Self-inking stamp having removable pivot pin

EP4662068A1Pending Publication Date: 2025-12-17COLOP STEMPELERZEUGUNG SKOPEK GMBH & CO KG
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Patent Information

Application Number
EP2024706364
Authority / Receiving Office
EP · EP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-02-10
Filing Date
2024-02-12
Publication Date
2025-12-17

AI Technical Summary

Technical Problem

Existing self-inking stamps with pivotable stamp units face issues such as noise during operation, potential sticking of the turning axis, and difficulty in replacing the stamp unit without special tools, due to design features like annular grooves and closure caps.

Method used

A self-inking stamp design with a securing element forming a sliding surface for the turning axis, allowing smooth and noiseless movement between inking and impression positions, and enabling easy removal and replacement of the stamp unit without special tools, by eliminating the need for annular grooves and closure caps.

Benefits of technology

The solution enhances the reliability and quiet operation of the self-inking stamp by ensuring smooth axial movement and easy maintenance, reducing noise and the risk of the turning axis getting stuck, while allowing for straightforward replacement of the stamp unit.

✦ Generated by Eureka AI based on patent content.

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Abstract

Self-inking stamp having a lower part (2), an actuating part (3) and a stamping unit, wherein the actuating part (3) is connected to the lower part (2) and is displaceable relative to the lower part (2), wherein the stamping unit is arranged in the lower part (2) and is pivotably coupled to the actuating part (3) via a pivot pin (5), wherein the pivot pin (5) is mounted in the stamping unit so as to be removable in the longitudinal axis direction (L), wherein a securing element (6) is arranged in the lower part (2), wherein the securing element (6) limits a displacement of the pivot pin (5) in the longitudinal axis direction (L), wherein the securing element (6) forms a sliding surface for the pivot pin (5), and wherein the sliding surface extends over the entire working range of the pivot pin (5).
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Description

[0001] Self-inking stamp with removable turning axis

[0002] The invention relates to a self-inking stamp with a lower part, an actuating part and a stamping unit, wherein the actuating part is connected to the lower part and is displaceable relative to the lower part, wherein the stamping unit is arranged in the lower part and is pivotally coupled to the actuating part via a turning axis, wherein the turning axis is mounted in the stamping unit so as to be removable in the longitudinal direction of the axis, wherein a securing element is arranged in the lower part, wherein the securing element limits a displacement of the turning axis in the longitudinal direction of the axis.

[0003] The invention also relates to a method for removing a turning axis from such a self-inking stamp.

[0004] Self-inking stamps with a stamp unit in a stamp base that can be pivoted about a pivot axis are known. The pivoting stamp unit can thus be transferred from an inking position, in which a cliché is inked to produce a stamp impression, to an impression position, in which the stamp impression is actually produced using the inked cliché. In order to be able to replace the stamp unit mounted on the pivot axis, for example a type unit or a stamp plate, as needed, it is also known to design the self-inking stamp so that the pivot axis can be removed from the stamp unit.

[0005] AT 521730 A1 relates to a turning device for a self-inking stamp, into which a turning spindle can be inserted from the outside in the longitudinal direction of the spindle. The turning spindle is secured against movement in the longitudinal direction of the turning spindle by a locking or snap-in connection in conjunction with an annular groove provided on the turning spindle.

[0006] WO 2006 / 079130 A1 relates to a device for securing a turning axle by means of a locking connection produced by a bushing body pushed onto the turning axle.

[0007] AT 517322 A1 and WO 2016 / 197171 A2 disclose a hand stamp with a removable impression unit. With appropriate positioning of a stamp component in a change position, a reversing spindle can be pushed into and out of the impression unit from the outside through an spindle change opening. The spindle change opening is closed with a closure cap. A disadvantage of this is that the reversing spindle can get caught on the closure cap or on the edge of the spindle change opening, which is closed by the closure cap.

[0008] The CN 108819514 shows a stamp with a memory chip that stores a cryptographic certificate.

[0009] It is an object of the invention to provide a self-inking stamp and a method for removing a turning spindle from such a self-inking stamp of the type mentioned above, which avoid or at least mitigate at least some of the disadvantages mentioned. In particular, the reliability of the self-inking stamp when producing a stamp impression is to be increased, and the stamp unit is to be reliably accommodated in the lower part of the self-inking stamp. Any movement of the turning spindle required during a stamping process should not cause any disturbing noises. Furthermore, the stamp unit should be easy to replace without the need for special tools.

[0010] For this purpose, the invention provides a self-inking stamp as defined in claim 1 and a method as defined in claim 11. Advantageous embodiments and further developments are specified in the dependent claims.

[0011] The object is achieved according to the invention by a self-inking stamp, wherein the securing element forms a sliding surface for the turning axis, the sliding surface extending over the entire working range of the turning axis. The self-inking stamp therefore has a lower part, an actuating part, for example with a handle, and a stamping unit. The lower part has, for example, a floor standing surface with which the lower part is placed on a surface to be printed, or is connected to the floor standing surface. The actuating part is connected to the lower part and can be moved relative to the lower part. The stamping unit is arranged in the lower part and is pivotally coupled to the actuating part via a turning axis. The stamping unit has a cliché, i.e. a stamp plate or a type assembly, with the information to be reproduced during stamping.Thus, by pressing the actuating part downwards in relation to the lower part placed on a surface to be printed, in the direction of the surface, the stamp unit can be pressed from a rest position against the surface to be printed, thereby creating the stamp impression. For this purpose, the stamp unit is turned around the turning axis while moving towards the surface. In order to be able to remove the stamp unit easily from the self-inking stamp, in particular from the lower part, the turning axis is mounted in the stamp unit so that it can be removed in the longitudinal direction of the axis. The turning axis can be mounted in the stamp unit with a slight amount of play so that when the stamp unit is dismantled, the turning axis can slide out of the stamp unit, for example due to gravity, or it can be inserted into the stamp unit with friction.To securely hold the turning axis, a locking element is arranged in the lower part which limits any displacement of the turning axis relative to the lower part in the direction of the longitudinal axis of the turning axis, i.e. in the longitudinal direction of the axis. The locking element thus secures the turning axis against undesired axial advance. The term “axial” in this disclosure refers to the longitudinal direction of the turning axis. To ensure that the turning axis is always securely held and can be transferred between its end positions as quietly as possible during a stamping process, the locking element forms a sliding surface for the turning axis, with the sliding surface extending over the entire working range of the turning axis. The working range of the turning axis is the sum of all positions that one end of the turning axis covers between an inking position of the stamping unit and an impression position of the stamping unit.In the inking position, the stamping unit is essentially arranged in an upper position in the lower part, in particular the stamping unit rests on an ink pad and / or the turning axis is arranged in the highest possible position. In contrast, in the printing position, the stamping unit is essentially arranged in a lower position in the lower part, in particular the stamping unit rests on a surface to be printed and / or the turning axis is arranged in the lowest possible position. The sliding surface in particular forms a smooth abutting surface which is free of unevenness or steps on which the turning axis could get caught or which could generate noise when the turning axis slides on the securing element, in particular on the sliding surface.It should be noted that, within the scope of the invention, the smooth abutting surface may have slight unevenness to an extent that does not impair its function. The turning axis preferably rests against the sliding surface at least at one of its ends. Viewed from outside the self-inking stamp in the longitudinal direction of the axis, the securing element can thus cover the turning axis. The turning axis is preferably made of metal, in particular a steel axis. The securing element is preferably made of plastic.

[0012] Because of the locking element, no annular groove in the pivot axis, nor any engaging locking or snap connection, which secures the pivot axis against unwanted displacement in its longitudinal axis direction, is required. Therefore, the pivot axis is preferably free of an annular groove and any engaging locking or snap connection. Furthermore, no closure cap is required for an axis change opening, on which the pivot axis could get caught.

[0013] When reference is made in this description to location and direction information, this information is to be understood in a position of use in which the stamp is placed on a horizontally arranged base to be printed on. In particular, the term "top" refers to a position close to an actuating part, for example close to a handle of the stamp, and "bottom" refers to a position close to a floor contact surface of the stamp. The term "vertical" means in the direction of gravity. Of course, the stamp can also be used in other positions, in which case the location and direction information must be transmitted accordingly.

[0014] According to a preferred embodiment of the invention, the securing element is, in particular, a one-piece sliding element that is movable relative to the lower part. The one-piece design of the sliding element facilitates the production of a smooth sliding surface on which the turning axis can glide as quietly as possible and does not get stuck. The mobility of the sliding element relative to the lower part and thus relative to the turning axis when the latter is stationary, enables the sliding element to be brought into a position in which it no longer covers the turning axis when viewed in the longitudinal direction of the axis. The mobility of the sliding element relative to the lower part thus enables access to the turning axis and therefore release of the turning axis.

[0015] If the sliding element is mounted so as to be displaceable in the lower part, in particular so as to be displaceable parallel to the direction of actuation of the actuating part, the sliding element designed as a slide element can enable access from outside the self-inking stamp to the turning axis, in particular to a now exposed end of the turning axis, by moving the sliding element, in particular parallel to the direction of actuation of the actuating part. In particular, the turning axis can be pulled out or pushed out of the stamp unit. Such a displaceable arrangement of the sliding element in the lower part also enables the sliding element to be accommodated in the lower part in a space-saving manner. For example, the sliding element can be mounted so as to be displaceable upwards, i.e. in the direction away from the surface to be printed on, in the lower part.For the displaceable mounting of the sliding element, the lower part or a component of the self-inking stamp connected to the lower part, in particular inserted into the lower part, can have a guide in which the sliding element is displaceably received.

[0016] If the sliding element is pivotally mounted in the lower part, the sliding element can be pivoted about a pivot axis relative to the lower part, allowing access from outside the self-inking stamp to the turning axis, in particular to a now exposed end of the turning axis. Such a pivotable arrangement of the sliding element in the lower part is advantageous, for example, if there is not enough space available to move the sliding element in the lower part. Also, with a pivotable mounting of the sliding element there is a somewhat lower risk of the sliding element becoming jammed compared to a displaceable mounting. The pivot axis can be mounted on the lower part or on a component of the self-inking stamp that is connected to the lower part, in particular one that is inserted into the lower part.

[0017] Advantageously, the securing element, in particular the movable sliding element, can be arranged between an outer covering of one side of the lower part and the stamping unit. It is advantageous if the outer covering has a recess or a through opening for access to the sliding element.

[0018] It is particularly advantageous if the sliding element has a first locking position in the lower part, wherein in the first locking position the turning axis is released for removal from the stamp unit. This means that the turning axis, in particular an exposed end of the turning axis, can be easily accessed from outside the self-inking stamp when the sliding element is arranged in the first locking position in the lower part. The first locking position is therefore a release position of the sliding element or the securing element. This means that in the first locking position the turning axis can be pulled or pushed out of the stamp unit easily and without special tools. The design as a locking position enables the sliding element orto reliably engage the securing element in this locking position and thus hold it firmly, and to avoid undesired, in particular automatic, exit from this locking position, for example caused by impacts or vibrations.

[0019] Furthermore, it is advantageous if the sliding element has a second locking position in the lower part, wherein the turning axis is secured in the second locking position. The turning axis is thus secured in the second locking position against being pulled out or pushed out of the stamp unit from outside the self-inking stamp and against undesired axial displacement in the longitudinal direction of the axis. The second locking position is therefore a securing position for the sliding element or the securing element. The design as a locking position enables the sliding element or the securing element to be reliably locked into this locking position and thus held firmly, and to prevent undesired, in particular automatic, exit from this locking position, for example caused by impacts or vibrations.

[0020] To form the first locking position and / or the second locking position, the sliding element or the securing element can preferably have first locking elements which can interact with complementary second locking elements in or on the lower part or a component of the self-inking stamp connected thereto. For this purpose, at least one of the first or second locking elements is preferably arranged resiliently. For example, the sliding element can have at least one locking recess, such as a locking notch, as the first locking element, into which locking recess at least one locking projection can engage as the second locking element. Likewise, the sliding element can have at least one locking projection as the first locking element, which locking projection can engage in at least one locking recess as the second locking element.

[0021] In order to be able to produce the sliding element or the securing element simply and cost-effectively, it is advantageous if the at least one second locking element is resiliently arranged on the lower part or is resiliently connected to the lower part. For example, the at least one second locking element is arranged on a resilient arm of an insert part, which insert part can be inserted into the lower part of the self-inking stamp and forms, for example, a circumferential frame on the bottom of the self-inking stamp. Preferably, two resilient arms can be provided for locking the sliding element, one on each side of the sliding element, which arms are in particular tongue-shaped insertion elements projecting upwards from the bottom frame, with which the frame is positioned in the lower part.

[0022] The securing element, in particular the sliding element, can preferably be transferred between a release position and a securing position. The release position can be a first detent position in the lower part and / or the securing position can be a second detent position in the lower part. In the release position, access from outside the self-inking stamp to at least one end of the turning axis can be enabled, and in the securing position, access from outside the self-inking stamp to at least one end of the turning axis can be prevented or at least made more difficult. In particular, the end of the turning axis facing the securing element or sliding element is covered by the securing element or sliding element in the securing position and can rest against it.

[0023] Furthermore, it can be provided that the sliding element has a stop for actuating the sliding element, in particular a depression or notch accessible from outside the lower part. In order to actuate the sliding element, the stop can thus be engaged from outside the self-inking stamp or the stop can generally be grasped. The stop is preferably indented or curved inwards with respect to an outer surface of the sliding element, i.e. in the direction of the interior of the self-inking stamp, in order not to impede movement of the sliding element relative to the lower part by an outwardly projecting stop. It is particularly advantageous if the stop has a sufficiently large engagement surface to be able to engage with a paper clip or the tip of a ballpoint pen and therefore to be able to actuate the sliding element.

[0024] If the security element is designed as a removable cover, access to the turning axis, in particular to one end of the turning axis, can be enabled from outside the self-inking stamp by removing the cover. In addition, the cover can be easily replaced if it becomes damaged. If, on the other hand, the removable cover is connected to the self-inking stamp, in particular to the lower part, via a connecting element, for example a band, even when removed, the cover cannot be accidentally lost. The cover can, for example, be plugged onto the lower part or onto a component of the self-inking stamp inserted into the lower part, or pushed into it. The cover can also be designed as a cladding element for a side surface of the lower part.The removable cover can therefore have the function of a closure cap, but in contrast to the closure cap according to the document AT 517322 A1 cited at the beginning, it extends over the entire working area of ​​the turning axis and, for example, over the entire height of the side surface of the lower part.

[0025] It is also advantageous if a securing element is provided on both sides of the lower part. The securing elements are preferably of identical design. In this way, after the securing elements have been removed from the ends of the turning axis, the turning axis is accessible from both sides of the lower part. The turning axis can then be removed particularly easily by pushing the turning axis from one side and pulling the turning axis from the other side of the lower part. For example, to push the turning axis, a pointed object can be pressed against one end of the turning axis and / or to pull and remove it, the turning axis can be grasped at the other end with a gripping tool such as tweezers, pliers or the user’s fingers.

[0026] In the case of securing elements on both sides of the lower part, it is particularly advantageous if both securing elements are sliding elements according to the preceding description.

[0027] The object is also achieved according to the invention by a method for removing a turning axis from a self-inking stamp, which self-inking stamp is designed according to the preceding description, wherein the securing element is removed from the turning axis or a position in the extension of the turning axis and the turning axis is removed from the stamp unit in the longitudinal direction of the axis. In particular, the securing element is removed from at least one end of the turning axis, as a result of which one end of the turning axis is exposed and can be grasped, and the turning axis is removed in the longitudinal direction of the axis. After removal of the turning axis, the stamp unit, which is now no longer mounted in the lower part by the turning axis, can be removed from the lower part. To insert a stamp unit, i.e.the same or a different stamp unit, the stamp unit to be used is first inserted into the lower part and then the turning axis is pushed into the inserted stamp unit with the security element still removed. The previously removed security element or possibly a new security element can then be placed over at least one accessible end of the turning axis. With regard to the features of the method, reference is also made to the preceding description of the self-inking stamp, insofar as this is helpful for understanding the method and insofar as features of the method can be derived from this description of the self-inking stamp. Likewise, with regard to the features of the self-inking stamp, reference is also made to the description of the method.

[0028] The turning axis can be removed particularly easily if the securing element, in particular the sliding element, is moved away from the turning axis, in particular from at least one end of the turning axis. The removal of the securing element can therefore consist of moving the securing element. The securing element can be moved from a securing position into a release position. After replacing the turning axis, in particular the punch unit, the securing element, in particular the sliding element, can be moved back into the securing position in order to cover at least one end of the turning axis and to secure the turning axis against axial advance.

[0029] It is particularly advantageous if, both for the release and removal of the turning axis and for any possible re-securing of a turning axis in the lower part, the securing element, in particular the sliding element, is moved in the lower part, in particular is moved parallel to the actuating direction of the actuating part, or is pivoted in the lower part. The removal of the securing element can therefore be a displacement or pivoting of the securing element, in particular the sliding element. For example, the sliding element can be moved upwards, i.e. in the direction away from a substrate to be printed, or pivoted about a pivot axis in order to release the turning axis for removal.

[0030] For the movement of the securing element, in particular the sliding element, the securing element, in particular the sliding element, can preferably be accessed through a recess or a through-opening in an outer panel on one side of the lower part. To remove the turning spindle, it can be brought into alignment with the recess or through-opening in the outer panel by pressing down the actuating part and can be removed through the recess or through-opening.

[0031] The removal of the turning axis can be carried out particularly easily if the securing element, in particular the sliding element, is moved from a second locking position in the lower part, in which the turning axis is secured in the lower part, to a first locking position in the lower part, in which the turning axis is released for removal from the stamping unit. The first and second locking positions define positions to which the securing element can be transferred and held by locking elements. Accordingly, the securing element can be moved by a user of the

[0032] Even the inking stamp can be moved between the first and second locking positions by overcoming the holding force of the locking elements.

[0033] It is particularly advantageous if the securing element, in particular the sliding element, is moved by engaging a stop for actuating the securing element, in particular the sliding element, preferably into a recess or notch accessible from outside the lower part. Thus, a user of the self-inking stamp can move the securing element by engaging the stop using a simple tool generally available in a household or office, such as a paper clip or the tip of a ballpoint pen.

[0034] The turning axis can be removed from the self-inking stamp particularly easily by providing a securing element on both sides of the lower part and removing both securing elements from the turning axis or a position in extension of the turning axis, pushing the turning axis at least a little way out of the stamp unit from one of the two sides of the lower part and, if necessary, pulling it out completely from the other side.

[0035] The invention will be further explained below using preferred, non-limiting embodiments with reference to the drawings. In the drawings:

[0036] Fig. 1 shows a self-inking stamp according to the invention in an inking position, in a perspective view;

[0037] Fig. 2 shows the self-inking stamp according to Fig. 1 in the inking position, with the turning axis covered, in a side view;

[0038] Fig. 3 shows the self-inking stamp according to Fig. 1 in an imprinting position, with the turning axis released, in a side view;

[0039] Fig. 4 shows the self-inking stamp according to Fig. 1 in an imprinting position, without outer cladding of the visible side wall, with a securing element in a securing position covering the turning axis, in a perspective view;

[0040] Fig. 5A is a sectional front view of the self-inking stamp in the imprinting position according to Fig. 4, with outer cladding of the side walls and with two securing elements in a securing position covering the turning axis;

[0041] Fig. 5B is an enlarged view of detail D in Fig. 5A;

[0042] Fig. 6 shows the self-inking stamp according to Fig. 1 in an imprinting position, without outer cladding of the visible side wall, with a securing element in a release position releasing the turning axis, in a perspective view;

[0043] Fig. 7 is a sectional front view of the self-inking stamp in the imprinting position according to Fig. 6, with outer linings of the side walls, one securing element in the securing position and the other securing element in the release position;

[0044] Fig. 8 shows the self-inking stamp according to Fig. 1 in a partially exploded perspective view, in which the security element is shown in a closed frame before insertion into the lower part;

[0045] Fig. 9 shows the closed frame from Fig. 8 with the securing element inserted therein, in a perspective view;

[0046] Fig. 10 shows the closed frame from Fig. 8 with the securing element inserted therein, in a sectional view;

[0047] Fig. 11 shows the closed frame from Fig. 8 without the securing element, in a perspective view;

[0048] Fig. 12 shows the securing element from Fig. 8 in a perspective view; and

[0049] Fig. 13 shows the securing element from Fig. 8 in a front view.

[0050] Please note that the individual figures are not drawn to scale.

[0051] Fig. 1 shows a self-inking stamp 1, in particular with overprint inking and with a turning mechanism W, which will not be discussed in detail below, in an inking position, standing on a base not shown. The self-inking stamp 1 has a lower part 2, an actuating part 3, for example with a handle 3a, and a stamping unit 4. In the example shown, the stamping unit 4 is a type unit 4a, but could also be a stamping plate not shown. The actuating part 3 is arranged above the lower part 2, is connected to the lower part 2 and is arranged displaceably relative to the lower part 2. The stamping unit 4 is arranged in the lower part 2 and is connected to the actuating part

[0052] 3 is pivotally coupled via a turning axis 5 (see, for example, Fig. 5A to 7). The turning axis 5 is removably mounted in the stamping unit 4 in the longitudinal direction L of the axis, i.e. in the longitudinal direction of the turning axis 5, see Fig. 6 and 7. A securing element 6 is arranged in the lower part 2 and limits a displacement of the turning axis 5, relative to the lower part 2, in the longitudinal direction L of the axis. The securing element 6 thus secures the turning axis 5 accommodated in the lower part 2 against axial advance, i.e. a advance in the longitudinal direction L of the axis. In order to be able to transfer the turning axis 5 reliably, without jamming, and as quietly as possible between the upper inking position and the lower impression position, the securing element 6 forms a sliding surface 7 for the turning axis 5, wherein the sliding surface 7 extends over the entire working area A of the turning axis 5. The turning axis 5 has a first end 8 and a second end 9.The working area A is to be understood as the sum of all positions covered by one end 8, 9 of the turning axis 5 between the inking position and the impression position. The inking position in which the cliché 10 of the stamping unit.

[0053] 4 is inked, is shown in Figs. 1, 2 and 8 and the impression position in which a stamp impression is produced on the substrate to be printed is shown in Figs. 3 to 7. The sliding surface 7 forms a smooth abutment surface 7a for the ends 8, 9 of the turning axis 5, without any unevenness and without steps on which the turning axis 5 could get stuck or produce unpleasant noises.

[0054] The lower part 2 of the self-inking stamp 1 has two sides 11, 12 covered with an outer covering 13. In the example according to Fig. 1, the security element 6 is arranged between the outer covering 13 and the stamp unit 4. In addition, the outer covering 13 in the example shown has a recess 14, in particular a through opening 14a, for accessing the security element 6. In the example according to Fig. 1, the lower part 2 has a self-contained frame 16 at its bottom end 15, which forms a floor-standing surface or is connected to feet 17, cf. Fig. 8, which form the floor-standing surface.

[0055] Fig. 2 shows the self-inking stamp 1 from the side, in the inking position, in which the actuating part 3 is arranged in its upper position, i.e., has not yet been pressed down into the impression position. A spring element (not shown) holds the actuating part 3 in this rest position. The securing element 6 covers the turning axis 5 and is thus in a secured position. By pressing the actuating part 3 down toward the lower part 2, i.e., in the actuation direction B of the actuating part 3, the self-inking stamp 1 assumes the impression position shown in Fig. 3.

[0056] Fig. 3 shows the self-inking stamp 1 from the side, in the imprint position, in which the stamp unit 4 can produce a stamp impression on a substrate to be printed. In the illustration according to Fig. 3, the securing element 6 is shown in a release position in which the turning axis 5 is no longer covered by the securing element 6 and access to the turning axis 5 is possible. To release the turning axis 5, the securing element 6 is therefore removed from at least one end 8, 9 of the turning axis 5.

[0057] Fig. 4 shows the self-inking stamp 1 in an imprinting position, wherein the outer covering 13 of the visible side 12 has been omitted in order to allow a view of the securing element 6. The securing element 6 is arranged in the recess 14 and is located in a securing position covering the turning axis 5, in which a displacement of the turning axis

[0058] 5 is limited relative to the lower part 2 in the axial longitudinal direction L.

[0059] Fig. 5A shows the self-inking stamp 1 according to Fig. 4 in a sectional front view and Fig. 5B shows detail D from Fig. 5A in an enlarged view, wherein in Fig. 5A, in contrast to Fig. 4, the outer claddings 13 of the side walls 11, 12 are shown. In particular, Fig. 5A shows two securing elements 6 in a securing position covering the turning axis 5. It can be clearly seen that the ends 8, 9 of the turning axis 5 are covered by the securing element 6 in the direction of the axis's longitudinal direction L, whereby the turning axis 5 is secured against axial advance. The securing element

[0060] 6 forms a sliding surface 7 for the turning axis 5, so that the ends 8, 9 of the turning axis 5 can rest against the sliding surface 7 and can slide over the entire working range A of the turning axis 5. The securing element 6 is shown as a one-piece sliding element 6a that is movable relative to the lower part 2. The one-piece design of the sliding element 6a promotes low-noise, preferably noiseless sliding of the turning axis 5 on the sliding element 6a. Due to the mobility of the sliding element 6a, it can be transferred easily and quickly from the securing position into the release position shown in Fig. 3 in order to expose one end 8, 9 of the turning axis 5 and remove the turning axis 5 if necessary. In the example shown, the sliding element 6a is designed as a slide element and is displaceably mounted in the lower part 2, in particular displaceably mounted parallel to the actuating direction B of the actuating part 3.In an embodiment not shown but understandable for a person skilled in the art, the sliding element 6a can be pivotally mounted in the lower part 2 in order to allow access to the turning axis 5 by pivoting the sliding element 6a.

[0061] Figs. 1 to 9, 11 and 12 also show a stop 18 of the sliding element 6a. The stop 18 serves to actuate the sliding element 6a and can, in particular, be a recess 18a or notch 18b accessible from outside the lower part 2. By engaging the stop 18, the sliding element 6a can be removed from the end 8, 9 of the turning axis 5, in particular, pushed away.

[0062] Fig. 6 shows the self-inking stamp 1 in the imprint position, wherein the outer covering 13 has been omitted. The securing element 6, in particular the sliding element 6a, has been pushed up relative to the securing position covering the turning axis 5 (cf. Fig. 4) and is therefore in a release position which exposes the turning axis 5. In the example according to Fig. 6, the turning axis 5 has already been pulled out of the stamp unit 4 a short way. It can also be seen that the sliding element 6a has a first locking position PI in the lower part 2, wherein in the first locking position PI the turning axis 5 is released for removal from the stamp unit 4.The first locking position PI therefore corresponds to the release position of the sliding element 6a, wherein the sliding element 6a is additionally locked in this release position in order to prevent undesired displacement, in particular slipping down of the sliding element 6a, as far as possible and not to hinder the removal of the turning axis 5.

[0063] In comparison to Fig. 6, the sliding element 6a in the illustration according to Fig. 4 has a second locking position P2 in the lower part 2, wherein in the second locking position P2 the turning axis 5 is secured in the lower part 2, i.e. cannot be moved significantly in the longitudinal direction L of the axis and cannot be removed. The second locking position P2 therefore corresponds to the securing position of the sliding element 6a, wherein the sliding element 6a is additionally locked in this securing position in order to prevent undesired displacement, in particular slipping upwards, of the sliding element 6a as far as possible and to keep the turning axis 5 secured.

[0064] Fig. 7 shows the self-inking stamp according to Fig. 6 in a sectional front view, wherein, in contrast to Fig. 6, the outer linings 13 of the sides 11, 12 of the lower part 2 are shown. A securing element 6 is provided on both sides 11, 12 of the lower part 2, both securing elements 6 being sliding elements 6a. In the example shown, the left of the securing elements 6 is arranged in the securing position corresponding to the second locking position P2 and the right-hand securing element 6 is arranged in the first locking position PI corresponding to the release position. Naturally, both securing elements 6 can be transferred to the first locking position PI in order to make the turning axis 5 accessible from both sides 11, 12. The turning axis 5 can be pushed from one side 11, 12 and removed from the other side 12, 11 by pulling it out.

[0065] Fig. 8 shows the self-inking stamp 1 in a partially assembled state, in which two security elements 6 are inserted into the closed frame 16 but not yet inserted into the lower part 2. The frame 16 can be pushed into the lower part 2 together with the security elements 6 and fixed to the lower part 2 via four hook elements 19. In order to be able to reliably accommodate and guide the security elements 6, the frame 16 preferably has upwardly projecting tongue-shaped insertion elements 20, with which the frame 16 is positioned in the lower part 2. A security element 6 can be accommodated so as to be displaceable in the actuating direction B between each two insertion elements 20. In Fig. 8 the sliding elements 6a are pushed up as in the first locking position PI.

[0066] Fig. 9 shows the closed frame 16 with the securing elements 6, in particular sliding elements 6a, inserted therein, which are pushed downwards as in the second locking position P2. The frame 16 has an opening 21 for the passage of the cliché 10. In order to be able to releasably fix the securing element 6, in particular sliding element 6a, in the first locking position P1 and in the second locking position P2 in the lower part 2, the securing element 6, in particular the sliding element 6a, can have first locking elements 22 which interact with complementary second locking elements 23 on the insertion elements 20, which are components connected to the lower part 2.The sliding element 6a preferably has at least one locking recess 24, in the examples shown two locking recesses 24 on each side, such as locking notches 24a, as the first locking element 22, into which locking recess 24 at least one locking projection 25, in the examples shown one locking projection 25 on each side, can engage as the second locking element 23. To facilitate locking between the first and second locking elements 22, 23, the insertion elements 20 are preferably resiliently formed on the frame 16.

[0067] The securing element 6 can also be designed as a removable cover 26.

[0068] While Fig. 10 shows the frame 16 with the insertion elements 20 and the sliding elements 6a in a sectional view, without a view of the first and second locking elements 22, 23, Fig. 11 shows the second locking elements 23 on the insertion elements 20. In Figs. 12 and 13, the first locking elements 22, which are designed as locking recesses 24, in particular locking notches 24a, can be seen on the sliding element 6a.

[0069] To remove the turning axis 5 from the self-inking stamp 1, the actuating part 3 is pressed down in the actuating direction B, whereby the turning axis 5 is brought into alignment with the recess 14 in the outer covering 13, the securing element 6 is removed from the turning axis 5 or a position in the extension of the turning axis 5, in particular by engaging in the stop 18 from the second locking position P2 to the first locking position PI, and the turning axis 5 is removed from the stamp unit 1 in the longitudinal axis direction L through the recess 14.

Claims

Patent claims 1. Self-inking stamp (1) with a lower part (2), an actuating part (3) and a stamp unit (4), wherein the actuating part (3) is connected to the lower part (2) and is displaceable relative to the lower part (2), wherein the stamp unit (4) is arranged in the lower part (2) and is pivotally coupled to the actuating part (3) via a turning axis (5), wherein the turning axis (5) is mounted in the stamp unit (4) so ​​as to be removable in the axial longitudinal direction (L), wherein a securing element (6) is arranged in the lower part (2), wherein the securing element (6) limits a displacement of the turning axis (5) in the axial longitudinal direction (L), characterized in that the securing element (6) forms a sliding surface (7) for the turning axis (5), wherein the sliding surface (7) extends over the entire Working area (A) of the turning axis (5).

2. Self-inking stamp (1) according to claim 1, characterized in that the securing element (6) is a sliding element (6a) movable relative to the lower part (2).

3. Self-inking stamp (1) according to claim 2, characterized in that the sliding element is in one piece.

4. Self-inking stamp (1) according to claim 2 or 3, characterized in that the sliding element (6a) is displaceably mounted in the lower part (2).

5. Self-inking stamp (1) according to claim 2 or 3, characterized in that the sliding element (6a) is displaceably mounted in the lower part (2) parallel to the actuating direction (B) of the actuating part (3).

6. Self-inking stamp (1) according to claim 2 or 3, characterized in that the sliding element (6a) is pivotally mounted in the lower part (2).

7. Self-inking stamp (1) according to one of claims 2 to 6, characterized in that the sliding element (6a) has a first locking position (PI) in the lower part (2), wherein in the first In the locking position (PI) the turning axis (5) is released for removal from the stamping unit (4).

8. Self-inking stamp (1) according to one of claims 2 to 7, characterized in that the sliding element (6a) has a second locking position (P2) in the lower part (2), wherein in the second locking position (P2) the turning axis (5) is secured in the lower part (2).

9. Self-inking stamp (1) according to one of claims 2 to 8, characterized in that the sliding element (6a) has a stop (18) for actuating the sliding element (6a).

10. Self-inking stamp (1) according to claim 9, characterized in that the stop (18) is a recess (18a) or notch (18b) accessible from outside the lower part (2).

11. Self-inking stamp (1) according to claim 1, characterized in that the securing element (6) is designed as a removable cover (26).

12. Self-inking stamp (1) according to one of claims 1 to 11, characterized in that a securing element (6) is provided on both sides (11, 12) of the lower part (2).

13. Self-inking stamp (1) according to claim 12, characterized in that both securing elements (6) are sliding elements (6a) according to one of claims 2 to 10.

14. Method for removing a turning axis (5) from a self-inking stamp (1) according to one of claims 1 to 13, characterized in that the securing element (6) is removed from the turning axis (5) or a position in extension of the turning axis (5) and the turning axis (5) is removed from the stamp unit (4) in the longitudinal axis direction (L).

15. Method according to claim 14, characterized in that the securing element (6) is moved away from the turning axis (5).

16. Method according to claim 15, characterized in that the securing element (6) is displaced in the lower part (2).

17. Method according to claim 15, characterized in that the securing element (6) in the lower part (2) is displaced parallel to the actuating direction (B) of the actuating part (3).

18. Method according to claim 15, characterized in that the securing element (6) is pivoted in the lower part (2).

19. Method according to one of claims 15 to 18, characterized in that the securing element (6) is moved from a second locking position (P2) in the lower part (2), in which the turning axis (5) is secured in the lower part (2), into a first locking position (PI) in the lower part (2), in which the turning axis (5) is released for removal from the stamping unit (4).

20. Method according to one of claims 15 to 19, characterized in that the securing element (6) is moved by engaging in a stop (18) for actuating the securing element (6).

21. Method according to claim 20, characterized in that the stop (18) is a recess (18a) or notch (18b) accessible from outside the lower part (2).

22. Method according to one of claims 15 to 21, characterized in that the securing element (6) is a sliding element (6a).

23. Method according to one of claims 14 to 22, characterized in that a securing element (6) is provided on both sides (11, 12) of the lower part (2) and both securing elements (6) are removed from the turning axis (5) or a position in extension of the turning axis (5), the turning axis (5) is pushed out of the stamping unit (4) at least a short distance from one of the two sides (11, 12) of the lower part (2) and, if necessary, is pulled out completely from the other side (12, 11).