LINKAGE FOR A DOOR ACTUATOR
20240003174 ยท 2024-01-04
Inventors
Cpc classification
E05F3/227
FIXED CONSTRUCTIONS
International classification
Abstract
A linkage for force transmission between a driven axle of a door actuator and an assembly surface, includes a hinge, a fastening arrangement designed for fastening the hinge to the assembly surface, in particular a door, frame or wall, wherein an assembly axis is defined perpendicularly to the assembly surface, and a lever arrangement which is fastened to the hinge so as to be rotatable about a hinge axis perpendicular to the assembly axis and which is designed for rotationally-fixed connection to the driven axle of the door actuator. The linkage is designed to detach through the weight of the door actuator falling down in the event of a fire and/or wherein the linkage includes a thermally activatable trigger element that is designed to detach the linkage in the event of thermal activation triggered by a fire.
Claims
1. A linkage for force transmission between a driven axle of a door actuator and an assembly surface, comprising: a hinge; a fastening arrangement designed to fasten the hinge to the assembly surface, wherein an assembly axis is defined perpendicularly to the assembly surface; and a lever arrangement which is fastened to the hinge so as to be rotatable about a hinge axis perpendicular to the assembly axis and which is designed for rotationally-fixed connection to the driven axle of the door actuator, wherein the linkage is designed to detach through the weight of the door actuator falling down in the event of a fire and/or wherein the linkage comprises a thermally activatable trigger element that is designed to detach the linkage in the event of thermal activation triggered by a fire.
2. The linkage according to claim 1, wherein the hinge or a joint in the lever arrangement is designed to detach through the weight of the falling door actuator.
3. The linkage according to claim 1, wherein the lever arrangement comprises a first lever, a swivel joint, and a connecting element, wherein the connecting element is fastened to the hinge so as to be rotatable and the first lever is rotatably connected to the connecting element via the swivel joint, wherein a swivel joint axis is perpendicular to the hinge axis.
4. The linkage according to claim 3, wherein a securing element holding the swivel joint or hinge together is arranged on the swivel joint or hinge and wherein the securing element, by the first lever being lowered, is configured to be moved into a position which does not hold the swivel joint or hinge together.
5. The linkage according to claim 4, wherein the first lever comprises an actuating section which protrudes beyond the swivel joint axis in the direction of the hinge and which moves upwards when the first lever is lowered and thereby moves the securing element to the non-constrained position.
6. The linkage according to claim 4, wherein the securing element is a securing sleeve which sits on the swivel joint.
7. The linkage according to claim 6, wherein the swivel joint has a swivel joint pin and a U-shaped, downwardly open first pin receptacle on the connecting element and/or on the first lever, wherein the securing sleeve with a U-shaped, laterally open second pin receptacle holds the swivel joint pin in the first pin receptacle, and wherein the securing sleeve is configured to be removed from the swivel joint pin to detach the swivel joint.
8. The linkage according to claim 4, wherein the hinge comprises a hinge pin, wherein the hinge pin is secured against falling out with the securing element, configured as a securing tab, securing splint or securing screw.
9. The linkage according to claim 8, wherein the hinge comprises a hinge leg only on the upper side of the connecting element, in which the hinge pin is received.
10. The linkage according to claim 8, wherein the securing element, configured as a securing tab or a securing splint, is configured to be pulled off the hinge pin.
11. The linkage according to claim 8, wherein the securing element, configured as a securing screw, is configured to be destroyed by the movement of the actuating section.
12. The linkage according to claim 2, wherein the lever arrangement comprises the first lever and a second lever, wherein the two levers are connected to one another with a ball joint, and wherein the ball joint is designed to detach through the weight of the falling door actuator.
13. The linkage according to claim 1, wherein the fastening arrangement comprises a thermally activatable trigger element that is designed to detach the fastening between the hinge and the assembly surface when thermally activated.
14. The linkage according to claim 13, wherein the fastening arrangement comprises a hinge support that can be fastened to the assembly surface, and at least one blocking element, wherein the blocking element can be moved from a retaining position to a release position, wherein the blocking element holds the hinge on the hinge support in the retaining position and releases the hinge in the release position, and wherein the trigger element releases a movement of the blocking element into the release position when thermally activated and/or the trigger element moves the blocking element into the release position when thermally activated.
15. The linkage according to claim 14, wherein the hinge is pushed under a holder of the hinge support on one side and is held by the blocking element on the opposing side.
16. The linkage according to claim 15, wherein the blocking element is designed as a rotatably mounted swivel bolt, wherein the blocking element-swivel bolt axis of rotation is parallel to the hinge axis.
17. The linkage according to claim 16, wherein the swivel bolt comprises two legs, wherein one leg holds the hinge and the trigger element acts on the other leg in order to block the rotary movement of the swivel bolt.
18. The linkage according to claim 16, wherein the trigger element is exposed on the rear side of the hinge support facing the assembly surface, wherein the trigger element is fixed to the hinge support by means of a latch connection.
19. The linkage according to claim 15, wherein the blocking element is designed as a linearly displaceable bolt, wherein the trigger element moves the bolt into the release position when thermally activated, or wherein the trigger element releases the spring-loaded bolt to move to the release position when thermally activated.
20. The linkage according to claim 14, comprising a plurality of the blocking elements for holding the hinge on the hinge support.
21. The linkage according to claim 20, wherein the blocking element is designed as a pin and is configured to be moved into its release position, parallel to the hinge axis.
22. The linkage according to claim 13, wherein the trigger element is designed as a fusible element, wherein the fusible element has a first recess for a fastening element, wherein the hinge has a second recess aligned with the first recess, wherein the second recess has a larger diameter than the first recess such that after the fusible element has melted, a head of the fastening element fits through the second recess.
23. The linkage according to claim 13, wherein the trigger element is formed from thermally intumescent material and is arranged to displace a retaining element when thermally activated, wherein the retaining element has a first recess for a fastening element, wherein the hinge has a second recess aligned with the first recess, wherein the second recess has a larger diameter than the first recess such that after the retaining element has been displaced, a head of the fastening element fits through the second recess.
24. The linkage according to claim 13, wherein the trigger element is formed from thermally intumescent material and is positioned for arrangement between the hinge and the assembly surface, in order to push the hinge away from the assembly surface when thermally activated.
25. The linkage according to claim 13, wherein the hinge comprises a thermally activatable trigger element which is designed to detach the hinge when thermally activated.
26. The linkage according to claim 25, wherein the lever arrangement is secured against falling off the hinge pin with a securing element, configured a securing tab or securing splint, wherein the thermally activatable trigger element is designed to pull off the securing element or to release a spring force that pulls off the securing element when thermally activated.
27. An arrangement comprising a linkage according to claim 13 and a door actuator, wherein the lever arrangement is fastened to the driven axle of the door actuator and wherein the door actuator is designed to fall off its assembly surface in the event of thermal activation triggered by a fire.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0063] The disclosure will now be described further on the basis of exemplary embodiments, in which is shown:
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DETAILED DESCRIPTION OF THE DRAWINGS
[0082] A plurality of exemplary embodiments of a linkage 1 for force transmission between a driven axle 102 of a door actuator 101 and an assembly surface 105 are described in detail below. Identical or functionally identical parts are provided with the same reference numerals.
[0083] The exemplary embodiments 1 to 3 with
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[0085] The linkage 1 comprises the hinge 2. The hinge 2 in turn has a hinge bracket 3. The hinge bracket 3 has a hinge base plate 4. The hinge base plate 4 is in particular perpendicular to the assembly axis 106. Furthermore, the hinge bracket 3 can have one or two hinge legs 5 which extend perpendicularly from the hinge base plate 4. A hinge pin 7, which defines a hinge axis 6, is received on the at least one hinge leg 5. The hinge axis 6 is vertical and perpendicular to the assembly axis 106.
[0086] The fastening arrangement 8 is provided for connecting the hinge 2, in particular the hinge bracket 3, to the assembly surface 105. In a simple configuration, the fastening arrangement 8 comprises at least one screw 9 which is firmly screwed into the assembly surface 5.
[0087] Furthermore, the linkage 1 comprises a lever arrangement 10. The linkage 1 is designed here as a scissor linkage such that the lever arrangement 10 comprises a first lever 15 and a second lever 19. The two levers 15, 19 are rotatably connected to one another via a ball joint 18.
[0088] The first lever is connected to a connecting element 11 of the lever arrangement 10 via a swivel joint 12. The swivel joint 12 comprises one or a plurality of coaxial swivel joint pins 14 defining a swivel joint axis 13. The swivel joint axis 13 is in particular horizontal and thus perpendicular and offset to the hinge axis 6.
[0089] In particular, the connecting element 12 has two parallel tabs, between which the first lever 15 is arranged. The one or plurality of swivel joint pins 14 extend through the two tabs and the first lever 15.
[0090] The first lever 15 preferably comprises a tensioning screw 16 in a tensioning nut 17. By screwing the tensioning screw 16 into the tensioning nut 17, the length of the first lever 15 can be adjusted.
[0091] The second lever 19 is connected to the driven axle 102 or the associated shaft of the door actuator 101, for example via the lever eye 20 shown, in a rotationally-fixed manner.
[0092] In
[0093] The door actuator 101 is designed and arranged on its assembly surface such that it can be detached from its assembly surface, in the example shown the door leaf 103, in the event of a fire and the associated heating. For example, the door actuator 101 is pushed away from its assembly surface by thermally intumescent material and thereby detaches. This causes the door actuator 101 to fall down.
[0094] First exemplary embodiment with
[0095] As the exploded illustration in
[0096] The securing sleeve 26 has a second pin receptacle 23. The second pin receptacle is U-shaped and open at the side.
[0097] In the assembled state, the first lever 25 is inserted with the swivel joint pin 14 in the first pin receptacle 22. The swivel joint pin 14 is prevented from falling out downwards due to the placement of the securing sleeve 26.
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[0099] In the first exemplary embodiment, the securing sleeve 26 is pushed off by the rising actuating section 24 such that the second pin receptacle 23 detaches from the swivel joint pin 14.
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[0102] Second exemplary embodiment with
[0103] The securing tab 27 preferably has a tab recess 28 into which the actuating section 24 can dip.
[0104] Alternatively to the securing tab 27, a securing splint can also be used here, which is correspondingly configured such that it can be pulled by the actuating section 24.
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[0106] Third exemplary embodiment with
[0107] Fourth exemplary embodiment with
[0108] According to
[0109] The swivel bolt 36 has a first leg 38 and a second leg 39. The swivel bolt axis of rotation 37 is located between the two legs 38, 39.
[0110] The hinge bracket 3, in particular the hinge base plate 4, is pushed under a holder 40 of the hinge support 35 on one side. On the opposing side, the first leg 38 holds the hinge 2 on the hinge support 34.
[0111] The swivel bolt 36 is prevented from rotating by the trigger element 32, designed here as a fusible element 33. This fusible element 33 is exposed in particular on the rear side of the hinge support 34 and is therefore in direct contact with the assembly surface 105. As a result, the fusible element 33 is clamped between the assembly surface 105 and the second leg 39 in the assembled state. In order to prevent the fusible element 33 from falling out before assembly, a latch connection 41 is preferably provided between the fusible element 33 and the hinge support 34 according to
[0112] Fifth exemplary embodiment with
[0113] Sixth exemplary embodiment with
[0114] Seventh exemplary embodiment with
[0115] In
[0116] Eighth exemplary embodiment with
[0117] In the following exemplary embodiments with
[0118] Ninth exemplary embodiment with
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[0120] Tenth exemplary embodiment with
[0121] Eleventh exemplary embodiment with
[0122] The blocking elements 35 designed as pin elements 48 are located on the scissor arms 51 and are inserted into corresponding holes of the hinge support 34 and the hinge bracket 3.
[0123] Compression springs 47 are provided which are pretensioned and preload the scissor arms 51 into rotational movement about the scissor axis 52 in such manner that the scissor arms 51 pull the pin elements 58 out of their holes. However, this movement is blocked by the ampoule 43 such that before the ampoule 43 is destroyed, the movement of the scissor arms 51 is blocked.
[0124] Twelfth exemplary embodiment with
[0125] Compression springs 47 are preferably provided here for holding the pin elements 48 in the retaining position, wherein the thermally intumescent element 46 moves the pin element 48 against the force of these compression springs 47 into the release position.
[0126] As
[0127] Thirteenth exemplary embodiment with
[0128] The diameter of the first recess 53 is so small that the screw head rests on the fusible element 33. The second recess 54 is selected to be large enough such that the screw head fits through the second recess 54 after deformation of the fusible element 33. As a result, the hinge 3 can detach from the screws 9 after the deformation of the fusible element 33.
[0129] As the illustration in
[0130] Fourteenth exemplary embodiment with
[0131] As shown in
[0132] An intermediate plate 56 made of fusible material can be arranged between the hinge base plate 4 and the assembly surface 105 such that this intermediate plate 56 is deformed during the thermal activation and the pretensioning of the screws 9 is thus reduced.
[0133] Fifteenth exemplary embodiment with
[0134] The recesses for receiving the trigger elements 32 are located in the first assembly plate 58. When the thermally intumescent elements 46 expand, they push the second assembly plate 59 away from the assembly surface 105 or from the first assembly plate 58 such that the predetermined break elements 60 are destroyed or torn from their threads.
[0135] Such an assembly bracket or a similar assembly bracket can also be used to connect the door actuator 101 to its assembly surface in order to detach the door actuator 101 in the event of a fire and the associated heating.
[0136] Sixteenth exemplary embodiment with
[0137] The trigger element 32, here as a shape-memory element 63, is tensioned in the form of a spring between the securing splint 32 and the hinge support 34. When the shape-memory element 63 heats up thermally, it contracts and thereby pulls the securing splint 62, as a result of which the connecting element 11 can fall downwards.
[0138] Seventeenth exemplary embodiment with
[0139] The securing splint 62 can be pulled via a pretensioned tension spring 64. However, a contraction of the tension spring 64 is blocked by the trigger element 32 in the form of an ampoule 43. Only after the ampoule 43 has been destroyed can the tension spring 64 contract.
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