[0001] The present invention pertains to a floor construction comprising a floor including
a gap in which a rigid thermal insulation element is mounted, wherein the insulation
element comprises an upper side and an opposite lower side.
[0002] Such a floor construction is known in the prior art. Typically in case of floor constructions
in which the floor is constituted of concrete slabs having standardized sizes a gap
between two neighbouring slabs may arise. Below the floor a crawl space or cellar
may be present such that the optical requirements of the floor as seen from below
are less relevant. Such a gap is normally filled by means of a block of polystyrene.
Depending on the width of the gap a block is fit to size by sawing a piece out of
a large block at the construction site. It is however disadvantageous to perform time-consuming
work at the construction site. Alternatively, polystyrene blocks of several different
dimensions are supplied to the construction site such that the constructor can select
a fitting block and insert it into the gap. However, this is undesired from a logistical
point of view since a series of unused blocks will be transported to and from the
construction site.
[0003] Furthermore, the rigid thermal insulation element must be easily insertable into
the gap, on the one hand, but should not fall through the gap if a person stands on
the installed insulation element at the construction site, on the other hand.
[0004] It is an object of the invention to provide a floor construction which eliminates
the above-mentioned disadvantages and which can be installed in a simple manner.
[0005] This is achieved with the floor construction according to the invention, which is
characterized in that the insulation element is provided with at least a groove extending from the lower
side toward the upper side and ending at a groove bottom so as to form tongues at
both sides of the groove, which are mutually pivotable about a pivoting axis extending
between the groove bottom and the upper side.
[0006] The pivoting characteristics of the tongues due to the presence of the groove provides
a certain degree of compressibility of the rigid insulation element although the element
is made from a rigid material. In other words, a lower portion of the insulation element
adjacent to the lower side can be compressed with respect to an upper portion adjacent
to the upper side of the insulation element. This facilitates inserting the rigid
insulation element into the gap. For example, in case of a block-shaped insulation
element having a rectangular cross-section the insulation element obtains a wedge
shape upon pivoting the tongues to each other.
[0007] The tongues may be pivoted towards each other such that the groove is closed when
the insulation element is installed in the gap. In an installed condition the groove
may be open or partly open, but in certain cases the tongues may be pressed to each
other, depending on the inner shape of the gap.
[0008] In a specific embodiment the width of the gap decreases in a direction from the upper
side to the lower side of the insulation element. Due to this configuration a stronger
compressing force may be exerted onto the insulation element upon displacing downwardly
within the gap. Consequently, upon moving downwardly the tongues will be displaced
to each other hence deforming the insulation element further until it arrives in a
self-clamped condition.
[0009] The insulation element may be block shaped, wherein the groove extends in longitudinal
direction thereof. This allows to deform the insulating element into a wedge shape.
[0010] In a particular embodiment the insulation element has an arched cross-section, wherein
preferably the lower side is formed by the concave surface of the insulation element.
In this embodiment the rigid thermal insulation element has already a natural wedge
shape even without pivoting neighbouring tongues to each other. This means that the
groove may be very narrow, which simplifies the method of manufacturing and minimizes
loss of material. The groove may be made by means of displacing a hot wire through
the material of the insulation element.
[0011] Preferably, the upper side of the insulation element extends below an upper surface
of the floor adjacent to the gap, since the remaining space above the insulation element
can be filled with concrete so as to obtain a flat upper surface of the floor.
[0012] In a practical embodiment the floor is formed by concrete slabs, whereas the gap
extends between two neighbouring slabs. The slabs may be provided with a thermal insulation
layer, which is attached to the lower side of a concrete layer of the slabs.
[0013] The width of the groove may be smaller than the distance between the groove bottom
and the upper side in order to obtain sufficient strength of the insulation element.
The groove may be tapered as seen from the lower side to the groove bottom and/or
the tongues may be tapered as seen from the groove bottom to the lower side. In case
of a varying groove width the maximum groove width may be smaller than the distance
between the groove bottom and the upper side. Alternatively, the maximum distance
that the tongues can be displaced until they touch each other may be smaller than
the distance between the groove bottom and the upper side.
[0014] The groove may be one of a plurality of similar grooves extending substantially parallel
to each other. The advantage of this embodiment is that the element can be fit to
size easily by cutting the element in longitudinal direction at one of the grooves.
This allows a constructor to cut the insulation element to size at the construction
site, depending on the gap width. It is noted that the grooves have different functions.
On the one hand, due to the resulting pivoting effect, the rigid insulation element
can be partly deformed, for example to deform a block shape into a wedge shape. On
the other hand, the plurality of grooves provide the opportunity to fit the insulation
element to size at the construction site. Therefore, in case of an arched-shape insulation
element which already has a wedge shape, the deformation or pivoting effect is less
relevant such that the grooves may be relatively narrow.
[0015] In a preferred embodiment the insulation element is adapted such that it can be broken
along one of the grooves at the corresponding groove bottom by hand force, since additional
tools like a saw can be omitted. Breaking a large insulation element in one or more
pieces along the grooves will become easier if the thickness between the groove bottoms
and the upper side is reduced.
[0016] The insulation element may be made of a closed-cell foam, preferably expanded polystyrene
(EPS), but alternative materials are conceivable, for example extruded polystyrene
(XPS), polyisocyanurate (PIR), polyurethane (PUR) or the like. EPS is a rigid and
tough, closed-cell foam. It is usually made of pre-expanded polystyrene beads. EPS
is often applied in insulating buildings and has good properties to score so as to
create a groove therein. Thermal conductivity varies between 0.03 and 0.04 W/(m.K)
depending on bearing strength/density.
[0017] The invention is also related to a rigid thermal insulation element for filling a
gap in a floor construction as described hereinbefore. More specifically, the invention
is also related to a rigid thermal insulation element comprising an upper side and
an opposite lower side, wherein the element is made of EPS or a similar rigid thermal
insulation material, and wherein the element is provided with at least a groove extending
from the lower side toward the upper side and ending at a groove bottom so as to form
tongues at both sides of the groove, which are mutually pivotable about a pivoting
axis extending between the groove bottom and the upper side. The element may further
have one or more of the technical features as described hereinbefore.
[0018] The invention is also related to a method of installing a rigid thermal insulation
element in a floor gap, comprising the steps of supplying a rigid thermal insulation
element comprising an upper side and an opposite lower side, and a plurality of parallel
grooves, each extending from the lower side toward the upper side and ending at a
groove bottom, wherein the width of the insulation element in transverse direction
of the grooves is larger than the width of the gap, measuring the width of the gap,
and dividing the insulation element along one of the grooves such that the width of
one of the resulting pieces is slightly larger than the width of the gap. Due to the
presence of the grooves a lower portion of the piece of the insulation element adjacent
to the lower side can be compressed so as to reduce its width for easily inserting
it into the gap. Therefore, the insulation element is divided such that in a compressed
condition the element at least partly fits into the gap. Preferably, the insulation
element is divided by hand since that minimizes installation time.
[0019] The invention will hereafter be elucidated with reference to drawings showing embodiments
of the invention very schematically.
Fig. 1 is a perspective view of a part of an embodiment of a floor construction according
to the invention.
Fig. 2 is a side view of a rigid thermal insulation element in the embodiment of Fig.
1.
Fig. 3 is a similar view as Fig. 2, but showing an alternative embodiment.
Fig. 4 is a perspective view of a part of the embodiment of Fig. 3.
Fig. 5 is a perspective view of still another embodiment of the insulation element.
Figs. 6-9 are cross-sectional views of alternative embodiments of a floor construction
according to the invention.
Figs. 10-12 are similar views as Figs. 6-9, but showing alternative embodiments.
[0020] Fig. 1 shows a part of an embodiment of a floor construction 1 according to the invention.
The floor construction 1 comprises a floor which is formed by hollow core concrete
slabs 2. In a major part of the floor the slabs 2 are placed adjacent to each other
or very close to each other. In practice, the surface area of the intended floor deviates
from the sum of the surface areas of the individual slabs 2. Often the dimensions
of the slabs 2 are standardized, for example a width of 600, 900 or 1200 mm. As a
consequence, a gap 3 between two neighbouring slabs 2 may arise. This is illustrated
in Fig. 1. It is noted that such a gap 3 is generally undesired in cases in which
the floor is located at a storey of a building where a lower side of the floor forms
a ceiling. However, if the floor is a ground floor and the space below the floor is
used as a crawl space or cellar the gap 3 may be present. In that case esthetical
requirements are limited. The width of the gap 3 may be 300 mm, but a wider or narrower
gap 3 is conceivable.
[0021] In general the floor requires thermal insulating properties. For this reason the
slabs 2 are often provided with an insulation layer at a lower side thereof. In order
to insulate the entire floor the gap 3 should be filled by an insulation material,
as well. Furthermore, the insulation material should be strong enough to withstand
the weight of a person who walks on the floor during the period of building.
[0022] In the embodiment as shown in Fig. 1 a rigid thermal insulation element 4 is mounted
in the gap 3. The rigid thermal insulation element 4 comprises an upper side 5 and
an opposite lower side 6. The upper side 5 of the insulation element 4 extends below
the upper surfaces of the slabs 2 adjacent to the gap 3. The remaining space between
the slabs 2 and above the insulation element 4 can be filled with concrete. Therefore,
the insulation element 4 should be able to withstand the weight of a concrete layer.
[0023] The rigid insulation element 4 may be made of a closed-cell foam, for example expanded
polystyrene (EPS). Alternative materials are conceivable as long as the material is
substantially rigid. Therefore, it must be more rigid than soft insulation material
like glass fibre mats.
[0024] In the embodiment as shown in Fig. 1 the insulation element 4 is block shaped. The
insulation element 4 is provided with five parallel scores or grooves 7, which result
in six tongues 8. The grooves 7 and tongues 8 extend in longitudinal direction of
the insulation element 4. Furthermore, the grooves 8 extend from the lower side 6
toward the upper side 5. Each of the grooves 7 ends at a groove bottom 9, which is
shown in Fig. 2. Of course, the number of grooves 7 and tongues 8 may be different
and depends on the width of the gap 3 and the dimensions of the insulation element
4. The length of the insulation element 4 may be shorter than the length of the slabs
2 such that a plurality of insulation elements 4 can be placed behind each other to
fill the gap 3 along its entire length.
[0025] Due to the presence of the grooves 7 the tongues 8 are displaceable with respect
to each other in a direction perpendicular to the grooves 7. In fact, pivots are formed
between the groove bottoms 9 and the upper side 5. Consequently, although the insulation
element 4 is made from a rigid material a lower portion thereof obtains a certain
degree of compressibility. This provides the opportunity to compress a lower portion
of the insulation element 4 so as to insert it into the gap 3 easily. Comparing the
conditions of the insulation element 4 in Fig. 2 and Fig. 1, it can be seen that the
insulation element 4 is changed to a wedge shape in the installed condition of the
floor construction 1 as illustrated in Fig. 1.
[0026] In the embodiment as shown in Fig. 1 the width of the gap 3 decreases in downward
direction, i.e. in a direction from the upper side 5 to the lower side 6 of the insulation
element 4. On the other hand, the insulation element 4 obtains a wedge shape such
that the insulation element 4 will be self-clamping upon moving downwardly within
the gap 3.
[0027] Fig. 3 shows a side view of an alternative embodiment of the insulation element 4,
whereas Fig. 4 shows a part thereof in perspective view. The shapes of the grooves
7 and tongues 8 of this embodiment are different with respect to those of the embodiment
as shown in Fig. 2. The tongues 8 are tapered toward their free ends and the grooves
8 terminate pointed at their groove bottoms 9. The widths of the grooves 8 vary in
their depth direction. In general, the maximum width of the groove 8 is preferably
smaller than the thickness of the element 4 between the groove bottom 9 and the upper
side 5.
[0028] Fig. 5 shows still another embodiment of the insulation element 4. In this case the
insulation element 4 has an arched cross-section. The lower side 6 is formed by the
concave surface of the insulation element 4. The curvature of the arched insulation
element 4 may vary per product or from product-to-product. The curvature of the lower
side 6 and/or of the upper side 5 may have centre lines that extend parallel to each
other or coincide. In general, the centre lines are straight lines extending in longitudinal
direction of the insulation element 4.
[0029] The insulation element 4 can be adapted such that a desired width can be broken at
one of the grooves 7 by hand force. In case of installing a piece of an insulation
element 4 in a gap 3, the width of the gap 3 can be measured. Subsequently, an insulation
element 4 larger than the gap width can be divided along one of the grooves 8 such
that the width of one of the resulting pieces is slightly larger than the gap width.
Alternatively, a skilled constructor may count the number of tongues 8 that corresponds
to the desired width. Upon inserting the insulation element 4 into the gap 3 a compressing
force can be exerted onto the tongues 8 in transverse direction of the insulation
element 4 until the tongues 8 touch each other.
[0030] Figs. 6-9 show different embodiments of the floor construction 1. The embodiments
are comparable to the embodiment as shown in Fig. 1, but in these cases the widths
of the respective gaps 3 are different and the insulation elements 4 are of the arched
type as shown in Fig. 5. Of course, the insulation element 4 according to Fig. 3 can
be used instead. Figs. 6-9 illustrate that the insulation elements 4 are cut to size
corresponding to the actual gap width. The slabs 2 of the embodiments comprise insulation
layers 10 which are attached to the concrete portions of the slabs 2. It is noted
that lower portions of side edges of the concrete portion of the slabs 2 of the embodiment
according to Fig. 6 are inclined such that the gap 3 between the slabs 2 is tapered
in downward direction.
[0031] Figs. 10-12 show further alternative embodiments of the floor construction 1, in
which the insulation elements 4 are also of the arched type, but the slabs 2 are of
the type ribbed floor slabs.
[0032] From the foregoing it will be apparent that the invention provides an improved floor
construction having a floor including a gap which can be filled by a rigid thermal
insulation element in a simple manner.
[0033] The invention is not restricted to the above-described embodiments as shown in the
drawings, which can be varied in several ways without departing from the scope of
the invention. The floor may be built-up in a different manner than by means of concrete
slabs.
1. A floor construction (1) comprising a floor including a gap (3) in which a rigid thermal
insulation element (4) is mounted, wherein the insulation element (4) comprises an
upper side (5) and an opposite lower side (6), characterized in that the insulation element (4) is provided with at least a groove (7) extending from
the lower side (6) toward the upper side (5) and ending at a groove bottom (9) so
as to form tongues (8) at both sides of the groove (7), which are mutually pivotable
about a pivoting axis extending between the groove bottom (9) and the upper side (5).
2. A floor construction (1) according to claim 1, wherein the width of the gap (3) decreases
in a direction from the upper side (5) to the lower side (6) of the insulation element
(4).
3. A floor construction (1) according to claim 1 or 2, wherein the insulation element
(4) is block shaped and the groove (7) extends in longitudinal direction thereof.
4. A floor construction (1) according to claim 1 or 2, wherein the insulation element
(4) has an arched cross-section, whereas preferably the lower side (6) is formed by
the concave surface of the insulation element (4).
5. A floor construction (1) according to one of the preceding claims, wherein the upper
side (5) of the insulation element (14) extends below an upper surface of the floor
adjacent to the gap (3).
6. A floor construction (1) according to one of the preceding claims, wherein the floor
is formed by concrete slabs (2), whereas the gap (3) extends between two neighbouring
slabs (2).
7. A floor construction (1) according to one of the preceding claims, wherein the width
of the groove (7) is smaller than the distance between the groove bottom (9) and the
upper side (5).
8. A floor construction (1) according to one of the preceding claims, wherein the groove
(7) extends substantially perpendicularly to the lower side (6).
9. A floor construction (1) according to one of the preceding claims, wherein the groove
(7) is tapered as seen from the lower side (6) to the groove bottom (9) and/or wherein
the tongues (8) are tapered as seen from the groove bottom (9) to the lower side (6).
10. A floor construction (1) according to one of the preceding claims, wherein the groove
(7) is one of a plurality of similar grooves (7) extending substantially parallel
to each other.
11. A floor construction (1) according to claim 10, wherein the insulation element (4)
is adapted such that it can be broken along one of the grooves (7) at the corresponding
bottom groove (8) by hand force.
12. A floor construction (1) according to one of the preceding claims, wherein the insulation
element (4) is made of a closed-cell foam, preferably expanded polystyrene (EPS).
13. A rigid thermal insulation element (4) for filling a gap (3) in a floor construction
(1) according to one of the preceding claims.
14. A method of installing a rigid thermal insulation element (4) in a floor gap (3),
comprising the steps of
supplying a rigid thermal insulation element (4) comprising an upper side (5) and
an opposite lower side (6), and a plurality of parallel grooves (7), each extending
from the lower side (6) toward the upper side (5) and ending at a groove bottom (9),
wherein the width of the insulation element (4) in transverse direction is larger
than the width of the gap (3),
measuring the width of the gap (3),
dividing the insulation element (4) along one of the grooves (7) such that the width
of one of the resulting pieces is slightly larger than the width of the gap (3).