EXPLOSION PROTECTION VALVE FOR DECOUPLING SYSTEM PARTS OR WORKPIECES, COMPRISING A BEARING ASSEMBLY FOR THE VALVE CLOSING BODY
20220205549 · 2022-06-30
Inventors
- Loïc ZAUGG (Herisau, CH)
- Walter ALOI (Widnau, CH)
- Jürgen KERN (Weinfelden, CH)
- Aleksandar AGATONOVIC (Eschlikon, CH)
- Daniel ZELLWEGER (Gais, CH)
Cpc classification
F16K27/0209
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K17/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K1/465
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An explosion protection valve for decoupling system parts or workpieces, in particular for the installation in a pipeline, comprising a housing, a closing body which is axially guided inside the housing on a guide rod and can be displaced from a defined open position in the event of one of the group comprising a pressure and suction wave in the pipeline in at least one closing movement direction into a sealing closed position in which the closing body can be fixed by means of a locking device, a spring assembly, which is in operative connection to the closing body, on the guide rod for holding the closing body in the open position, bearing assemblies each carrying the end of the guide rod, which are each connected to the housing by means of at least one suspension cross-member, and a bearing arrangement, which is subject to play, of the at least one suspension cross-member in a receiving opening on the housing.
Claims
1. An explosion protection valve for decoupling one of the group comprising system parts and workpieces, the explosion protection valve comprising a housing, a closing body which is axially guided inside the housing on a guide rod and can be shifted from a defined open position in the event of one of the group comprising a pressure wave and a suction wave in the pipeline in at least one closing movement direction into a sealing closed position in which the closing body can be fixed by means of a locking device, a spring assembly, which is in operative connection to the closing body, on the guide rod for holding the closing body in the open position, bearing assemblies each carrying the end of the guide rod, which are each connected to the housing by means of at least one suspension cross-member, characterized by a bearing arrangement, which is subject to play, of the at least one suspension cross-member in a receiving opening on the housing.
2. An explosion protection valve according to claim 1, wherein the at least one suspension cross-member is indirectly mounted on the housing via a receiving adapter located in a flexible retaining ring.
3. An explosion protection valve according to claim 2, wherein the flexible retaining ring is fastened to form an edge protection profile with a bearing groove on the rim of the receiving opening of the housing.
4. An explosion protection valve according to claim 1, wherein a bearing play of the at least one suspension cross-member acts in radial and axial direction.
5. An explosion protection valve according to claim 1, further comprising a planar bearing surface applied to the otherwise tubular housing portion of the housing for the bearing arrangement of the at least one suspension cross-member in the receiving opening.
6. An explosion protection valve according to claim 5, wherein the planar bearing surface is embossed in the tubular housing portion.
7. An explosion protection valve according to claim 12, wherein the functional means is at least one of the group comprising a locking rod of the locking device and a sensing rod of a sensing device for the valve position.
8. An explosion protection valve according to claim 12, wherein the functional means engaging in the housing are each integrated in a suspension.
9. An explosion protection valve according to claim 6, wherein all suspension cross-members are arranged for receiving functional means.
10. An explosion protection valve according to claim 6, wherein, in the case of suspension cross-members not occupied by functional means, a receiving adapter designed as a closure lid (42) is provided for bearing the suspension cross-member in the receiving opening.
11. An explosion protection valve according to claim 1, wherein the valve is configured to be installs in a pipeline.
12. The explosion protection valve according to claim 1, wherein a functional means is integrated into the at least one suspension cross-member.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0020]
[0021]
[0022]
[0023]
[0024]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0025] As can be seen from
[0026] The internal structure of the explosion protection valve shall be explained with reference to
[0027] The closing body 7 is fastened to a carrier tube 12 which, for the indirect mounting of the closing body 7, is guided for longitudinal axial displacement on a central, longitudinally axially arranged guide rod 13 via sliding bushes 14, 15. The guide rod 13 itself is fastened at each of its ends in cylindrical retaining pieces 16, 17, each of which is designed to be conically tapered in the direction of the flanges 8, 9 in order to optimize the flow conditions through the valve. The retaining pieces 16, 17 are in turn held centrally in the tubular housing portions 5, 6 of the housing halves 3, 4 via four suspensions A to be explained in more detail.
[0028] A preloaded helical compression spring 18 is inserted between the guide rod 13 and the carrier tube 12, which is supported, on the one hand, on the left-hand slide bushing 14 (with reference to
[0029] In the event of an explosion pressure wave passing through the explosion protection valve in the closing movement direction, the closing body 7 is abruptly entrained in this direction against the load of the helical compression spring 18 and pressed with its sealing edge 11 against a sealing ring 19 arranged on the inner side of the housing 1, thus closing the explosion protection valve. In this way, the system parts arranged on the side of the closing body opposite the explosion source, which are connected to the left-hand flange 8 via an outgoing pipe, are protected from the explosion pressure wave and are decoupled from the system part on the interference side. In the closed position of the closing body 7, which is not shown in the figures, the latter is locked via a locking device V to be discussed in more detail, so that the valve remains closed until its reset which can be initiated manually.
[0030] In the following, with reference to
[0031] A sealing portion 26 of the sealing ring 19, which interacts with the sealing edge 11 of the closing body 7 in the closed position of the valve, is located outside the receiving pocket 21 and in front of it against the closing movement direction SB. Thus, the sealing portion 26 does not engage in the free flow cross-section of the tubular housing portion 5 of the housing half 3. Rather, it smoothly merges into the tubular housing portion 5 at its radially inwardly facing rim 27, for which purpose the rim 27 is formed as a projection corresponding to the wall thickness of the tubular housing portion 5. Starting from there, the inner contour 28 of the sealing portion 26, which is flowed towards by the medium through the valve, is outwardly spherical in cross-section, forming a quarter circle. Further, the inner contour 28 then merges towards the radially outwardly pointing rim 29 into a circumferential sealing lip 30 with which the sealing portion 26 adjoins the inner side 20 of the housing half 3.
[0032] Due to the above-discussed shaping of the sealing ring 19, in particular in the region of the sealing portion 26, the free cross-section of the valve between the open closing body 7 and the inner side 20 of the housing 1 is optimized in terms of flow, as can be seen in particular from
[0033] As can be seen further in particular from
[0034] In the further development of the sealing ring 19 shown in
[0035] With reference to
[0036] For a stable mounting of the two retaining pieces 16, 17, the respective suspension cross-members 32 with the receiving adapters 33 are inserted into the corresponding receiving openings 39 and the respective threaded connections are tightened via the internal thread 34 and the threaded bushing 35. Any possible dimensional deviations within the constructional parts are thereby compensated for by the bearing arrangement subject to play of the receiving adapters 33 in the receiving openings 39 via the flexible retaining rings 37.
[0037] In the case of the right-hand retaining piece 17, the suspension A serves only to support the retaining piece 17. Accordingly, the receiving adapter 33 is designed there as a closure lid 42 closed off to the outside.
[0038] The two suspensions A of the retaining piece 16 located in the closing movement direction SB, i.e. on the side of the closing body 7 opposite the explosion source, are occupied by additional functional means, namely on the one hand the upper suspension A with the locking device V, with reference to
[0039] This functional mechanism, at the ends of the carrier tube 12, has a catch piece 43 formed as a truncated cone, wherein in the embodiment shown only the catch piece 43 located on the side of the locking device V is functionally relevant. On the one hand, the catch piece 43 arranged at the other end has a functional significance when a bidirectional explosion protection valve is used instead of the unidirectionally acting explosion protection valve shown. On the other hand, in the case of the unidirectionally acting valve shown, it has the function of being able to adjust the central position of the closing body relative to the flange connection 2. For this purpose, the construction shown in
[0040] The locking device V, which is integrated in the suspension A arranged at the top left, as a central part has a radially running locking rod 44 which is guided in a radially displaceable manner in a socket 45 screwed onto the adapter 33, in the receiving adapter 33 itself and in the suspension cross-member 32. Via a collar 46, a release spring 47 configured as a helical compression spring acts to push the locking rod 44 radially inwardly when released. In the resting position shown, the locking rod 44 is retracted upwards and is retained in this resting position by a support bushing 48 which is axially shiftable in the retaining piece 16. The latter is loaded counter to the closing movement direction SB by a further helical compression spring 49.
[0041] A return mechanism 50 is configured at the upper end of the socket 45, which is known through obvious prior use. Since this return mechanism 50 has no central significance for the invention itself, a detailed description will be omitted in order to avoid unnecessary lengthiness.
[0042] On the side opposite the locking device V, the sensing device C is integrated into the suspension A, wherein in this case a sensing rod 51 is guided in a radially shiftable manner in the receiving adapter 33 and the corresponding suspension cross-member 32. A bearing cap 52 is screwed onto the receiving adapter 33, into which in turn a helical compression spring 53 is inserted for loading the sensing rod 51 via a collar 54 attached thereto in a radially inward direction. At the end of the sensing rod 51 projecting from the bearing cap 52, a feeler piece 55 is provided which interacts with a proximity switch 56. The latter is held on a bearing strut 57 at the bottom of the tubular housing portion 5. Alternatively, a mechanical switch may also be attached, which is mounted in a radial extension of the sensing rod 51 and is also mounted to the bearing strut 57 by means of an adapter sheet.
[0043] In the event of an abrupt pressure wave passing through the explosion protection valve due to an explosion in a part of the system located to the right of the valve shown, the closing body 7 is abruptly shifted in the closing movement direction SB to the left in relation to
[0044] During the described triggering process, the conical front portion of the catch piece 43 simultaneously pushes the sensing rod 51, which engages inwardly via a slot in the support bushing 48, outwardly against the action of the helical compression spring 53. This causes the sensing piece 55 to move away from the proximity switch 56, allowing the latter to provide an electric signal to a corresponding control (not shown) that the explosion protection valve has been triggered. Alternatively, depending on the signal required from the control, the retaining sheet of the proximity switch 56 may be rotated by 180° and the sensing piece 55 moves into the sensing region of the proximity switch 56. If a mechanical switch is used, the sensing piece is omitted and the sensing rod directly actuates the mechanical switch.
[0045] For the return of the explosion protection valve to the open position shown in