Valve shaft locking mechanism

MY214541AActive Publication Date: 2026-07-30PROTECHNA SA
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Patent Information

Authority / Receiving Office
MY · MY
Patent Type
Patents
Current Assignee / Owner
Filing Date
2020-07-03
Publication Date
2026-07-30

AI Technical Summary

Technical Problem

Existing removal fittings for liquid containers require high assembly force to secure the valve shaft, which is unnecessary and can lead to unintentional removal during valve actuation, necessitating a solution that reduces assembly force without compromising axial fixation.

Method used

A positive engagement mechanism between the housing dome and valve shaft section, featuring a radial dome projection and a ramp-shaped valve shaft projection, allows for secure axial locking with reduced assembly force and increased disassembly force, utilizing a modified mold core for production without changing the injection molding tool.

Benefits of technology

This design enables assembly with minimal force while ensuring secure axial fixation, preventing unintentional removal and simplifying the manufacturing process, with the radial engagement mechanism providing a secure lock that requires higher force for disassembly.

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Abstract

A tapping armature (10) for liquid containers, in particular for being connected to the outlet port or the outlet opening of a transport and storage container for liquids, the tapping armature (10) comprising an armature housing (11) in which a valve body (17) pivotable by means of a valve shaft (16) and serving to open and close a flow cross section of an outlet tube (19) is disposed, a connection end (22) of the valve shaft (16) for being connected to the valve body (17) being disposed in the outlet tube (19) of the armature housing (11) and an operating end (20) of the valve shaft (16) protruding from the armature housing (11) through a housing dome (21) formed on the armature housing (11). A form-fitting engagement is established between the housing dome (21) and a valve shaft portion housed in the housing dome (21) in order to axially secure the valve shaft (16) in the armature housing (11). (Fig. 4)
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Description

[0001] Valve shaft locking

[0002] The present invention relates to a dispensing fitting for liquid containers, in particular for connection to the outlet nozzle or outlet opening of a transport and storage container for liquids, comprising a fitting housing in which a valve body pivotable with a valve shaft is arranged for opening and closing a flow cross-section of an outlet pipe, wherein the valve shaft is arranged with a connecting end for connection with the valve body in the outlet pipe of the fitting housing, and is led out of the fitting housing with an actuating end through a housing dome formed on the fitting housing.From DE 10 2018 102 062 Al, a withdrawal fitting of the type mentioned above is known, in which the axial securing of the valve shaft in the fitting housing between the housing dome and the valve shaft section received in the housing dome is effected by a force-fit connection between the valve shaft section and the housing dome by forming a suitable fit between the diameter of the valve shaft section and the inner diameter of the housing dome.

[0003] To mount the valve stem in the housing dome of the valve body, it is therefore necessary that the valve stem section be pressed into the bore of the housing dome to ensure that the valve stem is axially fixed in the valve body by sufficient friction between the valve stem section and the housing dome. To prevent unintentional removal of the valve stem from the valve body when the valve release mechanism is actuated, the pressing force required for installation, which presupposes a corresponding pull-out force for removing the valve stem, must be sufficiently high. The pressing force is thus greater than what is actually required for mounting the valve stem.

[0004] The invention is therefore based on the objective of proposing a withdrawal fitting with a valve shaft whose assembly requires only a small assembly force, without impairing a secure axial fixation of the valve shaft in the fitting housing.

[0005] To solve this problem, the extraction device according to the invention has the features of claim 1.

[0006] According to the invention, a positive engagement is formed between the housing dome and a valve shaft section received in the housing dome to axially secure the valve shaft in the valve housing.

[0007] The axial securing of the valve shaft via a positive fit between the valve shaft and the housing dome makes it possible to select a sufficiently large assembly force to create the positive fit, whereby the axial securing is achieved independently of the assembly force via the formed positive fit.

[0008] It is particularly preferred if, for the formation of the positive-locking engagement, an engagement device is designed with a radial dome projection formed in a through-opening of the housing dome, which serves for the passage of the valve shaft section, and which forms an axial detent device with a radial valve shaft projection of the valve shaft section. Due to this preferred embodiment, the valve housing, which is regularly manufactured in an injection molding process, can be produced without changing the mold used in the injection molding process.Rather, the manufacture of the valve housing with the housing dome formed on the valve housing, the production of which requires the use of a mold core defining the receiving bore for the valve stem, can be achieved by only a slight modification of the previously used mold core, without having to change the mold itself or even require a new mold. If the dome projection is formed at the axially lower end of the through-opening in the housing dome, the axial fixation occurs at the transition between the outlet pipe and the housing dome, and thus at a particularly rigid point on the valve housing.

[0009] Preferably, the dome projection is ramp-shaped with a relatively short locking ramp that rises steeply in the mounting direction of the valve stem and a relatively long, flat locking ramp that slopes downwards in the mounting direction of the valve stem. This allows the locking ramp and the locking ramp to be easily manufactured in an injection molding process for producing the valve body with a forced-ejection core. Furthermore, the locking ramp forms an obstacle that is relatively easy to overcome during valve stem installation, and the locking ramp forms an ascending ramp in the disassembly direction, which allows the valve stem to be removed only with a relatively high pull-out force.It is particularly advantageous if, in combination with the advantageous design of the dome projection described above, the valve shaft projection is also designed in a ramp-like manner with a locking ramp sloping in the assembly direction and a locking shoulder formed at the end of the ramp, since the oppositely designed locking ramps of the dome projection and the valve shaft projection thus allow the locking ramps to slide against each other during the assembly process and thus enable the assembly process to be carried out with a relatively low assembly force.

[0010] In the disassembly direction, however, the detent shoulder of the valve shaft projection, in combination with the locking ramp rising in the disassembly direction, forms an axial obstacle to movement, so that the application of a disassembly force significantly higher than the assembly force is necessary to move the detent shoulder of the valve shaft projection over the dome projection.

[0011] Preferably, the valve shaft section is designed as a sealing section for receiving radial sealing elements of a sealing device for sealing the valve shaft against the housing dome, so that the housing dome, apart from the area in which the dome projection is formed, has a constant inner diameter over the height of the dome projection, which further simplifies the manufacture of the valve housing in the injection molding process.

[0012] If the outer diameter of the valve stem projection corresponds to the outer diameter of the valve stem section, the valve stem projection can simultaneously fulfill the function of a splash collar arranged upstream of the sealing device, so that the volume forces acting on the seals in the sealing section of the fluid flowing out of the valve housing are reduced in their effect on the sealing device.

[0013] It is particularly advantageous if the valve shaft section adjacent to the dome projection has a support collar for supporting contact on the locking ramp of the dome projection, so that the locking ramp of the dome projection simultaneously serves as an axial support for the valve shaft.

[0014] Furthermore, if the support collar and the detent projection have corresponding cross-sectional contours, the dome projection together with the support collar forms an axial sliding bearing for convenient operation of the dispensing valve.

[0015] A preferred embodiment of the extraction device is explained in more detail below with reference to the drawings.

[0016] They show:

[0017] Fig. 1 An isometric representation of a dispensing fitting connected to a transport and storage container for liquids with a valve shaft guided in a housing dome of a fitting housing;

[0018] Fig. 2 shows a component mounted in the housing dome of the valve housing.

[0019] Valve shaft cut-off;

[0020] Fig. 3 shows another embodiment of the valve shaft section;

[0021] Fig. 4 shows a longitudinal section of a dispensing fitting with the valve shaft section mounted in the housing dome of the fitting housing. Fig. 1 shows a dispensing fitting 10, which has a fitting housing 11 that is connected to an inlet 12 by means of a union nut 13 to an outlet nozzle 14, which is arranged on a liquid container 15, of which only the fitting connection area is shown in Fig. 1. Liquid container 15 of the type as in

[0022] The components shown in Fig. 1 are manufactured, for example, using a blow molding process and form part of an Intermediate Bulk Container (IBC), where they are arranged in a wire cage on a pallet. Fig. 1 shows the dispensing valve 10 in its closed position, in which a valve body 17 arranged on a valve shaft 16 blocks the flow cross-section of an outlet pipe 19 formed through the valve housing 11. In the embodiment shown here, the valve body 17 is connected to a terminal end 22 of the valve shaft 16 via a shaft-hub connection 18. The valve shaft 16 extends from the valve housing 11 through a housing dome 21 formed on the valve housing 11 at an actuating end 20 and is received in the housing dome 21 by a valve shaft section 23.

[0023] As can be seen particularly in Fig. 2, an engagement device 24 is formed between the housing dome 21 and the valve shaft section 23 formed in the transition between the connection end 22 and the actuating end 20. This engagement device has a radial dome projection 26 formed in a through-opening 25 of the housing dome 21, which in the present embodiment is designed as an annular web. A radial valve shaft projection 27 is formed on the connecting shaft section 23. As can be seen from Fig. 2, when the valve shaft 16 is mounted in the valve housing 11, and the valve shaft 16 is inserted into the housing dome 21 from above in the mounting direction 32, the valve shaft projection 27, together with the dome projection 26, forms an axially acting detent device.

[0024] Both the dome projection 26 and the valve stem projection 27 are ramp-shaped, with the dome projection 26 initially having a relatively short, steeply rising ramp 28 when viewed in the assembly direction 32. The valve stem projection 27 is guided over this ramp during assembly, so that after a ramp 29 formed on the valve stem projection 27, which slopes downwards in the assembly direction, slides over the dome projection 26, the valve stem projection 27 engages behind the dome projection 26. In contrast to the relatively small pressing force required to achieve the [unclear] shown in Fig.To achieve the configuration shown in Figure 2, in which the valve shaft projection 27 is locked behind the dome projection 26, a significantly higher pull-out force is required compared to the press-in force in order to release the locking connection between the valve shaft 16 and the housing dome 21 of the valve housing 1 1, due to the rising design of a locking ramp 30 of the dome projection 26 in the disassembly direction 33 and a locking shoulder 3 1 formed on the valve shaft projection 27.

[0025] This ensures that separation of the valve stem 16 from the valve housing 11 is only the result of a deliberately executed disassembly process and cannot occur during a normal opening of the valve. In contrast, due to the opposing upward slope of the locking ramp 28 of the dome projection 26 and the locking ramp 29 of the valve stem projection 27, such that the locking ramps 28, 29 can slide against each other when joining the connection between the valve stem 16 and the dome projection 26, only a comparatively small pressing or joining force is required.

[0026] As Fig. 2 further shows, the valve shaft section 23 adjacent to the dome projection 26 has a support collar 34 for supporting support on the locking ramp 28 of the dome projection 26, wherein the locking ramp 28 and the support collar 34 have corresponding cross-sectional contours 35, 36.

[0027] Fig. 3 shows a further embodiment of a valve shaft section 37 which, unlike the valve shaft section 23, does not have a support collar 34 formed on a groove flank 38 of a receiving groove 39 intended for receiving a radial sealing element 43, with a cross-sectional contour 36 adapted to the cross-sectional contour 35 of the dome projection 26, but instead has a chamfer 40 on the groove flank 38 opposite the dome projection 26. This ensures that axial support of the valve shaft 16, as shown in Fig. 4, is achieved only by a handle 40 connected to the valve shaft 16 bearing against an upper edge 42 of the housing dome 21, and that contact between the groove flank 38 and the dome projection 26 is excluded.In the event that the valve shaft 16 is pressed too deeply into the housing dome 21 during assembly, this prevents undesirable damage to the dome projection 26, which could lead to the desired high pull-out forces not being achieved, from being caused by the groove flank 38.

Claims

Patent claims 1. Dispensing fitting (10) for liquid containers, in particular for connection to the outlet nozzle or the outlet opening of a transport and storage container for liquids, comprising a fitting housing (11) in which a valve body (17) pivotable with a valve shaft (16) for opening and closing a flow cross-section of an outlet pipe (19) is arranged, wherein the valve shaft (16) is arranged with a connecting end (22) for connection with the valve body (17) in the outlet pipe (19) of the fitting housing (11), and is led out of the fitting housing (11) with an actuating end (20) through a housing dome (21) formed on the fitting housing (11), characterized by that a positive locking connection is provided between the housing dome (21) and a valve shaft section (23) received in the housing dome (21) for axial securing of the valve shaft (16) in the valve housing (11). The procedure is trained.

2. Sampling fitting according to claim 1, characterized by that, for the formation of the positive locking engagement, an engagement device (24) is formed with a radial dome projection (26) formed in a through-opening (25) of the housing dome (21), which serves to guide the valve shaft section (23), which forms an axial locking device with a radial valve shaft projection (27) of the connecting shaft section (23).

3. Sampling valve according to claim 2, characterized by that the dome projection (26) is formed at the axially lower end of the passage opening (25) in the housing dome (21).

4. Sampling valve according to claim 2 or 3, characterized by that the dome projection (26) is ramp-shaped with a relatively short locking ramp (28) rising steeply in the mounting direction (32) of the valve shaft (16) and a relatively long, flat locking ramp (30) descending in the mounting direction (32) of the valve shaft (16).

5. Sampling fitting according to claim 4, characterized by that the valve shaft projection (27) is also formed in a ramp shape with a detent ramp (29) descending in the assembly direction (32) and a detent shoulder (31) formed at the end of the detent ramp (29).

6. Sampling fitting according to one of claims 2 to 5, characterized by that the valve shaft section (23) serves as a sealing section for the up- The take-up of radial sealing elements (43) is designed to seal the valve shaft (16) against the housing dome (21).

7. Sampling fitting according to claim 6, characterized by that the outer diameter of the valve stem projection (27) The outer diameter of the valve shaft section (23) corresponds to this.

8. Sampling fitting according to one of claims 2 to 7, characterized by that the valve shaft section (23) adjacent to the dome projection (26) has a support collar (34) for supporting support on the grid ramp (28) of the dome projection (26).

9. Sampling valve according to claim 8, characterized by that the support collar (34) and the valve shaft projection (27) have corresponding cross-sectional contours (35, 36).