The invention relates to a bearing arrangement, comprising at least one grease-lubricated bearing with a bearing region where rolling elements or a sliding element are arranged.
Bearing arrangements of this kind are well known in the state of the art. To ensure an only small amount of maintenance work the bearings of the bearing arrangement can be filled with a certain amount of grease which ensures a sufficient operation time of the bearings until maintenance activities are necessary. It is aimed for some applications that the supply with lubricant is sufficient for the whole lifetime of the bearing arrangement. Therefore a lubrication using grease is well known in the art.
A problem of grease-lubricated bearings is that basis oil of the grease often drops out after a certain operation time of the bearing or a certain time of standstill. Consequently, the ability of the grease to lubricate the bearing deteriorates. This can even not be prevented when sealing elements are employed which should keep the oil in the bearing which drops out of the grease.
Therefore, it is an object of the invention to improve the lubrication of a bearing arrangement of the above mentioned kind so that it becomes possible to further minimize the necessary actions for maintenance of the bearing. It is aimed to supply the bearing with a filling of grease which is sufficient for the whole lifetime of the bearing arrangement. Furthermore, it should be possible to assemble the proposed device in an easy way.
The solution of this object according to the invention is characterized in that at least one oil-collecting element is arranged near the bearing, wherein a transport element connects the oil-collecting element with the bearing region.
Preferably, the transport element and/or the oil-collecting element consists of a porous material. Here, a ceramic material is preferred; the porous material can be e.g. aluminum oxide (Al2O3) or zirconium oxide (ZrC2).
To further improve the lubrication of the bearings arrangement, at least one oil reservoir can be arranged near the bearing. The oil reservoir can be sensitive with respect to vibrations of the bearing arrangement. Specifically, the oil reservoir can be construed to emit oil when the bearing arrangement is excited with vibrations above a defined level of intensity. This is typically the case when running up the arrangement.
The bearing arrangement can bear a shaft element relatively to a housing. In this case, the axis of the shaft element can be arranged vertically, as it is typically for separators as used e. g. in the food industry. The oil-collecting element can be arranged below the bearing. The oil reservoir can be arranged above the bearing.
The shaft element can consists of aluminium and the housing can consists of steel.
Preferably, two bearings can be arranged, wherein both bearings are angular contact ball bearings. In this case the angle of both angular contact ball bearings can be different; specifically the angle of the upper angular contact ball bearings can be between 10° and 20° and the angle of the lower angular contact ball bearings can be between 25° and 35°.
At least one bearing can have at least one sensor element to survey at least one operation parameter; the parameter can be e. g. the temperature or the magnitude of vibrations. The at least one sensor element is preferably in wireless contact with a survey station for surveying the at least one operation parameter.
The preferred application for the proposed bearing arrangement is a separator, especially in the food industry. But the proposed bearing arrangement is also advantageously useable in other applications for liquid- and/or gas-separation such as separation of fuel or lubricating oil chemical substances cleaning of for instance oil contaminated water.
The invention makes sure that the deficiencies do not become effective when basis oil drops out from the grease by which the bearings are lubricated, which takes place especially after a long time of standstill. So, a loss of ability of lubrication of the grease is prevented.
The drawings show embodiments of the invention.
In
As can be seen from
Below the bearings 2, 3 an oil-collecting element 8, 9 is located. This oil-collecting element 8, 9 collects oil which leaves the bearings 2, 3 in spite of the sealing elements 27, 28, 29 and 30 which are arranged to prevent the leakage of oil from the bearings 2, 3 which drops out of the grease which is introduced into the bearing region 4, 5. The oil-collecting element 8, 9 consists of a porous material, e. g. Al2O3.
To feed back the dropped out oil from the oil-collecting elements 8, 9 to the bearing region 4, 5 a transport element 10, 11 is arranged. The transport element 10, 11 is e.g. a strip of porous material which transfers the collected oil from the oil-collecting element 8, 9 due to a capillary effect back to the bearing region 4, 5. The transport element 10, 11 consists also of a porous material like e. g. Al2O3. The transport element 10, 11 can be located in a cut-in in the housing 15. The number of transport elements 10, 11 is chosen due to the desired effect of feed-back of the oil.
To improve the supply of the bearings 2, 3 with lubricant an oil reservoir 12, 13 is arranged above the bearings 2, 3. In the oil reservoir 12, 13 a certain amount of oil can be kept. In the case that the bearings arrangement 1 is excited with vibrations of a defined magnitude oil is emitted from the oil reservoir 12, 13 to the bearing 2, 3. A typical case of excitation with such vibration is the run up of the bearing arrangement 1. So, in this case a small amount of fresh oil it dispensed from the oil reservoir 12, 13 to the bearing 2, 3.
To survey the operation of the bearing arrangement 1 sensors can be employed. In the depicted embodiment a sensor element 17 and 18 is arranged in the outer ring 23, 25 of the bearings 2, 3 for sensing the temperature and/or the vibration of the bearing. Accordingly, sensor elements 19 and 20 are arranged in the inner rings 24, 26. The further sensor element 21 senses the revolution speed of the shaft element 14 relatively to the housing 15. All sensed parameters are transferred in a wireless way to a survey station 22. The survey station 22 evaluates the received data and can transfer them to a control unit of the drive system of the bearing arrangement (now shown). So, an online-survey of the bearing arrangement becomes possible. If to high vibrations and/or temperatures are detected a shut-down of the arrangement can be triggered.
By the invention the assembly of a separator becomes quite easy which uses the proposed lubrication system. It is guaranteed that the supply with lubricant takes place for a long time, preferably for the whole lifetime of the separator. A re-lubrication is ensured by the oil reservoirs 12, 13 as well as by the oil-collecting elements 8, 9 and the transport elements 10, 11.
The re-lubrication is arranged “on-board”, i. e. no external re-lubrication is necessary. The lubrication takes place by using basically grease instead of oil. The re-lubrication can be triggered by a machine control device (now shown) which can be freely programmed due to the amount of re-lubricating oil and the time of re-lubrication.
The integrated sensor elements allow the survey of e. g. the pre-load in the bearings 2, 3 and the temperature in the bearings 2, 3. The sensed parameters can deliver an information about the lifetime of the lubricant.
It is possible to design the bearing arrangement and the grease filling of the bearings to ensure an efficient lubricating of the bearings arrangement over the whole lifetime of it without any external re-lubrication.
By using steel for the housing 15 and aluminum or magnesium for the shaft element 14 stress due to a different thermal expansion can be prevented.
The porous material 8, 9, 10, 11 can be filled completely with oil after completion of the assembly of the bearing arrangement.
In
This means that one or more bearings with a single row or with more than one row of rolling elements can be used according to the invention.
In
Of course, different designs can be used with respect to the arrangement of bearings for holding the shaft element 14 in the housing. There can be a common housing for a plurality of bearing arrangements 1, 32 or different housing parts for the different bearing arrangements.
Further in other embodiments the above described can also be applied in arrangements with other orientations of the shaft, particularly in horizontal shaft arrangements e.g. in decanters.
1 bearing arrangement
2 grease-lubricated bearing
3 grease-lubricated bearing
4 bearing region
5 bearing region
6 rolling element
7 rolling element
8 oil-collecting element
9 oil-collecting element
10 transport element
11 transport element
12 oil reservoir
13 oil reservoir
14 shaft element
15 housing
16 axis
17 sensor element
18 sensor element
19 sensor element
20 sensor element
21 sensor element
22 survey station
23 outer ring
24 inner ring
25 outer ring
26 inner ring
27 sealing element
28 sealing element
29 sealing element
30 sealing element
31 separator
32 bearing arrangement
33 drive
α angle
β angle
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP2007/006078 | 7/9/2007 | WO | 00 | 6/22/2010 |