MOUNTING SYSTEM AND METHOD FOR MOUNTING AN ADDITIONAL PART TO A WALL INSULATED WITH MATERIAL

DE502022007369D1Active Publication Date: 2026-04-02WALTNER ELMAR
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-11-22
Publication Date
2026-04-02

AI Technical Summary

Technical Problem

Existing mounting systems for heavy components on insulated walls, such as those with thermal insulation composite systems, face issues of thermal bridging and mechanical instability, leading to aesthetic and structural problems.

Method used

A mounting system with anchor elements and thermally insulating support components, using plastic-reinforced thermal bridge separation modules and support elements, ensures thermal insulation and mechanical stability by minimizing visible recesses and providing direct or indirect support.

Benefits of technology

The system achieves thermally insulated and mechanically stable fastening of attachments to insulated walls, maintaining appearance and structural integrity while allowing for efficient weight distribution and reduced thermal conductivity.

✦ Generated by Eureka AI based on patent content.
Patent Text Reader
Need to check novelty before this filing date? Find Prior Art

Description

AREA OF INVENTION

[0001] The present invention relates to a mounting system for thermally separated mounting of an attachment on a wall provided with insulating material, in particular on a wall provided with a thermal insulation composite system, according to the preamble of claim 1.

[0002] Furthermore, the present invention relates to a method for mounting an attachment on a wall provided with insulating material, in particular on a wall provided with a thermal insulation composite system, using a mounting system according to the invention. STATE OF THE ART

[0003] Thermal insulation of building walls significantly contributes to the reduction of heating energy. This involves covering a wall with insulating material, which can be, for example, insulation boards made of synthetic inorganic material such as calcium silicate, or insulation boards made of synthetic organic material such as expanded polystyrene rigid foam. Such insulation boards can be part of an external thermal insulation composite system (ETICS) used for insulating building exterior walls (see [reference]). https: / / de.wikipedia.org / wiki / Wärmedämmverbundsystem.

[0004] The term "wall" here and in the following refers only to those building components or component sections that have a stable structure, in particular sufficient stability for the anchoring of anchor elements, and which may be constructed, for example, of concrete, aerated concrete or masonry (e.g., of hollow or solid bricks).

[0005] Problems arise when, in particular, heavy components such as brackets for awnings, air conditioners, heat pumps or satellite systems have to be mounted on a wall covered with insulation material.

[0006] Firstly, the fastening must be carried out in such a way that no thermal bridge is formed from the outside through the insulation material to the wall. While solutions using anchor elements that include thermally insulating thermal bridge separation modules are known in the prior art, these solutions are relatively expensive, and the thermal bridge separation modules tend to have unfavorable, outwardly widening geometries. This can lead to such large openings in the insulation material on the outside that they cannot be covered by the attached component, which is at least aesthetically disadvantageous.

[0007] On the other hand, the insulation material does not have high mechanical stability and can give way under the pressure of the attachment, which – in addition to the poor appearance – can again have a detrimental effect on the stability of the attachment of the component.

[0008] From FR 3095663 A1, a device for the thermally separated attachment of a load, in particular a sun visor, to a wall provided with an insulating layer is known. The device comprises a first threaded rod for anchoring in the wall, a second threaded rod for attaching the load, and a tube made of an insulating material. The tube can be supported at one end against the wall, and the load can be supported at the opposite end of the tube. The threaded rods are fastened inside the tube with rings, for example, by an adhesive bond. The tube can also be filled internally with a thermally insulating material, for example, injected polyurethane foam.

[0009] From EP 3336271 A1, a device for the thermally separated fastening of a fastener to a wall provided with an insulating layer is known. The device has a first bolt for anchoring in the wall and a second bolt for fastening the fastener. Furthermore, a (thermally insulating) plastic part of a spacer assembly is provided, through which the bolts are connected to each other. The spacer assembly also includes a metal spacer sleeve that partially surrounds the plastic part and is indirectly supported on the wall via a flange plate. The fastener is indirectly supported on the spacer sleeve via the plastic part. ab. TASK OF INVENTION

[0010] It is therefore an object of the present invention to provide a mounting system and a method for mounting an attachment to a wall provided with insulation material, which avoid the aforementioned disadvantages. In particular, a thermally insulated and mechanically stable fastening of the attachment to the wall provided with insulation material should be achieved. PRESENTATION OF THE INVENTION

[0011] To solve the aforementioned problem, in a mounting system for the thermally separated mounting of an attachment to a wall provided with insulation material, in particular to a wall provided with an external thermal insulation composite system, the mounting system comprises at least one anchor element with an anchor section for anchoring in the wall and a connecting section adjoining it, the anchor element further comprising a thermally insulating thermal bridge separation module for at least partial arrangement in the insulation material, wherein the thermal bridge separation module is connected to the connecting section and has a receptacle for a, preferably screw-in, fastening means for screwing the attachment in place, the mounting system further comprising at least one thermally insulating support component for arrangement between the wall and the attachment.to enable direct or indirect support of a first end region of the support component on the wall and direct or indirect support of the attachment component on a second end region of the support component opposite the first end region, wherein the respective support component partially surrounds the respective anchor element, according to the invention it is provided that only the first end region and / or the second end region of the support component are made of a plastic, in particular glass fiber or carbon fiber reinforced.

[0012] The anchor section of each anchor element can be formed, for example, by at least one section of an anchor rod, a screw, or a threaded rod. A dowel can be inserted into the wall, if necessary, so that the respective anchor section can be screwed into it.

[0013] The connecting section can also be formed by a section of anchor rod, screw, or threaded rod. A section adjoining this section can form the respective anchor section; that is, the anchor rod, screw, or threaded rod in this case encompasses or forms both the anchor section and the connecting section.

[0014] As mentioned, thermal break modules are known from the prior art and are typically made of a plastic with poor thermal conductivity. The thermal break module primarily provides thermal separation or insulation of the connection section from the fastener used to attach the component. The thermal break module can be connected to the connection section, for example, by screwing and / or bonding.

[0015] Depending on the dimensions of the thermal bridge separation module and the insulation material, the thermal bridge separation module can be located entirely within the insulation material or protrude from it to the outside to a certain degree.

[0016] The receptacle for the fastener used to attach the component can vary depending on the fastener itself. For example, the receptacle may have an internal thread into which the fastener can be screwed. In this case, the fastener could be, for instance, a screw or a threaded rod with a nut. In the case of a screw, the component is tightened using the screw. In the case of a threaded rod, the component is tightened using the nut.

[0017] However, it is also conceivable that a threaded rod plus nut is provided as a fastening means, but the receptacle does not have an internal thread and the threaded rod is glued into the receptacle using adhesive.

[0018] Of course, bonding is also possible if there is an internal thread in the mount.

[0019] For mechanical stabilization, at least one thermally insulating support element is provided, which is positioned between the wall and the attachment. Since the attachment is supported directly or indirectly by the second end of the support element, and the support element is supported directly or indirectly by the wall with its first end, the support element acts as a buttress for the attachment. In the case of direct support, there is direct contact between the first / second end and the wall / attachment. Preferably, the support element is directly contacted by the attachment during its installation.

[0020] In the case of indirect support, one or more elements can be positioned between the first / second end section and the wall / attachment. For example, a washer or other spacer can be placed between the attachment and the supporting structure. In practice, the presence of an intervening layer of "contamination," such as a piece of interior plaster, adhesive, or insulation material, between the first / second end section and the wall / attachment is also typically unavoidable.

[0021] For thermal insulation of the supporting component, it must be made, at least in sections, of a thermally poorly conductive, pressure-resistant material, in particular of a thermally poorly conductive, pressure-resistant plastic.

[0022] In particular, the supporting component for thermal insulation can be designed, preferably by suitable material selection and / or material arrangement, such that it has a thermal conductivity (also called thermal conductivity or thermal conductivity coefficient) of at most 0.35 W / (m K), preferably at most 0.1 W / (m K), from the first end area to the second end area.

[0023] By having the supporting component surround the respective anchor element section by section, it is ensured that no separate recess needs to be created in the insulation material for the supporting component, but only a recess into which the respective anchor element, together with the surrounding supporting component, is inserted. Overall, the area of ​​recesses potentially visible from the outside can thus be kept very small.

[0024] Furthermore, the geometry of the necessary recess is essentially determined by the external shape of the supporting component, which can be designed independently of the external shape of the thermal break module. The "external shape" of the respective component refers to its outwardly visible form when considered on its own. In particular, the external shape of the supporting component can be cylindrical, which allows for simple fabrication of the recess by drilling. Here and in the following, "cylinder" essentially refers to a rotary cylinder, unless otherwise specified.

[0025] The supporting component only partially surrounds the anchor element, as it does not completely surround the anchor section intended for anchoring in the wall. However, the supporting component can completely surround the connecting section and / or the thermal break module of the anchor element, not just partially.

[0026] To ensure sufficient thermal insulation and mechanical stability of a support component, it may be provided that at least the first end region and / or the second end region of the support component, preferably the entire support component, is made of a plastic, in particular glass fiber or carbon fiber reinforced.

[0027] Thermosets or thermosetting plastics, in particular, can be used as plastics with the desired thermal and mechanical properties.

[0028] The respective support component can also be manufactured in one piece.

[0029] With regard to optimal mechanical stability and / or manufacturing costs, the assembly system according to the invention provides that only the first end region and / or the second end region of the support component are made of a plastic, in particular glass fiber or carbon fiber reinforced.

[0030] In particular, the respective supporting component can be used between the first and second end areas. z.B. They should be made of materials that meet particularly high mechanical stability requirements and / or are cost-effective. Accordingly, in a preferred embodiment of the mounting system according to the invention, the respective support component is made of an aluminum alloy or stainless steel in a central section between the first end region and the second end region.

[0031] In a particularly preferred embodiment of the assembly system according to the invention, the first end region or the second end region of the support component is made of the same material as the central section, and preferably integrally with it. This variant is advantageous from a manufacturing perspective as well as with regard to costs.

[0032] If the central section itself is not thermally insulating or even highly thermally conductive, the desired thermal insulation of the supporting component is ensured by making at least one of the two end areas from a thermally insulating material.

[0033] In a preferred embodiment of the mounting system according to the invention, the respective thermal break module is arranged completely within the respective support component. This ensures high mechanical stability, even if the thermal break module itself does not possess particularly high mechanical stability. Furthermore, the support component protects the thermal break module against external influences from lateral directions.

[0034] In a particularly preferred embodiment of the mounting system according to the invention, the support component has a length along a longitudinal axis and projects beyond the thermal break module in the direction of its first end region and / or in the direction of its second end region. This facilitates direct bracing of the support component against the wall and / or of the attachment component against the support component and enables particularly good protection of the thermal break module.

[0035] To optimize the protection of the thermal bridge separation module, in a particularly preferred embodiment of the mounting system according to the invention, the support component is provided that the thermal bridge separation module extends beyond the thermal bridge separation module by at least 5%, preferably at least 10%, of its length along the longitudinal axis and in the direction of its first end region and / or in the direction of its second end region.

[0036] In a particularly preferred embodiment of the mounting system according to the invention, a thermally insulating cavity filling, in particular made of foam rubber, is arranged in the respective area where the support component projects beyond the thermal bridge separation module along the longitudinal axis. This contributes to the thermal insulation of the entire assembly consisting of the anchor element and the surrounding support component in a cost-effective and technically simple manner, with foam rubber proving to be particularly cost-effective.

[0037] In a preferred embodiment of the mounting system according to the invention, the respective thermal break module has a cylindrical shape when viewed from the outside. This allows for a small size of the respective recess for the anchor element in the insulation material.

[0038] As mentioned, the supporting component can also have a cylindrical shape when viewed from the outside, with the cylindrical shape of the thermal bridge separation module having a favorable effect on the manufacture of the supporting component.

[0039] To simplify manufacturing by allowing the respective support component to partially surround the respective anchor element, a preferred embodiment of the assembly system according to the invention provides that the respective support component is essentially tubular or sleeve-shaped, at least in a central section between its first end region and its second end region, preferably entirely. Accordingly, during the manufacture of the assembly system according to the invention, the sleeve-shaped section of the respective support component can be slid over the respective anchor element.

[0040] "Essentially tubular or sleeve-shaped" is to be understood as meaning that the supporting component may also have lateral holes and / or recesses and / or slots, which in extreme cases may result in a net-like appearance.

[0041] In the event that the supporting component is entirely tubular or sleeve-shaped, the tubular or sleeve shape is present over the entire length of the supporting component measured along the longitudinal axis.

[0042] In a preferred embodiment of the mounting system according to the invention, the thermal break module is made of a plastic, in particular a glass fiber or carbon fiber reinforced plastic. This improves the mechanical stability of the respective thermal break module and thus of the respective anchor element.

[0043] In general, the mounting system according to the invention naturally allows for several anchor elements and surrounding support components.

[0044] Analogous to the above, the invention provides an arrangement comprising a mounting system according to the invention, a wall provided with insulating material, and an attachment which is mounted to the wall by the mounting system, wherein the first end region of the respective support component is supported directly or indirectly by the wall, and wherein the attachment component is supported directly or indirectly by the second end region of the respective support component. Accordingly, the attachment component is thermally separated and mounted to the wall, with the support component providing counter-pressure when the attachment component is tightened.

[0045] Analogous to the above, the invention further provides a method for mounting an attachment on a wall provided with insulating material, in particular on a wall provided with a thermal insulation composite system, using a mounting system according to the invention, wherein the method comprises the following steps: Anchoring of the respective anchor section of the at least one anchor element in the wall and at least sectionally arranging the respective connecting section, the respective thermal break module and the respective support component in the insulation material, wherein the arrangement of the respective support component is such that the first end area of ​​the respective support component points towards the wall and the second end area points away from the wall; fastening of the attachment component by screwing it to the respective thermal break module using a fastening device such that the first end area of ​​the respective support component is supported directly or indirectly on the wall and that the attachment component is supported directly or indirectly on the second end area of ​​the respective support component.

[0046] This means it is conceivable that part of the respective anchor element and / or the supporting component protrudes outwards from the insulation material.

[0047] The phrase "fastening the attachment by screwing it to the respective thermal break module using a fastener" indicates that the attachment is screwed in place during installation. As explained in detail above, the fastener itself does not necessarily have to be screwed to the thermal break module or its mounting. For example, a threaded rod could be placed in the mounting and bonded to the thermal break module. The attachment is then secured using a nut screwed onto the threaded rod.

[0048] In order to be able to mount particularly heavy attachments or to bear high loads, a preferred embodiment of the method according to the invention provides for several anchor elements and support components that partially surround them, wherein at least two anchor elements and support components that partially surround them are arranged one behind the other in the direction of gravity.

[0049] Each anchor element and its associated support component together form a unit, and at least two such units are arranged one behind the other in the direction of gravity in order to be able to absorb or support particularly high weights. BRIEF DESCRIPTION OF THE FIGURES

[0050] The invention will now be explained in more detail using exemplary embodiments. The drawings are exemplary and are intended to illustrate the inventive concept, but in no way to restrict or even exhaustively represent it.

[0051] This shows: Fig. 1A front view of a first embodiment of a mounting system, wherein a threaded rod is arranged in a receptacle of a thermal break module of the mounting system. Fig. 2 a schematic sectional view according to section line II-II from Fig. 1 , where the arrows indicate the direction of view, and additionally a wall covered with insulation material and an attachment screwed on with a nut are indicated. Fig. 3a front view of a second embodiment of the mounting system according to the invention, wherein a threaded rod is arranged in the receptacle of the thermal break module of the mounting system. Fig. 4 a schematic sectional view according to the section line IV-IV from Fig. 3 ,where the arrows indicate the direction of view, and where, in addition, a wall provided with insulating material and an attachment screwed on by means of a nut are indicated. Fig. 5: a schematic front view of a wall provided with insulating material, on which an attachment with a third embodiment of the mounting system according to the invention is mounted. Fig. 6: a schematic sectional view along section line VI-VI. Fig. 5 , where the arrows indicate the viewing direction Fig. 7 a front view of the third embodiment of the mounting system according to the invention, wherein a threaded rod is arranged in the receptacle of the thermal break module of the mounting system Fig. 8 a schematic sectional view according to section line VIII-VIII from Fig. 7 , where the arrows indicate the direction of view WAYS TO IMPLEMENT THE INVENTION

[0052] A front view of a first embodiment of a mounting system 1 for the thermally separated mounting of an attachment 10 on a wall 2 provided with insulating material 3 is shown in Fig. 1 The figure shows a threaded rod 8' arranged in a receptacle 11 of a thermally insulating thermal break module 7 of the mounting system 1. The threaded rod 8', together with a nut 9, forms a fastening element for screwing down the attachment 10. The attachment 10 could, for example, be a bracket for an awning.

[0053] Fig. 2 shows a schematic section view according to section line II-II from Fig. 1 , where the arrows indicate the direction of view and where, in addition, the wall 2 provided with insulating material 3 (see the dotted lines in Fig. 2 ) and the attachment 10 screwed on by means of the nut 9 (see the dashed lines in Fig. 2 ) are indicated. The mounting system 1 comprises at least one anchor element 4 with an anchor section 5, which is intended for anchoring in the wall 2 or in Fig. 2 is anchored in the wall 2. In the first embodiment shown, the anchor section 5 is formed by a section of a threaded rod 8, the threaded rod 8 also forming a connecting section 6 of the anchor element 4 adjoining the anchor section 5.

[0054] The thermal break module 7 is connected to the connecting section 6, with the threaded rod 8 being screwed into the thermal break module 7. The thermal break module 7 is designed for at least partial installation in the insulation material 3, or the thermal break module 7 and the connecting section 6 are connected in Fig. 2 arranged in insulation material 3.

[0055] As mentioned, the thermal break module 7 has a receptacle 11 for the threaded rod 8', which in the illustrated first embodiment is screwed into the receptacle 11. The receptacle 11 has an internal thread for this purpose (not shown).

[0056] The mounting system 1 further comprises at least one thermally insulating support component 12 for arrangement between the wall 2 and the attachment component 10, in order to enable direct or indirect support of a first end region 13 of the support component 12 against the wall 2 and direct or indirect support of the attachment component 10 against a second end region 14 of the support component 12 opposite the first end region 13. Fig. 2 The first end section 13 is supported directly against the wall 2, and the attachment 10 is supported directly against the second end section 14 of the supporting component 12.

[0057] The respective support component 12 surrounds the respective anchor element 4 section by section, wherein in the illustrated first embodiment the thermal bridge separation module 7 is arranged completely within the support component 12.

[0058] To produce the in Fig. 2 In the indicated arrangement comprising the mounting system 1, the wall 2 provided with the insulating material 3 and the attachment 10, which is mounted on the wall 2 with the mounting system 1, a procedure is carried out which includes the following steps: Anchoring of the respective anchor section 5 of the at least one anchor element 4 in the wall 2 and at least sectionally arranging the respective connecting section 6, the respective thermal break module 7 and the respective support component 12 in the insulation material 3, wherein the arrangement of the respective support component 12 is such that the first end region 13 of the respective support component 12 points towards the wall 2 and the second end region 14 points away from the wall 2; fastening of the attachment 10 by screwing it to the respective thermal break module 7 using threaded rod 8' and nut 9 such that the first end region 13 of the respective support component 12 is directly supported on the wall 2 and that the attachment 10 is directly supported on the second end region 14 of the respective support component 12.

[0059] Viewed from the outside, the thermal break module 7, which in the illustrated first embodiment is made of a glass fiber or carbon fiber reinforced plastic, has a cylindrical shape. The supporting component 12 surrounding the thermal break module 7, in the illustrated first embodiment, not only also has a cylindrical shape when viewed from the outside, but is entirely—and not merely in a central section 17 between the end regions 13, 14—designed as a hollow cylinder and thus completely tubular or sleeve-shaped. Accordingly, a recess in the insulating material 3 for the anchor element 4, including this partially surrounding supporting component 12, can be easily produced by drilling a hole.

[0060] The support element 12 has a length L along a longitudinal axis 15. Along the longitudinal axis 15, and both in the direction of the first end region 13 and in the direction of the second end region 14, the support element 12 projects beyond the thermal bridge separation module 7 by approximately 10% of its length L.

[0061] Accordingly, due to the hollow cylindrical shape of the support component 12, a space is created between the first end region 13 of the support component 12 and the connecting section 6 or the threaded rod 8, as well as a space between the second end region 14 of the support component 12 and the threaded rod 8'. Im In the first embodiment shown, a thermally insulating cavity filling 16 made of foam rubber is arranged in these spaces in order to ultimately further improve the thermal separation between the attachment 10 and the wall 2.

[0062] In the first embodiment shown, the entire support component 12 is made in one piece from a glass fiber or carbon fiber reinforced plastic.

[0063] Fig. 3 Figure 1 shows a front view of a second embodiment of the mounting system 1 according to the invention, wherein a threaded rod 8' is again arranged in the receptacle 11 of the thermal break module 7 of the mounting system 1. In principle, the statements made above regarding the first embodiment apply to the second embodiment, unless otherwise stated, and therefore repetition is largely omitted.

[0064] In the view of Fig. 3 The thermal bridge separation module 7 itself is not visible; rather, apart from the threaded rod 8', only the second end region 14 of the support component 12 is visible. This second end region is formed by a support component 18 made of pressure-resistant plastic, which in the illustrated second embodiment is a glass fiber or carbon fiber reinforced plastic. This choice of material ensures both the compressive strength and the thermal insulation properties of the support component 12.

[0065] The support component 18 extends from the outside in the direction of the longitudinal axis 15 essentially to the threaded rod 8'. The central section 17 of the support component 12, adjoining the second end region 14, is indicated by a dashed circle. In the second embodiment shown, this section is a hollow cylinder or a shaped tube made of an aluminum alloy. This material proves to be lightweight, stable, and cost-effective.

[0066] Fig. 4 shows a schematic section view according to section line IV-IV from Fig. 3 , where the arrows indicate the direction of view and where, in addition, the wall 2 provided with insulating material 3 (see the dotted lines in Fig. 4 ) and the attachment 10 screwed on by means of the nut 9 (see the dashed lines in Fig. 4 ) are indicated. As can be seen from this illustration, the first end region 13 is also formed by a support component 18 made of pressure-resistant plastic, which in the illustrated second embodiment is a glass fiber or carbon fiber reinforced plastic. This choice of material ensures the compressive strength and, on the other hand, ensures or further improves the thermal insulation properties of the support component 12.

[0067] In the second embodiment, only the first end region 13 and the second end region 14 of the support component 12 are made of a glass fiber or carbon fiber reinforced plastic, but not the central section 17.

[0068] In the second embodiment, the support component 12 also projects beyond the thermal bridge separation module 7 along the longitudinal axis 15 with its end regions 13, 14. In this case, the support component 12 projects beyond the thermal bridge separation module 7 along the longitudinal axis 15 and both in the direction of the first end region 13 and in the direction of the second end region 14 by approximately 8% of its length L, or the end regions 13, 14 each have a length measured along the longitudinal axis 15 of approximately 8% of the total length L of the support component 12.

[0069] Fig. 5 Figure 1 shows a schematic front view of a wall 2 provided with insulating material 3, to which an attachment 10 with a third embodiment of the mounting system 1 according to the invention is mounted. In principle, the statements made above regarding the first embodiment apply to the third embodiment, unless otherwise specified, and therefore repetition is largely omitted. The attachment 10 is screwed to two threaded rods 8' with two nuts 9. The threaded rods 8' are arranged one behind the other, viewed from below or in the direction of gravity 19. The threaded rods 8' extend from the sectional view of the Fig. 6 clearly stand out and are shown in recording 11 (in Fig. 6 Not specifically marked due to space constraints; see below. Fig. 8 ) of thermal bridge separation modules 7 of two anchor elements 4 are screwed in. According to the arrangement of the threaded rods 8', the two anchor elements 4 and the support components 12 surrounding them section by section are therefore arranged one behind the other or in the direction of gravity 9.

[0070] Fig. 7 shows a front view of such an anchor element 4 together with the support component 4 and the screwed-in threaded rod 8' looking towards the second end 14 of the support component 12.

[0071] Fig. 8 This shows a sectional view according to section line VIII-VIII. Fig. 7 , where the arrows indicate the direction of view. As can be seen from this illustration, the second end section 14 is manufactured in one piece with the central section 17 of the supporting component 12 and, like the latter, consists of stainless steel, a material which proves to be particularly stable.

[0072] In the third embodiment shown, only the first end region 13 of the support component 12 is made by a support component 18 made of a glass fiber or carbon fiber reinforced plastic, thereby ensuring pressure stability or strength and the desired thermal insulation property of the support component 12.

[0073] In the third embodiment, the respective thermal break module 7 is also arranged completely within the respective support component 12. The support component 12 projects beyond the thermal break module 7 only with its first end region 13, or only along the longitudinal axis 15 and in the direction of the first end region 13, specifically with approximately 10% of the total length L of the support component 12. Along the longitudinal axis 15 and in the direction of the second end region 14, the thermal break module 7 is flush with the second end region 14. REFERENCE MARK LIST

[0074] 1 Mounting system 2 Wall 3 Insulation material 4 Anchor element 5 Anchor section 6 Connection section 7 Thermal bridge separation module 8 Threaded rod 9 Nut 10 Attachment 11 Receptacle 12 Support component 13 First end section of the support component 14 Second end section of the support component 15 Longitudinal axis 16 Cavity filling 17 Middle section 18 Support component made of pressure-resistant plastic 19 Direction of gravity Length of the support component

Claims

1. A mounting system (1) for the thermally separated mounting of an add-on part (10) on a wall (2) provided with insulating material (3), in particular on a wall (2) provided with an exterior insulation finishing system, the mounting system (1) comprising at least one anchoring element (4) having an anchoring portion (5) for anchoring in the wall (2) and an adjoining connecting portion (6), the anchoring element (4) further comprising a thermally insulating thermal bridge separating module (7) for arrangement in the insulating material (3) at least in portions, the thermal bridge separating module (7) being connected to the connecting portion (6) and comprising a receptacle (11) for a fastening means (8', 9), which can preferably be screwed in, for screwing the add-on part (10) in place, the mounting system (1) further comprising at least one thermally insulating support component (12) for arrangement between the wall (2) and the add-on part (10) in order to enable direct or indirect support of a first end region (13) of the support component (12) on the wall (2) and direct or indirect support of the add-on part (10) on a second end region (14) of the support component (12) opposite the first end region (13), the respective support component (12) surrounding the respective anchoring element (4) in portions, characterized in that only the first end region (13) and / or the second end region (14) of the support component (12) is / are made of an, in particular glass-fiber-reinforced or carbon-fiber-reinforced, plastics material.

2. The mounting system (1) according to claim 1, characterized in that the respective support component (12) is made of an aluminum alloy or a stainless steel in a central portion (17) between the first end region (13) and the second end region (14).

3. The mounting system (1) according to claim 2, characterized in that the first end region (13) or the second end region (14) of the support component (12) is made of the same material as the central portion (17), and preferably is made in one piece therewith.

4. The mounting system (1) according to any one of claims 1 to 3, characterized in that the respective thermal bridge separating module (7) is arranged entirely within the respective support component (12).

5. The mounting system (1) according to claim 4, characterized in that the support component (12) has a length (L) along a longitudinal axis (15) and projects beyond the thermal bridge separating module (7) in the direction of its first end region (13) and / or in the direction of its second end region (14).

6. The mounting system (1) according to claim 5, characterized in that the support component (12) projects beyond the thermal bridge separating module (7) by at least 5%, preferably at least 10%, of its length (L) along the longitudinal axis (15) and in the direction of its first end region (13) and / or in the direction of its second end region (14).

7. The mounting system (1) according to any one of claims 5 to 6, characterized in that a thermally insulating void filling (16), in particular made of foamed rubber, is arranged in the respective region in which the support component (12) projects beyond the thermal bridge separating module (7) along the longitudinal axis (15).

8. The mounting system (1) according to any one of claims 1 to 7, characterized in that the respective thermal bridge separating module (7) has a cylindrical shape when viewed from the outside.

9. The mounting system (1) according to any one of claims 1 to 8, characterized in that the respective support component (12) is substantially tubular or sleeve-shaped at least in a central portion (17) between its first end region (13) and its second end region (14), preferably in its entirety.

10. The mounting system (1) according to any one of claims 1 to 9, characterized in that the thermal bridge separating module (7) is made of an, in particular glass-fiber-reinforced or carbon-fiber-reinforced, plastics material.

11. An arrangement comprising a mounting system (1) according to any one of claims 1 to 10, a wall (2) provided with insulating material (3), and an add-on part (10), which is mounted on the wall (2) using the mounting system (1), wherein the first end region (13) of the respective support component (12) is supported directly or indirectly on the wall (2) and wherein the add-on part (10) is supported directly or indirectly on the second end region (14) of the respective support component (12).

12. A method for mounting an add-on part (10) on a wall (2) provided with insulating material (3), in particular on a wall (2) provided with an exterior insulation finishing system, using a mounting system (1) according to any one of claims 1 to 10, the method comprising the following steps: - anchoring the respective anchoring portion (5) of the at least one anchoring element (4) in the wall (2) and arranging the respective connecting portion (6), the respective thermal bridge separating module (7), and the respective support component (12) in the insulating material (3) at least in portions, wherein the arrangement of the respective support component (12) is such that the first end region (13) of the respective support component (12) points toward the wall (2) and the second end region (14) points away from the wall (2); - fastening the add-on part (10) by screwing it to the respective thermal bridge separating module (7) by means of a fastening means (8', 9) such that the first end region (13) of the respective support component (12) is supported directly or indirectly on the wall (2) and such that the add-on part (10) is supported directly or indirectly on the second end region (14) of the respective support component (12).

13. The method according to claim 12, characterized in that a plurality of anchoring elements (4) and support components (12) surrounding them in portions is provided, at least two anchoring elements (4) and support components (12) surrounding them in portions being arranged one behind the other when viewed in the direction of gravity (19).