Mechanical seal assembly with safety seal
11231042 · 2022-01-25
Assignee
Inventors
- Ferdinand Werdecker (Walchensee, DE)
- Florian Bauer (Oberfischbach, DE)
- Stephan Rankl (Gilching, DE)
- Benjamin Hellmig (Munich, DE)
- Klaus Kneissl (Dietramszell, DE)
Cpc classification
F01D11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/3484
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D11/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16J15/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a mechanical seal assembly comprising a mechanical seal (2) comprising a rotating mechanical seal (20) and a stationary mechanical seal (21) defining a sealing gap (22) therebetween, and a one-piece safety seal (3) provided as a redundant seal in the event of failure of the mechanical seal (2) and adapted to seal at a rotating component, the safety seal (3) comprising a base body (30) and a sealing area (31) projecting from the base body (30) in the axial direction (X-X) and being flexible, a thickness of the sealing area (31) in the radial direction being smaller than a thickness of the base body (30) in the radial direction, and the safety seal (3) being arranged in a stationary manner and comprising a sealing surface (32) on an inner circumference.
Claims
1. A mechanical seal assembly comprising a mechanical seal including a rotating slide ring and a stationary slide ring defining a sealing gap therebetween, and a one-piece safety seal provided as a redundant seal in the event of failure of the mechanical seal and arranged to seal on a rotating component, the safety seal having a base body and a sealing area projecting from the base body in the axial direction and being flexible, wherein the safety seal is stationary and comprises a sealing surface on an inner circumference; and a rotating component to which the rotating slide ring is connected, wherein recesses are provide in the rotating component, which recesses are radially arranged inside the safety seal.
2. The mechanical seal assembly according to claim 1, wherein a thickness of the sealing area in the radial direction is smaller than a thickness of the base body in the radial direction.
3. The mechanical seal assembly according to claim 1, wherein the base body and the sealing area are integrally formed of the same material.
4. The mechanical seal assembly according to claim 1, wherein an arc-shaped transition is formed between the base body and the sealing area on an outer circumference.
5. The mechanical seal assembly according to claim 1, wherein the sealing area projects in the axial direction from the base body in the direction of the mechanical seal.
6. The mechanical seal assembly according to claim 1, wherein the sealing surface at the inner circumference of the sealing area is cylindrical.
7. The mechanical seal assembly according to claim 1, wherein the sealing surface includes a plurality of radially inwardly projecting lips, the lips being provided in a circumferentially closed manner.
8. The mechanical seal assembly according to claim 7, the lips being arranged exclusively at the sealing area.
9. The mechanical seal assembly according to claim 1, wherein an outer periphery of the sealing area is tapered in axial direction to a free end of the sealing region.
10. The mechanical seal assembly according to claim 1, wherein the seal region includes a lip-free projection starting from a first lip most proximal to a free end of the seal region.
11. The mechanical seal assembly according to claim 1, wherein the recesses are grooves extending in the axial direction.
12. The mechanical seal assembly according to claim 1, wherein a length of the recesses in the axial direction is greater than a length of the sealing area of the safety seal.
13. The mechanical seal assembly according to claim 1, comprising exactly one single mechanical seal.
14. A machine, especially a pump or compressor or expander, comprising a mechanical seal assembly according to claim 1.
Description
(1) In the following, preferred example embodiments of the invention will be described in detail while reference is made to the accompanying drawing, wherein:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9) Below, a mechanical seal assembly 1 is described in detail according to a first preferred example embodiment of the invention, while reference is made to
(10) As may be seen from
(11) Furthermore, a rotating component 4 is provided, which, in this example embodiment, comprises a shaft 40, a first sleeve 41 and a second sleeve 42. A multi-part housing is identified using reference number 5.
(12) The mechanical seal assembly 1 seals a product side 6 from an atmosphere side 7. On the product side 6 a product pressure P1 is applied, which is many times higher than a pressure P3 on the atmosphere side. Between the mechanical seal 2 and a safety seal 3, an interstice 8 is also provided in which a pressure P2 prevails. The pressure P2 approximately corresponds to the pressure P3 on the atmosphere side 7. Leakage, which occurs via the sealing gap 22 during normal operation of the mechanical seal assembly, is discharged via the interstice 8, as indicated by the arrow L. During normal operation of the mechanical seal assembly, the leakage is discharged via the sealing gap 22.
(13) As can be seen from
(14) As can be seen from
(15) The safety seal 3 can be seen in detail in
(16) A thickness D1 of the sealing area 31 is smaller than a thickness D2 of the base body 30 (see
(17) Thus, the safety seal 3 is integrally formed by the base body 30 and the thinner sealing area 31. Preferably, the material for the safety seal 3 is a fiber-reinforced thermoplastic. As can be collectively seen from
(18) As can be seen from
(19) In the event of failure, when the mechanical seal 2 no longer seals, the safety seal 3 will automatically be activated. This state is illustrated in
(20) In order to avoid excessive temperature increase of the safety seal 3 in the event of failure, some product medium may also flow through the grooves 9 to the atmosphere side 7 in the event of failure. This is indicated by a leakage (arrow B) in
(21) Thus, in case of failure of the mechanical seal 2, the safety seal 3 may automatically be activated. By providing the grooves 9, excessively rapid failure of the safety seal 3 can be prevented by achieving some cooling of the safety seal 3, especially in the region of the sealing area 31, via a flow through the grooves 9 to the atmosphere side 7. Although this, on the one hand, allows some product medium to escape through the grooves 9 to the atmosphere side 7, it can prevent thermal damage to the safety seal 3 and strong outflow of the product medium to the atmosphere side, on the other hand.
(22) It should be noted that in normal applications a pressure difference between the product pressure P1 and the pressure P3 on the atmosphere side 7 is approximately 200 to 300×10.sup.5 Pa. Even with such a high pressure difference existing between the product side 6 and the atmosphere side 7, the simply and inexpensively constructed safety seal 3 can provide a seal in the event of damage to the mechanical seal 2. Thus, redundant provision of a second mechanical seal for the mechanical seal assembly may be omitted. In addition to cost savings, this also results in savings of axial installation space, as the safety seal 3 in axial direction X-X is only constructed to be very short.
(23)
(24)
(25)
(26) It should be noted that, for all the example embodiments described, the grooves 9 are optional. This means that if the rotating component 4 can be stopped in a short period of time, the grooves 9 are not absolutely necessary, as the material of the safety seal 3 can then absorb the heat produced, without destroying the safety seal 3.
(27) It should also be noted that the sealing surface 32 may exclusively be formed in the axial direction on sealing area 31 or, alternatively, may be formed across the entire length of the safety seal 3 in the axial direction, i.e. across the base body and the sealing area 31.
LIST OF REFERENCE NUMBERS
(28) 1 mechanical seal assembly 2 mechanical seal 3 safety seal 4 rotating component 5 housing 6 product side 7 atmosphere side 8 intermediate area 9 groove 10 O-ring 11 gap 20 rotating slide ring 21 stationary slide ring 22 sealing gap 30 base body 31 sealing area 31a outer circumference of the sealing area 31b tapered area at the outer circumference of the sealing area 32 sealing surface 33 shoulder 34 lip 35 arc-shaped transition 37 lip-free projection 38 free end of the sealing area 40 shaft 41 first sleeve 42 second sleeve 42a outer circumference of the second sleeve 51 housing component 52 recess D1 thickness of the sealing area D2 thickness of the base body F force to deform the sealing area, i.e. across the base body and the sealing area 31 Arrow A leakage across the safety during normal operational state seal Arrow B leakage in case of failure Arrow L leakage during normal operational state L0 axial overall length of the safety seal L1 axial length of the base body L2 axial length of the sealing area L3 axial length of the lip-free projection P1 product pressure P2 pressure in intermediate area P3 atmosphere pressure