[0001] The present invention relates to an insulation element for fitting between elongated
members in a framework of a building structure, such as between rafters, beams or
the like, said insulation element being a fibrous insulation element, preferably a
mineral wool batt, and said insulation element having substantially parallel first
and second sides and substantially parallel third and fourth sides, exhibiting a first
side portion and a substantially parallel opposing second side portion, wherein at
least said first side portion is provided as a trim portion which is provided with
a cutting marking substantially parallel with the first side thereby defining an elongated
trim section along the first side, said trim section having a predetermined width.
[0002] An insulation element of such kind is known from
WO98/42930.
[0003] Building structures typically comprise a framework with a number of elongated members,
such as rafters, joists etc., defining a number of cavities with the elongated members
of the framework as cavity walls. In particular a roof structure comprises a number
of rafters with a certain distance apart. It is typically required that a roof or
a floor structure must be insulated and therefore insulation panels are fitted in
these cavities. In order to meet the thermal insulation requirements fibrous insulation
material is often used. Such fibrous insulation materials, such as glass wool, stone
wool or other fibrous material panels, may be provided in rectangular building elements
or as a roll.
[0004] The distance between the elongated members of the framework in a building structure,
such as rafters, joists, beams or the like, may vary from one structure to another
or even within the same building structure. In roof structures the distance may vary
from e.g. 550-950 mm. Although the insulation material is somewhat flexible there
are limitations as to how compressible the insulation elements can be subjected to
before the compressed element may bend out of the cavity if the insulation element
is too compressed when fitted between the rafters and beams. Therefore, insulation
elements of the initially mentioned kind must be manufactured in many different sizes
in order to ensure a correct fit.
[0005] An advantage with this kind of fibrous insulation slab product is that it can be
cut into an appropriate size and is easy install and easy for the inexperienced builder,
such as the DIY builder, to understand and makes it easy to fit a suitable insulation
to a building structure, such as a roof a wall or a floor structure.
[0006] In order to fit the insulation slabs, they must be cut into size. This results in
a high amount of waste material which is inconvenient for many reasons, such as costs
and environmental concerns. For the building material retailers, in particular do-it-yourself
(DIY) stores, this insulation product requires an unacceptable amount of storage space
as fibrous insulation slabs of many different sizes must be offered for sale. For
instance in order to be able to supply customers with insulation slabs for rafter
distances in the range of 550-950 mm, eight different sizes must be kept on store.
This storage must be repeated for each thickness of insulation that the store intends
to sell. This is considered too space consuming for most retailers and therefore the
availability of such insulation slab products is rather limited in most retail stores
(DIY stores) that are selling building materials and accessories.
[0007] On this background, an object of the present invention is to provide an insulation
element that allows for a broader range of use making it more attractive to building
material retailers as well as their customers.
[0008] This object is achieved by an insulation element of the initially mentioned kind
wherein at least said second side portion is provided as a flexible zone extending
along the second side and comprising a flexible section of the insulation element
which is substantially less rigid and thus compressible and which has a predetermined
width, and wherein the flexible zone is provided by softening the respective side
by compressing the edge region during manufacture and thereby reducing the fibre bonding
in the flexible section.
[0009] The insulation element according to the invention may be made of any insulating material.
Often a fibrous insulation material is preferred. Especially mineral wool, such as
stone wool or glass wool is preferred.
[0010] An insulation element according to the invention is suitable for fitting within a
wide range in the distance between elongated members in a building framework. The
advantage of an insulation element according to the invention is this combination
of a trim portion and a soft flexible portion on the opposite side of the trim portion.
This makes the fitting of the insulation element easier and contributes to achieving
a good insulation result, so that the insulation is not too compressed or is too loosely
fitted. An insulation element according to the invention is cost effective in production,
whereby a low-priced fibrous insulation element for a wide range of use in building
structures may be achieved.
[0011] The at least one flexible zone is provided by softening the respective side by compressing
the edge during manufacture and thereby reducing the fibre bonding in the flexible
section. Hereby, the fibre bondings are broken making the fibrous insulation element
for flexible without reducing the density and without significantly influencing the
thermal insulation properties.
[0012] The flexible zone along the section side is made less rigid during the manufacture,
e.g. by pressing rollers into the zone and moving them along the edge. This has the
advantage that this zone is compressible and may be compressed in order to fit between
the rafters and beams of the building structure, e.g. two rafters or the like. If
the compression of the second side is not sufficient for obtaining a good fitting
of the insulation element, i.e. if the distance between the cavity walls is smaller,
the trim portion on the side opposite the flexible portion of the rectangular insulation
slab may be cut off whereby the width of the insulation element is reduced. By having
dimensioned the flexible portion and the trim portion suitably, the need for trimming
the insulation element by cutting off the trim section becomes easily visible. When
the insulation element is placed with the flexible zone abutting a first rafter, it
becomes apparent that trimming is needed if the trim zone extends beyond the second
rafter, i.e. the transition between the trim zone and the rest of the insulation element
is positioned above the rafter. This transition may be marked with a cutting line
marking the trim portion and making it easy for the builder to cut away the trim portion
and fit the insulation slab. With the pre-cut cutting line, the trim portion will
have a regular shape when cut away which makes it suitable for reuse e.g. to fit into
small cavities the building structure.
[0013] By this wide range in use, the advantage of an insulation element according to the
invention, the need for different formats is significantly reduced in order to cover
the varying framework distances involved in building insulation. To reduce this need
even further the third side of the insulation element may be provided with a trim
portion extending along the third side and the fourth side of the rectangular insulation
element may be provided with a flexible zone comprising a flexible section extending
along the fourth side. Hereby, the insulation element is provided with flex/trim capability
in both orientations. This means that the range of use is doubled for one format.
[0014] This is in particular the case in a preferred embodiment, wherein the trim section
width is substantially equal to the flexible section width and wherein the first and
second sides are provided with a length substantially equal to the sum of the width
of the flexible zone, the width of the trim zone and the length of the third and fourth
sides.
[0015] The at least one trim portion is provided by a cutting line parallel to the trim
side, i.e. the first - respectively third - side. In a first embodiment, this cutting
line may be a visual line marker. In a second embodiment, said cutting line is a pre-cut
slit having a depth less than the thickness of the panel, preferably at least 50 mm
and wherein said slit being substantially parallel to the trim side, i.e. the first
- respectively third - side. By having provided a pre-cut, the cutting action is made
easier as the pre-cut acts as a guide rail for the cutting tool. Moreover, the amount
of fibrous dust produced by the cutting is reduced.
[0016] In one embodiment of the invention, the insulation element is a mineral fibre batt.
However it is realised that the present invention also relates to other types of fibrous
insulation materials. In a preferred embodiment, the insulation element is provided
with a density of 25-45 kg/m
2, preferably 28-35 kg/m
2. Preferably, the insulation element is provided with a thickness between 100 and
400 mm, more preferably approx. 140 mm, 160 mm, 180 mm or 200 mm.
[0017] In an embodiment, the insulation element is provided with a first top layer having
a first density and a second layer having a second density, said first density preferably
being larger than the second density. Hereby, particular bending and rigidity characteristics
may be achieved by a dual density an insulation element according to the invention.
[0018] Preferably, the insulation element according to the invention has a substantially
rectangular shape, but it is realised that other forms could be provided without departing
from the invention.
[0019] The invention is described in the following with reference to the accompanying drawings,
in which:
- Fig. 1
- is a schematic top view of an insulation element according to a first embodiment of
the invention;
- Fig. 2
- is a schematic top view of an insulation element according to a second embodiment
of the invention;
- Fig. 3
- is a perspective view of the insulation element in fig. 2;
- Figs. 4 and 5
- are schematic views illustrating the use of an insulation element according to the
invention;
- Fig. 6
- shows an example of a series variation of distances between building structure members
for receiving insulation elements; and
- Figs. 7 and 8
- show examples of insulation elements according to some preferred embodiments of the
invention fit to the series of distances shown in fig. 6.
[0020] Figure 1 shows a first embodiment of an insulation element 1 is having a rectangular
shape with first and second sides having a length
l and third and fourth sides with a width
d. The opposing first and second sides are provided with a trim portion 3 and a flexible
portion 4, respectively. The trim portion 3 is separated from the rest of the insulation
element 1 by a cutting line 7. The width of the trim portion is
dt and the width of the flexible portion is
df. In figure 1 the most basic embodiment of an insulation element according to the invention
is shown.
[0021] With reference to figure 2 and 3, a second embodiment is shown, where a second trim
portion 5 is also provided along the third side and a flexible portion 6 is also provided
along the fourth side. The cutting lines 7, 8 may be printed lines on the top surface
of the insulation panel 1 or - as shown in fig. 3 - pre-cuts 7, 8 partially separating
the trim portions 3, 5 from the rest of insulation panel 1. These pre-cuts have a
depth, which is less than the thickness
t of the insulation panel 1, varies depending on the thickness
t of the insulation slab, but is preferably at least 50 mm and more preferably 50 mm
less than the thickness
t. Often the depth of the pre-cut will be in the range from one third to two thirds
of the total thickness
t. The thickness
t may be within the range of 100 - 400 mm. Preferably, the insulation elements 1 are
manufactured in standard sizes and thicknesses, e.g. with a thickness of 140 mm, 160
mm, 180 mm or 200 mm.
[0022] Referring to figures 4 and 5, it becomes readily apparent how easy an insulation
element 1 according to the invention is to understand for an inexperienced worker,
e.g. a DIY person. The insulation slab 1 is to be fitted between two rafters or similar
elongated framework members 2 in a building structure with a mutual distance D between
them. This may be rafters in a roof structure, a wall structure or a floor structure
where thermal and/or acoustic insulation is required. The insulation slab 1 is placed
with the flex zone 4 abutting one or the rafters 2 so that the flexible zone is not
compressed but merely positioned abutting the first rafter 2. The width d (see fig.
1 or 3) of the insulation slab 1 is larger than the distance D between the rafters
2.
[0023] If the insulation panel width
d is such that the cutting line 7 is placed above the rafter 2 as it is the case in
fig. 4, the trim portion 3 is to be cut off and the worker can easily cut along the
cutting line 7 with the rafter 2 serving as a backing board for the cutting action
in the insulation slab 1. The resulting insulation element 1 may then be fitted by
compressing the flexible portion without providing too much compression causing the
insulation element to buckle or bend out of the cavity between the two rafters.
[0024] If the distance D is not so much smaller than the width
d of the insulation element 1, as it is the case in fig. 5, the insulation element
1 may be fitted in the same manner without having to trim the width first.
[0025] This means that there is no measuring with measuring sticks or tapes needed, but
simply if the rafter is under the cutting line when the insulation panel 1 is positioned,
then cutting is needed to fit the insulation element, but if the cutting line is free
of the rafter, no cutting should be performed before fitting the insulation element
between the rafters. Thus by the invention it is ensured that a small oversize in
width is maintained also if trimming is needed, and that consequently a satisfactory
amount of compression of the insulation element is done so that the spring effect
of the insulation material expands the insulation panel between the rafters and keeps
it in place.
[0026] The distances D between the elongated members 2 in the frameworks is determining
which insulation element width is to be used. In fig. 6 are shown eight typical distance
ranges that must be covered in order to provide an insulation element product range
that covers the insulation needs for small building projects, such as DIY projects,
comprehensively. As it can be seen in the figure, there are eight distance ranges
D
1 to D
8 which together are covering a range in the rafter distance D from 550 mm to 950 mm
in incremental steps of 50 mm.
[0027] Whereas previously this would require eight different formats of insulation slabs,
it is realised by the invention that by sizing the insulation slabs according to the
invention correctly, this required amount of formats can be reduced to only two formats,
as shown in the figures 7 and 8.
[0028] In relation to the range in the distances D between the framework members in a building
structure shown in fig. 6, the insulation element shown in fig. 7 is provided with
trim portions 3, 5 along its first and third sides and flexible portions 4, 6 along
its second and fourth sides. This "small" format insulation element according to the
invention is provided with the following dimensions: The widths
df and
dt are both approx. 50 mm and the insulation element width d is 660 mm and the length
l is 760 mm, i.e.
l =
d +
df +
dt. The dimensions ensure that a certain compression will always take place when fitting
the insulation panel.
[0029] As illustrated in the lower part of fig. 7, this format is adapted to fit four different
distances D
1 - D
4 covering the lower part of the range. If the distance D between the rafters is between
550 - 650 mm, i.e. D
1 or D
2, the insulation element is fitted with its longitudinal orientation parallel to the
rafters. If the rafter distance is within the D
1 range, the trim portion 3 along the first side is cut off and thereby reducing the
width to 610 mm and then compressing in particular the flexible zone for fitting the
insulation between the rafters. If the distance is within the D
2 range, the trim portion should not be cut off, as the insulation element fits between
the rafters with its longitudinal orientation substantially parallel to the rafters.
[0030] If the distance between the rafters is within the range of D
3 or D
4, i.e. between 650-750 mm, the advantage with an insulation element according to the
preferred embodiment of the invention as shown in fig. 2 and fig. 3 becomes apparent.
In this situation, the insulation element 1 is oriented with its longitudinal orientation
substantially perpendicular to the rafters and the second trim portion 5 may be cut
off if the distance is within the D
3 range.
[0031] In figure 8, a second "large" format is shown which similarly covers the rafter distance
range of 750-950 mm, i.e. D
5 to D
8. This "large" format insulation panel is provided with a length
l of 960 mm and a width
d of 860 mm. Again this insulation element may be oriented with its longitudinal orientation
parallel to the rafters or perpendicular to the rafters depending on the distance
D. The trim portions and the flexible portions are provided with the widths
df and
dt of approx. 50 mm.
[0032] This system in use is easy to illustrate and to instruct a user of how to trim and
install. Information about rafter distances could advantageously be printed on the
top of insulation element so that the user can easily find instructions on the product
during the insulation fitting operation.
[0033] A technical advantage of the dimensions of the two formats may be found in the production
of the fibrous insulation panels. The fibrous insulation panels are produced by cutting
up a fibrous material web of e.g. stone wool. This web is often produced with a width
of 2000 mm and by providing the "small" format with a width of 660 mm, three adjacent
lines of insulation panels may be cut from this material web leaving a minimum amount
of fibrous waste material. The "large" format may be produced in two adjacent lines
each with a width of 960 mm, which is the length of the longitudinal direction of
the "large" format panel. This also minimises the amount of waste material.
[0034] It should be emphasised that the dimensions of the insulation element and the distances
between the framework structures are explanatory and could be varied within the scope
of the invention which is defined in the accompanying claims. Other embodiment of
a fibrous insulation panel than the ones described above may be provided without departing
from the scope of the claims.
1. An insulation element (1) for fitting between elongated members (2) in a framework
of a building structure, such as between rafters, beams or the like, said insulation
element (1) being a fibrous insulation element, preferably a mineral wool batt, and
said insulation element (1) having substantially parallel first and second sides and
substantially parallel third and fourth sides, exhibiting a first side portion and
a substantially parallel opposing second side portion, wherein at least said first
side portion is provided as a trim portion (3) which is provided with a cutting marking
(7, 8) substantially parallel with the first side thereby defining an elongated trim
section (3, 5) along the first side, said trim section (3, 5) having a predetermined
width (dt),
characterised in that
at least said second side portion is provided as a flexible zone (4) extending along
the second side and comprising a flexible section (4, 6) of the insulation element
(1) which is substantially less rigid and thus compressible and which has a predetermined
width (df), and wherein the flexible zone (4, 6) is provided by softening the respective side
by compressing the edge region during manufacture and thereby reducing the fibre bonding
in the flexible section.
2. An insulation element according to claim 1, wherein the third side is provided with
a trim portion (5) extending along the third side and the fourth side is provided
with a flexible zone (6) comprising a flexible section extending along the fourth
side.
3. An insulation element according to claim 1 or 2, wherein the at least one trim portion
(3, 5) is provided by a cutting line (7, 8) parallel to the trim side, i.e. the first
- respectively third - side.
4. An insulation element according to claim 3, wherein said cutting line (7, 8) is a
visual line marker.
5. An insulation element according to claim 4, wherein said cutting line (7, 8) is a
pre-cut slit having a depth less than the thickness of the panel, preferably at least
50 mm and wherein said slit being substantially parallel to the trim side, i.e. the
first - respectively third - side.
6. An insulation element according to any of the preceding claims, wherein the trim section
width (dt) is substantially equal to the flexible section width (df).
7. An insulation element according to any of the preceding claims, wherein the first
and second sides are provided with a length (l) substantially equal to the sum of the width of the flexible zone (df), the width of the trim zone (dt) and the length of the third and fourth sides (d).
8. An insulation element according to any of the preceding claims, wherein the insulation
element (1) is provided with a density of 25-45 kg/m2, preferably 28-35 kg/m2.
9. An insulation element according to any of the preceding claims, wherein the insulation
element (1) is provided with a first top layer having a first density and a second
layer having a second density, said first density preferably being larger than the
second density.
10. An insulation element according to any of the preceding claims, wherein the insulation
element is provided with a thickness (t) between 100 and 400 mm.
1. Dämmelement (1) zum Einbau zwischen länglichen Gliedern (2) in einem Gebäuderahmen,
wie etwa zwischen Sparren, Balken oder dergleichen, wobei das Dämmelement (1) ein
Faserdämmstoffelement, vorzugsweise eine Mineralwollmatte ist, und das Dämmelement
(1) im Wesentlichen parallele erste und zweite Seiten und im Wesentlichen parallele
dritte und vierte Seiten hat, die einen ersten Seitenabschnitt und einen im Wesentlichen
parallelen gegenüberliegenden zweiten Seitenabschnitt aufweisen, wobei mindestens
der erste Seitenabschnitt als ein Abtrennabschnitt (3) vorgesehen ist, der mit einer
Abtrennmarkierung (7, 8) versehen ist, die im Wesentlichen parallel zur ersten Seite
ist, so dass ein länglicher Abtrennabschnitt (3, 5) entlang der ersten Seite gebildet
wird, wobei der Abtrennabschnitt (3, 5) eine vorbestimmte Breite (dt) hat,
dadurch gekennzeichnet, dass
mindestens der zweite Seitenabschnitt als eine flexible Zone (4) vorgesehen ist, die
sich entlang der zweiten Seite erstreckt und einen flexiblen Abschnitt (4, 6) des
Dämmelements (1) umfasst, der im Wesentlichen weniger starr und daher komprimierbar
ist, und der eine vorbestimmte Breite (df) hat, und wobei die flexible Zone (4, 6) mittels Weichmachen der entsprechenden Seite
durch Komprimieren des Randbereichs während der Herstellung gebildet wird, sodass
die Faserbindung in dem flexiblen Abschnitt reduziert ist.
2. Dämmelement nach Anspruch 1, wobei die dritte Seite mit einem Abtrennabschnitt (5)
versehen ist, der sich entlang der dritten Seite erstreckt, und die vierte Seite mit
einer flexiblen Zone (6) versehen ist, die einen flexiblen Abschnitt aufweist, der
sich entlang der vierten Seite erstreckt.
3. Dämmelement nach Anspruch 1 oder 2, wobei der mindestens eine Abtrennabschnitt (3,
5) durch eine Trennlinie (7, 8) parallel zur Abtrennseite, d.h. zur ersten bzw. zur
dritten Seite, gebildet wird.
4. Dämmelement nach Anspruch 3, wobei die Trennlinie (7, 8) eine sichtbare Markierungslinie
ist.
5. Dämmelement nach Anspruch 4, wobei die Trennlinie (7, 8) ein vorgestanzter Schlitz
mit einer Tiefe von weniger als die Dicke der Platte, vorzugsweise mindestens 50 mm
ist, und wobei der Schlitz im Wesentlichen parallel zur Abtrennseite, d.h. zur ersten
bzw. zur dritten Seite, ist.
6. Dämmelement nach einem der vorhergehenden Ansprüche, wobei die Breite des Abtrennabschnitts
(dt) im Wesentlichen gleich der Breite des flexiblen Abschnitts (df) ist.
7. Dämmelement nach einem der vorhergehenden Ansprüche, wobei die erste und zweite Seite
eine Länge (l) im Wesentlichen gleich der Summe der Breite der flexiblen Zone (df), der Breite der Abtrennzone (dt) und der Länge der dritten und vierten Seite (d) haben.
8. Dämmelement nach einem der vorhergehenden Ansprüche, wobei das Dämmelement (1) eine
Dichte von 25-45 kg/m2, vorzugsweise 28-35 kg/m2 hat.
9. Dämmelement nach einem der vorhergehenden Ansprüche, wobei das Dämmelement (1) eine
erste obere Schicht mit einer ersten Dichte und eine zweite Schicht mit einer zweiten
Dichte aufweist, wobei die erste Dichte vorzugsweise größer als die zweite Dichte
ist.
10. Dämmelement nach einem der vorhergehenden Ansprüche, wobei das Dämmelement eine Dicke
(t) von zwischen 100 und 400 mm hat.
1. Elément d'isolation (1) pour l'insertion entre des éléments allongés (2) dans un cadre
d'une structure de bâtiment, tels qu'entre des chevrons, poutres ou similaires, ledit
élément d'isolation (1) étant un élément d'isolation fibreux, de préférence un morceau
de laine minérale et ledit élément d'isolation (1) présentant des premier et second
côtés sensiblement parallèles et des troisième et quatrième côtés sensiblement parallèles,
présentant une première partie latérale et une seconde partie latérale opposée sensiblement
parallèle, dans lequel au moins ladite première partie latérale est prévue comme partie
de bord (3) qui est dotée d'un marquage de coupe (7, 8) sensiblement parallèle au
premier côté, définissant par là-même une section de bord allongée (3, 5) le long
du premier côté, ladite section de bord (3, 5) présentant une largeur (dt) prédéterminée,
caractérisé en ce que
au moins ladite seconde partie latérale est prévue comme une zone flexible (4) s'étendant
le long du second côté et comprenant une section flexible (4, 6) de l'élément d'isolation
(1) qui est sensiblement moins rigide et ainsi compressible et qui a une largeur prédéterminée
(d1) et dans lequel la zone flexible (4, 6) est prévue en amollissant le côté respectif
en compressant la région d'arête pendant la fabrication et réduisant par là-même le
collage des fibres dans la section flexible.
2. Elément d'isolation selon la revendication 1, dans lequel le troisième côté est doté
d'une partie de bord (5) s'étendant le long du troisième côté et le quatrième côté
est doté d'une zone flexible (6) comprenant une section flexible s'étendant le long
du quatrième côté.
3. Elément d'isolation (1) selon la revendication 1 ou 2, dans lequel l'au moins une
partie de bord (3, 5) est prévue par une ligne de coupe (7, 8) parallèle au côté de
bord, c'est-à-dire au premier, respectivement troisième, côté.
4. Elément d'isolation selon la revendication 3, dans lequel ladite ligne de coupe (7,
8) est un marqueur de ligne visuel.
5. Elément d'isolation selon la revendication 4, dans lequel ladite ligne de coupe (7,
8) est une fente prédécoupée présentant une profondeur inférieure à l'épaisseur du
panneau, de préférence d'au moins 50 mm et dans lequel ladite fente est sensiblement
parallèle au côté de bord, c'est-à-dire au premier, respectivement troisième, côté.
6. Elément d'isolation selon l'une quelconque des revendications précédentes, dans lequel
la largeur de section de bord (d1) est sensiblement égale à la largeur de section flexible (d1).
7. Elément d'isolation selon l'une quelconque des revendications précédentes, dans lequel
les premier et second côtés sont dotés d'une longueur (1) sensiblement égale à la
somme de la largeur de la zone flexible (d1), la largeur de la zone de bord (dt) et la longueur des troisième et quatrième côtés (d).
8. Elément d'isolation selon l'une quelconque des revendications précédentes, dans lequel
l'élément d'isolation (1) est doté d'une densité de 25 à 45 kg/m2, de préférence de 28 à 35 kg/m2.
9. Elément d'isolation selon l'une quelconque des revendications précédentes, dans lequel
l'élément d'isolation (1) est doté d'une première couche supérieure présentant une
première densité et d'une seconde couche présentant une seconde densité, ladite première
densité étant de préférence supérieure à la seconde densité.
10. Elément d'isolation selon l'une quelconque des revendications précédentes, dans lequel
l'élément d'isolation est doté d'une épaisseur (f) entre 100 et 400 mm.