Rolling bearing cooling arrangement using lubricant and cooling air for centrifuges
10639648 ยท 2020-05-05
Assignee
Inventors
Cpc classification
B04B9/12
PERFORMING OPERATIONS; TRANSPORTING
B04B1/20
PERFORMING OPERATIONS; TRANSPORTING
F16C33/6659
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C37/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/6685
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2320/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B04B1/20
PERFORMING OPERATIONS; TRANSPORTING
B04B9/12
PERFORMING OPERATIONS; TRANSPORTING
F16C33/66
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A rolling bearing-cooling device for a bearing arrangement is provided. The bearing arrangement includes at least one rolling bearing for mounting a drum of a decanter centrifuge or solid bowl centrifuge. The rolling bearing-cooling device includes a lubricant supply line, a lubricant discharge line, a cooling air supply line, and a cooling air discharge line. The lubricant supply line is spaced from the cooling air supply line and is opposite the cooling air discharge line, and the cooling air supply line is opposite the lubricant discharge line with regard to the rolling bearing.
Claims
1. A bearing arrangement, comprising: a housing, comprising a rolling bearing arranged to bear a bowl of a centrifuge; and a rolling bearing cooling apparatus, comprising a lubricant source; a lubricant supply line coupled to the lubricant source; a lubricant discharge line; a cooling air source; a cooling air supply line coupled to the cooling air source; and a cooling air discharge line, wherein an inlet opening of the lubricant discharge line lies on a larger radius of the housing than that of an inlet opening of the cooling air discharge line, and wherein the lubricant and cooling air discharge lines are proximate to the rolling bearing, the lubricant discharge line is arranged on a first lateral side of the rolling bearing relative to the cooling air discharge line, and the cooling air discharge line is arranged on a second lateral side, which is opposite of the first lateral side, of the rolling bearing relative to the lubricant discharge line, and wherein a lubricant flow supplied to the rolling bearing through the lubricant supply line and a cooling air flow supplied to the rolling bearing through the cooling air supply line are each guided through axial openings in the rolling bearing, between an inner ring of the rolling bearing and an outer ring of the rolling bearing.
2. The bearing arrangement of claim 1, wherein the lubricant discharge line is arranged separately and spaced from the cooling air discharge line.
3. The bearing arrangement of claim 1, wherein the lubricant supply line is arranged spaced from the cooling air supply line.
4. The bearing arrangement of claim 1, wherein in relation to the rolling bearing, the lubricant supply line is arranged opposite the cooling air discharge line, and the cooling air supply line is arranged opposite the lubricant discharge line.
5. The bearing arrangement of claim 1, wherein the lubricant supply line is a bore that narrows downstream in the form of a nozzle.
6. The bearing arrangement of claim 1, wherein the lubricant supply line opens into an inner space in a housing by a nozzle in a region of the rolling bearing.
7. The bearing arrangement of claim 1, wherein the rolling bearing is sealed off from a surrounding environment and from a hollow shaft by seals.
8. The bearing arrangement of claim 7, wherein the seals that seal the rolling bearing off from the surrounding environment are dynamic seals.
9. A centrifuge, comprising: a bowl; and a housing, comprising a rolling bearing arranged to bear the bowl of the centrifuge; and a rolling bearing cooling apparatus, comprising a lubricant source; a lubricant supply line coupled to the lubricant source; a lubricant discharge line; a cooling air source; a cooling air supply line coupled to the cooling air source; and a cooling air discharge line, wherein an inlet opening of the lubricant discharge line lies on a larger radius of the housing than that of an inlet opening of the cooling air discharge line, and wherein the lubricant and cooling air discharge lines are proximate to the rolling bearing, the lubricant discharge line is arranged on a first lateral side of the rolling bearing relative to the cooling air discharge line, and the cooling air discharge line is arranged on a second lateral side, which is opposite of the first lateral side, of the rolling bearing relative to the lubricant discharge line, and wherein a lubricant flow supplied to the rolling bearing through the lubricant supply line and a cooling air flow supplied to the rolling bearing through the cooling air supply line are each guided through axial openings in the rolling bearing, between an inner ring of the rolling bearing and an outer ring of the rolling bearing.
Description
BRIEF DESCRIPTION OF THE DRAWING FIGURES
(1) Exemplary embodiments of the subject matter according to the invention are illustrated in the drawing and described in more detail below. In the drawing:
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION
(6)
(7) In
(8) The rolling bearing arrangement of the bowl bearing 4 in
(9) As a result of the conical portions, it is ensured properly and in a structurally simple manner that the lubricant can flow properly from the outlet opening of the lubricant supply line and into the bearing and can be distributed there.
(10) Furthermore, the rolling bearing arrangement has a housing 19. In the region of a rolling bearing outer ring 20, the housing 19 forms a housing shoulder 21 against which the rolling bearing outer ring 20 is held axially firmly in place on the housing side. Moreover, the housing 19 has a securing ring 22 for housings, which holds the rolling bearing outer ring 20 axially firmly in place on the housing side.
(11) The housing 19 further has a step 23 into which a seal 24 is inserted. The seal 24 is supported against the ring 12 on the shaft side and acts as a dynamic seal, similarly to a radial shaft seal ring.
(12) Moreover, the rolling bearing arrangement has a cover 25 secured in the axial direction by securing elements, such as screws (not illustrated), to the housing 19. The cover 25 has a seal 26 on the housing side. The cover 25 furthermore has a step 27 into which the seal 26 is inserted. The seal 26 is supported against the ring 13 on the shaft side and acts as a dynamic seal, in this case a radial shaft seal ring. Also conceivable are other sealing arrangements such as double-acting shaft seal rings, bearing ring seals or two or more radial shaft seal rings.
(13) The housing 19 moreover has a lubricant supply line 28 in the form of a bore having a diameter narrowing downstream in the shape of a nozzle. The bore opens into a nozzle 29 located in the housing shoulder 21, with the result that a lubricant flow fed through the nozzle 29 and between the rolling bearing inner ring 18 and the rolling bearing outer ring 20 is fed into the rolling bearing 30. The outlet of the lubricant supply line may also be oriented entirely radially and/or also obliquely (between the radial direction axial direction) or entirely axially. In
(14) In particular, preferably an oil circulating lubrication is implemented, in the manner of a circuit. In this case, preferably 50 l/h to 150 l/h of lubricant circulate in the circuit.
(15) However, the lubricantpreferably lubricating oilmay also be guided for example by the principle of minimum quantity lubrication, in individual small pulses (by the principle of minimum quantity lubrication, which is known per se), through the nozzle 29 and into the rolling bearing 30 (see European Patent document EP 2 435 189 B1). In this case, lubricant quantities of between 5 mm.sup.3 and 1000 mm.sup.3 are preferably discharged every 60 to 180 s.
(16) Furthermore, the housing 19 has a rolling bearing cooling apparatus. The latter in turn has at least one cooling air supply line 31. Here, the latter is arranged spaced from the lubricant supply line 28 in the direction of the cover 25, and opens into the inner space in the housing 19, here in the region of the securing ring 22. The housing region in which the rolling bearing 30 is arranged is sealed off from the surrounding environment by the seals 24 and 26 and from the hollow shaft 11 by the seals 14, 15. Thus, the lubricant can flow through the rolling bearing 30, and the rolling bearing 30 is lubricated. The cooling air flows around the rolling bearing and cools the latter as it moves past and/or flows through the rolling bearing.
(17) Moreover, the housing 19 has a respective lubricant discharge line 32 and a cooling air discharge line 33.
(18) In relation to the rolling bearing 30, the lubricant supply line 28 is arranged spaced from the cooling air supply line 31 and opposite the cooling air discharge line 33, and the cooling air supply line 31 is arranged opposite the lubricant discharge line 32. The lubricant discharge line 32 lies on the housing side facing the cover, whereas the cooling air discharge line 33 is positioned on the housing side remote from the cover.
(19) As a result of the mutual arrangement of the lubricant supply line 28 and the lubricant discharge line 32 with respect to the cooling air supply line 31 and the cooling air discharge line 33, both the lubricant flow and the cooling air flow are forced to flow through the rolling bearing 30, with the result that heat from the rolling bearing inner ring 18, from the rolling bearing outer ring 20 and from the rolling bearing balls is dissipated through the cooling air flow. The cooling air flow thus acts directly at the points on the rolling bearing 30 at which heat is produced by friction.
(20) As a result, a good cooling action is achieved, in particular by the cooling air flow. As evidence of this effect, tests were performed using a decanter CF 6000 of the Applicant. The speed of rotation of the bowl was approximately 3500 r.p.m. At a cooling air volumetric flow of 10 m.sup.3/h, which was at room temperature (approximately 20 C.-25 C.), it was possible to achieve a temperature reduction of the rolling bearing 30 at the operating speed of 18 K, and at a cooling air volumetric flow of 30 m.sup.3/h it was possible to achieve a temperature reduction of the rolling bearing 30 at the operating speed of 23 K.
(21) Because of this effect, the invention is particularly advantageous for the centrifugal separation of warm centrifuging material at a high temperature of, for example, more than 100 and/or at very high ambient temperatures of above 25 C. Preferably, the cooling air temperature is to be used at below 25, in particular below 15 C. The cooling air preferably and advantageously is at a lower temperature than the material for centrifugingand/or the ambient temperature at the centrifuge.
(22) The result of a temperature reduction of this kind in the rolling bearing 30 at operating speed is a corresponding increase in the service life or an increase in the service interval of the rolling bearing 30, since the cooler lubricant can be used for longer and the bearing is protected. As a result of the lower temperature, in addition there is a favorable effect on viscosity, and a thicker film of separating lubricant is established in the rolling bearing, which reduces wear.
(23) The arrangement of
(24) According to
(25) It can also be seen in
LIST OF REFERENCE NUMERALS
(26) 1 Decanter centrifuge or solid bowl centrifuge 2 Bowl 3 Worm 4 Bowl bearing 5 Drive motor 6 Drive motor 7 Belt pulleys 8 Drive belt 9 Gear 10 Rolling bearing air cooling system 11 Hollow shaft 12 Ring 13 Ring 14 Seal 15 Seal 16 Shaft shoulder 17 Shaft shoulder 18 Rolling bearing inner ring 19 Housing 20 Rolling bearing outer ring 21 Housing shoulder 22 Securing ring 23 Step 24 Seal 25 Cover 26 Seal 27 Step 28 Lubricant supply line 29 Nozzle 30 Rolling bearing 31 Cooling air supply line 32 Lubricant discharge line 33 Cooling air discharge line 34 Line 35 Gap 36 Inlet opening 37 Inlet opening 38 Outlet opening 39 End region