The present invention concerns a lifting element acting as a part of a lining made of a flexible polymeric material for a grinding mill used for grinding ores and minerals. More precisely, the invention concerns a lifting element of a grinding mill, where the mechanical properties and wear resistance of the wear protection change, when the profile of said lifting element changes due to wear, so that the service life of the wear protection increases.
The inner surface of the drum of grinding mills is plated with a wear resistant lining protecting the drum against wear caused by the grinding. Wear is caused by the ore and rock material and by the elements used for grinding like grinding balls, bars or cylinders. Materials used for wear lining include elastomeric material like rubber, composition metals like steel, or a combination thereof. The wear lining comprises protective plates and lifting elements, said lifting elements being here later referred to as lifting bars. Lifting bars extend from one end of the drum to another, the bars being fastened to the frame of the drum and they mechanically lock the protective plates onto the surface of the drum. Lifting bars having the purpose to improve the rotation of the material to be ground and the grinding elements in the mill are located more projecting than the lining on the inner surface of the drum. Therefore they receive also the most of the impact stress caused by the dropping grinding elements and grinding bodies and of the abrasive wear caused by the grinding. The wear of the lifting bars decreases their protective effect for the lining and has also influence on the energy consumption and grinding quality of the mill. Calculations have shown, that the intensity of the impact wear subjected to the bar decreases, when the profile of the bar lowers caused by the wear.
Elastomers used for linings of mills and lifting bars have low resistance to grinding abrasion, but high resistance to impact stresses. Hard metallic linings like white cast iron have high resistance to abrasion but due to their low toughness, they can be used only in smaller mills, with less impact stresses. With worked or cast steel based materials the impact strength is higher but the wear resistance is lower than with the white cast irons. A lifting bar having the best mechanical properties and wear resistance is provided by combining the elastomeric and metallic lining.
U.S. Pat. No. 5,431,351 discloses a lifting bar utilizing a metallic frame construction. U.S. Pat. No. 4,848,681 discloses a lifting bar made of an elastomeric material having the leading edge reinforced with a metallic layer.
Computer simulation has now been successfully used for modeling the grinding operation in the mill and thus defining the intensity of the impact stresses that the different parts of the lifting bar are exposed to, when the profile changes caused by the wear of the mill and the lifting height and trajectory of the material to be ground change. The results of the simulation have shown, that when the lining wears, the intensity of the impact stresses decrease.
In the present invention, the lifting bar formed of polymer and metal is made of two or a plurality of metals, alloys or metallic and ceramic compounds connected to the polymeric frame so, that different portions of the lifting bar are made of material with optimal mechanical properties and wear resistance.
With a lifting bar according to the invention, i.a. the following advantages are provided:
More precisely, the lifting element according to the invention is characterized by what is stated in the characterizing part of Claim 1.
The lifting element, in other words the lifting bar according to the present invention will be described by way of example in more detail in the following, with reference to the enclosed drawings, wherein
a-c show examples of alternative embodiments of the metallic reinforcement of the lifting bar according to the invention, and
a-d show alternative cross-sectional profiles of the metallic reinforcement of the lifting bar according to the invention.
The metallic reinforcement 6 can be attached to the polymeric material body 5 for example with a mechanical joint or with an adhesive joint. The upper part 7 and the lower part 8 of the metallic reinforcement 6 are attached to each other with a metallurgic bond between the materials or with an adhesive joint.
In the solution according to the invention, shown in
The material of the upper part 7 of the metallic reinforcement 6 can be for example:
The material of the lower part 8 of the metallic reinforcement can be for example of:
Figures from 3a to c show examples of the construction of the metallic reinforcement of the lifting bar according to the invention, as a cross-sectional view and as a front view. In the example of
a-d show alternative cross-sectional profiles of the metallic reinforcement of a lifting bar according to the present invention. These cross-sectional profiles show, that in the solution according to the invention, the metallic reinforcement needs not to have a rectangular form, but it can also be implemented with different profile forms. In addition, these figures show one embodiment according to the present invention, where the part 8 made of a wear resistant material is located inside the part 7 made of tough material, from where it comes out as a result of the wear of the metallic reinforcement, at the areas of the strongest wear. In this way a metallic reinforcement of a lifting bar can be provided, having properties changing and improving along with the progressing wear.
The materials of a wear protection of a lifting bar in accordance with the present invention can advantageously be manufactured with a powder metallurgical method, like for example by compacting the powder raw materials by means of hot isostatic pressing, whereby the powder(s) are compacted by means of temperature and pressure. If necessary, the material can be further processed for example by hot working or by forming. Another suitable powder metallurgic method is the melt deposition. In addition, in the manufacture of powder metallurgic materials, the methods described above can be combined, if necessary.
The material or materials of the wear protection of the lifting bar can also be manufactured by casting or by deposition welding. Suitable deposition welding methods are i.a. the PTA welding (Plasma Transferred Arc) and the submerged arch welding.
The materials of the wear protection of the lifting bar can also be joined by means of hot isostatic pressing or hot forging.
Number | Date | Country | Kind |
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20055569 | Oct 2005 | FI | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/FI2006/050452 | 10/20/2006 | WO | 00 | 6/10/2008 |