EP0445666B1 - Dacheindeckung aus mit ihren Längs- und Querrändern einander überlappenden Dacheindeckungsplatten - Google Patents

Dacheindeckung aus mit ihren Längs- und Querrändern einander überlappenden Dacheindeckungsplatten Download PDF

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Publication number
EP0445666B1
EP0445666B1 EP91103105A EP91103105A EP0445666B1 EP 0445666 B1 EP0445666 B1 EP 0445666B1 EP 91103105 A EP91103105 A EP 91103105A EP 91103105 A EP91103105 A EP 91103105A EP 0445666 B1 EP0445666 B1 EP 0445666B1
Authority
EP
European Patent Office
Prior art keywords
roof covering
roof
sealing
panel
towards
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Lifetime
Application number
EP91103105A
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German (de)
English (en)
French (fr)
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EP0445666A1 (de
Inventor
Heinz Wacker
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Individual
Original Assignee
Individual
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Individual filed Critical Individual
Publication of EP0445666A1 publication Critical patent/EP0445666A1/de
Application granted granted Critical
Publication of EP0445666B1 publication Critical patent/EP0445666B1/de
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

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Classifications

    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04DROOF COVERINGS; SKY-LIGHTS; GUTTERS; ROOF-WORKING TOOLS
    • E04D12/00Non-structural supports for roofing materials, e.g. battens, boards
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04DROOF COVERINGS; SKY-LIGHTS; GUTTERS; ROOF-WORKING TOOLS
    • E04D1/00Roof covering by making use of tiles, slates, shingles, or other small roofing elements
    • E04D1/28Roofing elements comprising two or more layers, e.g. for insulation
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B7/00Roofs; Roof construction with regard to insulation
    • E04B7/20Roofs consisting of self-supporting slabs, e.g. able to be loaded
    • E04B7/22Roofs consisting of self-supporting slabs, e.g. able to be loaded the slabs having insulating properties, e.g. laminated with layers of insulating material
    • E04B7/225Roofs consisting of self-supporting slabs, e.g. able to be loaded the slabs having insulating properties, e.g. laminated with layers of insulating material the slabs having non-structural supports for roofing materials
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04DROOF COVERINGS; SKY-LIGHTS; GUTTERS; ROOF-WORKING TOOLS
    • E04D1/00Roof covering by making use of tiles, slates, shingles, or other small roofing elements
    • E04D1/29Means for connecting or fastening adjacent roofing elements
    • E04D1/2907Means for connecting or fastening adjacent roofing elements by interfitted sections
    • E04D1/2914Means for connecting or fastening adjacent roofing elements by interfitted sections having fastening means or anchors at juncture of adjacent roofing elements
    • E04D1/2916Means for connecting or fastening adjacent roofing elements by interfitted sections having fastening means or anchors at juncture of adjacent roofing elements the fastening means taking hold directly on adjacent elements of the same row
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04DROOF COVERINGS; SKY-LIGHTS; GUTTERS; ROOF-WORKING TOOLS
    • E04D13/00Special arrangements or devices in connection with roof coverings; Protection against birds; Roof drainage ; Sky-lights
    • E04D13/16Insulating devices or arrangements in so far as the roof covering is concerned, e.g. characterised by the material or composition of the roof insulating material or its integration in the roof structure
    • E04D13/1606Insulation of the roof covering characterised by its integration in the roof structure
    • E04D13/1612Insulation of the roof covering characterised by its integration in the roof structure the roof structure comprising a supporting framework of roof purlins or rafters
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04DROOF COVERINGS; SKY-LIGHTS; GUTTERS; ROOF-WORKING TOOLS
    • E04D1/00Roof covering by making use of tiles, slates, shingles, or other small roofing elements
    • E04D1/02Grooved or vaulted roofing elements
    • E04D1/04Grooved or vaulted roofing elements of ceramics, glass or concrete, with or without reinforcement

Definitions

  • the present invention relates to a roof covering known from EP-A-0 348 822 according to the preamble of claim 1.
  • a roof covering in question is waterproof.
  • additional measures are necessary to prevent the penetration of flying snow.
  • Known measures are so-called underlays made of a plastic film, cardboard docks attached under the roofing panels and seals made of mortar or a foamed plastic.
  • These additional measures make roofing considerably more expensive because they are also labor-intensive.
  • the sarking membrane must be led to the gutter so that the moisture can drain away unhindered.
  • Another disadvantage can be seen in the fact that the replacement of roofing panels is only possible from the outside, if you want to avoid cutting the underlay.
  • the thermal insulation is relatively low.
  • a roof covering plate which is provided on the lower side facing away from the weather side with circumferential webs through which an insulating chamber is formed, into which an insulating core is inserted.
  • the the weather-side outer surface of each roofing slab is a smooth surface.
  • a roof covering consisting of such roof covering plates does indeed improve the thermal insulation, but the penetration of flying snow is also possible with such a roof covering.
  • the present invention has for its object to develop a roof covering according to the preamble of claim 1 so that with simple, inexpensive means, the tightness is increased so that no flying or powder snow can penetrate through the joints. In addition, there should be no significant additional work when laying the roofing slabs. Adequate thermal insulation should also be possible if necessary.
  • the object is achieved by the features listed in the characterizing part of claim 1. It is now possible to simultaneously install the sealing panels when laying the roof covering panels. The support surfaces fix them in place at the eaves-side end. At the other end on the ridge side, if the roof covering panels are designed accordingly, they are clamped between the underside and the roof batten by their own weight. This means that slipping or moving is no longer possible. In addition, the roof covering ensures that the moisture is conducted directly to the roof covering plate that adjoins the eaves side.
  • the level of each roofing slab is at an angle to the rafters.
  • the sealing plates also run obliquely to the outer surfaces of the rafters, the included angle being a small acute angle. This angle should be chosen by appropriate design of the roofing panels so that the sealing panels run parallel to the levels of the roofing slabs. So that the sealing plates rest on the ridge-side edge over the entire surface of the respective roof batten, the ridge-side edges of the sealing plates are designed as correspondingly inclined inclined surfaces.
  • the sealing plates can be solid in cross section or profiled. Preferred cross-sections are, for example, wavy or trapezoidal cross-sections, since this simply creates the possibility that the sealing plates also overlap at the longitudinal edges. This significantly increases the tightness.
  • the sealing panels can then also be installed. Although an insulating effect is also achieved if the sealing plates are relatively thin, it is provided that they consist of a thermally insulating material. They should then be much thicker than if they only have a sealing function. These plates could then also be referred to as insulating plates, the thickness of which could be in the range of 2 to 3 centimeters, for example.
  • each sealing plate has a cantilever arm projecting opposite the roof batten in the direction of the ridge, which engages under the next sealing plate following the ridge, and that the cantilever arm on that of the respective roof covering plate facing side has a groove running parallel to the roof batten, in which the head of the roof covering plate above it engages and that on the side facing the rafters a bearing surface is provided which is in contact with the surface of the roof batten which runs perpendicular to the rafters and faces the ridge.
  • each sealing plate has a recess on each of the two longitudinal edges such that one recess is assigned to the top and the other recess of the same cross section to the underside of the sealing plate for overlapping the longitudinal edges of two insulating plates lying one above the other. So that the plates are pulled together, each recess is assigned a groove, the outer surface of which is an inclined surface.
  • each roof covering plate is offset relative to the adjacent outer surfaces in the direction of the substructure in order to form a stop standing at right angles or approximately at right angles to the roof surface and transversely to the longitudinal edges of the roof covering plate, and that this stop is used to drain moisture is profiled in the transverse fold formed by the bearing surface 15 and the stop 34, for example is wave-shaped or is provided with grooves.
  • the eaves-side end edge of each sealing plate is supported, while at the ridge-side end it rests exclusively on the batten.
  • the wave-shaped design of the stop surface is advantageous because it allows moisture to flow away from the insulating plate into the transverse fold formed by the support surface and the stop.
  • the bearing surface is a profiled surface with raised partial surfaces, so that the raised partial surfaces for the additional sealing of the interior of the building slightly press into the deformable sealing plate, and that the raised partial surfaces are preferably through a transverse to the longitudinal edges of the roof covering plate are formed web, the weather-side edge of which, in relation to the cross section, runs in a radius.
  • the sealing plates are made, for example, from the known styrofoam. The raised areas respectively the web is then to be seen as a seal in connection with the depression reached. The radius of the web prevents the sealing plate from being cut into.
  • the height of the stop at right angles or approximately at right angles to the roof surface is slightly smaller than the thickness of the sealing plate 16.
  • the height of the stop could preferably be 10 percent less than the thickness of the sealing plate.
  • the roof covering according to the invention What is essential here is the transverse fold formed on the entire width of the roof covering plate from the support surface.
  • This arrangement of the transverse fold which can be designed as a simple but also a double fold, means that the sealing plate is located below the tile over the entire width of the deck.
  • the arrangement of the continuous transverse fold on the tile head creates a support for the sealing plate in two directions, namely at right angles and parallel to the roof surface. This additionally supports the sealing plate at the lower end. At the upper end, i.e. towards the ridge, there is only a sliding support on the roof batten. Due to the variable support lengths on the roof batten, uneven, unavoidable roof batten distances are absorbed without the tightness being impaired.
  • moisture that gets onto the sealing panels is conducted through the cross fold on the tile head over the side rebate to the roof covering panel closest to the eaves.
  • the penetration of moisture can be caused, for example, by flying snow or by a leak in the roof covering.
  • the sealing plates are made from the plates marketed under the trade name Styrofoam, it should be achieved in the designs according to claims 11 to 13 that the unevenness of the roof covering plate can be compensated for without reducing the sealing effect.
  • Such bumps are unavoidable with fired roofing tiles.
  • each individual sealing plate is dewatered itself. So that there can be no accumulation of water.
  • the deformability of the sealing plates creates small-cell, closed chambers, which not only cause direct water drainage to the next roof covering plate underneath, but also build-up pressure in flying snow, which largely prevents the possible entry of flying snow from the outset.
  • the sealing panels can be easily cut and easily connected to roof openings. Furthermore, it is not necessary, as in the known underlays, to connect the individual sealing plates to the gutter. Furthermore, the additional ventilation cross-sections on the ridge, which are also necessary for underlays, are also eliminated.
  • the roof covering according to the invention is particularly suitable for roofing, since the new roof covering is only very slightly higher than the unsealed previous roof covering. The unavoidable differences in height result in joints that can be sealed easily and inexpensively.
  • the lower region of the water-carrying fold 11 is conical.
  • the cross section becomes larger towards the lower eaves-side end, since the outer side web and the other edge web assigned to this side diverge in opposite directions.
  • the edge web 18 of the top fold 12 and the edge web assigned to this side run approximately parallel to the edge web of the water-carrying fold 11.
  • the upper sides can be chamfered.
  • the different appearances due to triangles 21 of different heights are shown in FIGS. 4 to 6.
  • Fig. 7 shows a first embodiment of a roof covering in a section parallel to the rafters with sealing plates 16, which are relatively thin.
  • the thickness of a sealing plate 16 is a little less than the wall thickness of the roof covering plate in the central region, ie in the region that is free of webs.
  • the upper surface of the rafters facing the roofing panels 10 is identified by the solid line 22.
  • the roof battens running parallel to and at a distance from one another and transversely to the rafters are identified by reference numerals 23. 7 shows that the sealing plates 16 run parallel to the outer surfaces of the roofing plates 10.
  • each sealing plate 16 on the eaves side is supported on the bearing surface 15 of the roof covering plate 10.
  • the ridge-side end of each sealing plate 16 lies between the edge webs 18 running transversely to the longitudinal sides and the respective roof batten 23.
  • each sealing plate 10 can correspond to the covering width of the roof covering plate 10, or can be an integral multiple thereof.
  • the width of the support surface 15 also corresponds to the cover width of the roof covering plate 10.
  • the sealing plates 16 are not fastened to the substructure, but are only clamped by the weight of the roof covering plates 10.
  • the sealing plates 16 can be made of paper or plastic. 8 to 10 show three preferred cross-sectional shapes. The cross section according to FIG. 8 is like a corrugated cardboard and consequently consists of two carrier webs 24 and a reinforcing web 25. FIG.
  • FIG. 9 shows a similar cross section, however, the reinforcement web 25 is not folded in a wave shape but in a trapezoidal shape.
  • This design of the two reinforcement tracks 25 significantly increases the section modulus against bending.
  • the width of the individual sealing plates 16 can expediently be greater than the cover widths of the roof covering plates 10, so that they overlap at the longitudinal edges. 10, each sealing plate 16 is designed as a solid plate.
  • mutually overlapping overlap webs 26, 27 are provided on the longitudinal edges in the installed state.
  • FIG. 7 also shows that the edge area facing the substructure is designed as an inclined surface so that this edge area rests on the roof batten 23 over the entire surface.
  • the embodiment according to FIG. 11 differs from that according to FIG.
  • sealing plates 16 of greater thickness which can be between two and three centimeters.
  • the sealing plates 16 are made from a thermally insulating material, for example from a foamed plastic. They are therefore insulating panels that form a full-surface thermal insulation layer.
  • the sealing plates 16 run parallel to the weather-side surface which is kept free of webs.
  • the distance between the support surface 15 and the outer surfaces of the roof covering plate 10 is greater than in the embodiment according to FIG. 7.
  • the edge region of each sealing plate 16 facing the substructure has a recess 28 which serves as a full-surface support on the roof batten 23 appropriately inclined inclined surface is formed.
  • FIG. 12 shows the sealing plate 16 according to FIG. 11 in cross section.
  • the sealing plate 16 is in turn provided on both sides with covering webs 26, 27.
  • a groove 29 is also provided towards the open side, the outer boundary of which is an inclined surface, so that the sealing plates which are lined up next to one another are pulled together.
  • each sealing plate 16 is wedge-shaped, the thickness decreasing towards the edge on the ridge side.
  • Each sealing plate 16 is designed in such a way that the outer surface facing the roof covering plate 10 is parallel and at a distance from the web-free surface of the roof covering plate 10.
  • the lower surface facing the substructure runs parallel and at a short distance from the upper surface 22 of the rafters. This design achieves better thermal insulation.
  • the eaves-side end face of each sealing plate 16 is provided with a profile groove extending transversely to the longitudinal edges, in which the heads 14 or webs lie.
  • the adjacent roof batten 23 forms an abutment for the sealing plate 16. It is therefore not only supported on the bearing surface 15, but also on the eave-side surface of the respective roof batten 23.
  • the cross section of the sealing plate 16 is in accordance with FIG. 13. Thereafter, the longitudinal edges are of opposite stepped design, the upper steps forming the cover webs 26, 27, which in turn are each provided with a groove 29, the outer boundary of which is also formed by an inclined surface.
  • each sealing plate 16 has a cantilever arm 30 which projects in relation to the associated roof batten 23 in the direction of the ridge.
  • This sealing plate in turn has a recess 28 in order to hang it on the roof batten 23.
  • the cantilever arm 30 On the weather side and offset in the direction of the ridge-side end, the cantilever arm 30 has a groove 31 which runs transversely to the longitudinal sides and into which the heads 14 of the roof covering plates engage.
  • the roof covering plate 10 has the flat support surface 15 on the ridge-side edge.
  • the broken line 32 shows the position of the cantilever arm 30 in the unloaded state. When loaded by the roofing panels 10, the cantilever arm is bent in the direction of the substructure. With this design, the contacting surfaces are pressed together by the restoring forces, so that a special sealing effect is achieved.
  • each insulating gap 16 is in turn provided with a cantilever arm 30. The remaining part of each insulating plate 16 projects beyond two fields formed by three roof battens 23. This results in an overlap, so that the thermal insulation layer formed from the sealing plates 16 can be viewed in the sense of a two-layer layer.
  • each roof covering plate 10 is also provided with the recess 28 and a groove 31 for the heads 14 which is offset from it.
  • the advantage of this embodiment is that the sealing plates 16 can be laid in a set, ie offset from one another, so that there is no lateral fold.
  • the surface of each insulating plate 16 assigned to the roof covering plate 10 runs parallel to the web-free area of the roof covering plate 10, while the surface facing the substructure runs at an acute angle to the upper surface of the rafters.
  • the embodiment according to FIGS. 16 and 17 offers the advantage of a larger thickness. In the embodiment according to FIG.
  • each insulating plate 16 in turn extends over two fields delimited by three roof battens 23.
  • the cantilever is missing in this version.
  • the sealing plates 16 are also installed in this association.
  • the cross-sectional shape corresponds to FIG. 14.
  • more than two fields can also be covered.
  • the number of fields always corresponds to the number of individual layers.
  • FIG. 7a differs from the embodiment according to FIG. 7 by a sealing strip 33 which is arranged on the side facing away from the weather on the eaves-side edge of the sealing plate 16 and extends transversely to the longitudinal edges.
  • This sealing strip is made of an elastically deformable material in order to compensate for height differences in the support surfaces 15 which are caused by production technology.
  • the longitudinal edges of the sealing plates 15 can be provided with a self-adhesive strip or with a strip made of an adhesive. This makes it possible to glue the individual sealing plates 15 together at the longitudinal edges. If an adhesive is used, it is expedient if the congruent adhesive strips stick together without moistening.
  • each roof covering plate 10 has two support surfaces 15 running parallel and at a distance from one another.
  • only one bearing surface 15 is used.
  • the bearing surface 15 is assigned a stop 17a running transversely to the longitudinal edges, against which the eaves-side end edge of the sealing plate 16 can abut. Despite this attack, the water can drain away.
  • Figures 19 and 20 show in longitudinal section two further embodiments of the heads of the roofing panels 10. From these figures it can be clearly seen that the support surface 15 is not a flat surface, but that it has raised partial surfaces, that is, the raised partial surfaces are facing the weather side in front. As can also be seen, the bearing surface 15 jumps towards the substructure in relation to the adjacent outer surfaces. This creates a surface approximately perpendicular to the roof surface, which can be seen in the sense of a stop 34 for the sealing plate 16.
  • the ridge-side boundary of the bearing surface 15 is formed by a web 35 which runs transversely to the longitudinal edges of the roof covering plate 10 and which projects towards the weather side with respect to the actual bearing surface 15. This web 35 is triangular in cross-section, the upper edge running in a radius.
  • the bearing surface 15 is angled, so that the height of this web 35 is lower than in the embodiment according to FIG. 19.
  • the head of the roofing plate 10 in the embodiment according to FIG. 20 is designed such that the assigned sealing plate 16 is stepped in the front end area of the eaves. This creates two bearing surfaces that increase the tightness. It is clear from the figures that the sealing plate 16 presses into the web 35, due to the weight of the roof covering plate, not shown, which lies above the sealing plate 16. This indentation of the web 35, which extends over the entire width of the roof covering plate 10, further increases the tightness, since it can be seen in the sense of a labyrinth seal.
  • the height of the stop 34 is a little less than the thickness of the sealing plate 16, so that said sealing plate 16 can be pressed in under a load.

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  • Engineering & Computer Science (AREA)
  • Architecture (AREA)
  • Civil Engineering (AREA)
  • Structural Engineering (AREA)
  • Physics & Mathematics (AREA)
  • Electromagnetism (AREA)
  • Roof Covering Using Slabs Or Stiff Sheets (AREA)
EP91103105A 1990-03-03 1991-03-01 Dacheindeckung aus mit ihren Längs- und Querrändern einander überlappenden Dacheindeckungsplatten Expired - Lifetime EP0445666B1 (de)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
DE4006772A DE4006772C2 (de) 1990-03-03 1990-03-03 Dacheindeckung aus mit ihren Längs- und Querrändern einander überlappenden Dacheindeckungsplatten
DE4006772 1990-03-03

Publications (2)

Publication Number Publication Date
EP0445666A1 EP0445666A1 (de) 1991-09-11
EP0445666B1 true EP0445666B1 (de) 1992-06-03

Family

ID=6401392

Family Applications (1)

Application Number Title Priority Date Filing Date
EP91103105A Expired - Lifetime EP0445666B1 (de) 1990-03-03 1991-03-01 Dacheindeckung aus mit ihren Längs- und Querrändern einander überlappenden Dacheindeckungsplatten

Country Status (4)

Country Link
EP (1) EP0445666B1 (da)
AT (1) ATE76925T1 (da)
DE (2) DE4006772C2 (da)
DK (1) DK0445666T3 (da)

Families Citing this family (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
NL1003191C2 (nl) * 1996-05-23 1997-11-25 Ubbink Nederland Bv Leideksysteem.
DE10300963B4 (de) * 2003-01-10 2016-09-29 Erlus Aktiengesellschaft Dachbauelement mit im Querschnitt zunehmender Wasserrille
DE102006038731A1 (de) * 2006-08-15 2008-02-21 Oskar Fleck Dacheindeckungsplatten mit integrierter Wärmedämmung
US7980037B2 (en) * 2006-10-27 2011-07-19 Exteria Building Products, Llc Decorative wall covering with improved interlock system
DE202017102762U1 (de) * 2017-05-09 2017-06-06 Erlus Aktiengesellschaft Falzdachziegel
CN113513127B (zh) * 2020-04-09 2025-04-15 柯昇建筑工程有限公司 一种横板纵拼的装饰结构

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DE248352C (da) *
DE1509106A1 (de) * 1962-08-25 1969-05-22 Werner Henning Docken aus Kunststoff oder anderem Material als Unterlage von Ziegeldaechern
DE1509101A1 (de) * 1964-09-05 1971-04-29 Karl Fahr Jun Ziegel
AT295101B (de) * 1969-02-25 1971-12-27 Walter Brunner Bauelement aus zwei oder mehreren Schichten
DE2054041C3 (de) * 1970-11-03 1981-04-30 Michael Christian 8013 Haar Ludowici Strangfalzziegel
DE2517419C2 (de) * 1974-10-02 1986-06-12 Thermodach Dachtechnik GmbH, 8598 Waldershof Unterdach
DE2745845A1 (de) * 1977-10-12 1979-04-19 Theodor Greis Bausatz zur herstellung einer dachdaemmung
DE7739995U1 (de) * 1977-12-29 1978-07-06 Traub, Tillo, 7151 Stangenbach Abdeckung fuer eine dachisolierung
DE2933554A1 (de) * 1979-08-18 1981-03-26 Dynamit Nobel Ag, 5210 Troisdorf Waermegedaemmte steildacheindeckung
DE2944697A1 (de) * 1979-11-06 1981-05-14 Oskar 4354 Datteln Fleck Bauelement zur verwendung beim eindecken von daechern
DE8224221U1 (de) * 1982-08-27 1982-11-25 Rütgerswerke AG, 6000 Frankfurt Waermegedaemmtes schindelelement
GB2131060B (en) * 1982-11-24 1986-05-21 Marley Roof Tile Preventing penetration of water through tiled or slated pitched roofs
DE3334926A1 (de) * 1983-09-27 1985-06-27 CPM-Ceramic Patent Management Inc., Lehigh Acres, Fla. Wand- und dachverkleidungselement
DE3508631A1 (de) * 1985-02-15 1986-08-21 Helfrecht, Manfred, 8598 Waldershof Waermedaemmelement fuer ein unterdach
DE3623428A1 (de) * 1986-07-11 1988-01-28 Eugen Feil Dachplatte, insbesondere daemmplatte zum aufbau eines unterdachs
DE3705281A1 (de) * 1987-02-19 1988-09-01 Eugen Feil Dachelement
EP0348822A1 (de) * 1988-06-30 1990-01-03 Heinz Wacker Dacheindeckung aus mit ihren Längs- und Querrändern einander überlappenden Dacheindeckungsplatten
DE3822066A1 (de) * 1988-06-30 1990-01-04 Heinz Wacker Dach fuer ein gebaeude
DE3919511C1 (da) * 1989-06-15 1990-09-13 Eugen 7084 Westhausen De Feil

Also Published As

Publication number Publication date
DE59100002D1 (de) 1992-07-09
DK0445666T3 (da) 1992-09-14
DE4006772C2 (de) 1994-04-21
ATE76925T1 (de) 1992-06-15
EP0445666A1 (de) 1991-09-11
DE4006772A1 (de) 1991-09-05

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