 20%.
26. The comminuting device of claim 19 wherein an yttrium-stabilized zirconia of the ceramic has a grain size D50 of less than 1.5 μm.
27. The comminuting device of claim 19 wherein the ceramic has an yttrium content of 2 to 4 mol % Y2O3.
28. The comminuting device of claim 19 wherein the ceramic has less than 0.1 per mm.sup.2 of pores with a size of more than 200 μm.
Description
DESCRIPTION OF THE DRAWINGS
[0021] The invention is explained in more detail in the following text on the basis of several exemplary embodiments with reference to the appended figures.
[0022]
[0023]
[0024]
[0025]
[0026]
[0027] During operation of the comminuting device 10, the grinding rollers rotate in opposite directions to one another in directions of rotation illustrated by the arrows, wherein grinding stock passes through the grinding gap in the falling direction and is ground.
[0028]
[0029] Furthermore, the grinding roller has wear-resistant corner elements 17, mounted on its end, which have for example a rectangular cross section and are arranged in a row alongside one another such that they form a ring around the circumference of the grinding roller. Further cross-sectional shapes of the wear-resistant corner elements 17, which differ from the cross-sectional shape shown in
[0030]
[0031]
[0032]
[0033] The wearing region 22 of the wear-resistant element 16 comprises the shell 18 and the core 20, the jacket 18 preferably being formed from a ceramic material, such as for example tungsten carbide, titanium carbide, titanium carbonitride, vanadium carbide, chromium carbide, tantalum carbide, boron carbide, niobium carbide, molybdenum carbide, aluminum oxide, zirconia, and/or silicon carbide, or a combination of the stated materials. In particular, the ceramic comprises yttrium-stabilized, tetragonal polycrystalline zirconia (TPZ). Furthermore, it is also possible for particles of industrial diamonds or high-strength ceramics, for example, to be embedded in a ceramic or metallic matrix in the shell 18. The shell 18 comprises a matrix material, for example, in which a plurality of particles are arranged. The particles in question are in particular a highly wear-resistant material which comprises for example diamond, ceramic or titanium. The matrix material comprises for example tungsten carbide. The particles are bonded in particular substance-to-substance, for example by sintering with the matrix material.
[0034] During operation of the comminuting device 10, the wear-resistant elements 16 are exposed to a high degree of wear, wherein in particular the wearing region 22, protruding from the surface of the wear areas 12, 14 of the grinding rollers, of the wear-resistant elements 16 becomes worn. The wear-resistant material of the wearing region 22 considerably reduces the wear of the wear-resistant elements 16. Furthermore, it is possible to dispense with forming the fastening region, which is exposed to no wear or only to very little wear, from the more expensive, more wear-resistant material. The metal core makes it possible to remove the wear-resistant element from the recess 26 in the roll surface, even if the wearing region 22 is already severely worn, by using a suitable tool to draw the wear-resistant element 16 out on the metal core 20.
[0035] The fastening region 24 is preferably formed completely from a metal and is fixedly connected to the core 20. By way of example, the fastening region 24 is adhesively bonded, soldered or welded to or is formed in one piece with the core 20.
LIST OF REFERENCE SIGNS
[0036] 10 Comminuting device/roller mill
[0037] 12 Wear surface/grinding roller
[0038] 14 Wear surface/grinding roller
[0039] 16 Wear-resistant element
[0040] 17 Wear-resistant corner element
[0041] 18 Shell
[0042] 20 Core
[0043] 22 Wearing region
[0044] 24 Fastening region
[0045] 26 Recess