A BACKFLOW PREVENTER, A HOSE COUPLING OF A HYDRANT AND A HYDRANT
20210340742 · 2021-11-04
Assignee
Inventors
Cpc classification
F16K15/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K15/038
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K15/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K15/063
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K15/028
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
E03B7/07
FIXED CONSTRUCTIONS
E03B9/16
FIXED CONSTRUCTIONS
E03C1/10
FIXED CONSTRUCTIONS
F16K15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A backflow preventer adapted for installation in an inner conduit of a hose coupling of a hydrant is disclosed. The backflow preventer contains a non-return device having a closing body, a seal seat, and a resetting device. The resetting device is adapted to resiliently pretension the closing body into sealing engagement against the seal seat.
Claims
1. A backflow preventer (12;112;212) adapted to be installed in an inner conduit of a hose coupling (10;110;210) of a hydrant, wherein the backflow preventer (12;112;212) contains a non-return device (14;114;214) comprising a closing body (16;116;216), a seal seat (18;118;218) and a resetting device (20;120;220), wherein the resetting device (20;120;220) is adapted to resiliently pretension the closing body (16;116;216) into sealing engagement against the seal seat (18;118;218).
2. The backflow preventer (12) according to claim 1, wherein the resetting device (20) comprises at least one compression spring (22) aligned in the axial direction of the inner conduit of the hose coupling (10), wherein the compression spring (22) is adapted to pretension the closing body (16) in a sealing manner against the seal seat (18).
3. The backflow preventer (12) according to claim 1, wherein the closing body (16) is provided at least in sections with a circumferential seal (30).
4. The backflow preventer (12) according to claim 1, wherein the closing body (16) is axially guided by a plurality of webs (S) provided circumferentially around the closing body (16).
5. The backflow preventer (12) according to claim 4, wherein the webs (S) are integrally formed with sections of the inner conduit of the hose coupling (10).
6. The backflow preventer (12) according to one of claim 1, wherein the closing body (16) is substantially tapered at least in the direction toward the shutoff.
7. The backflow preventer (12) according to claim 3, wherein the closing body (16) comprises at least two partial bodies (32′,32″) that can be coupled together, wherein at least one of the partial bodies is provided with a circumferential recess for receiving the seal (30).
8. The backflow preventer (12) according to claim 3, wherein the closing body (16) is formed integrally and is provided with a circumferentially extending recess for accommodating the seal (30).
9. The backflow preventer (12) according to claim 1, further comprising at least one shaft (24) coupled at one end to the closing body (16) and resiliently pretensioned at the other end relative to the hose coupling (10).
10. The backflow preventer (112;212) according to claim 1, wherein the closing body comprises at least one pivotally articulated sealing plate (116;216) which is resiliently pretensioned by the resetting device (120;220) in such a way that the sealing plate (116;216) can be applied at least in sections in a sealing manner against the sealing surface (118;218).
11. The backflow preventer (112;212) according to claim 10, wherein the at least one sealing plate (116;216) by means of a peripheral portion thereof can be applied in a sealing manner against the sealing surface (118;218).
12. The backflow preventer (212) according to claim 10, wherein the closing body (216) comprises two substantially semicircular sealing plates (216′,216″).
13. The backflow preventer (212) according to claim 12, wherein the semi-circular sealing plates (216′,216″) are pivotally articulated in such a way that a semi-circular circumferential portion thereof can be applied in a sealing manner against the sealing surface (218).
14. The backflow preventer (112;212) according to claim 10, wherein the resetting device comprises a torsion spring (120;220) which resiliently pretensions with at least one leg thereof the at least one sealing plate (116;216′,216″) into sealing engagement against the seal seat (118;218).
15. The backflow preventer (212) according to claim 12, wherein the resetting device comprises a torsion spring (220) having two legs, wherein the two legs resiliently pretension each of the two sealing plates (216′,216″) into sealing engagement against the seal seat (218).
16. The backflow preventer (212) according to claim 10, further comprising a base part (221) adapted to pivotally support the at least one sealing plate (216′,216″), wherein the base part (221) can be accommodated in the inner conduit of the hose coupling (210).
17. The backflow preventer (212) according to claim 16, wherein the base part (221) comprises a flange (223) which can be coupled in a fluid-tight manner via its outer surface to the inner surface of the inner conduit of the hose coupling (210).
18. A hose coupling (10;110;210) of a hydrant, comprising a backflow preventer (12;112;212) according to claim 1, adapted to shut off a backflow of water via the hose coupling (10;110;210) into the interior of the hydrant.
19. The hose coupling (10;110;210) according to claim 18, adapted for threaded coupling to a water outlet of the hydrant.
20. Hydrant comprising a hose coupling (10;110;210) according to claim 18, adapted to shut off a backflow of water via the hose coupling (10;110;210) into the interior of the hydrant.
Description
[0035]
[0036] The backflow preventer 12 contains a non-return device 14 which allows water to flow out of the hydrant (in the figures, the direction of water flow is from right to left, see also arrows W in
[0037]
[0038] The non-return device 14 comprises a closing body 16, a seal seat 18 and a resetting device 20, which resiliently pretensions the closing body 16 into sealing engagement against the seal seat 18. In the embodiment shown in
[0039] The compression spring 22, which is mounted on the shaft 24, has one end abutting a planar portion of a support 28, which in turn is rigidly coupled to the body of the hose coupling 10. The other end of the compression spring 22 abuts a portion of a cap 29, which is coupled to the distal end of the shaft 24. The compression spring 22 applies a compressive force between the support 28 and the cap 29 of the shaft 24, with the result that the closing body 16 is resiliently pretensioned against the body of the hose coupling 12.
[0040] In the depressurized state of the hydrant (no water draw), the shaft 24 is pushed away from the support 28 (and thus also from the body of the hose coupling 10) by the spring force of the compression spring 22, pressing the closing body 16 against the seal seat 18 (see
[0041] In the event of a water draw (see
[0042] As soon as the hydrant is closed again, the spring force prevails and forces the closing body 16 back into tight engagement against the seal seat 18. A backflow of e.g. extinguishing water into the hydrant is thus prevented.
[0043] For sealing purposes, the closing body 16 is provided with a circumferential seal 30 for reliable sealing with respect to the seal seat 18. The seal 30 may comprise a rubber material. In the embodiment shown, the closing body 16 comprises two partial bodies 32′,32″ which are coupled to each other. The outwardly facing partial body 32′ is provided with a circumferential recess into which the seal 30 can be placed or accommodated from the side. Once the two partial bodies 32′,32″ are coupled together, the seal 30 is positively retained between the two partial bodies 32′,32″. Although not shown, the recess may also be formed in the other partial body 32″ or the recess may be formed in both partial bodies 32′,32″. Furthermore, although not shown, the closing body may be integrally formed and provided with a circumferential recess for accommodating the seal.
[0044] The inner conduit of the hose coupling 12 is circumferentially provided with several webs S, against which the closing body 16 abuts over its circumference at least in sections. Thus, the closing body 16 can be reliably guided axially by means of the webs S. The webs S can be formed integrally with (material) sections of the inner conduit of the hose coupling 10, for example by corresponding recesses A being introduced into the material of the inner conduit. Those sections of the inner conduit which are not recessed thus form the corresponding webs S. Thus, a web S is present between adjacent recesses A in each case. In the extended state of the closing body 16, the water flows across the recesses A to the outlet side, as indicated in
[0045] In the inoperative state of the hydrant, in the retracted state of the closing body 16 (see
[0046]
[0047]
[0048]
[0049] As soon as the hydrant is opened, a force applied to the sealing plates 216′,216″ in the direction of flow is greater than a torque applied by the torsion spring 220 or torsion bar spring, causing the sealing plates 216′,216″ to be lifted off the seal seat 218 (see