Device for Thermally Insulating, Force-Transmitting Retrofitting of a Second Load-Bearing Construction Element to a First Load-Bearing Construction Element and Structure with Such a Device
20220243451 · 2022-08-04
Inventors
- Tina Keller (Querfurt, DE)
- Thorsten Heidolf (Weimar, DE)
- Lutz Hollerbuhl (Sangerhausen, DE)
- Richard Morsink (Enschede, NL)
Cpc classification
E04B1/0038
FIXED CONSTRUCTIONS
International classification
Abstract
A device for retrofitting a second load-bearing construction element to a first load-bearing construction element has an insulation body arranged between the construction elements. Tensile force-transmitting, compressive force-transmitting, and shear force-transmitting elements are provided. The compressive force-transmitting elements include a contact surface, accessible from a longitudinal side of the insulation body, for absorbing horizontal compressive forces of the second load-bearing construction element. The shear force transmitting elements include a support surface, accessible from the longitudinal side of the insulation body, for absorbing vertically oriented forces of the second load-bearing construction element and further include a shear rod connected to the support surface. A support angle bracket has first and second legs and a transversely arranged cheek connecting the first and second legs. The first leg forms the contact surface. The second leg forms the support surface. The shear rod has a slanted section fixed directly to the cheek.
Claims
1. A device for thermally insulating, force-transmitting retrofitting of a second load-bearing construction element to a first load-bearing construction element, the device comprising: an insulation body configured to be arranged in a construction joint between the first load-bearing construction element and the second load-bearing construction element; tensile force-transmitting means; compressive force-transmitting means; shear force-transmitting means; wherein the insulation body comprises a first longitudinal side configured to be arranged at the first load-bearing construction element and a second longitudinal side positioned opposite the first longitudinal side; wherein the insulation body comprises a length direction, a transverse direction extending perpendicularly to the length direction and running from the first longitudinal side to the second longitudinal side, and an upright direction extending perpendicularly to the length direction and perpendicularly to the transverse direction; wherein the compressive force-transmitting means comprise a contact surface accessible from the second longitudinal side of the insulation body and configured to absorb horizontal compressive forces of the second load-bearing construction element; wherein the compressive force-transmitting means further comprise a compressive force element extending at least to the first longitudinal side of the insulation body and force-transmittingly connected to the contact surface; wherein the shear force transmitting means comprise a support surface accessible from the second longitudinal side of the insulation body and configured to absorb vertically oriented forces of the second load-bearing construction element; wherein the shear force transmitting means further comprise a first shear rod connected force-transmittingly to the support surface; a support angle bracket comprising a first leg, a second leg, and a first cheek arranged transversely to a length direction of the insulation body and connecting the first leg and the second leg to each other, wherein the first leg forms the contact surface and the second leg forms the support surface; wherein the first shear rod comprises a slanted section extending at a slant to the upright direction, wherein the slanted section of the first shear rod is fixed directly to the first cheek.
2. The device according to claim 1, wherein the slanted section of the first shear rod comprises an end facing away from the first longitudinal side of the insulation body, wherein the end is arranged at the first cheek and comprises a distance in relation to a bottom side of the insulation body measured in an upright direction relative to the bottom side of the insulation body, wherein the distance amounts to less than 5 cm.
3. The device according to claim 1, wherein the slanted section of the first shear rod comprises an end facing away from the first longitudinal side of the insulation body, wherein the first leg comprises a rear side facing away from the second leg, and wherein the end is arranged at the first cheek and comprises a distance in relation to the rear side measured in the transverse direction, wherein the distance amounts to at least 2 cm.
4. The device according to claim 1, wherein the slanted section of the first shear rod comprises an end facing away from the first longitudinal side of the insulation body, wherein the first leg comprises a rear side facing away from the second leg, wherein the end is arranged at the first cheek, wherein the end comprises a first distance in relation to a bottom side of the insulation body measured in an upright direction relative to the bottom side of the insulation body, and wherein the end further comprises a second distance in relation to the rear side measured in the transverse direction, wherein the first distance is smaller than the second distance.
5. The device according to claim 1, wherein the support angle bracket comprises a second cheek arranged transversely to the length direction of the insulation body and connecting the first leg and the second leg to each other, wherein the first cheek and the second cheek are arranged at opposite ends of the support angle bracket, wherein the shear force transmitting means further comprise a second shear rod connected force-transmittingly to the support surface, wherein the second shear rod comprises a slanted section extending at a slant to the upright direction, wherein the slanted section of the second shear rod is fixed directly to the second cheek.
6. The device according to claim 1, wherein the support angle bracket is at most partially in overlap with the insulation body in a viewing direction along the length direction.
7. The device according to claim 1, further comprising a bearing part configured to be embedded in the second load-bearing construction element, wherein the bearing part comprises a first bearing surface and a second bearing surface, wherein the first bearing surface is configured to transmit compressive forces oriented in the transverse direction to the support angle bracket, and wherein the second bearing surface is configured to transmit shear forces oriented in the upright direction to the support angle bracket.
8. The device according to claim 7, wherein the bearing part is a bearing angle bracket and wherein the second bearing surface is oriented perpendicularly to the first bearing surface.
9. The device according to claim 7, wherein the bearing part is configured to fix thereat at least one reinforcement element.
10. The device according to claim 9, wherein the at least one reinforcement element is a compression rod.
11. The device according to claim 1, further comprising a formwork body comprising a first surface configured to be supported on the contact surface of the support angle bracket and further comprising a second surface configured to be supported on the support surface of the support angle bracket, wherein the formwork body further comprises a first recess configured to receive the first cheek and the slanted section of the first shear rod fixed at the first cheek.
12. The device according to claim 11, further comprising a bearing part configured to be embedded in the second load-bearing construction element and comprising a length measured in the length direction of the insulation body, wherein the formwork body comprises a second recess configured to receive a second cheek of the support angle bracket, wherein the first recess and the second recess are spaced apart from each other at a distance measured in the length direction, wherein the length of the bearing part is smaller than the distance at which the first recess and the second recess are spaced apart from each other.
13. The device according to claim 1, wherein the tensile force-transmitting means comprise first tension rods and second tension rods, wherein the first tension rods and the second tension rods are force-transmittingly connected to each other.
14. The device according to claim 13, wherein the first tension rods and the second tension rods are arranged in a common plane extending perpendicularly to the upright direction.
15. The device according to claim 13, further comprising a connection plate, wherein the first tension rods and the second tension rods are connected to the connection plate.
16. The device according to claim 1, wherein one of the first and second load-bearing construction elements is a building ceiling and the other one of the first and second load-bearing construction elements is a balcony slab.
17. A structure comprising: a first load-bearing construction element of concrete; a second load-bearing construction element of concrete; a device for thermally insulating, force-transmitting retrofitting of the second load-bearing construction element to the first load-bearing construction element, the device comprising: an insulation body configured to be arranged in a construction joint between the first load-bearing construction element and the second load-bearing construction element; tensile force-transmitting means; compressive force-transmitting means; shear force-transmitting means; wherein the insulation body comprises a first longitudinal side configured to be arranged at the first load-bearing construction element and a second longitudinal side positioned opposite the first longitudinal side; wherein the insulation body comprises a length direction, a transverse direction extending perpendicularly to the length direction and running from the first longitudinal side to the second longitudinal side, and an upright direction extending perpendicularly to the length direction and perpendicularly to the transverse direction; wherein the compressive force-transmitting means comprise a contact surface accessible from the second longitudinal side of the insulation body and configured to absorb horizontal compressive forces of the second load-bearing construction element; wherein the compressive force-transmitting means further comprise a compressive force element extending at least to the first longitudinal side of the insulation body and force-transmittingly connected to the contact surface; wherein the shear force transmitting means comprise a support surface accessible from the second longitudinal side of the insulation body and configured to absorb vertically oriented forces of the second load-bearing construction element; wherein the shear force transmitting means further comprise a shear rod connected force-transmittingly to the support surface; a support angle bracket comprising a first leg, a second leg, and a cheek arranged transversely to a length direction of the insulation body and connecting the first leg and the second leg to each other, wherein the first leg forms the contact surface and the second leg forms the support surface; wherein the shear rod comprises a slanted section extending at a slant to the upright direction, wherein the slanted section of the shear rod is fixed directly to the cheek; wherein the insulation body is arranged in a construction joint between the first load-bearing construction element and the second load-bearing construction element; wherein the first longitudinal side of the insulation body is arranged at the first load-bearing construction element; wherein the second load-bearing construction element is supported on the contact surface and the support surface in relation to the first load-bearing construction element; and wherein a section of the shear rod projecting past the insulation body into the first load-bearing construction element is embedded in the concrete of the first load-bearing construction element.
18. The structure according to claim 17, wherein one of the first and second load-bearing construction elements is a building ceiling and the other one of the first and second load-bearing construction elements is a balcony slab.
19. The structure according to claim 17, wherein the support angle bracket in a viewing direction along the length direction does not overlap the insulation body, and wherein the second load-bearing construction element comprises a recess open toward a bottom side and an end face of the second load-bearing construction element, wherein the recess is configured to receive the cheek of the support angle bracket.
20. The structure according to claim 17, further comprising a connection plate arranged at one of the first and second load-bearing construction elements, wherein the first load-bearing construction element comprises first tension rods embedded in the concrete and the second load-bearing construction element comprises second tension rods embedded in the concrete, wherein the first tension rods and the second tension rods are connected to the connection plate and are connected to each other through the connection plate, wherein said one of the first and second load-bearing construction elements comprises cutouts adjacent to the connection plate, wherein the first tension rods or the second tension rods projecting through the insulating body and through the connecting plate into the cutouts are screw-connected to the connection plate in the cutouts.
Description
BRIEF DESCRIPTION OF THE DRAWING
[0026] Embodiments of the invention will be explained in the following with the aid of the drawing.
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
[0044]
[0045]
[0046]
[0047]
[0048]
[0049]
[0050]
[0051]
[0052]
[0053]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0054]
[0055] The thermally insulating component 1 comprises an insulation body 5 which is arranged in a construction joint 4 between the first construction element 2 and the second construction element 3. The insulation body 5 comprises a first longitudinal side 6 arranged at the first construction element 2. The second oppositely positioned longitudinal side 7 extends next to the second construction element 3. In the embodiment, a narrow gap is formed between the insulation body 5 and the second construction element 3. However, it can also be provided that the second construction element 3 contacts the insulation body 5.
[0056] The insulation body 5 comprises a length direction 28 which is oriented in the length direction of the expansion joint 4. The length direction 28 extends preferably horizontally in the installed state. The insulation body 5 comprises an upright direction 30 which extends perpendicularly to the length direction 28. The upright direction 30 extends preferably vertically in the installed state. The insulation body 5 comprises a transverse direction 29 which extends from the first longitudinal side 6 to the oppositely positioned longitudinal side 7. The transverse direction 29 is oriented perpendicularly to the length direction 28 and perpendicularly to the upright direction 30. The transverse direction 29 extends preferably horizontally in the installed state.
[0057] The thermally insulating component 1 forms together with additional elements a device for force-transmitting connection of the second construction element 3 to the first construction element 2. The device is comprised of the thermally insulating component 1 that is fixed to the first construction element 2 as well as additional means for force transmission which are arranged at the second construction element 3. The means for force transmission arranged at the second construction element 3 are advantageously releasably connected to the means for force transmission arranged at the first construction element 2. In this way, a retrofitting connection of the second construction element 3 to the first construction element 2 is possible.
[0058] For tensile force transmission between the construction elements 2 and 3, the device comprises first tension rods 9 that are embedded in the first construction element 2 as well as second tension rods 10 that are embedded in the second construction element 3. The tension rods 9 and 10 are connected to each other in a force-transmitting way. In this context, the force-transmitting connection of the tension rods 9 and 10 is provided outside of the insulation body 5 in the embodiment. In the embodiment according to
[0059] For the transmission of compressive forces and shear forces, a support angle bracket 17 is arranged at the first construction element 2. The support angle bracket 17 forms advantageously a part of the thermally insulating component 1 and is in particular secured captively at the insulation body 5. The support angle bracket 17 is connected fixedly to the shear rods 16. The shear rods 16 are embedded in the concrete of the first construction element 2 and in this way connected in a force-transmitting manner to the first construction element 2. The support angle bracket 17 is supported in horizontal direction directly on at least one compression rod 19 embedded in the first construction element 2. It can be provided that the support angle bracket 17 is fixedly connected to the at least one compression rod 19.
[0060] The first tension rods 9 comprise longitudinal axes 12 and the second tension rods 10 comprise longitudinal axes 13, as illustrated in
[0061] The insulation body 5 comprises a bottom side 8 which in the installed state is arranged at the bottom, as shown in
[0062]
[0063] The shear rods 16 are embedded in the first construction element 2 and comprise a section 26 which extends at a slant to the upright direction 30 and at a slant to the transverse direction 29. In the installed state, the slanted section 26 extends downward away from the first construction element 2 toward the second construction element 3. The slanted sections 26 of the two shear rods 16 extend at the outer sides of the cheeks 18 facing away from each other. Each slanted section 26 is fixed directly to one of the cheeks 18, in the embodiment by welding. The slanted section 26 of the at least one shear rod 16 projects through the insulation body 5.
[0064] The two legs 24 and 25 are connected to each other by at least one cheek 18, in the embodiment by two cheeks 18. The cheeks 18 extend perpendicularly to the length direction 28. In the embodiment, the cheeks 18 are arranged at the two opposite ends of the legs 24 and 25 arranged in the length direction 28. The at least one cheek 18 comprises advantageously an approximately triangular shape. The cheek 18 comprises a top side 51 that connects the legs 24 and 25. Preferably, the topside 51 extends across at least a portion of its length in a straight line. The topside 51 of the cheek 18 extends advantageously in the viewing direction of the length axis 28 at a slant to the transverse direction 29, preferably at an angle of 30° to 60°. The slant angle of the topside 51 of the cheek 18 corresponds advantageously to the slant angle of the slanted section 26 of the shear rod 16.
[0065] In the illustrated embodiment, the support angle bracket 17 is arranged outside of the insulation body 5, namely at the longitudinal side 7 of the insulation body 5 facing away from the first longitudinal side 6. The support angle bracket 17 projects in this way into the region of the second construction element 3. At the side of the first leg 24 which is facing the insulation body 5, the first compression rods 19 are fixed to the first leg 24. The compression rods 19 are embodied as comparatively long straight rods which are embedded in the concrete of the first construction element 2 for compressive force transmission. The compression rods 19 can be screw-connected to the support angle bracket 17, welded thereto or fastened thereto in other ways.
[0066] As illustrated also in
[0067] The configuration of the support angle bracket 17 and of the reinforcement elements arranged thereat, namely the two shear rods 16 and the two compression rods 19, is also illustrated in
[0068] As illustrated in
[0069] The first leg 24 of the support angle bracket 17 comprises a rear side 54 which is facing away from the second leg 25. In the embodiment, the at least one compression rod 19 is secured to the rear side 54. In the embodiment, the end 39 comprises a distance g in relation to the rear side 54 measured in the transverse direction 29. The distance g is advantageously relatively large. Advantageously, the distance g amounts to more than 2 cm, preferably more than 5 cm. Preferably, the distance f amounts to less than 80%, in particular less than 50%, of the distance g. The distance g in relation to the rear side 54 corresponds to the distance of the end 39 in relation to the insulation body 5 when the support angle bracket 17 is arranged with its rear side 54 at the second longitudinal side 7 of the insulation body 5.
[0070] As illustrated in
[0071] As illustrated in
[0072]
[0073] The bearing angle bracket 31 is positioned in a formwork body 34 in the embodiment. The formwork body 34 is preferably embodied for arrangement at a formwork for producing the second construction element 3 and adjoins the bottom side 46 as well as the end face 49 of the second construction element 3 facing the insulation body 5 (
[0074] As illustrated in
[0075]
[0076] As shown in
[0077] The recesses 37 each comprise a width d. The width d of the recesses 37 is selected such that a cheek 18 can be positioned together with the slanted section 26 of a shear rod 16 arranged thereat in the recess 37. The width d is selected such in this context that positioning is easily possible even for conventional structure tolerances. As shown in
[0078]
[0079]
[0080] Usually, the second construction element 3 is comprised of concrete whose strength is greater than the strength of the concrete of the first construction element 2. The first construction element 2 can be manufactured, for example, of cast-in-place concrete and the second construction element 3 can be manufactured in a prefabrication plant. In this way, a smaller surface of the compression bearing 41 can provided for the force transmission at the second construction element 3 than at the first construction element 2.
[0081] In the embodiment according to
[0082]
[0083] The first tension rods 9 in the embodiment are welded to the connection plate 11; however, they can also be fixed by screws to the connection plate 11. The connection plate 11 is contacting the first longitudinal side 6 of the insulation body 5. Adjacent to the connection plate 11, the first construction element 2 has cutouts 15. The connection plate 11 comprises openings for the second tension rods 10; the second tension rods 10 are inserted through these openings into the cutouts 15 and screw-connected therein by means of fastening nuts 14 (
[0084] In the embodiment according to
[0085] The embodiments according to
[0086] Further advantageous embodiments result from any arbitrary combination of embodiments with each other.
[0087] The specification incorporates by reference the entire disclosure of German priority document 20 2021 000 466.1 having a filing date of Feb. 1, 2021.
[0088] While specific embodiments of the invention have been shown and described in detail to illustrate the inventive principles, it will be understood that the invention may be embodied otherwise without departing from such principles.