Leveling device for floor covering elements which can be laid next to one another
The plate-shaped support element with undercut recesses and drainage slots, along with interlocking ridges and retaining webs, addresses premature detachment and moisture issues, achieving a durable and aesthetically pleasing floor installation.
Patent Information
- Application Number
- PCT/EP2025/056003
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-07-24
- Filing Date
- 2025-03-05
- Publication Date
- 2026-01-29
AI Technical Summary
Floor covering elements detach prematurely from support elements, leading to weakened bonds and visible steps due to mechanical stress and moisture penetration, especially in outdoor or wet environments.
The plate-shaped support element features undercut recesses and drainage slots to enhance adhesive bonding and moisture drainage, along with interlocking ridges and retaining webs for stability, and a pressing device with a locking mechanism to ensure durable fixation.
The solution provides a durable and reliable bond between floor covering elements, preventing detachment and moisture damage, ensuring a flush and aesthetically pleasing installation.
Smart Images

Figure EP2025056003_29012026_PF_FP_ABST
Abstract
Description
[0001] Leveling device for side-by-side installations
[0002] Learn about floor coverings
[0003] The invention relates to a leveling device for floor covering elements that can be laid side by side, comprising a plate-shaped support element which forms a support plane for two or more floor covering elements on a first outer surface, wherein each floor covering element can be placed on the support element with an edge region of the respective floor covering element overlapping the support plane of the support element and next to an adjacent floor covering element and fixed to the support element on the first outer surface with an adhesive material, and wherein the leveling device has at least one pressing device with which two adjacent floor covering elements lying on the support element can be pressed flush with each other on the surface of the first outer surface.
[0004] Such leveling devices are known in various forms from practical experience. They can be used to arrange and, if necessary, connect several floor covering elements laid side by side on a substrate in such a way that a level floor covering can be formed, in which the individual floor covering elements are flush with the surface with their usable area facing away from the substrate. For this purpose, the plate-shaped support elements can be laid in a grid defined by the floor covering elements on a suitable substrate, usually a bed of crushed stone or gravel, such that two or more adjacent floor covering elements can rest with an edge area of each element on a support plane formed by the first outer surface of the support element.Before the relevant floor covering elements are placed on the first outer surface of the support element, a suitable adhesive material, such as a construction adhesive, is applied to the first outer surface of the plate-shaped support element facing away from the substrate, and then the two or more floor covering elements are placed with their respective edge areas onto the first outer surface, so that the contact edge area is fixed to the first outer surface of the support element with the adhesive material and a bond is created between the adjacent floor covering elements.
[0005] The individual flooring elements may have slightly different thicknesses at their edges, perpendicular to their usable surface. Furthermore, the substrate on which the slab-shaped support elements and subsequently the flooring elements are laid may have minor irregularities that could result in the usable surfaces of two adjacent flooring elements not being flush with the surface.Flush installation of the floor covering elements can be facilitated by applying a sufficient amount of adhesive material to the first outer surface of the support element and pressing floor covering elements of varying thicknesses into the adhesive material at different distances from the support surface of the plate-shaped support element formed by the first outer surface, so that the usable surface of the floor covering elements facing away from the first outer surface is flush with the surface.
[0006] To facilitate or ensure the flush pressing of adjacent floor covering elements onto the plate-shaped support element, particularly when using an adhesive with a longer curing time, suitable pressing devices are often used. These pressing devices typically have a displacement shaft that extends from the second outer side through the plate-shaped support element and projects from the first outer side between the respective edge areas of the adjacent floor covering elements.A pressure element can be placed on the displacement shaft against the respective working surface of the flooring elements and pressed towards the first outer edge, so that the edge areas of the flooring elements gripped by the pressure element are pressed flush with the surface into the adhesive material and fixed in place until the adhesive has cured. In this way, the flooring elements laid side by side on the subfloor can be leveled to form a flush floor covering.
[0007] However, it has become apparent that many from the
[0008] In practice, it is common for the flooring elements to detach unexpectedly and often prematurely from the outer surface of the support element on plate-shaped support elements, frequently before the expected service life of the flooring has elapsed. This impairs and progressively weakens the bond between the adjacent flooring elements. Furthermore, penetrating moisture and dirt can disrupt the originally flush surface alignment of the neighboring flooring elements, resulting in visible and tactile steps in the floor covering.
[0009] It is therefore considered an object of the present invention to design a leveling device with the features listed above in such a way as to enable the most durable possible bonding effect of the leveled floor covering elements while ensuring simple manufacture and use of the leveling devices.
[0010] This problem is solved according to the invention by the fact that the plate-shaped support element has at least one undercut recess, wherein the undercut recess extends from the first outer surface towards a second outer surface opposite the first outer surface, so that an adhesive material penetrating from the first outer surface into the undercut recess and subsequently curing can be positively locked in the undercut recess.
[0011] For plate-shaped support elements without such an undercut recess, the first outer surface typically has a flat bearing surface or several upwardly projecting projections with bearing surfaces for floor covering elements, so that the adhesive material adheres to the flat bearing surface only by means of the adhesive force exerted by the adhesive itself. Over time, or due to the mechanical stress typically occurring on a floor covering, the adhesive force can decrease during the expected use of the floor covering until individual floor covering elements detach from their associated plate-shaped support element and the bond is interrupted.
[0012] The undercut recess not only allows the adhesive material to adhere firmly to the first outer surface of the plate-shaped support element, but above all, it enables the plate-shaped support element to interlock with the portion of the adhesive material penetrating the undercut recess, thus creating a permanent and durable bond between the adhesive material and the plate-shaped support element that can withstand significant mechanical loads.
[0013] According to a particularly advantageous embodiment of the invention, the undercut recess extends from the first outer surface to a second outer surface opposite the first, and its clear width increases at least section by section with increasing distance from the first outer surface. Since the clear width of the undercut recess increases with increasing distance from the first outer surface, the undercut recess can be produced with a conventional tool using an injection molding process, without requiring movable tool elements for the undercut or multiple processing steps such as subsequent forming or reworking of the undercut recess.The undercut recess extending from the first outer surface to the second outer surface forms a continuous recess in the plate-shaped support element, through which the adhesive material can penetrate and expand behind or on the second outer surface, so that after the adhesive material has cured, a form-fitting fixing of the adhesive material, for example rivet-like, takes place in this continuous recess.
[0014] Preferably, the undercut recess is designed as a slot extending along the first outer surface. A slot-shaped undercut recess can be easily covered, for example, with a bead of adhesive material, thus providing a positive-locking bond between the adhesive material and the first outer surface of the support element along its entire length. This facilitates the rapid and reliable preparation of the plate-shaped support elements and the reliable fixing of the individual flooring elements.
[0015] According to an optional embodiment of the invention, the at least one undercut recess forms a continuously widening undercut slot extending from the first outer surface to the second outer surface. A continuously widening undercut slot facilitates the demolding of the plate-shaped support element, which is produced in a suitable tool using an injection molding process. Furthermore, the continuously widening undercut slot creates an undercut, regardless of the penetration depth of the adhesive material, and thus provides a positive-locking connection between the adhesive material penetrating the undercut slot and the plate-shaped support element.This not only facilitates the production of the plate-shaped support element, but also makes the bonding of the individual floor covering elements to the plate-shaped support element easier and more reliably feasible.
[0016] The undercut recess expediently extends over more than half the largest diameter of the bearing surface of the plate-shaped support element and preferably over more than 75% or, more preferably, over more than 90% of the largest diameter of the bearing surface of the plate-shaped support element.
[0017] According to a particularly advantageous embodiment, the plate-shaped support element has several slot-shaped undercut recesses, at least two of which are arranged parallel to each other. Furthermore, at least two undercut recesses may have an intersecting orientation. The mechanical dimensional stability of the plate-shaped support element can be improved by means of retaining webs that extend transversely across a bridge section of an undercut recess, either on the first outer surface or on the second outer surface, and connect the areas of the plate-shaped support element adjacent to the bridge section of the undercut recess.
[0018] When the leveling device is used as intended, all undercut recesses of the plate-shaped support element are covered with an adhesive material, preferably with a bead of adhesive material extending over the undercut recess, before the floor covering elements are placed on the support element and pressed against the adhesive material, which thereby partially penetrates the undercut recess and creates a positive connection with the support element.
[0019] Particularly with flooring installed in uncovered outdoor areas or in wet rooms of a building, rainwater or moisture from the surface can penetrate into joints or gaps between adjacent flooring elements. If moisture or water were to accumulate on the outer surface of the first, slab-shaped support element, prolonged exposure to the edges of the flooring elements resting on the support element could lead to undesirable discoloration or material changes.To prevent damage to the floor covering from standing water on the first outer surface of the plate-shaped support elements, it is advantageous to provide that the plate-shaped support element has several drainage openings extending over more than half the length of the first outer surface and projecting from the first outer surface through the plate-shaped support element to the opposite second outer surface. A sufficiently large number of drainage openings, distributed over a wide area of the plate-shaped support element, allows for the rapid and reliable removal of standing water and other moisture or water accumulation.
[0020] Preferably, the plate-shaped support element has at least one drainage slot extending over more than half the length of the first outer surface and projecting from the first outer surface through the plate-shaped support element to the opposite second outer surface. The drainage slot can have a constant or decreasing clear width from the first outer surface to the second outer surface. The drainage slot is advantageously arranged and designed to allow effective drainage of the first outer surface of the plate-shaped support element. A drainage slot can also extend over a wide area of the support plane of the support element, similar to an undercut recess, and may, for example, run parallel to a slot-shaped undercut recess.A drainage slot, located adjacent to and parallel to an undercut recess, can promote effective drainage in the vicinity of the undercut recess and the resulting bonding of a floor covering element to the plate-shaped support element, thereby significantly increasing and improving the durability of the bond.
[0021] In order to enable effective drainage across the entire bearing surface of the plate-shaped support element, it is optionally provided that the plate-shaped support element has at least two drainage slots intersecting in a cross shape or several drainage slots arranged in a cross shape.
[0022] Intersecting slot-shaped undercut recesses or intersecting drainage slots are particularly advantageous in the case of a plate-shaped support element, the first outer surface of which forms a cross-shaped support plane or is cross-shaped.
[0023] Continuous undercut recesses and drainage openings or slots further facilitate particularly rapid and reliable installation of the floor covering, and especially the bonding of floor covering elements to the slab-shaped support elements. The adhesive is typically applied as a viscous mass to the first outer surface and then covered by the floor covering elements. During a curing process, the adhesive must harden and dry. The continuous undercut recesses and drainage openings promote effective ventilation of the adhesive during the curing process, thus ensuring particularly rapid and reliable curing.As with slot-shaped undercut recesses, it can advantageously be optionally provided that at least one retaining web is formed on the second outer surface, extending over a drainage slot and connecting areas of the support element adjacent to the drainage slot on opposite sides of the drainage slot. By arranging the retaining web extending over a drainage slot on the second outer surface, the desired drainage of the first outer surface is not obstructed by retaining webs projecting from the first outer surface and separating areas from one another.
[0024] According to an advantageous embodiment of the invention, the support element may have outwardly projecting interlocking ridges on its second outer surface, with which the support element can be secured in a substrate, in particular in an uneven substrate such as a gravel bed or a bed of crushed stone or chippings. The interlocking ridges expediently project a few millimeters or more from the second outer surface to enable reliable interlocking of the plate-shaped support element in a poured bed of crushed stone or in another uneven or initially unstable substrate.
[0025] Advantageously, it is optionally provided that the pressing device has a displacement shaft extending along a displacement axis with a pressing element that is displaceable along the displacement shaft and projects radially or transversely to the displacement axis, wherein the displacement shaft has a locking element projecting radially or transversely to the displacement axis at a locking end, and that the plate-shaped support element has a pressing device recess on its second outer side, which is adapted to the displacement shaft and the locking element of the pressing device in such a way that the displacement shaft can be inserted from the second outer side through the pressing device recess and projecting through the support element and can be locked in the pressing device recess with its projecting locking element.The projecting locking element can be formed from one or more projecting locking tongues. It is also conceivable, and advantageous in many applications, if the locking element is formed by a projecting locking flange. The locking flange can have a circular circumferential edge. The locking flange can also have, for example, a triangular, square, or polygonal circumferential edge, or any other circumferential edge. To prevent unwanted rotation of the displacement shaft during displacement of the pressure element, the locking element is preferably not rotationally symmetrical about the displacement axis and can be fixed in the pressure device recess in a rotationally fixed manner. The locking element can also have laterally projecting locking tabs for a wedge system.
[0026] Before a plate-shaped support element is placed on a substrate with its second outer surface, at least one pressure device is guided from the second outer surface through the pressure device recess with its displacement shaft and secured in the pressure device recess with the projecting locking element. This prevents unintentional lateral slippage or displacement along the displacement axis of the pressure device during the placement of the plate-shaped support element on the substrate.
[0027] Particularly when several clamping devices are to be simultaneously arranged and fixed to the plate-shaped support element, handling them during the laying of the plate-shaped support element on the substrate is cumbersome and inconvenient, as a clamping device could unintentionally detach from the second outer surface and potentially fall off the support element. To facilitate handling during the laying of the plate-shaped support element on the substrate, it is advantageous to provide a retaining element on or in the clamping device recess, with which the clamping device arranged in the clamping device recess with the fixing element can be fixed to the plate-shaped support element.The retaining element can, for example, be a locking bar that is displaceably mounted on the second outer side of the plate-shaped support element and can optionally release the pressure device recess or be displaced laterally over or into the pressure device recess in order to secure a previously arranged fixing element of a pressure device in the pressure device recess.
[0028] According to a particularly advantageous embodiment of the invention, it is optionally provided that the retaining element has a detent element for a snap-fit connection of the pressing device with the plate-shaped support element. The detent element can be a detent tongue projecting into or beyond the recess of the pressing device, which can be deformed during the insertion of the fixing element into the recess of the pressing device so that the fixing element can, for example, be manually inserted or pressed into the recess of the pressing device in order to subsequently engage the fixing element in the recess of the pressing device or to secure the fixing element in the recess of the pressing device by means of a positive engagement with a detent recess in the fixing element.The locking element can be designed in such a way that a releasable fixing or, after a one-time fixing of the fixing element in the pressure device recess, a non-destructively releasable fixing is effected.
[0029] It can optionally be provided that the pressure device on the displacement shaft has a laterally projecting retaining element which, after the displacement shaft has been inserted from the second outer side, protrudes laterally against the first outer side and prevents displacement of the displacement shaft towards the second outer side. When the pressure device is inserted into the pressure device recess from the second outer side, the displacement shaft is pushed through the pressure device recess until the displacement shaft extends away from the first outer side on the opposite side.During insertion, the laterally projecting retaining element can be springily pressed against the displacement shaft to guide the locking element, along with the displacement shaft, through the pressure device recess. It then laterally protrudes against the first outer surface of the plate-shaped support element, forming a stop that prevents the displacement shaft from being moved back towards the second outer surface. It is also conceivable that the laterally projecting retaining element is circumferentially asymmetrical and, for example, has a laterally projecting contact element, and that the pressure device recess has a correspondingly asymmetrical through-opening.With a suitable orientation of the retaining element in the circumferential direction, the retaining element together with the displacement shaft can be passed through the through-opening of the pressure device recess, in order to then be rotated in the circumferential direction and then, lying against the first outer side, prevent a backward displacement of the displacement shaft towards the second outer side.
[0030] Many floor coverings, which are formed by adjacent floor covering elements laid on the subfloor, have joints between the adjacent floor covering elements. To facilitate the uniform formation of such joints and thus promote an aesthetically pleasing joint pattern of the floor covering, one embodiment of the invention provides that at least one separating rib projecting from the plate-shaped support element is arranged on the first outer surface, with which a minimum distance between two adjacent floor covering elements lying on the support element can be defined. Several separating ribs, spaced apart from one another or merging into one another, can also be provided, for example forming a joint cross.
[0031] When used as intended, the leveling device is typically designed so that all components of the pressure device that protrude beyond the usable surface of the floor covering can be detached from and removed from the plate-shaped support element. For this purpose, the displacement shaft of the pressure element often has a weakened area directly adjacent to or near the fixing element, which allows or facilitates the breaking off and removal of the section of the displacement shaft protruding from the first outer edge. However, this can also lead to the displacement shaft of the pressure device breaking off if a floor covering element that is not yet permanently positioned on the plate-shaped support element is handled carelessly or unintentionally moved, rendering the pressure device unusable.
[0032] To prevent such an unintentional termination of the
[0033] To prevent displacement during the installation of a floor covering, it may be provided that the at least one projecting separating web is designed and arranged on the first outer side of the plate-shaped support element in such a way that the separating web prevents a displacement of a floor covering element resting on the first outer side parallel to the first outer side over the pressure device projecting from the first outer side, which would lead to undesirable damage to the pressure element.
[0034] The following are exemplary embodiments of the inventive concept, which are schematically and exemplarily represented in the figures. It shows:
[0035] Fig. 1 shows a perspective view of a plate-shaped support element of a leveling device, with a first outer side visible.
[0036] Fig. 2 shows a perspective view of the plate-shaped support element of the leveling device, with a second outer side opposite the first outer side visible.
[0037] Fig. 3 shows an enlarged sectional view through a portion of the plate-shaped support element shown in Figs. 1 and 2 along a line II I- III in Fig. 1.
[0038] Fig. 4 shows a sectional view through a portion of the plate-shaped support element shown in Fig. 3, with a pressure device that is fixed in a pressure device recess in the plate-shaped support element. Fig. 5 shows a sectional view through a portion of the plate-shaped support element shown in Fig. 3, with a differently designed pressure device that is fixed in the pressure device recess in the plate-shaped support element.
[0039] Fig. 6 shows an enlarged sectional view of the leveling device through the part of the plate-shaped support element also shown in Fig. 3, with an adhesive material applied, among other things, to an undercut recess and with two floor covering elements, which lie flush with the surface of the plate-shaped support element with their respective edge areas and are pressed onto the adhesive material by a pressure element of the pressure device, and
[0040] Fig. 7 shows a perspective and schematic view of a plate-shaped support element with four pressure devices and with four separating webs arranged to form a joint cross and formed on the first outer side.
[0041] A leveling device 1 for floor covering elements 2, shown in different versions in Figures 1 to 7 and illustrated in Figure 6, has a plate-shaped support element 3. The plate-shaped support element 3 forms a support surface 5 on a first outer surface 4 for two or more floor covering elements 2, wherein each floor covering element 2 overlaps the support surface of the support element 3 with an edge region 6 of the respective floor covering element 2 and is placed on the support element 3 next to an adjacent floor covering element 2, and can be fixed to the support element 3 on the first outer surface 4 with an adhesive material 7, as is shown by way of example in Figure 6 and explained in more detail below.
[0042] The plate-shaped support element 3 has a cross-shaped base and, accordingly, a cross-shaped first outer surface 4. Several undercut recesses 8 are distributed across the first outer surface 4, each having two sections 9 that extend at right angles to each other, with the undercut recesses 8 being oriented parallel to each other in certain sections. Each undercut recess 8 extends from the first outer surface 4 to a second outer surface 10 opposite the first outer surface 4, which is shown in Fig. 2. The clear width 11 of each undercut recess 8 increases at least in certain sections with increasing distance from the first outer surface 4.
[0043] If a quantity of adhesive material 7, for example a bead of adhesive material 7, is applied to the first outer surface 4 above an undercut recess 8, and a floor covering element 2 is then placed on the adhesive material 7 and pressed against the first outer surface 4 of the plate-shaped support element 3, adhesive material 7 can penetrate from the first outer surface 4 into the undercut recess 8 and at least partially fill the undercut recess 8, which widens increasingly towards the second outer surface 10. When the adhesive material 7 subsequently hardens, it is positively locked in the undercut recess 8, as indicated in Fig. 6.
[0044] The plate-shaped support element 3 has two drainage slots 12 extending over more than half the length of the first outer surface 4 and projecting from the first outer surface 4 through the plate-shaped support element 3 to the opposite second outer surface 10. The two drainage slots 12, which run crosswise to each other and intersect at the center of the first outer surface 4, facilitate the efficient drainage of moisture and water that accumulates on the first outer surface 4 and can drain away from the first outer surface 4 through the drainage slots 12.
[0045] On the second outer surface 10, several retaining webs 13 are formed, extending over the drainage slots 12 and also over the undercut recesses 8. For example, a retaining web 13 extends over a drainage slot 12 and connects areas of the plate-shaped support element 4 adjacent to the drainage slot 12 on opposite sides of the drainage slot 12. Similarly, a retaining web 13 extends only or also over an undercut recess 8 and connects areas of the plate-shaped support element 4 adjacent to the undercut recess 8 on opposite sides of the undercut recess 8.
[0046] The plate-shaped support element 3 has outwardly projecting interlocking ribs 14 on its second outer surface 10, which allow the support element 3 to be fixed in a gravel bed 15 (shown only in Fig. 6 as an example of a substrate). The retaining ribs 13 can also be designed as interlocking ribs 14 and, like the interlocking ribs 14 extending along a circumferential edge of the second outer surface 10, penetrate the gravel bed 15 or another uneven or deformable surface of a substrate and prevent unwanted lateral slippage of the plate-shaped support element 3 relative to the gravel bed 15 or another substrate.
[0047] The leveling device 1 also has several pressure devices 16, which are shown in more detail by way of example in Figures 4 and 5. Each pressure device 16 has a displacement shaft 18 extending along a displacement axis 17 with a pressure element 19 that is displaceable along the displacement shaft 18 and projects transversely to the displacement axis 17, wherein the displacement shaft 18 has a fixing element 21 at a fixing end 20 that also projects transversely to the displacement axis. In the exemplary embodiments shown, the displacement shaft 18 has an external thread 22 and the pressure element 19 has an internal thread 23 adapted to it, so that the pressure element 19 can be displaced along the displacement shaft 18 by rotating it along the displacement axis 17 and brought to a desired distance from the first outer surface 4.
[0048] The relocation shaft 18 points directly adjacent to the
[0049] The fixing element 21 has a weakening section 24 which forms a predetermined breaking point, so that the displacement shaft 18 can be easily separated from the fixing element 21 by bending and removed from the fixing element 21 and the plate-shaped support element 3 from the first outer side 4.
[0050] The plate-shaped support element 4 has a pressure device recess 25 on its second outer side, which is adapted to the displacement shaft 18 and to the fixing element 21 of the pressure device 16 in such a way that the displacement shaft 18 can be inserted from the second outer side 10 through the pressure device recess 25 and projecting through the plate-shaped support element 3 and can be fixed in the pressure device recess 25 with its projecting fixing element 21.
[0051] A retaining element 26, shown for example in Fig. 4, can be arranged on or in the pressing device recess 25, with which the pressing device 16, arranged in the pressing device recess 25 with the fixing element 21, can be fixed to the plate-shaped support element 3. It is also conceivable that a laterally projecting retaining element 27 is designed asymmetrically in the circumferential direction and, for example, has a laterally projecting contact element 28, shown in Fig. 5, mounted on the displacement shaft 18, and that the pressing device recess 25 has a through-opening 29 adapted to it and also designed asymmetrically in the circumferential direction.
[0052] The retaining element 27 could also have a detent element for a detent connection of the pressure device 16 with the plate-shaped support element 3. The pressure device 16 could also have a laterally spring-projecting detent element on the displacement shaft 18, which, after the displacement shaft 18 has passed through from the second outer surface 10, laterally protrudes against the first outer surface 4 and prevents the displacement shaft 18 from moving back towards the second outer surface 10.
[0053] On the first outer surface 4, at least one separating web 30 projecting from the plate-shaped support element 3 can be arranged, with which a minimum distance for two adjacent floor covering elements 2 resting on the support element 3 can be defined. In the plate-shaped support element 3, shown only schematically in Fig. 7, four separating webs 30 are arranged and aligned at intervals from one another such that the separating webs 30 form a joint cross and, moreover, protect the displacement shafts 18 of the pressure devices 16 projecting and extending from the first outer surface 4 from being bent and broken off by the floor covering element 2 in the event of an unintentional displacement parallel to the first outer surface 4, before all floor covering elements 2 are placed on the plate-shaped support element 3 and fixed in or on the adhesive material 7 with the pressure devices 16.
[0054] Figure 6 shows an enlarged sectional view of a portion of the leveling device 1, with the plate-shaped support element 3 resting on a gravel bed 15, its interlocking ribs 14 and retaining ribs 13 penetrating the gravel bed 15. Before placing the plate-shaped support element 3 on the gravel bed 15, all pressure elements 16 were inserted from the second outer side 10 into the respective pressure device recesses 25 and secured to the plate-shaped support element 3 with a retaining element 26, 27.
[0055] To lay the floor covering, a small amount of adhesive material 7, for example a bead of adhesive material 7, is first applied to all undercut recesses 8. Adhesive material 7 can also be applied to the first outer surface 4 in the area of the pressure device recesses 25. Then, the floor covering elements 2 with their respective edge regions 6 are placed on the first outer surface 4 of the plate-shaped support element 3 such that the edge regions 6 each abut a displacement shaft 18 of a pressure device 16. A distance between two adjacent floor covering elements 2 resting on the first outer surface 4 can be defined by a separating rib 30, which is not visible in Fig. 6.By means of the floor covering elements 2 resting on the adhesive material 7 on the first outer surface 4, a portion of the adhesive material 7 is pressed from the first outer surface 4 into the undercut recesses 8 which widen towards the second outer surface 10 and, after the adhesive material 7 has hardened, forms a positive connection between the adhesive material 7 and the plate-shaped support element 3.
[0056] Before the adhesive material 7 hardens, the
[0057] The pressure element 19 is screwed onto the displacement shaft 18 projecting between the two floor covering elements 2 and, by further rotation, shifted towards the first outer surface 4 so that a pressure surface 31 of the pressure element 19 facing the floor covering elements 2 presses the two floor covering elements 2 flush against the adhesive material 7 and against the first outer surface 4 of the plate-shaped support element 3. In this way, for example, edge areas 6 of different thicknesses of the floor covering elements 2 can be compensated for and a flush-mounted floor covering can be produced.
[0058] Once the adhesive material 7 has hardened, the pressure element 19 can be broken off with the displacement shaft 18 and removed from the floor covering elements 2 and the plate-shaped support element 3 arranged underneath.
Claims
P A T E N T A N S P R Ü C H E 1. Leveling device (1) for floor covering elements (2) that can be laid side by side, comprising a plate-shaped support element (3) which forms a support surface (5) for two or more floor covering elements (2) on a first outer surface (4), wherein each floor covering element (2) can be placed on the support element (3) with an edge region (6) of the respective floor covering element (2) overlapping the support surface (5) of the support element (3) and next to an adjacent floor covering element (2) and fixed to the support element (3) on the first outer surface (4) with an adhesive material (7), and wherein the leveling device (1) comprises at least one pressing device (16) with which two adjacent floor covering elements (2) resting on the support element (3) can be pressed flush with each other on the first outer surface (4), characterized in that the plate-shaped support element (3) has at least one undercut recess (8),wherein the undercut recess (8) extends from the first outer surface (4) towards a second outer surface (10) opposite the first outer surface (4), such that an adhesive material (7) penetrating from the first outer surface (4) into the undercut recess (8) and subsequently curing can be positively locked in the undercut recess (8).
2. Leveling device (1) according to claim 1, characterized in that the undercut recess (8) from the first outer side (4) to a second outer side (10) opposite the first outer side (4) and whose clear width (11) increases at least section by section with increasing distance to the first outer side (4).
3. Leveling device (1) according to claim 1 or claim 2, characterized in that the undercut recess (8) is designed as a slot extending over the first outer surface (4).
4. Leveling device (1) according to one of the preceding claims, characterized in that the at least one undercut recess (8) forms an undercut slot extending from the first outer side (4) to the second outer side (10) and continuously widening.
5. Leveling device (1) according to one of the preceding claims, characterized in that the plate-shaped support element (3) has several drainage openings arranged extending over more than half a length of the first outer surface (4) and projecting from the first outer surface (4) through the plate-shaped support element (3) to the opposite second outer surface (10).
6. Leveling device (1) according to one of the preceding claims, characterized in that the plate-shaped support element (3) has at least one extending over more than half a length of the first outer surface (4) and from the first outer surface (4) through the plate-shaped The support element (3) has a drainage slot (12) extending to the opposite second outer side (10).
7. Leveling device (1) according to claim 6, characterized in that the plate-shaped support element (3) has at least two drainage slots (13) intersecting in a cross shape or several drainage slots (13) arranged in a cross shape.
8. Leveling device (1) according to claim 6 or claim 7, characterized in that at least one retaining web (13) is formed on the second outer side (10), which extends over a drainage slot (12) and connects areas of the support element (3) adjacent to the drainage slot (12) on opposite sides of the drainage slot (12).
9. Leveling device (1) according to one of the preceding claims, characterized in that the support element (3) has outwardly projecting interlocking webs (14) on the second outer side (10) with which the support element (3) can be fixed in a substrate (15).
10. Leveling device (1) according to one of the preceding claims, characterized in that the pressure device (16) has a displacement shaft (18) extending along a displacement axis (17) with a pressure element (19) that is displaceable along the displacement shaft (18) and projects radially, wherein the displacement shaft (19) has a radially projecting locking element (21) at a locking end (20) such that the plate-shaped support element (3) at its second The outer surface (10) has a pressure device recess (25) which is adapted to the displacement shaft (18) of the pressure device (16) in such a way that the displacement shaft (18) can be inserted from the second outer surface (10) through the pressure device recess (25) and projecting through the support element (3) and can be secured in the pressure device recess (25) with its radially projecting fixing element (21).
11. Leveling device (1) according to claim 10, characterized in that a retaining element (26) is arranged on or in the pressure device recess (25), with which the leveling device (21) arranged in the pressure device recess (25) is secured. The pressure device (16) can be fixed to the plate-shaped support element (3).
12. Leveling device (1) according to claim 11, characterized in that the retaining element (25) has a locking element for a locking connection of the pressure device (16) with the plate-shaped support element (3).
13. Leveling device (1) according to one of the preceding claims 10 to 12, characterized in that the pressure device (16) on the displacement shaft (18) has a laterally resiliently projecting detent element which, after the passage of the displacement shaft (18) from the second outer side (10), laterally projects onto the first outer side (4) and prevents displacement of the displacement shaft (18) towards the second outer side (10).
14. Leveling device (1) according to one of the preceding claims, characterized in that at least one separating web (30) projecting from the plate-shaped support element (3) is arranged on the first outer side (4), with which a minimum distance for two adjacent floor covering elements (2) resting on the support element (3) can be predetermined.
15. Leveling device (1) according to claim 14, characterized in that the at least one projecting separating web (13) is designed and arranged on the first outer surface of the plate-shaped support element in such a way that the separating web (13) prevents a displacement of a floor covering element (2) resting on the first outer surface (4) parallel to the first outer surface (4) over the pressure device (16) projecting from the first outer surface (4), which would lead to undesirable damage to the pressure device (16).
Citation Information
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