Device for closing a container
The device integrates an elastic, pre-tensioned element positioned above or alongside a stroke curve follower, simplifying adjustment and cleaning, and relocates the ejector function upwards, addressing space and hygiene issues in existing container closing devices.
Patent Information
- Application Number
- EP2025180017
- Authority / Receiving Office
- EP · EP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-06-05
- Filing Date
- 2025-05-30
- Publication Date
- 2025-12-10
AI Technical Summary
Existing container closing devices require complex adjustments for head pressure, are difficult to clean, and occupy significant space due to their design, especially with pre-tensioning devices located near the container opening.
A device with a pre-tensioning mechanism that integrates an elastic, pre-tensioned element positioned above or alongside a stroke curve follower, allowing for a compact design that simplifies adjustment and cleaning, using materials other than stainless steel, and relocates the ejector function upwards, and relocates the ejector function upwards. The device includes a closing mechanism that integrates an elastic, pre-tensioned element positioned above or alongside a stroke curve follower, allowing for a compact design that simplifies adjustment and cleaning, using materials other than stainless steel, and relocates the ejector function upwards. The device includes a closing mechanism that integrates an elastic, pre-tensioned element positioned alongside a stroke curve follower, allowing for a compact design that simplifies adjustment and cleaning, using materials other than stainless steel, and relocates the ejector function upwards. The device integrates an elastic, pre-tensioned element positioned above or alongside a stroke curve follower, allowing for a compact design that simplifies adjustment and cleaning, using materials other than stainless steel, and relocates the ejector function upwards.
The solution reduces the overall length, preferably to the point where the pre-tensioning device itself requires no additional length, and relocates the ejector function upwards. The device includes a closing mechanism that integrates an elastic, pre-tensioned element positioned alongside a stroke curve follower, allowing for a simplified and cleaner configuration, using stainless steel, and relocates the ejector function upwards. The device integrates an inelastic, pre-tensioned element positioned above or alongside a stroke curve follower, allowing for a compact design that simplifies adjustment and cleaning, using materials other than stainless steel, and relocates the ejector function upwards.
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Figure IMGAF001_ABST
Abstract
Description
Technical field
[0001] The invention relates to a device for closing a container, comprising a pre-tensioning device which has at least one elastic, pre-tensioned element for applying a head pressure. The invention further relates to a capper with at least one such device. Technical background
[0002] In beverage bottling plants, containers are typically filled with a product, such as a beverage. Following filling, the filled container is sealed with a container closure using a device.
[0003] Depending on the type of container being filled, various types of container closures are known. For example, beverage bottles are commonly closed with a roll-on cap, a screw cap, a push-on cap, or a push-in cap.
[0004] To provide the necessary head pressure for applying the closures, the device can have a pre-tensioning device by means of which a closure receptacle is pre-tensioned relative to a lifting unit of the device in the direction of the container to be closed.
[0005] For example, with standard screw capper heads, the head pressure required for closure can be applied within the capping head itself. This can be achieved using a pre-tensioned spring with a torsionally rigid length compensation element. During the closing process, the so-called head pressure on the cap and the container opening is created by further compressing the pre-tensioned spring, with the length compensation element compensating for the resulting overtravel.
[0006] This well-known pre-tensioning device consists of many individual parts that are difficult to clean and are installed quite close to the container opening. The spring action of the pre-tensioning device during the closing process must be taken into account when determining the length of any ejector rod that may be present. Adjusting or changing the head pressure is quite complex due to the locking mechanism with a setscrew and the need for rotation. Furthermore, the adjustment mechanism is located in a hygienic area, necessitating cleaning after each adjustment.
[0007] Other approaches for arranging and configuring a preload device for specifying the head pressure are known in the prior art.
[0008] For example, CN 112850602 A discloses a device in which a preloading device is arranged between a screw arm and an assembly with a roller for following a stroke curve. A locking gripper head is connected to the lower end of the screw arm.
[0009] DE 10 2021 132 348 A1 discloses a device for closing containers, in which a pre-tensioning device has a compression spring element that is arranged within a lifting unit between an actuating element and a closure receptacle.
[0010] The invention is based on the objective of creating an improved device for closing containers. Preferably, a particularly space-saving and easily cleanable configuration for a pre-tensioning device of the apparatus is to be created. Summary of the invention
[0011] The problem is solved by the features of independent claim 1. Advantageous further developments are specified in the dependent claims and the description.
[0012] One aspect of the present disclosure relates to a device for closing a container. The device comprises a closing element (e.g., a closing cone) for applying a closure (e.g., a roll-on closure, screw cap, push-on closure, crown cap, and / or snap-on closure) to the container. The device further comprises a pre-tensioning device, preferably manually adjustable (e.g., a head-pressure device), with at least one elastic, pre-tensioned element (e.g., a coil spring, preferably a compression spring) for applying a head pressure with which the closing element applies the closure to the container. The device additionally comprises a stroke curve follower, preferably a roller, for following a stroke curve. The stroke curve follower is connected (among other things) to the closing element via the pre-tensioning device for vertical movement of the closing element when following the stroke curve.The at least one elastic, prestressed element is arranged essentially at the same level as, or above, the stroke curve follower. Alternatively, a vertical extension of the at least one elastic, prestressed element along a vertical axis (i.e., projected onto a vertical axis) and a vertical extension of the stroke curve follower along the vertical axis (i.e., projected onto the vertical axis) overlap or adjoin each other. In other words, the at least one elastic, prestressed element and the stroke curve follower can overlap or adjoin each other when viewed from a horizontal perspective (e.g., in an installation situation of the device).
[0013] Advantageously, the pre-tensioning device can be arranged at the upper end of the device in the area of the stroke curve. In contrast to conventional devices, this arrangement significantly reduces the overall length (height), preferably to the point where the pre-tensioning device itself requires no additional length at all. This is because existing space in or above the stroke curve follower can be advantageously used to fully accommodate the pre-tensioning device. For example, the device proposed here can save approximately 90 mm in length. This saved length could then be used for other elements, such as a seal, a wiper, or a bellows, to further improve the device.In addition, the conventional pre-tensioning device, which is composed of many individual parts and difficult to clean, can be omitted directly above or within the closing head, thus significantly improving the cleanability of the device. Furthermore, the arrangement of the pre-tensioning device proposed herein allows the use of materials other than stainless steel for the components of the pre-tensioning device, since no cleaning with aggressive media takes place in this area. These and other advantages can be achieved to a particularly pronounced degree in the preferred embodiments described below.
[0014] In another embodiment, the at least one elastic, prestressed element is arranged on the outside of the device and / or is accessible from the outside.
[0015] In one embodiment, the device further comprises a holder (e.g., essentially block-shaped) on which the stroke curve follower is preferably rotatably held.
[0016] In another embodiment, the at least one elastic, prestressed element can be clamped between the holder and a bracket of the prestressing device.
[0017] In another embodiment, the at least one elastic, prestressed element is arranged essentially at the same level as the holder.
[0018] In one embodiment, the at least one elastic, prestressed element has two elastic, prestressed elements arranged on opposite sides of the holder.
[0019] In a further embodiment, the device also includes a bearing component, preferably a bearing bolt, wherein a lifting cylinder tube (e.g., hollow lifting cylinder shaft) of the device is preferably rotatably mounted on the bearing component and / or a gear (e.g., spur gear) of the device for receiving a torque to screw or roll the closure onto the container is rotatably mounted. Optionally, at least one elastic, pre-tensioned element can be arranged to act between the holder and the bearing component.
[0020] Preferably, the holder, the bearing component and / or the lifting cylinder tube can be arranged in a lifting connection between the lifting curve follower and the closing element.
[0021] In one embodiment, the bearing component is mounted in the holder in such a way as to be vertically displaceable.
[0022] In a further embodiment, the device also includes a support plate that is attached to the bearing component or integrally connected to it. Preferably, the support plate can lift off the holder if the predetermined head pressure is exceeded when the closure is applied to the container.
[0023] In one embodiment, the support plate and the at least one elastic, prestressed element are arranged on opposite sides of at least one projecting support plate section of the holder. Optionally, the at least one elastic, prestressed element can be supported on the at least one projecting support plate section, preferably via at least one bushing.
[0024] In a further embodiment, the preloading device has at least one adjusting element, preferably an adjusting screw, for adjusting the preload of the at least one elastic, preloaded element. Preferably, the at least one adjusting element can be arranged essentially at the same level as or above the stroke cam follower. Advantageously, the head pressure can thus also be adjusted in the so-called gray area, which is located far from the cleaning zone or the hygienic area. In the case of a cleanroom partition or isolator, this is outside the cleanroom, which has the advantage that no access to the cleanroom is required for adjustment. The very cumbersome adjustment using a setscrew is thus simplified.
[0025] In one embodiment, a head of the at least one adjusting element (e.g. accessible from the outside) is arranged above the support plate, preferably adjacent to a top surface of the support plate.
[0026] In another embodiment, the at least one adjusting element extends through the support plate, the at least one support plate section and / or the at least one elastic, prestressed element.
[0027] In another embodiment variant, the at least one adjusting element is connected to the at least one support plate section via at least one sliding bearing.
[0028] In one embodiment, the preloading device further comprises a bracket into which the at least one adjusting element for adjusting the preload of the at least one elastic, preloaded element can be screwed. Preferably, the at least one elastic, preloaded element can be supported on the bracket (e.g., via at least one bushing), and / or the bracket can have two, preferably L-shaped, arms and optionally a web connecting the two arms.
[0029] In a further embodiment, the device also features an ejector mechanism designed to eject unapplied closures from the closure element, wherein a section of the ejector mechanism is arranged at the same level as the stroke cam follower and / or extends vertically upwards above the stroke cam follower. Advantageously, this eliminates the conventional ejector function with slots in the stroke cylinder tube and relocates the ejector function upwards. The resulting elimination of the slots in the stroke cylinder tube offers a hygienic advantage.
[0030] In one embodiment, the ejector device has an ejector rod, preferably vertically movable or vertically fixed. Preferably, the ejector rod can extend through a bearing component of the device. Alternatively or additionally, the ejector rod can be arranged, for example, at the same level as the preloading device, the at least one elastic, preloaded element, and / or the stroke curve follower. Alternatively or additionally, the ejector rod can extend vertically upwards, for example, above the preloading device, the at least one elastic, preloaded element, and / or the stroke curve follower.
[0031] A key advantage is that, since the overstroke during closing can now be compensated for at the top of the stroke curve, the distance between the ejector rod and the closure remains constant during the overstroke. Therefore, the ejector rod can be designed with a shorter stroke and precisely the required length. Another benefit is that, as with the ejector rod, the overstroke has no effect on the control rod of a gripper. This design can therefore also be highly advantageous for a gripper head.
[0032] Another aspect of the present disclosure relates to a capper, preferably a rotary capper, for capping containers. The capper has a (e.g., rotating and / or stationary) stroke cam and at least one device as disclosed herein. The stroke cam follower of the at least one device is guided on the stroke cam. Preferably, several of the devices are arranged distributed around a circumference of the capper.
[0033] Another aspect of the present disclosure relates to a container handling system (e.g., for tempering, manufacturing, cleaning, coating, testing, filling, closing, pasteurizing, labeling, printing, marking, laser marking, and / or packaging containers for liquid or pasty media, preferably beverages, liquid food products, or products from the pharmaceutical or healthcare industries). The container handling system may include the closing device or apparatus as disclosed herein.
[0034] For example, the containers can be designed as bottles, cans, canisters, cartons, vials, tubes, etc.
[0035] The previously described preferred embodiments and features of the invention can be combined with one another in any way. Brief description of the characters
[0036] Further details and advantages of the invention are described below with reference to the accompanying drawings. These show: Figure 1 is a side view of a device according to an embodiment of the present disclosure; Figure 2 is a further side view of the exemplary device; Figure 3 is a detailed view of an upper section of the further side view of Figure 3 Figure 4 shows a sectional view of the exemplary device; and Figure 5 shows a detailed view of an upper section of the sectional view of Figure 4 .
[0037] The embodiments shown in the figures are at least partially identical, so that similar or identical parts are provided with the same reference numerals and, to avoid repetition, reference is also made to the description of the other embodiments or figures for their explanation. Detailed description of exemplary embodiments
[0038] The Figures 1 to 5 show a device 10 for closing a container.
[0039] Depending on the version, the device 10 can close a container, for example, with a roll-on closure, a screw cap, a push-on closure, a crown cap, and / or a push-in closure. In the Figures 1 to 5 In the illustrated embodiment, the device 10 can screw a screw cap onto a container.
[0040] For example, a capper can have one or preferably several devices 10 for capping multiple containers simultaneously or overlapping in time. The capper can be, for example, a rotary capper. The devices 10 can be arranged distributed around the circumference of a capper carousel of the capper. Alternatively, the capper can be, for example, a linear capper, e.g., with several devices 10 arranged side by side or one behind the other in a row.
[0041] For example, the capper can be included in a tank treatment system. The capper can be positioned downstream of, or integrated with, a filler for filling the tanks with a liquid or paste-like material, relative to a tank flow.
[0042] The device 10 has a closing element 12, a stroke cam follower 20 and a pre-tensioning device 26.
[0043] The closing element 12 is designed for applying a closure to a container.
[0044] Preferably, the closing element 12 can have a receptacle for a closure. For example, a screw cap held in the receptacle can be screwed onto a container when the closing element 12 is rotated.
[0045] The closing element 12 is preferably designed as a closing cone, preferably toothed. At the lower end of the closing element 12, for example, an elastic retaining ring for holding a screw cap can be arranged.
[0046] For example, the closing element 12 can be part of a closing head 14.
[0047] The sealing head 14 can, for example, be rotatable. The sealing head 14 can, for example, have a magnetic coupling 16 (only in Figure 4 (visible). Preferably, an output side of the magnetic coupling 16 can be connected to the locking element 12. Alternatively or additionally, an input side of the magnetic coupling 16 can be connected to an adjusting mechanism 18 for adjusting the overlap of the magnetic rings of the magnetic coupling 16 to adapt a maximum locking torque.
[0048] The stroke curve follower 20 is designed to follow a stroke curve. The stroke curve can be a stationary part of the closing device. Preferably, the stroke curve is a continuous (closed) stroke curve. The stroke curve follower 20 can be used to control a stroke of the device 10. The stroke curve can also be referred to as a control curve for controlling a stroke of the device 10.
[0049] The lifting curve preferably has two opposing running surfaces. The two opposing running surfaces are preferably vertically spaced apart. The lifting curve follower 20 can be arranged between the two running surfaces. The lifting curve follower 20 can be guided by the lifting curve, preferably by its two opposing running surfaces.
[0050] The lift curve follower 20 is preferably designed as a roller (running roller), as in the Figures 1 to 5as shown. Alternatively, the stroke curve follower 20 can be designed, for example, as a sliding piece (sliding shoe).
[0051] The stroke curve follower 20 is connected to the closing element 12 via the pre-tensioning device 26 for vertical movement of the closing element 12 when following the stroke curve. The vertical movement can occur along a longitudinal center axis L of the device 10.
[0052] In detail, the lifting curve follower 20 can be connected to the closing element 12 via a holder 22, the pre-tensioning device 26, a bearing component 54, a lifting cylinder tube 60, the adjustment mechanism 18 and / or the magnetic coupling 16.
[0053] Preferably, the stroke curve follower 20 can be held on the holder 22, which is preferably substantially block-shaped. The holder 22 can preferably hold the stroke curve follower 20 rotatably. The holder 22 can be a roller holder for the stroke curve follower 20, which is designed as a roller.
[0054] The holder 22 can, for example, have a shoulder on which the stroke curve follower 20 is arranged. The shoulder can, for example, be cylindrical. The stroke curve follower 20 can be axially secured on the shoulder. For example, the stroke curve follower 20 can be axially secured on the shoulder by means of a retaining ring or a locking washer, which is, for example, attached to the end face of the shoulder.
[0055] Preferably, the holder 22 can be secured against rotation by an anti-rotation device 24. The anti-rotation device 24 can preferably secure the holder 22 such that it cannot be rotated about a longitudinal axis of the anti-rotation device 24, which may be parallel to the longitudinal center axis L.
[0056] The anti-rotation device 24 can, for example, essentially have a beam or strip shape. The anti-rotation device 24 can be oriented vertically. The holder 22 can be guided vertically (longitudinally) on the anti-rotation device 24. The holder 22 can thus move along the length of the anti-rotation device 24.
[0057] Preferably, the holder 22 can be slidably guided on opposite longitudinal sides of the anti-rotation device 24. The holder 22 can, for example, be connected to the anti-rotation device 24 via two opposing sliding plates. The anti-rotation device 24 can be arranged between the two sliding plates.
[0058] The anti-rotation device 24 can be attached to the capper, e.g., to a capper carousel of the capper and / or by means of a screw connection.
[0059] The pretensioning device 26 comprises at least one elastic and (elastically) prestressed element 28, 30. Preferably, it comprises two elastic and prestressed elements 28 and 30. Optionally, the pretensioning device 26 may also include, for example, a bracket 40 and / or at least one adjusting element 46, 48.
[0060] By means of the at least one element 28, 30, a so-called head pressure, with which the closing element 12 applies the closure to the container, can be specified. Preferably, the at least one element 28, 30 can be a helical spring, particularly preferably a helical compression spring.
[0061] The at least one element 28, 30 is arranged (with respect to the longitudinal center axis L) essentially at the same height as the lift curve follower 20, as shown in the Figures 1 to 3This is illustrated by way of example. In detail, a vertical extension of the at least one element 28, 30 along a vertical axis (e.g. longitudinal center axis L) and a vertical extension of the lift curve follower 20 along the vertical axis can preferably overlap or adjoin each other.
[0062] For example, the at least one element 28, 30 can be positioned slightly lower or higher than the stroke curve follower 20. For example, the at least one element 28, 30 can be offset diagonally downwards or diagonally upwards with respect to the stroke curve follower 20.
[0063] For example, the highest point of the at least one element 28, 30 can be positioned higher with respect to the vertical axis than the lowest point of the stroke curve follower 20, resulting in the aforementioned overlap, or it can be adjacent to the latter with respect to the vertical axis. Alternatively, for example, the lowest point of the at least one element 28, 30 can be positioned lower with respect to the vertical axis than the highest point of the stroke curve follower 20, resulting in the aforementioned overlap, or it can be adjacent to the latter with respect to the vertical axis.
[0064] Alternatively, the at least one element 28, 30 can be arranged above the stroke curve follower 20 with respect to a vertical axis (=longitudinal center axis L). For example, the lowest point of the at least one element 28, 30 can be arranged higher with respect to the vertical axis than the highest point of the stroke curve follower 20.
[0065] For example, the at least one element 28, 30 can be arranged substantially at the same level as the holder 22. Preferably, the element 28 and the further element 30 can be arranged on opposite outer sides of the holder 22. The holder 22 can be arranged between the element 28 and the further element 30.
[0066] For example, one of the elements 28 and 30 can be arranged on a side of the holder 22 facing in a forward direction of travel of the device 10. The other of the elements 28 and 30 can be arranged on a side of the holder 22 facing in a reverse direction of travel of the device 10.
[0067] Preferably, the at least one element 28, 30 is arranged on the outside of the device 10 and is accessible from the outside. As already mentioned, the at least one element 28, 30 can, for example, be arranged on an outside of the holder 22.
[0068] The at least one element 28, 30 can be supported on the holder 22. Preferably, an upper end of the at least one element 28, 30 can be supported on the holder 22. The holder 22, in turn, can be supported on the bearing component 54, e.g., via a support plate 52.
[0069] Preferably, the at least one element 28, 30 can be supported on at least one laterally projecting support plate section 32, 34 of the holder 22. The at least one support plate section 32, 34 is, for example, arranged in an upper region of the holder 22.
[0070] For example, element 28 can be supported on support plate section 32. The other element 30 can, for example, be supported on the other support plate section 34. Support plate sections 32 and 34 can project from opposite sides of the holder 22.
[0071] Preferably, the at least one element 28 is supported on the at least one support plate section 32 via at least one bushing 36, 38. Preferably, the at least one bushing 36, 38 can engage in the at least one element 28, 30. Preferably, a longitudinal axis of the at least one bushing 36, 38 can be parallel to the longitudinal center axis L. For example, the element 28 can be supported on the support plate section 32 via the bushing 36. The further element 30 can be supported on the further support plate section 34 via the bushing 38.
[0072] The at least one element 28, 30 can be supported on the bracket 40. Preferably, a lower end of the at least one element 28, 30 can be supported on the bracket 40.
[0073] The bracket 40 can, for example, have two arms and a bridge connecting the two arms. The arms can preferably each be L-shaped. The holder 22 can preferably be arranged between the two arms. The bridge can preferably be arranged above the holder 22. Alternatively, the bridge can, for example, be arranged below the holder 22.
[0074] For example, element 28 can be supported on one of the two arms of the bracket 40. The other element 30 can be supported on the other of the two arms of the bracket 40.
[0075] Preferably, the at least one element 28 is supported on the bracket 44 via at least one bushing 42, 44. Preferably, the at least one bushing 42, 44 can engage with the at least one element 28, 30. For example, the element 28 can be supported on one of the two arms of the bracket 40 via the bushing 42. The other element 30 can be supported on the other of the two arms of the bracket 40 via the bushing 44.
[0076] Particularly preferably, the at least one element 28, 30 can be clamped between the bracket 40 and the holder 22, preferably the at least one support plate section 32, 34 of the holder 22.
[0077] It is possible that the preload device 26 is manually adjustable for adjusting the head pressure. For example, the preload device 26 can have at least one adjusting element 46, 48 for adjusting the preload of at least one element 28, 30. Preferably, the at least one adjusting element 46, 48 can be an adjusting screw.
[0078] Preferably, two adjusting elements 46 and 48 are included. The adjusting element 46 can be arranged to adjust an elastic preload of the element 28. The (further) adjusting element 48 can be arranged to adjust a preload of the element 28. The adjusting elements 46 and 48 can preferably be arranged on opposite sides of the holder 22.
[0079] For example, the head of the at least one adjusting element 46, 48 can be arranged above the support plate 52. The head can, for example, rest against the support plate 52. Preferably, a tool for screwing the adjusting element can be attached to the head of the at least one adjusting element 46, 48.
[0080] Preferably, the at least one adjusting element 46, 48 can extend through the support plate 52, the at least one support plate section 32, 34, and the at least one element 28, 30. For example, the adjusting element 46 can extend through the support plate 52, the support plate section 32, and the element 28. The further adjusting element 48 can, for example, extend through the support plate 52, the further support plate section 34, and the further element 30.
[0081] Preferably, the at least one adjusting element 46, 48 can be connected to the at least one support plate section 32, 34 via at least one sliding bearing 50, as schematically shown in Figure 3 The sliding bearing 50 is preferably a sliding bearing bushing. A longitudinal axis of the at least one sliding bearing 50 is preferably aligned parallel to the longitudinal center axis L. For example, the adjusting element 46 can be connected to the support plate section 32 via the sliding bearing 50. The further adjusting element 48 can be connected to the further support plate section 34 via another sliding bearing.
[0082] Preferably, the at least one adjusting element 46, 48 for adjusting the preload of the at least one element 28, 30 can be screwed into the bracket 40. Depending on the screw-in depth, the desired preload can be specified.
[0083] For example, the at least one adjusting element 46, 48 can be screwed directly into the bracket 40 or (indirectly) into at least one nut mounted in or on the bracket 40. For example, the adjusting element 46 can be screwed (directly or indirectly) into a free end region of one of the two arms of the bracket 40. The adjusting element 48 can, for example, be screwed (directly or indirectly) into a free end region of the other of the two arms of the bracket 40.
[0084] The support plate 52 can be arranged above the holder 22. Preferably, the support plate 52 and the at least one element 28, 30 can be arranged on opposite sides of the at least one projecting support plate section 32, 34 of the holder 22.
[0085] The support plate 52 can be attached to the bearing component 54, for example, by force-fit, form-fit, and / or material-fit. Alternatively, the support plate 52 can be integrally connected to the support plate 52 in one piece.
[0086] The bearing component 54 and the holder 22 can be movable relative to each other with respect to the longitudinal center axis L. Preferably, the bearing component 54 can be mounted so as to be vertically displaceable within the holder 22. For example, the bearing component 54 can be mounted so as to be displaceable within the holder 22 via at least one sliding bearing 56, 58 (see Figures 4 and 5 Preferably, a longitudinal axis of the at least one sliding bearing 56, 58 can be identical to the longitudinal center axis L. The at least one sliding bearing 56, 58 is preferably designed as a sliding bearing bushing.
[0087] For example, a plain bearing 56 can be arranged at the upper end of a through-hole through the holder 22. Another plain bearing 58 can be arranged at the lower end of the through-hole. The bearing component 54 can extend through the through-hole and be connected to the holder 22 via the plain bearings 56 and 58.
[0088] The at least one element 28, 30 can be arranged acting between the holder 22 and the bearing component 54. Specifically, the holder 22 can be supported on the bracket 40 via the at least one element 28, 30. The bracket 40, in turn, can be supported on the support plate 52 via the at least one adjusting element 46, 48, which is itself supported on the bearing component 55.
[0089] Preferably, the bearing component 54 can be essentially bolt-shaped or designed as a bearing bolt.
[0090] Preferably, the bearing component 54 can rotatably support a lifting cylinder tube 60 and a gear 62 (shown schematically in the figures without teeth) about the longitudinal center axis L. For example, the bearing component 54 can be arranged inside the lifting cylinder tube 60.
[0091] The lifting cylinder tube 60 can connect the bearing component 54 and the closing head 14, and thus the closing element 12. For example, the lifting cylinder tube 60 can be connected to the adjusting mechanism 18 of the closing head 14. A lifting movement of the bearing component 54 can be transmitted via the lifting cylinder tube 60 to the closing head 14 and thus to the closing element 12.
[0092] The lifting cylinder tube 60 can be arranged inside the gear 62. The at least one rotary bearing 64 can rotatably connect the bearing component 54 on the one hand and the lifting cylinder tube 60 and the gear 62 on the other hand (see Figures 4 and 5The at least one rotary bearing 64 can, for example, have at least one angular contact ball bearing and / or at least one deep groove ball bearing.
[0093] Preferably, the gear 62 can be connected to the lifting cylinder tube 60 in a rotationally fixed manner. For example, the gear 62 can be connected to the lifting cylinder tube 60 in a rotationally fixed manner via a key 66 (see Figure 4 ).
[0094] Preferably, the bearing component 54 and the lifting cylinder tube 60 can be displaceable relative to the gear 62 with respect to the longitudinal center axis L.
[0095] The gear 62 can further be rotatably mounted on a bearing cup 68. The bearing cup 68 can surround a section of the gear 62. Preferably, a longitudinal axis of the bearing cup 68 can be identical to the longitudinal center axis L. At least one pivot bearing 70 can rotatably connect the bearing cup 68 and the gear 62. The bearing cup 68 can, for example, be attached to the capper, e.g., to a capper carousel of the capper and / or by means of a screw connection.
[0096] The gear 62 can be connected to a drive unit, e.g., an electric motor (not shown in the figures). The drive unit can rotate the gear 62 and thus the lifting cylinder tube 60. The gear 62 can receive torque from the drive unit. The lifting cylinder tube 60 can accordingly act as a hollow lifting cylinder shaft that is both rotatable (by the gear 62) and vertically displaceable (via the stroke cam follower 20). The lifting cylinder tube 60 can rotate the closing head 14 and thus the closing element 12 to apply a screw cap or a roll-on cap to a container.
[0097] As already mentioned, it is also possible that the device 10 is not designed for applying a screw cap to a container. Instead, the device 10 can, for example, be designed for applying a snap-on closure, a crown cap, and / or a push-in closure. In such a design, the gear 62, the bearing cup 68, and a rotatable bearing for the lifting cylinder tube 60 can be omitted.
[0098] If, during operation, the head pressure specified by the at least one element 28, 30 is exceeded when the closing element 12 is lowered onto the container by the stroke curve follower 20, the support plate 52 can lift off the holder 22, e.g., to compensate for the overstroke. Preferably, the holder 22 can then move vertically relative to the support plate 52 and the bearing component 54 and, for example, immerse itself in a receiving chamber A (see Figures 3 to 5 ).
[0099] Preferably, the receiving space A can be dimensioned, for example, such that a vertical relative movement of approximately ≤ 20 mm is permitted between the support plate 52 / bearing component 54 and the holder 22. Preferably, the receiving space A can be arranged between the gear 62 and the bearing component 54. Particularly preferably, the receiving space A is substantially annular. For example, the receiving space A can be arranged inside the gear 62 and / or outside the bearing component 54. For example, a longitudinal axis of the receiving space A can be identical to the longitudinal center axis L.
[0100] Optionally, the device may also include an ejector device 72. The ejector device 72 may be designed to eject a closure not applied to a container from the closure element 12.
[0101] Preferably, the ejector device 72 can have an ejector rod 74. A longitudinal axis of the ejector rod 74 can be identical to the longitudinal center axis L.
[0102] Preferably, the ejector rod 74 can be at the same height as the pre-tensioning device 26, the at least one element 28, 30 and / or the lift curve follower 20, and optionally extend vertically upwards above these.
[0103] In the illustrated embodiment, the ejector rod 74 is vertically fixed. For example, the ejector rod 74 can be fixed to the capping carousel of the capper, e.g., by means of a bracket 76 and / or the anti-rotation device 24. Preferably, an upper end of the ejector rod 74 can be attached to the bracket 76 by means of a force-fit, form-fit, and / or material-fit connection. The bracket 76, which is preferably L-shaped, can in turn be attached to the anti-rotation device 24.
[0104] The ejector rod 74 can extend through the bearing component 54. During a vertical upward movement of the bearing component 54, the lifting cylinder tube 60, and the sealing head 14, the upper end of a further ejector rod 78, which is connected to the lifting cylinder tube 60 and / or the sealing head 14 via an elastic and pre-tensioned element, can strike a lower end of the ejector rod 74 at a specific point. A relative vertical movement between the further ejector rod 78 and the sealing head 14, enabled by the aforementioned elastic and pre-tensioned element, then causes the further ejector rod 78 to penetrate a sealing receptacle of the sealing element 12, ejecting any seal that may still be present.
[0105] Alternatively, the ejector rod 74 can be vertically movable, for example, via an elastic and pre-tensioned element, in conjunction with the bearing component 54, the lifting cylinder tube 60, and / or the sealing head 14. The ejector rod 74 can then move upwards with the vertical movement of the bearing component 54, the lifting cylinder tube 60, and the sealing head 14 until it abuts a stop (such as the bracket 76) and is stopped. The relative vertical movement between the ejector rod 74 on the one hand and the bearing component 54, the lifting cylinder tube 60, and the sealing head 14 on the other, enabled by the aforementioned elastic and pre-tensioned element, then causes the ejector rod 74 to penetrate a sealing receptacle of the sealing element 12, ejecting any seal that may still be present.
[0106] The invention is not limited to the preferred embodiments described above. Rather, a multitude of variants and modifications are possible, which also make use of the inventive concept and therefore fall within the scope of protection. In particular, the invention also claims protection for the subject matter and the features of the dependent claims independently of the referenced claims. In particular, the individual features of independent claim 1 are each disclosed independently of one another. In addition, the features of the dependent claims are also disclosed independently of all features of independent claim 1 and, for example, independently of the features relating to the presence and / or configuration of the locking element, the pretensioning device, the at least one elastic, pretensioned element, and / or the stroke curve follower of independent claim 1.All range specifications herein are to be understood as disclosed in such a way as to disclose all values falling within the respective range individually, e.g. also as preferred narrower outer limits of the respective range. Reference symbol list
[0107] 10 Device for closing a container 46 Setting element 48 (further) setting element 12 Locking element 50 Plain bearings 14 Sealing head 52 support plate 16 Magnetic coupling 54 bearing component 18 Adjustment mechanism 56 Plain bearings 20 Hub curve follower 58 (further) plain bearing 22 holder 60 Lifting cylinder tube 24 Anti-rotation device 62 gear 26 Pre-tensioning device 64 pivot bearing 28 elastic, prestressed element 66 Keyway 30 (another) elastic, prestressed element 68 Storage pot 70 pivot bearing 32 Support plate section 72 Ejector device 34 (further) support plate section 74 ejector rod 36 socket 76 Iron 38 (another) socket 78 additional ejector rod 40 Iron 42 (other) socket A Recording room 44 (other) socket L Longitudinal center axis
Claims
1. Device (10) for closing a container, comprising: a closing element (12) for applying a closure to the container; a pretensioning device (26), preferably manually adjustable, with at least one elastic, pretensioned element (28, 30) for applying a head pressure with which the closing element (12) applies the closure to the container; and a stroke curve follower (20), preferably a roller, for following a stroke curve, wherein: the stroke curve follower (20) is connected to the closing element (12) via the pretensioning device (26) for vertical movement of the closing element (12) when following the stroke curve, and wherein furthermore: the at least one elastic, pretensioned element (28, 30) is arranged substantially at the same level as the stroke curve follower (20); or the at least one elastic, pretensioned element (28, 30) is arranged above the stroke curve follower (20);or a vertical extension of the at least one elastic, prestressed element (28, 30) along a vertical axis and a vertical extension of the lift curve follower (20) along the vertical axis overlap or adjoin each other.; 2. Device (10) according to claim 1, wherein: the at least one elastic, prestressed element (28, 30) is arranged on the outside of the device (10) and / or is accessible from the outside.
3. Device (10) according to claim 1 or claim 2, further comprising: a holder (22) on which the stroke curve follower (20) is held, preferably rotatably.
4. Device according to claim 3, wherein: the at least one elastic, prestressed element (28, 30) is clamped between the holder (22) and a bracket (40) of the prestressing device (26).
5. Device (10) according to claim 4, wherein: the at least one elastic, prestressed element (28, 30) is arranged substantially at the same level as the holder (22); and / or the at least one elastic, prestressed element (28, 30) has two elastic, prestressed elements arranged on opposite sides of the holder (22).
6. Device (10) according to claim 4 or claim 5, further comprising: a bearing component (54), preferably bearing bolts, wherein a lifting cylinder tube (60) of the device (10) is mounted on the bearing component (54) and / or a gear (62) of the device (10) is rotatably mounted for receiving a torque for screwing or rolling the closure onto the container, wherein the at least one elastic, pre-stressed element (28, 30) is arranged to act between the holder (22) and the bearing component (54).
7. Device (10) according to claim 6, wherein: the bearing component (54) is mounted vertically displaceable in the holder (22).
8. Device (10) according to claim 6 or claim 7, further comprising: a support plate (52) which is attached to the bearing component (54) or integrally connected to the bearing component (54), wherein the support plate (52) lifts off from the holder (22) when the predetermined head pressure is exceeded when applying the closure to the container.
9. Device (10) according to claim 8, wherein: the support plate (52) and the at least one elastic, prestressed element (28, 30) are arranged on opposite sides of at least one cantilevered support plate section (32, 34) of the holder (22), and optionally the at least one elastic, prestressed element (28, 30) is supported, preferably via at least one bushing (36, 38), on which the at least one cantilevered support plate section (32, 34) is supported.
10. Device (10) according to one of the preceding claims, wherein the preloading device (26) further comprises: at least one adjusting element (46, 48), preferably an adjusting screw, for adjusting a preload of the at least one elastic, preloaded element (28, 30), wherein preferably the at least one adjusting element (46, 48) is arranged substantially at the same level as or above the stroke cam follower (20).
11. Device (10) according to claim 10, wherein at least one of the following is fulfilled: a head of the at least one adjusting element (46, 48) is arranged above the support plate (52), preferably abutting a top surface of the support plate (52); the at least one adjusting element (46, 48) extends through the support plate (52), the at least one support plate section (32, 34) and / or the at least one elastic, prestressed element (28, 30); and the at least one adjusting element (46, 48) is connected to the at least one support plate section (32, 34) via at least one sliding bearing (50).
12. Device (10) according to claim 10 or claim 11, wherein the preloading device (26) further comprises: a bracket (40) into which the at least one adjusting element (46, 48) for adjusting the preload of the at least one elastic, preloaded element (28, 30) can be screwed, wherein preferably: the at least one elastic, preloaded element (28, 30) is supported on the bracket (40); and / or the bracket (40) has two, preferably L-shaped, arms and a web connecting the two arms to each other.
13. Device (10) according to one of the preceding claims, further comprising: an ejector device (72) designed for ejecting unapplied closures from the closure element (12), wherein a section of the ejector device (72) is arranged at a level with the lift cam follower (20) and / or extends vertically upwards above the lift cam follower (20).
14. Device (10) according to claim 13, wherein: the ejector device (72) has an ejector rod (74), preferably vertically movable or vertically fixed, which: - extends through a bearing component (54) of the device (10); and / or - is arranged at the same level as the pretensioning device (26), the at least one elastic, pretensioned element (28, 30) and / or the lift curve follower (20); and / or - extends vertically upwards above the pretensioning device (26), the at least one elastic, pretensioned element (28, 30) and / or the lift curve follower (20).
15. Capper, preferably rotary capper, for capping containers, wherein the capper comprises: a stroke cam; and at least one device (10) according to one of the preceding claims, wherein the stroke cam follower (20) of the at least one device (10) is guided on the stroke cam and wherein preferably several of the devices (10) are arranged distributed around a circumference of the capper.
Citation Information
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