FIRE PROTECTION ELEMENT FOR SEALING THROUGH-OPENINGS IN CONSTRUCTION ELEMENTS
20200330804 ยท 2020-10-22
Assignee
Inventors
- Mario Paetow (Igling, DE)
- Herbert MUENZENBERGER (Wiesbaden, DE)
- Rudolf Semler (Prittriching, DE)
- Horst ZIPFEL (Landsberg am Lech, DE)
Cpc classification
B32B2597/00
PERFORMING OPERATIONS; TRANSPORTING
B32B27/12
PERFORMING OPERATIONS; TRANSPORTING
F01N3/2864
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A62C2/065
HUMAN NECESSITIES
B32B3/04
PERFORMING OPERATIONS; TRANSPORTING
F01N2260/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B32B3/26
PERFORMING OPERATIONS; TRANSPORTING
F16L5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B32B2260/04
PERFORMING OPERATIONS; TRANSPORTING
B32B2262/14
PERFORMING OPERATIONS; TRANSPORTING
B32B5/18
PERFORMING OPERATIONS; TRANSPORTING
B32B7/12
PERFORMING OPERATIONS; TRANSPORTING
B32B2307/3065
PERFORMING OPERATIONS; TRANSPORTING
B32B5/245
PERFORMING OPERATIONS; TRANSPORTING
B32B2307/54
PERFORMING OPERATIONS; TRANSPORTING
F01N3/2853
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B32B2262/106
PERFORMING OPERATIONS; TRANSPORTING
B32B2260/021
PERFORMING OPERATIONS; TRANSPORTING
B32B3/30
PERFORMING OPERATIONS; TRANSPORTING
International classification
B32B27/12
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A strip-shaped fire-protection element, in particular for a line fed through a through-opening of a construction element includes a flat inner layer, extending in a longitudinal direction and having an intumescent material; a reinforcement layer of a fiber composite material, which reinforcement material is applied to at least one first flat side of the inner layer and extends in the longitudinal direction of the fire protection element, wherein the reinforcement layer covers the inner layer at least partially in a width direction.
Claims
1: A strip-like fire-protection element, comprising: a flat inner layer, extending in a long direction and comprising an intumescent material; and a reinforcing layer of a fiber composite material, which is applied on at least a first flat side of said flat inner layer and extends in the long direction of the fire-protection element, wherein the reinforcing layer covers said flat inner layer at least partly in a width direction.
2: The fire-protection element according to claim 1, wherein the reinforcing layer is enveloped on a second flat side by at least one of the lateral rims of the inner layer.
3: The fire-protection element according to claim 2, wherein the reinforcing layer partly covers the second flat side of said flat inner layer.
4: The fire-protection element according to claim 1, wherein the fiber composite material of the reinforcing layer comprises at least one industrial fiber selected from the group consisting of glass fibers, ceramic fibers, carbon fibers, polyamide fibers, metal fibers, aramide fibers, boron fibers, natural fibers, stone fibers and mixtures thereof.
5: The fire-protection element according to claim 1, wherein the fiber composite material of the reinforcing layer is a glass-fiber material.
6: The fire-protection element according to claim 1, wherein the reinforcing layer has material weakness regions, on at least the first flat side of one side.
7: The fire-protection element according to claim 6, wherein the material weakness regions are formed by at least one material weakness selected from the group consisting of incisions, stamped lines and perforations.
8: The fire-protection element according to claim 1, wherein the intumescent material is at least one material selected from the group consisting of an intumescent foam, an intumescent coating and an intumescent strip.
9: The fire-protection element according to claim 1, wherein the reinforcing layer is bonded to said flat inner layer by at least one technique selected from the group consisting of stapling, adhesive bonding, squeegeeing, riveting, rolling, welding, extruding and interlocking.
10: The fire-protection element according to claim 9, wherein the reinforcing layer is squeegeed onto the at least one flat side of said flat inner layer.
11: The fire-protection element according to claim 1, wherein the reinforcing layer is at least one layer.
12: The fire-protection element according to claim 1, wherein the fiber composite material has a temperature resistance up to at least 500 C.
13: The fire-protection element according to claim 1, wherein a metal strip is provided in the inner layer.
14: The fire-protection element according to claim 1, wherein the fire-protection element is folded over along its long direction, in order to form a folded-over edge that is reinforced on an outer side by the reinforcing layer.
15: An arrangement of the fire-protection element according to claim 14 in a penetration opening of a construction element through which a line is routed, wherein the fire-protection element seals one axial end of the penetration opening in such a way that the folded-over edge points outward and regions of the reinforcing layer bear on a shell surface of the penetration opening and on a shell surface of the line.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Embodiments will be explained in more detail hereinafter on the basis of the attached drawings, wherein:
[0025]
[0026]
[0027]
DESCRIPTION OF EMBODIMENTS
[0028]
[0029] Fire-protection element 1 is equipped with a folded-over edge 2, which may be permanently provided or may be formed shortly before mounting by folding over fire-protection element 1 appropriately along its long direction. Fire-protection element 1 has an expandable inner layer 3, which is formed entirely or partly from an intumescent material. The intumescent material has the property that it expands and fills free volume under the effect of heat, especially fire heat. Inner layer 3 may be formed with an intumescent foam, an intumescent coating or an intumescent material layer.
[0030] Furthermore, a metal strip 11, which extends in long direction L and partly or completely over the width B of inner layer 3, may be provided in inner layer 3, in order to achieve, in the fire situation, good heat conduction to regions of fire-protection element 1 not directly exposed to the heat effect of fire gases or flames. In this way, a volume change of the intumescent material can be achieved in the case of local heating effect even in regions of fire-protection element 1 far from the heat input.
[0031] Inner layer 3 is covered at least on one side by a reinforcing layer 4, which is formed from a reinforcing material. Reinforcing layer 4 is fastened on one flat side of inner layer 3, and in particular is attached by stapling, adhesive bonding, riveting, rolling, welding, extruding or interlocking. In particular, reinforcing layer 4 may be squeegeed onto the flat side of inner layer 3.
[0032] The reinforcing material of reinforcing layer 4 may be or contain a fiber composite material and may contain one or more of the following industrial fibers: glass fibers, ceramic fibers, carbon fibers, polyamide fibers, metal fibers, aramide fibers, boron fibers, natural fibers, stone fiber and the like. Furthermore, the fiber composite material may be a glass-fiber material, especially a glass-fiber nonwoven, a glass-fiber scrim, a knitted glass fiber fabric or a woven glass-fiber fabric.
[0033] Preferably, the fiber composite material has temperature resistance, such that it continues to exhibit a high tearing strength at a temperature at which the maximum volume change of the intumescent material is reached and does not exhibit any reduced tearing strength relative to normal temperature (e.g. 20 C.). As an example, the reinforcing material may have a temperature resistance of at least 500 C.
[0034] Inner layer 3 may be bent over in order to form folded-over edge 2, which extends along long direction L of fire-protection element 1. Thus folded-over edge 2 forms an edge of fire-protection element 1 that is covered on the outer side by reinforcing layer 4.
[0035] In the present exemplary embodiment, as shown in
[0036] In the shown embodiment, reinforcing layer 4 may be equipped on first side 6, at least in first sealing portion 8, with material weakness regions 10, which run in width direction B and may have the form of incisions, stamped lines or perforations. Material weakness regions 10 may be elongated or have different geometric shapes.
[0037] When the intumescent material expands in the fire situation, these material weakness regions 10 permit tearing apart and escape of the expanding intumescent material of inner layer 3, so that fire-protection element 1 in the ready-to-use condition spreads out transversely relative to long direction L and exerts pressure on a face on which there bears the outer side of the limb, formed by first sealing portion 8, of fire-protection element 1 bent into U-shape.
[0038] Because reinforcing layer 4 is applied on both sides in first sealing portion 8, this effect is further intensified by the fact that the reinforcing layer 4 releases the expanding intumescent material along the material weakness regions 10, so that it expands and exerts pressure in the direction of the face on which the limb in question bears.
[0039]
[0040] For sealing of an axial end of penetration opening 16, fire-protection element 1 is introduced with its folded-over edge 2 pointing outwardly around line 17 into the intermediate space, so that the limbs of the U-shaped cross section of fire-protection element 1 bear on a portion of the shell surface of line 17 and on a portion of the inner shell surface of penetration opening 16.
[0041] In the present exemplary embodiment, first sealing portion 8 is disposed on the inner side of the U-shaped cross section, so that material weakness regions 10 bear substantially on the shell surface of line 17 or are turned toward it. In case of the effect of fire heat, the volume of the intumescent material of inner layer 3 in first sealing portion 8 increases, wherein the increased volume of intumescent material has space only for expansion through material weakness regions 10 and thus presses against the shell surface of line 17 in the interior of penetration opening 16. Thereby it is ensured that, in the fire situation, the pressure on the shell surface of line 17 is increased already at the beginning of expansion of the intumescent material and line 17 is already compressed promptly after outbreak of a fire, in order to seal penetration opening 16 completely. This is particularly effective in conjunction with embedded metal strip 11, since thereby the fire heat is transported into the region of first sealing portion 8. At the same time, reinforcing layer 4 acts in the region of folded-over edge 2, which seals the axial end of penetration opening 16 toward the outside in such a way that no intumescent material escapes from penetration opening 16, whereby the pressure of the volume expansion of the intumescent material remains guided into the interior of penetration opening 16, so that the compression of line 17 is supported.
LIST OF REFERENCE SYMBOLS
[0042] 1 Fire-protection element [0043] 2 Folded-over edge [0044] 3 Inner layer [0045] 4 Reinforcing layer [0046] 5 Lateral edge [0047] 6 First side [0048] 7 Second side [0049] 8 First sealing portion [0050] 9 Second sealing portion [0051] 10 Material weakness regions [0052] 11 Metal strip [0053] 15 Construction element [0054] 16 Penetration opening [0055] 17 Line [0056] 18 Intermediate space