Fitting for the movable mounting of a pivoting element relative to a stationary support

DE502022004361D1Active Publication Date: 2025-07-03JULIUS BLUM GMBH
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Patent Information

Application Number
DE502022004361
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-11-26
Filing Date
2022-10-13
Publication Date
2025-07-03
Estimated Expiration
2042-10-13

AI Technical Summary

Technical Problem

Existing furniture fittings with multiple adjustment devices often suffer from instability and rattling due to three-dimensional play within the assembly, which can lead to undefined movement behavior of pivoting elements.

Method used

The coupling of two adjustment devices in such a way that adjustments in one direction also result in partial adjustments in the other direction, significantly reducing the play of the bearing body within the base body.

Benefits of technology

This interlocking mechanism enhances the stability and defined movement behavior of pivoting elements by reducing unwanted play and ensuring precise adjustment in both primary and secondary directions.

✦ Generated by Eureka AI based on patent content.
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Description

[0001] The present invention relates to a fitting for the movable mounting of a pivoting element, in particular a furniture part, a door or a window, relative to a stationary support, comprising: a first fitting part, which is designed to be fastened to a, preferably substantially horizontally oriented, plate of the support, a second fitting part for fastening to the pivoting element, wherein the second fitting part is pivotally connected to the first fitting part via at least one articulated lever, wherein the first fitting part has at least one base body and at least one bearing body adjustable relative to the base body, on which the at least one articulated lever is mounted, a first adjustment device, by means of which the at least one bearing body can be adjusted in a first adjustment direction, preferably transversely to an end face of the first fitting part, relative to the base body, at least one second adjustment device, by means of which the at least one bearing body can be adjusted in a second adjustment direction transversely to the first adjustment direction relative to the base body,preferably parallel to the end face of the first fitting part.

[0002] WO 2016 / 174071 A1 discloses a furniture hinge for pivotably supporting a furniture door, wherein the body-side fitting part is designed to be received in a horizontally extending furniture panel of a furniture body. Two adjustment devices are arranged on the body-side fitting part, by means of which a bearing body can be adjusted relative to an outer housing in a depth direction and in a lateral direction. A further adjustment device is provided on the door-side fitting part, by means of which the furniture door can be adjusted in a height direction.

[0003] WO 2020 / 212086 A1 shows a similar furniture hinge with fittings that can be integrated into furniture panels, wherein a first adjustment device for depth adjustment and a second adjustment device for lateral adjustment are provided on the body-side fitting.

[0004] KR 101458549 B1 discloses a support device for a pivoting door, wherein a hinge pin of the door can be coupled to a recess in a pivoting part. The pivoting part is rotatably mounted relative to a base body to be fastened to the floor. Two lateral bolts are provided for adjusting the position of the door. If a first of the two lateral bolts is rotated, this also leads to an adjustment on the other side due to the rotatable mounting of the pivoting part. The adjustment directions caused by the two lateral bolts run parallel to each other.

[0005] WO 2020 / 006587 A1 discloses a furniture fitting for the movable mounting of a pivoting element in the form of a furniture door, wherein the fitting part on the body side has a mounting part that can be integrated into a furniture panel for attachment to the stationary support. In a first step, the mounting part is pre-assembled on or in the furniture panel of the support. In a second step, the furniture door can be detachably connected to the mounting part pre-assembled on the support via a coupling part. In addition, three rotatably mounted operating elements are provided, by means of which the coupling part, when connected to the mounting part, can be adjusted three-dimensionally with respect to the mounting part. In order for the coupling part to be adjustable within the mounting part, a certain amount of play of the coupling part within the mounting part must also be present in three directions of movement.However, this three-dimensional play of the coupling part within the assembly part can lead to instability and rattling of the coupling part, whereby a defined movement behavior of the movable furniture part is not ensured.

[0006] The object of the present invention is to provide a fitting of the type mentioned at the outset while avoiding the above disadvantages.

[0007] This is achieved according to the invention by the features of patent claim 1. Further advantageous embodiments of the present invention are defined in the dependent patent claims.

[0008] According to the invention, it is provided that the two adjustment devices are coupled to one another in such a way that when the bearing body is adjusted in the first adjustment direction by means of the first adjustment device, the bearing body can also be moved at least partially in the second adjustment direction.

[0009] In other words, a coupling of the two adjustment devices is provided, namely such that actuation of an adjustment device in a first direction of movement also leads to an adjustment of the bearing body in the second direction of movement (and preferably also vice versa). Thus, an interlocking of the two adjustment devices is provided, which leads to a significant reduction in the play of the bearing body within the base body.

[0010] Preferably, it can be provided that the two adjustment devices are coupled to one another in such a way that when the bearing body is adjusted in the second adjustment direction by means of the second adjustment device, the bearing body can also be moved at least partially in the first adjustment direction.

[0011] Adjusting the first adjustment device in a first adjustment direction also results in movement of the bearing body into the second adjustment device (and preferably vice versa). While this may seem like a disadvantage at first glance, it can reduce the play of the bearing body within the base body, and a person can certainly find a compromise adjustment in which the position of the bearing body is appropriate in both the first adjustment direction and the second adjustment direction.

[0012] According to a preferred embodiment, it can be provided that the at least one bearing body, in a connected state with the base body, is pivotably mounted relative to the base body about an axis of rotation, wherein the bearing body is movable about the axis of rotation by actuating at least one adjusting device, preferably by actuating both adjusting devices.

[0013] Further details and advantages of the present invention will become apparent from the following description of the figures. Fig. 1 shows a piece of furniture with a support and with a pivoting element that can be moved relative to the support in a perspective view, Fig. 2 shows the support and the fitting in a separated state, Fig. 3 shows the mounting body and the base body of the first fitting part in a separated state from each other, Fig. 4 shows the locked state between the base body and the mounting body, Figs. 5a, 5b show the first fitting part with the base body and the bearing body in a plan view and in a perspective view, Figs. 6a-6d show the settings of the first adjusting device and the second adjusting device with different positions of the pivoting element relative to the stationary support, Figs. 7a, 7b show the first fitting part with the base body and the bearing body and with an adjusting device according to a slightly modified embodiment.

[0014] Fig. 1 shows a perspective view of a piece of furniture 1 with a stationary support 2 (for example in the form of a furniture body 2a), wherein a pivoting element 3 (for example a movable furniture part 3a, a flap, a door, a window or the like) is pivotally mounted by at least one fitting 4 relative to the support 2 about an axis which preferably runs vertically in the assembled position.

[0015] The carrier 2 has a plurality of plates 5a-5e, wherein the first fitting part 6 of the fitting 4 is designed to be integrated into one of the plates 5a-5e of the carrier 2 (i.e., for example, in the cover plate, in the base plate and / or in a shelf arranged between the cover plate and the base plate).

[0016] Of course, it is also possible to arrange the fitting 4 in or on one of the vertically extending plates 5d, 5e, so that the pivoting element 3 is pivotably mounted relative to the support 2 about a horizontally extending axis in an assembled state.

[0017] In the embodiment shown, it is provided that the first fitting part 6 of the fitting 4 is substantially completely accommodated within a recess of the plates 5a, 5c and / or that the second fitting part 7 of the fitting 4 is substantially completely accommodated within a further recess of the pivoting element 3.

[0018] The pivoting element 3 can be formed from a plate-shaped material (for example wood, plastic, fiberboard, glass plate or the like).

[0019] Fig. 2 shows the support 2 and the fitting 4 separated from each other. The first fitting part 6 is to be fastened in or to a plate 5a-5e of the support 2. For this purpose, the first fitting part 6 has a mounting body 9, which can be inserted into a recess in the plate 5a and fixed to the plate 5a via at least one fastening device 10.

[0020] The fastening device 10 can be implemented according to various designs and can, for example, have at least one hole for the passage of a screw, at least one eccentric, or at least one clamping screw. In the illustrated embodiment, the fastening device 10 of the mounting body 9 has at least one movable, preferably rotatable, fastening element 10a, wherein at least one (not shown) clamping part of the fastening device 10 can be frictionally connected to the plate 5a by actuating the fastening element 10a using a tool.

[0021] In a first step, the mounting body 9 is to be pre-assembled to the plate 5a via at least one fastening device 10. The mounting body 9 has a preferably pocket-shaped housing 11 into which a base body 12 of the first fitting part 6 can be inserted and releasably locked within the housing 11 via at least one locking device 13.

[0022] A bearing body 32 is accommodated in the base body 12 of the first fitting part 6, wherein a position of the bearing body 32 relative to the base body 12 can be adjusted by at least two adjustment devices 27, 28. Preferably, the base body 12 can be configured to be substantially cuboid-shaped.

[0023] By means of the first adjustment device 27, the bearing body 32 is adjustable relative to the base body 12 in a first adjustment direction M1, preferably transversely to an end face 33 of the first fitting part 6. Preferably, the bearing body 32 is adjustable by the first adjustment device 27 substantially perpendicular to the end face 33 of the first fitting part 6, whereby the pivoting element 3 connected to the second fitting part 7 is adjustable relative to the stationary support 2 in a depth direction.

[0024] By means of the second adjustment device 28, the bearing body 32 can be adjusted in a second adjustment direction M2 transversely to the first adjustment direction M1 relative to the base body 12, preferably substantially parallel to the end face 33 of the first fitting part 6. In this way, the pivoting element 3 connected to the second fitting part 7 can be adjusted in a lateral direction relative to the stationary support 2.

[0025] The bearing body 32 of the first fitting part 6 is pivotally connected to the second fitting part 7 via at least one articulated lever 8a. The second fitting part 7 can be designed to be at least partially, preferably substantially completely, recessed into a recess of the pivot element 3. Alternatively, the second fitting part 7 can be arranged entirely outside a wall thickness of the pivot element 3 in an assembled state.

[0026] The housing 11 of the mounting body 9 has a slot-shaped recess for receiving the base body 12. The housing 11 has a height extension H and a length extension L, wherein the length extension L of the housing 11 can be at least three times, preferably at least six times, greater than the height extension H.

[0027] The base body 12, which is preferably essentially cuboid-shaped, has dimensions corresponding to the height extension H and the length extension L, wherein the base body 12 can be received in an approximately form-fitting manner within the housing 11 of the mounting body 9.

[0028] Fig. 3 shows the mounting body 9 and the base body 12 of the first fitting part 6 in a separated state from each other.

[0029] The base body 12 can be releasably locked to the mounting body 9 by at least one locking device 13. The at least one locking device 13 has an ejection device 14, by which the base body 12 can be ejected, at least in sections, from the housing 11 of the mounting body 9 during unlocking by a force of a spring element 16, preferably a compression spring.

[0030] During assembly, the base body 12 can be inserted into the housing 11 of the assembly body 9 in a joining direction FR, wherein the base body 12 can be ejected by the ejection device 14 during unlocking, at least in sections, counter to the joining direction FR.

[0031] The housing 11 of the mounting body 9 can have an end face 18, wherein the base body 12 can be inserted into the housing 11 of the mounting body 9 during assembly essentially perpendicular to the end face 18. In an assembled state, the end face 18 of the housing 11 runs essentially parallel to a front narrow side of the plate 5a of the carrier 2.

[0032] In the illustrated embodiment, at least one armature 20 is provided that can rotate about a rotational axis 19. The armature 20 has a shaft and two arms projecting from the shaft. The spring element 16 engages a first arm of the armature 20, the ejection lever 14a is arranged on a second arm of the armature 20, and the locking lever 13a is arranged on the shaft of the armature 20.

[0033] The ejection lever 14a of the ejection device 14 for ejecting the base body 12 from the mounting body 9 can be applied to a rear side 15 of the base body 12.

[0034] The locking device 13 may have at least one pivotable locking lever 13a for releasably locking the base body 12, preferably wherein the at least one locking lever 13a has a locking position and an unlocking position, wherein the at least one locking lever 13a is arranged in the unlocking position for mounting the base body 12, and / or is pretensioned by at least one spring element 16, preferably a helical spring, preferably wherein the at least one locking lever 13a is movable against a force of the spring element 16 when the base body 12 is pushed into the housing 11 of the mounting body 9 and is releasably lockable to the base body 12 during a continued insertion movement of the housing 11, and / or is releasably lockable via a control cam 21 and a control element 22, preferably a cylindrical bolt, which is movable along the control cam 21, and / or is releasably lockable with at least one recess 17a, 17b of the base body 12, and / or is arranged in or on the mounting body 9 of the first fitting part 6.

[0035] The bearing body 32 can preferably be accommodated substantially completely within the base body 12, wherein the bearing body 32 is pivotally connected to the second fitting part 7 via at least one articulated lever 8a, preferably via at least two articulated levers 8a, 8b.

[0036] Fig. 4 shows the locked position between the base body 12 and the mounting body 9. For assembly, the base body 12 was pressed into the housing 11 of the mounting body 9, whereby the control element 22 (for example, a cylindrical pin) was moved out of a locking recess 24 of the control cam 21. In this way, the locking lever 13a is moved about the rotation axis 19 by the force of the relaxing spring element 16 and engages in the lateral recess 17a of the base body 12. On the opposite side surface, the base body 12 has a further recess 17b, which engages with an engagement element 23 of the mounting body 9.

[0037] It can be seen that the locking lever 13a of the locking device 13 and the ejection lever 14a of the ejection device 14 are formed together in one piece and are preferably prestressed by the same, single spring element 16.

[0038] The locked position between the base body 12 and the mounting body 9 can be released again by a release device 25 with a movable release element 25a. Preferably, the release element 25a is mounted so as to be linearly displaceable, and / or is operable by means of a tool, and / or is movable against a force of a spring element 16 into a release position releasing the base body 12, and / or is movable perpendicular to an end face 18 of the mounting body 9 and / or is operable starting from an end face 18 of the mounting body 9.

[0039] To release the lock, the release element 25a is pressed into the housing 11 of the mounting body 9 by means of a tool, whereby the control element 22 moves along the control curve 21 against the force of the spring element 16 and the spring element 16 is tensioned.

[0040] By moving the control element 22 along the control cam 21, the locking lever 13a of the locking device 13 is also moved out of the recess 17a of the base body 12, and the ejection lever 14a of the ejection device 14 is tilted about the rotation axis 19. Finally, the control element 22 springs back into the detent recess 24 of the control cam 21, whereby the base body 12 can be ejected from the housing 11 of the mounting body 9 by the ejection lever 14a and the force of the relaxing spring element 16.

[0041] Fig. 5a shows the first fitting part 6 with the base body 12 and the bearing body 32 arranged therein in a plan view. The first articulated lever 8a is pivotally connected to the bearing body 32 via a first joint axis 30a and / or the second articulated lever 8b is pivotally connected to the bearing body 32 via a second joint axis 30b.

[0042] To apply force to the articulated lever 8b, an energy accumulator 31 (for example, at least one compression spring) is provided, by which the articulated lever 8b (and thus the second fitting part 7) can be moved into an open end position and / or into a closed end position. The energy accumulator 31 acts on a rotatably mounted pressure roller 34, which can be moved along an adjusting contour 35 arranged on the articulated levers 8a, 8b when the articulated levers 8a, 8b move.

[0043] To dampen a closing movement of the fitting 4, a damping device 37 (for example with a piston-cylinder unit) is provided, which can be acted upon by a lever arm 36 of the articulated lever 8b during a closing movement of the fitting 4.

[0044] By means of a first adjustment device 27, a position of the bearing body 32 can be adjusted in a first adjustment direction M1, preferably in a direction perpendicular to the end face 33 of the first fitting part 6. The first adjustment device 27 can have a rotatable adjustment element 27a which is in threaded engagement with a bearing 38a of the bearing body 32.

[0045] By means of a second adjustment device 28, a position of the bearing body 32 can be adjusted in a second adjustment direction M2 transverse to the first adjustment direction M1, preferably in a direction parallel to the end face 33 of the first fitting part 6.

[0046] The second adjustment device 28 has a rotatable adjustment element 28a with a threaded portion which is in threaded engagement with a bearing 38b of a pivoting part 39 rotatable about a rotation axis 40.

[0047] The pivoting part 39 has an opening 41, preferably an elongated hole, in which a guide element 42, preferably a pin, of the bearing body 32 is movably guided. By rotating the adjusting element 28a of the second adjusting device 28, the pivoting part 39 can be tilted about the rotation axis 40, whereby the guide element 42 of the bearing body 32 is displaced substantially parallel to the end face 33 of the first fitting part 6. In this way, the lateral position of the bearing body 32 relative to the outer base body 12 and thus the pivoting element 3 can be aligned in a lateral direction relative to the stationary support 2.

[0048] For improved guidance, the guide element 42 is movable along a linear guide 46 of the base body 12, as shown in Fig. 3 is shown. The linear guide 46 is aligned essentially parallel to the end face 33 of the first fitting part 6.

[0049] Fig. 5b shows the first fitting part 6 with the base body 12 and the bearing body 32 arranged in the base body 12 in a perspective view. The energy accumulator 31 (for example with a compression spring) presses against an adjusting contour 35 of the articulated lever 8b via the pressure roller 34, whereby the force of the energy accumulator 31 can be transmitted to the articulated lever 8b in a metered manner according to a predetermined course. When the fitting 4 is closed, the lever arm 32 of the articulated lever 8b strikes the damping device 37, whereby a housing (for example a cylinder) of the damping device 37 is pressed in relative to a stationary piston rod 37a, thus braking the closing movement of the fitting 4.

[0050] The bearing body 32 is pivotally mounted relative to the base body 12 about a rotation axis 40. The bearing body 32 is movable, at least in sections, about the rotation axis 40 by actuating at least one adjustment device 27, 28, preferably by actuating both adjustment devices 27, 28.

[0051] The adjusting element 27a of the first adjusting device 27 is in threaded engagement with a bearing 38a of the bearing body 32, whereas the adjusting element 28a of the second adjusting device 28 is in threaded engagement with a bearing 38b of the pivoting part 39.

[0052] According to preferred embodiments, it can be provided that the axis of rotation 40 adjacent to a side surface of the first fitting part 6 projecting transversely from the end face 33, and / or is arranged at a distance from a joint axis 30b of at least one articulated lever 8b on the first fitting part 6, preferably wherein the distance substantially corresponds to a width of the end face 33 of the first fitting part 6 in a direction parallel to the second adjustment direction M2.

[0053] The adjusting element 27a, 28a of at least one adjusting device 27, 28 can have a longitudinal direction, wherein the rotatably mounted adjusting element 27a, 28a is mounted immovably or displaceably in the longitudinal direction, and / or has a receptacle 43 for a tool, preferably a screwdriver, and / or is operable from an end face 33 of the first fitting part 6.

[0054] Fig. 6a und Fig. 6b show the first fitting part 6 with the base body 12 and the bearing body 32 arranged with the base body 12, wherein a position of the bearing body 32 relative to the base body 12 can be adjusted by the two adjusting devices 27, 28.

[0055] The first adjustment device 27 has a rotatable adjustment element 27a, which is in threaded engagement with a bearing 38a of the bearing body 32. By rotating the adjustment element 27a of the first adjustment device 27, the bearing body 32 can be adjusted in a direction perpendicular to the end face 33 of the first fitting part 6. By actuating the first adjustment device 27, a depth distance Z of the pivoting element 3 relative to the stationary support 2 can be adjusted, wherein the pivoting element 3 Fig. 6b a different depth distance ΔZ in relation to the stationary support 2. With an actuation of the first adjusting device 27, the bearing body 32 is also moved in a direction parallel to the front side 33. It can be seen that the position of the bearing body 32 in Fig. 6b in direct comparison with the Fig. 6a was moved by the lateral distance ΔX.

[0056] Fig. 6c und Fig. 6d show the first fitting part 6 with the base body 12 and the bearing body 32 adjustable in the base body 12. The second adjusting device 28 has a rotatable adjusting element 28a which is in threaded engagement with a bearing 38b of the pivoting part 39 which can be tilted about the rotation axis 40.

[0057] By rotating the adjusting element 28a of the second adjusting device 28, the bearing body 32 can be adjusted in a direction parallel to the end face 33 of the first fitting part 6. By actuating the second adjusting device 28, a lateral orientation X1 of the pivoting element 3 relative to the stationary support 2 can be adjusted, wherein the pivoting element 3 can be Fig. 6d assumes a different lateral orientation X1 in relation to the stationary support 2. With an actuation of the second adjusting device 28, the bearing body 32 is also moved in a direction transverse, preferably perpendicular, to the front side 33. It can be seen that the depth distance Z1 according to Fig. 6c and the depth distance ΔZ1 according to Fig. 6d is of different sizes.

[0058] By rotating the adjusting element 28a of the second adjusting device 28, the pivoting part 39 is tilted about the axis of rotation 40, wherein the pivoting part 39 displaces the guide element 42 of the bearing body 32 via the opening 41 in a direction parallel to the end face 33.

[0059] By coupling the two adjusting devices 27, 28, the play of the bearing body 32 within the base body 12 is reduced and the pivoting element 3 has an improved movement behavior.

[0060] Fig. 7a shows the first fitting part 6 with the base body 12 and the bearing body 32 arranged in the base body 12 according to a slightly modified embodiment.

[0061] In contrast to the previous figures, the second adjustment device 28 with the rotatable adjustment element 28a for adjusting the bearing body 32 in a direction parallel to the end face 33 is designed differently. In the previous figures, the adjustment element 28a of the second adjustment device 28 is threadably engaged with the bearing 38b of the pivoting part 39 via a threaded portion. However, under certain circumstances, the mutual thread engagement could lead to the rotatable adjustment element 28a and the pivoting part 39, which can be tilted about the rotation axis 40, becoming jammed together, particularly over longer adjustment ranges.

[0062] According to the embodiment of the Fig. 7a, 7b It is therefore provided that the rotatable adjustment element 28a has a threadless portion 44, on which the pivoting part 39 is mounted, preferably via the bearing 38b. The adjustment element 28a has a longitudinal direction, wherein the adjustment element 28a is displaceable in the longitudinal direction, preferably in a direction perpendicular to the end face 33 of the first fitting part 6.

[0063] For the displaceable mounting of the adjusting element 28a, a longitudinal guide 45 is provided, preferably arranged on the base body 12, wherein the longitudinal guide 45 extends transversely, preferably substantially perpendicularly, to the end face 33 of the first fitting part 6.

[0064] Fig. 7b shows the first fitting part 6, with the bearing body 32 in direct comparison with the Fig. 7aassumes a different position relative to the base body 12. The different positions of the adjusting element 28a relative to the longitudinal guide 45 are also visible.

[0065] Actuation of the second adjustment device 28 in the second adjustment direction M2, preferably in a direction parallel to the end face 33, also leads to a movement of the bearing body 32 in the first adjustment direction M1, preferably in a movement perpendicular to the end face 33.

[0066] Actuation of the first adjustment device 27 in the first adjustment direction M1, preferably in a movement perpendicular to the end face 33, consequently also leads to a movement of the bearing body 32 in the second adjustment direction M2, preferably in a direction parallel to the end face 33.

Claims

1. A fitting (4) for movably supporting a pivoting element (3), in particular a furniture part (3a), a door or a window, relative to a stationary carrier (2), comprising: - a first fitting portion (6) configured to be fixed to a, preferably substantially horizontally aligned, panel (5a-5e) of the carrier (2), - a second fitting portion (7) configured to be fixed to the pivoting element (3), the second fitting portion (7) being pivotally connected to the first fitting portion (6) via at least one hinge lever (8a, 8b), - wherein the first fitting portion (6) includes at least one base body (12) and at least one bearing body (32) adjustable relative to the base body (12), the at least one hinge lever (8a, 8b) being supported on the bearing body (32), - a first adjustment device (27) for adjusting the at least one bearing body (32) relative to the base body (12) in a first adjustment direction (M1), preferably in a direction extending transversely to a front face (33) of the first fitting portion (6), - at least a second adjustment device (28) for adjusting the at least one bearing body (32) relative to the base body (12) in a second adjustment direction (M2) extending transversely to the first adjustment direction (M1), preferably in a direction extending parallel to the front face (33) of the first fitting portion (6), - wherein the two adjustment devices (27, 28) are coupled to each other such that the bearing body (32), upon an adjustment of the bearing body (32) in the first adjustment direction (M1) with the aid of the first adjustment device (27), is also entrainable at least over a region in the second adjustment direction M2), - wherein at least one adjustment device (27, 28), preferably both adjustment devices (27, 28), includes or include at least one rotationally supported adjustment element (27a, 28a), characterized in that - at least one adjustment element (28a) includes a threaded portion which is in threading engagement with a pivoting member (39) pivotable about a pivoting axis (40), or wherein the least one adjustment element (28a) includes a threadless portion (44) on which a pivoting member (39) for adjusting the bearing body (32) is pivotable about a pivoting axis (40), and - the pivoting member (39) includes an opening (41), preferably an elongated hole, in which a guide element (42), preferably a pin, of the bearing body (32) is movably guided.

2. The fitting (4) according to claim 1, characterized in that the two adjustment devices (27, 28) are coupled to each other such that the bearing body (32), upon an adjustment of the bearing body (32) in the second adjustment direction (M2) with the aid of the second adjustment device (28), is also entrainable at least over a region in the first adjustment direction (M1).

3. The fitting (4) according to claim 1 or 2, characterized in that the at least one bearing body (32) is pivotally supported relative to the base body (12) about a pivoting axis (40).

4. The fitting (4) according to claim 3, characterized in that the pivoting axis (40) - is arranged adjacent to a side face of the first fitting portion (6), the side face protruding transversely from the front face (33), and / or - is arranged on the first fitting portion (6) with a distance from a hinge axis (30a, 30b) of at least one hinge lever (8a, 8b), preferably wherein the distance substantially corresponds to a width of the front face (33) of the first fitting portion (6) in a direction extending parallel to the second adjustment direction (M2) .

5. The fitting (4) according to one of the claims 1 to 4, characterized in that at least one adjustment element (27a, 28a), preferably both adjustment elements (27a, 28a), - has a longitudinal direction, wherein the rotationally supported adjustment element (27a, 28a) is non-displaceably supported in the longitudinal direction or is displaceably supported in the longitudinal direction, and / or - includes a receiver (43) for a tool, preferably a screwdriver, and / or - is configured to be actuated from a front face (33) of the first fitting portion (6).

6. The fitting (4) according to one of the claims 1 to 5, characterized in that the guide element (42) is displaceably supported along a linear guide (46) of the base body (12).

7. The fitting (4) according to one of the claims 1 to 6, characterized in that at least one adjustment element (27a, 28a) is in engagement with a bearing (38a, 38b) so as to adjust the bearing body (32) , preferably wherein the adjustment element (27a, 28a) is arranged on the base body (12) and the bearing (38a, 38b) is arranged on the bearing body (32).

8. The fitting (4) according to one of the claims 1 to 7, characterized in that the first fitting portion (6) includes a front face (33), wherein the first adjustment direction (M1) extends transversely, preferably substantially perpendicular, to the front face (33) of the first fitting body (6), and / or wherein the second adjustment direction (M2) extends substantially parallel to the front face (33) of the first fitting portion (6).

9. The fitting (4) according to one of the claims 1 to 8, characterized in that the first fitting portion (6) includes a mounting body (9) configured to be fixed to or within the stationary carrier (2), the mounting body (9) having a, preferably pocket-shaped, housing (11), wherein the base body (12) of the fitting (4) is configured to be releasably connected to the mounting body (9), preferably releasably lockable by at least one locking device (13).

10. The fitting according to claim 9, characterized in that the base body (12) of the first fitting portion (6), in a connected condition with the mounting body (9), is at least partially, preferably for the most part, received within the housing (11) of the mounting body (9).

11. The fitting (4) according to one of the claims 1 to 10, characterized in that the base body (12) has a height extension (H) and a longitudinal extension (L), the longitudinal extension (L) of the base body (12) being at least three times, preferably at least six times, larger than the height extension (H).