MECHANICAL SEAL ARRANGEMENT OF A HYDRODYNAMIC RETARDER AND HYDRODYNAMIC RETARDER
20190032788 · 2019-01-31
Inventors
Cpc classification
F16J15/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D57/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D57/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2125/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/3404
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16J15/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a mechanical seal arrangement, in particular a retarder-mechanical seal arrangement, comprising a first mechanical seal (2) with a first rotating slide ring (3) and a first stationary slide ring (4) which define a first sealing gap (5) in between them, an additional seal (6), a cooling medium space (7) which is filled with a cooling medium and extends all the way to the sealing gap of the first mechanical seal (2), wherein the first mechanical seal (2) seals the cooling medium space against an environment, a cooling medium access (8) into the cooling medium space (7) for supplying cooling medium, and a cooling medium exit (9) from the cooling medium space (7) for draining cooling medium, wherein the additional seal (6) is arranged in the cooling medium access (8), and wherein the additional seal (6) is configured to open when a pressure inside the cooling medium access (8) rises above a first pressure (P1) inside the cooling medium space (7), and to close at a second pressure (P0) inside the cooling medium access (8) that is lower than the first pressure (P1) inside the cooling medium space.
Claims
1. Mechanical seal arrangement, in particular retarder-mechanical seal arrangement, comprising a first mechanical seal with a first rotating slide ring and a first stationary slide ring which define a first sealing gap in between them, an additional seal, a cooling medium space filled with a cooling medium and extending to the sealing gap of the first mechanical seal, wherein the first mechanical seal seals the cooling medium space against an environment, a cooling medium access into the cooling medium space for supplying cooling media, and a cooling medium exit from the cooling medium space for draining a cooling medium, wherein the additional seal is arranged inside the cooling medium access, and wherein the additional seal is configured to open when a pressure inside the cooling medium access increases above a first pressure inside the cooling medium space, and to close at a second pressure inside the cooling medium access, which is lower than the first pressure inside the cooling medium space.
2. Mechanical seal arrangement according to claim 1, wherein a closing element for opening and closing the cooling medium exit is arranged in the cooling medium exit.
3. Mechanical seal arrangement according to claim 2, wherein the closing element is a check valve.
4. Mechanical seal arrangement according to claim 1, wherein the additional seal is a lip seal.
5. Mechanical seal arrangement according to claim 4, wherein the lip seal has a sealing lip, and wherein the lip seal seals with the sealing lip at an outer circumferential area of the rotating slide ring.
6. Mechanical seal arrangement according to claim 1, wherein the additional seal is a second mechanical seal that has an axially displaceable slide ring.
7. Mechanical seal arrangement according to claim 6, wherein the axially displaceable slide ring is a second stationary slide ring of the second mechanical seal.
8. Mechanical seal arrangement according to claim 7, wherein the first rotating slide ring of the first mechanical seal and the second rotating slide ring of the second mechanical seal are integrated in a single common structural component with a first sliding surface and a second sliding surface.
9. Mechanical seal arrangement according to claim 8, wherein the first sliding surface and the second sliding surface are arranged at the same side of the common structural component.
10. Mechanical seal arrangement according to claim 6, wherein the axially displaceable slide ring has a control surface that is oriented towards the cooling medium access and in the axial direction, namely in such a manner that the axially displaceable slide ring performs an axial movement in the event that a pressure inside the cooling medium access is higher than a first pressure inside the cooling medium space.
11. Mechanical seal arrangement according to claim 1, wherein the cooling medium space is arranged inside a housing having a C-shaped cross section.
12. Hydrodynamic retarder, comprising: a retarder shaft, a stator wheel, a rotor wheel, a retarder housing, and a mechanical seal arrangement according to claim 1.
13. Hydrodynamic retarder according to claim 12, wherein the mechanical seal arrangement seals directly at the retarder shaft.
14. Hydrodynamic retarder according to claim 12, further comprising an environmental seal, in particular an elastomeric environmental seal that seals between the mechanical seal arrangement and the retarder shaft.
Description
[0018] In the following, preferred exemplary embodiments of the invention are described in detail by referring to the accompanying drawing. In the drawing:
[0019]
[0020]
[0021]
[0022]
[0023] In the following, a mechanical seal arrangement 1 as well as a hydrodynamic retarder 11 according to a first preferred exemplary embodiment of the invention are described in detail by referring to
[0024]
[0025] The hydrodynamic retarder may for example be used in vehicles, in particular in trucks or busses, or the like. Here, braking work, i.e. a conversion into heat, is performed by the retarder by filling the retarder work space 16 with a liquid, for example with oil. After a braking operation has been performed, the liquid is drained from the retarder work space 16 again.
[0026] Now a mechanical seal arrangement according to the invention 1 seals at the retarder shaft 12. Here, the retarder shaft 12 has a shaft shoulder 18 at which the mechanical seal arrangement 1 is arranged.
[0027] The mechanical seal arrangement 1 comprises a first mechanical seal 2 with a first rotating slide ring 3 (counter ring) and a first stationary slide ring 4 which define a sealing gap 5 in between them. Here, the mechanical seal arrangement 1 seals the retarder work space 16 against an environment 30.
[0028] The mechanical seal arrangement 1 further comprises an additional seal 6, which in this exemplary embodiment is embodied as a second mechanical seal 60. The second mechanical seal 60 comprises a second stationary slide ring 61, wherein the rotating slide ring 3 of the first mechanical seal 2 also provides a sliding surface 63 of the second rotating slide ring for the second mechanical seal 60. As can be seen in
[0029] Further, the first mechanical seal arrangement 1 has a cooling medium space 7. The cooling medium space 7 is provided to supply a cooling medium, which is also used as a lubricating medium, at the first mechanical seal 2 in a continuous manner, i.e. in every operational state of the retarder. This has the advantage that it is ensured that cooling medium is always present at the first and second mechanical seal 2, 60 to lubricate and cool the mechanical seals.
[0030] The cooling medium space 7 is arranged inside a housing 21 of the first mechanical seal 2. The housing 21 has a substantially C-shaped cross section, with the cooling medium space 7 being formed inside it. The cooling medium space 7 is provided with a supply area for fresh cooling medium via a cooling medium access 8, in this exemplary embodiment directly from the retarder work space 16, as well as with a cooling medium exit 9.
[0031] As can be seen in
[0032] The first mechanical seal 2 further has a first pre-stressing element 20 that exerts a pre-stress on the first stationary slide ring 4 in the axial direction X-X, in particular a pre-stress of approx. 100 N. Further, an O-ring 22 for sealing at the housing 21 of the mechanical seal arrangement is provided at the first stationary slide ring 4.
[0033] A second pre-stressing element 62 is arranged at the second mechanical seal 60 at the second stationary slide ring 61 to provide a pre-stress of the stationary second slide ring 61 of the second mechanical seal in the axial direction X-X.
[0034] Thus, in this exemplary embodiment, the second mechanical seal 60 is provided by a partial area of the rotating slide ring 3 that comprises the first sliding surface 33 for the first mechanical seal 2 and the second sliding surface 63 for the second mechanical seal 60. Further, the second mechanical seal 60 has a sliding surface 64 at the second stationary slide ring 61, so that the sealing gap 65 is formed between the sliding surface 64 and the sliding surface 63 of the second mechanical seal 60.
[0035] As can further be seen in
[0036] The stationary slide ring 61 of the second mechanical seal 60 is sealed with respect to the housing 21 of the mechanical seal arrangement 1 by means of an O-ring 23.
[0037] What is further provided is an environmental seal 31 in the form of an elastomeric seal, which is arranged at the housing 21 of the mechanical seal arrangement 1 and which facilitates sealing of a gap between the housing 21 and the retarder shaft 12 against the environment 30.
[0038] The function of the mechanical seal according to the invention 1 of the first exemplary embodiment is as follows. When liquid is supplied into the retarder work space 16 in the event of operation, i.e. when the retarder 11 is active, and the retarder performs braking work, a pressure inside the retarder work space 16 rises from a pressure P0 in
[0039] If the retarder 11 is not supposed to work any longer, the liquid is drained from the retarder work space 16, so that the pressure inside the retarder work space 16 drops back to pressure P0 and the retarder work space 16 is emptied. Then, the second pre-stressing element 62 sets the stationary slide ring 61 back into the initial position, as indicated in
[0040] In this manner, it is ensured that, even during non-operation of the retarder 11, there is always a sufficient amount of cooling medium present inside the cooling medium space 7 enclosed by the closing element 10 as well as the second mechanical seal 60 and the first mechanical seal 2. In this manner, it can in particular be avoided that the first mechanical seal 2 falls dry, so that the mechanical seal arrangement 1 can have a significantly longer service life. In addition to the sealing function for sealing the cooling medium space 7, the second mechanical seal 60 also takes over a valve function here so as to enlarge the sealing gap 65 of the second mechanical seal 60 in such a manner that a sufficient amount of cooling medium can flow into the cooling medium space 7 during the retarder operation. Thus, in particular when used with a retarder, the mechanical seal arrangement according to the invention 1 can ensure a reliable seal without a separate cooling medium supply during start up or shutdown of the retarder.
[0041] It is to be understood that, in the event of a change in the retarder work space 16, the opening characteristics of the second mechanical seal can be adjusted by setting a pre-stressing force of the second pre-stressing element 62 or by choosing the size of the control surface 61a at the stationary slide ring 61 of the second mechanical seal 60.
[0042]
[0043] In the second exemplary embodiment, the mechanical seal arrangement 1 has a lip seal 66 instead of a second mechanical seal as the additional seal. The lip seal 66 is made of an elastomeric material and has a sealing lip 66a, which seals at a radially outer circumference of the rotating slide ring 3 of the first mechanical seal 2. Here,
[0044] As can further be seen from
[0045] If now, due to the supply of cooling medium, a pressure inside the retarder work space 16 rises from an initial pressure P0 shown in
[0046] The present invention has been described in the context of a hydrodynamic retarder. It is to be understood that the mechanical seal arrangement according to the invention 1 can also be used in other devices with rotating shafts and liquids, for example in pumps.
PARTS LIST
[0047] 1 mechanical seal arrangement [0048] 2 first mechanical seal [0049] 3 rotating slide ring [0050] 4 stationary slide ring [0051] 5 sealing gap [0052] 6 additional seal [0053] 7 cooling medium space [0054] 8 cooling medium access [0055] 9 cooling medium exit [0056] 10 closing element/check valve [0057] 11 retarder [0058] 12 retarder shaft [0059] 13 stator wheel [0060] 14 rotor wheel [0061] 15 retarder housing [0062] 16 retarder work space [0063] 17 bearing [0064] 18 shaft shoulder [0065] 19 gap [0066] 20 first pre-stressing element [0067] 21 housing of the mechanical seal arrangement [0068] 22 O-ring [0069] 23 O-ring [0070] 24 sleeve [0071] 30 environment [0072] 31 environmental seal [0073] 32 radially outer circumference of the rotating slide ring [0074] 333 first sliding surface of the first rotating slide ring 3 [0075] 60 second mechanical seal [0076] 61 stationary slide ring [0077] 61a control surface [0078] 62 second pre-stressing element [0079] 63 second sliding surface of the rotating slide ring [0080] 64 sliding surface of the second stationary slide ring [0081] 65 sealing gap [0082] 66 lip seal [0083] 66a sealing lip [0084] A axial movement of the second stationary slide ring 61 [0085] B flow of the cooling medium in and out of the cooling medium space [0086] C movement of the sealing lip [0087] P0 pressure inside the retarder work space without retarder operation [0088] P1 pressure inside the cooling medium space [0089] P2 pressure inside the retarder work space with retarder operation [0090] X-X axial direction of the mechanical seal arrangement [0091] angle of the control surface 61a