[0001] The present invention relates to a connector, preferably of thin sheet metal, and
in particular to a connector for the concealed joining of a first component such as
a beam or a post to a second component made of wood or another material. The present
invention also relates to a connection formed using the connector, and to a method
forming a connection using the connector.
[0002] The connector according to the present invention has particular utility as a concealed
beam attachment or a post foot, and comprises a planar attachment web provided with
through holes which is to be received in a slot, generally in the end surface of the
first, typically wooden, component to be attached. The planar attachment web is also
provided with, or is capable of having formed in it, one or more apertures dimensioned
to receive the head of fasteners protruding from the second element. The connector
is first fastened to the second component, and then fastened to or configured to hold
the first component with fasteners such as dowels or the like which, in use, extend
through the through holes of the connector. The connector further comprises one or
more fastening flanges which, in use, are generally bent 90 degrees out of the plane
of the attachment web and configured integrally with the attachment web. The fastening
flange or flanges comprise one or more slots dimensioned to receive the shank of the
one or more fasteners protruding from the second component, so as to permit rotation
or twist of the connector from a first connector insertion position where the shank
of each fastener protruding from the second component passes through a slot and is
out of the plane of the attachment web to a second connector located position where
the shank of each fastener protruding from the second component passes through a slot
and is in of the plane of the attachment web.
[0003] In timber construction, for example, a concealed joint is understood to be a joint
in which the first timber component (or "joining element") is at least substantially
surrounded by other timber components. In a completely concealed joint, in which even
the receiving slot is not visible externally, the slot is configured not as a continuous
slot but as a "blind slot" in order to weaken the first timber component as little
as possible and to prevent the slot from being visible after assembly. Available for
this purpose are "keyway cutters". Alternatively, continuous slots are cut, generally
with a circular saw, into the end surface of a beam.
[0004] Connectors known in the art are generally no more than 1 mm less than the slot width
in which they are to be received in order to prevent the attachment web from "wobbling"
in the slot. Accordingly, the sheet thickness of such connectors has previously been
up to at least 6 mm. This gives rise to a requirement for an unnecessary use of raw
material, and it is also known that thicker sheets are more difficult and complex
to work. It is therefore desirable to reduce significantly the material thickness
of the type of connectors under discussion here, and embody them, for example, with
a sheet thickness of only up to 3 mm. However, in turn, this limits the load capacity
of known connectors and can complicate the assembly and number of parts required to
achieve the connection.
[0005] For example,
DE 9001067 discloses a connector formed from a thin sheet approximately 3 mm thick, and provides
its attachment web with formed embossment knobs or beads whose height is substantially
equal to the slot width of the first timber component being attached. Although the
risk of wobbling in a slot at least twice as wide can be reduced with a fitting of
this kind, nevertheless with such thin sheet metal the number of through holes, and
the number of fasteners to be installed in them, must be correspondingly large, since
otherwise the permissible hole face pressure in the through holes will be exceeded.
Also, the load capacity is limited as the fasteners in the second component cannot
be aligned in the plane of the attachment web.
[0006] In
JP11280161, a bolt attaching groove hole is made in a front plate of a channel-shaped box type
beam receiving fittings, and a bolt head inserting notch continuing to the bolt attaching
groove hole is provided. A bolt with the bolt head fitted to a bolt head inserting
notch of the beam receiving fittings is inserted to a hole in a column and the fittings
are fixed to the column by a nut. Next, side plates are inserted to notch grooves
provided at the end of the beam, a fixing piece fitted to a fitting hole of the beam
is attached to the linking edge of a notch supporting portion of the fitting, and
the beam is supported by the fittings. Thereafter, the fixing piece is fitted to the
fitting hole and a linking hole provided in the fittings and the column is fixed to
the beam.
[0007] In
US 5896721, the fasteners in the second component can be aligned in the plane of the attachment
web, but to achieve this requires a significant number of parts. This makes the connector
cumbersome and requires manual dexterity and accuracy for an installation to achieve
its design load capacity. However, incorrect installation of one or more of the parts
can result in significant reduction of load capacity.
[0008] The present invention addresses these known limitations of prior art connectors.
[0009] The present invention is a one-piece connector, made in particular of thin sheet
metal, in which the disadvantageous effects described above do not occur even under
extreme stresses that lie within the allowable range. In addition, the present invention
to provides a joining element which is suitable not only as a fitting for concealed
attachment of a beam, but also as a post foot.
[0010] In a first aspect, the present invention provides a connector as set forth in claim
1.
[0011] Preferred embodiments of the present invention will now be described by way of example
only with reference to the accompanying drawings, in which:
Figure 1 is a schematic perspective view of a connector according to a first preferred
embodiment of the present invention;
Figures 2a to 2c are schematic views of an installation sequence to achieve a connection
using the connector of Figure 1;
Figure 3 is a schematic plan view from above of the connector of Figure 1 used to
achieve a first connection configuration between a joist and a header beam;
Figures 4a to 4e are schematic views of the means of connection between the connector
of Figure 1 and the first component of Figure 3;
Figure 5 is a schematic plan view from above of the connector of Figure 1 used to
achieve a second connection configuration between a joist and a header beam;
Figure 6a and 6b illustrate schematically the different load transmission pathways
in a connector according to the present invention and a prior art connector;
Figure 7 is a schematic side elevation view of a connector according to a second preferred
embodiment of the present invention in its flat form configuration before its fastening
flange is folded and bent out of the plane of the attachment web;
Figures 7a to 7f are schematic views of an installation sequence to achieve a connection
using the connector of Figure 7; and
Figure 8 is a schematic side elevation view of a connector according to a third preferred
embodiment of the present invention in its raw flat form configuration before its
fastening flange is folded and bent out of the plane of the attachment.
[0012] Referring first to Figure 1, there is shown a schematic perspective view of a connector
10 according to a first preferred embodiment of the present invention. The connector
10 is a single cut sheet element for concealed joining of a first component 60, such
as a timber beam or a post, to a second component 80, which may be for example a timber
beam or joist extending perpendicularly therefrom (see Figure 3). Alternatively, the
connector 10 may, for example, be a foundation (affixed to the floor or other substructure)
on which a post is to be supported (not shown).
[0013] Connector 10 has an attachment web 30, provided with through holes 31, and a locating
slot 32, which in the depiction of Figure 1 has been folded about a bend line x-x
so as to form a fastening flange 50 arranged substantially perpendicular thereto.
An embossment 33 is provided to add strength and to help take up the space of the
slot in order to prevent the attachment web 30 from "wobbling" in the slot. The fastening
flange 50 comprises two slots 51, 52 each dimensioned to receive the shank of respective
bolts 90 protruding from the second component (not shown), so as to permit rotation
or twist of the connector 10 from a first connector insertion position where the shank
of each bolt 90 protruding from the second component passes through the slot 51, 52
and is out of the plane x-y of the attachment web 30, to a second connector located
position where the shank of each bolt 90 protruding from the second component passes
through a slot 51, 52 and is in of the plane x-y of the attachment web 30, as shown.
The attachment web 30 is also provided with, or is capable of having formed in it,
two apertures 61, 62 dimensioned to receive the nuts 91 used with bolts 90. Fastening
flange 50 is provided with optional through holes 53 for fasteners (e.g. nails), and
a strengthening embossment 54 is provided which traverses the bend line x-x between
attachment web 30 and fastening flange 50.
[0014] The embossments 33 and 54 provided on attachment web 30 are features known in the
art from DlN 6932. One bead of embossment 33 runs parallel to fold or bending line
x-x, and a further bead parallel to an edge.
[0015] Figures 2a to 2c are schematic views of an installation sequence to achieve a connection
using the connector of Figure 1. Two bolts 90 are arranged in line in a substantially
vertical spaced relationship so as to protrude from the second component (not shown).
A nut 91 is provided on each bolt 90 and serves to provide a head behind which the
sheet material of the connector 10 can be received. Connector 10 is offered up to
a surface of the second component in a slanted from vertical orientation, as illustrated
in Figure 2a, and inserted between the bolts 90 as illustrated in Figure 2b. When
the connector 10 is rotated or twisted as indicated by the arrows, the bolts 90 enter
the respective slots 51, 52 of the fastening flange 50. Once in a vertical orientation,
as illustrated in Figure 2c, the fastening flange 50 is retained behind respective
nuts 91 which are then tightened. Optional fasteners (e.g. nails) may then be employed
using through holes 53. Next, with reference to Figures 3 and 4a to 4e, attachment
web 30 is inserted into a slot 82, generally on the end surface, of the first component
80 to be attached (depicted in certain Figures only for clarity), and fastened or
held therein with fastening means such as dowels 95 or the like, which when installed
extend through locating slot 32 and through holes 31.
[0016] All through holes 31 of attachment web 30 are crimped over at their edges. ln Figure
4e, the crimped sections of through holes 31 are denoted by the depth L which is shown
proportionately to the thickness of material used for the connector 10.
Figure 5 is a schematic plan view from above of the connector of Figure 1 used to
achieve a second connection configuration between a joist and a header beam, and in
particular depicts a fully concealed connection.
Figure 6a and 6b illustrate schematically the different load transmission pathways
in a connector according to the present invention (Figure 6a) and a prior art connector
(Figure 6b).
[0017] Referring next to Figure 7, there is shown a schematic side elevation view of a connector
110 according to a second preferred embodiment of the present invention in its flat
form configuration before its fastening flange 150 is folded and bent out of the plane
of the attachment web 130. The connector 110 is again a single cut sheet element for
concealed joining of a first component 60, such as a timber beam or a post, to a second
component 80, which may be for example a timber beam or joist extending perpendicularly
therefrom (see Figures 7e and 7f). Alternatively, the connector 110 may, for example,
be a foundation (affixed to the floor or other substructure) on which a post is to
be supported (not shown).
[0018] Connector 110 has an attachment web 130, provided with through holes 131, and a locating
slot 132. The attachment web 130 will be folded about a bend line x-x so as to form
a fastening flange 150 arranged substantially perpendicular thereto. An embossment
133 is provided to add strength and to help take up the space of the slot in order
to prevent the attachment web 130 from "wobbling" in the slot. The fastening flange
150 comprises two enclosed slots 151, 152 each dimensioned to receive the shank of
respective bolts 190 protruding from the second component (not shown), so as to permit
rotation or twist of the connector 110 from a first connector insertion position where
the shank of each bolt 190 protruding from the second component passes through the
enclosed slot 151, 152 and is out of the plane x-y of the attachment web 130, to a
second connector located position where the shank of each bolt 190 protruding from
the second component passes through the enclosed slot 151, 152 and is in of the plane
x-y of the attachment web 130. The attachment web 130 is also provided with, or is
capable of having formed in it, two apertures 161, 162 dimensioned to receive the
nuts 191 used with bolts 190. Fastening flange 150 is provided with optional through
holes 153 for fasteners (e.g. nails), and a strengthening embossment (not shown) may
be provided which traverses the bend line x-x between attachment web 130 and fastening
flange 150 (see Figure 7d).
[0019] Figures 7a to 7f are schematic views of an installation sequence to achieve a connection
using the connector of Figure 7. Two bolts 190 are arranged in line in a substantially
vertical spaced relationship so as to protrude from the second component (not shown).
A nut 191 is provided for each bolt 190 and later serves to provide a head behind
which the sheet material of the connector 110 can be received. Connector 110 is offered
up to a surface of the second component in a slanted from vertical orientation, as
illustrated in Figure 7a, and inserted over the bolts 190 as illustrated in Figure
7a. Nuts 191 are then affixed to each bolt 190 to prevent withdrawal of the connector
110. When the connector 110 is rotated or twisted as indicated by the arrows in Figure
7c, the bolts 190 enter the respective vertically extending portions of enclosed slots
151, 152 of the fastening flange 150. Once in a vertical orientation, as illustrated
in Figure 7c, the fastening flange 150 is retained behind respective nuts 191 which
are then tightened. Optional fasteners (e.g. nails) may then be employed using through
holes 153. Next, with reference to Figures 7e and 7f, attachment web 130 is inserted
into a slot 182, generally on the end surface, of the first component 180 to be attached
(depicted partially in Figure 7e for clarity), and fastened or held therein with fastening
means such as dowels 195 or the like, which when installed extend through locating
slot 132 and through holes 131.
[0020] Referring next to Figure 8, there is shown a schematic side elevation view of a connector
210 according to a third preferred embodiment of the present invention in its raw
flat form configuration before its fastening flange 250 is folded and bent out of
the plane of the attachment web 230. The connector 210 is again a single cut sheet
element for concealed joining of a first component 60, such as a timber beam or a
post, to a second component 80, which may be for example a timber beam or joist extending
perpendicularly therefrom. Alternatively, the connector 210 may, for example, be a
foundation (affixed to the floor or other substructure) on which a post is to be supported
(not shown).
[0021] Connector 210 has an attachment web 230, provided with through holes 231, and a locating
slot 232. The attachment web 230 will be folded about a bend line x-x so as to form
a fastening flange 250 arranged substantially perpendicular thereto. An embossment
233 is provided to add strength and to help take up the space of the slot in order
to prevent the attachment web 230 from "wobbling" in the slot. The fastening flange
250 comprises one enclosed slot 251 and one open slot, 252 each dimensioned to receive
the shank of a fastener. ln particular, a bolt 290 is received in enclosed slot 251,
and a nail or other suitable fastener 295 is received in open slot 252, both fasteners
protruding from the second component (not shown), so as to permit rotation or twist
of the connector 210 from a first connector insertion position where the shank of
bolt 290 and fastener 295 protruding from the second component pass through the slots
251, 252 and out of the plane x-y of the attachment web 230, to a second connector
located position where the shank of bolt 290 and fastener 295 protruding from the
second component pass through the slots 251, 252 and in the plane x-y of the attachment
web 230. The attachment web 230 is also provided with, or is capable of having formed
in it, an aperture 261 dimensioned to receive the nut 291 used with bolt 290. Fastening
flange 250 is provided with optional through holes 253 for fasteners (e.g. nails),
and a strengthening embossment (not shown) may be provided which traverses the bend
line x-x between attachment web 230 and fastening flange 250.
[0022] The installation sequence is similar to that described above to achieve a connection
using the connector of Figure 7. A bolt 290 and a fastener 295 are arranged in line
in a substantially vertical spaced relationship so as to protrude from the second
component (not shown). A nut 291 is provided for bolt 290 and later serves to provide
a head behind which the sheet material of the connector 210 can be received. Connector
210 is offered up to a surface of the second component in a slanted from vertical
orientation and inserted over the bolt 290 and fastener 295. A nut 291 is then affixed
to bolt 290 to prevent withdrawal of the connector 210. Connector 210 is then rotated
or twisted about fastener 295 and bolt 290 enters the vertically extending portion
of enclosed slot 251 of the fastening flange 250. Once in a vertical orientation,
the fastening flange 250 is retained behind respective nut 291 and head of fastener
295 which are then tightened or inserted further as appropriate. Optional fasteners
(e.g. nails) may then be employed using through holes 253. Next, attachment web 230
is inserted into a slot 282, generally on the end surface, of the first component
to be attached, and fastened or held therein with fastening means such as dowels 295
or the like, which when installed extend through locating slot 232 and through holes
231.
[0023] As is already apparent from the foregoing, the connector 10, 110, 210 according to
the present invention can be used not only as a perforated sheet-metal fitting for
concealed beam attachment, but also as a post foot.
[0024] Whilst it is envisaged that connectors according to the present invention will be
metallic and used in timber construction, the present invention is not limited as
such. Connectors according to the present invention may be made from any suitable
material and by any suitable manufacturing process, and may be formed from multiple
parts or as a single part. Furthermore, the connectors according to the present invention
may be used in any suitable connection application, e.g. concrete, brick, block, composites
etc. and affixed using any suitable fasteners.
[0025] Whilst reference herein is made to the terms vertical, horizontal, above, below,
x-x plane, x-y plane, etc., this does not infer any strict position, but simply the
relative position or orientation of features or other things with reference to a connector,
e.g. as shown in Figure 1.
[0026] Each feature disclosed in this specification (including the accompanying claims and
drawings), may be replaced by alternative features serving the same, equivalent or
similar purpose, unless expressly stated otherwise. Thus, unless expressly stated
otherwise, each feature disclosed is one example only of a generic series of equivalent
or similar features. In addition, all of the features disclosed in this specification
(including the accompanying claims and drawings), and/or all of the steps of any method
or process so disclosed, may be combined in any combination, except combinations where
at least some of such features and/or steps are mutually exclusive. Accordingly, while
many different embodiments of the present invention have been described above, any
one or more or all of the features described, illustrated and/or claimed in the appended
claims may be used in isolation or in various combinations in any embodiment. For
the avoidance of doubt, any one or more of the features of any embodiment may be combined
and/or used separately in a different embodiment with any other feature or features
from any of the embodiments.
[0027] Whilst preferred embodiments of the present invention have been described above and
illustrated in the drawings, these are by way of example only and non-limiting. It
will be appreciated by those skilled in the art that many alternatives are possible
within the ambit of the invention. As such, the true scope of the invention is that
as set out in the appended claims.
1. A connector (10) for use in fastening a first component having a slot at an end surface
thereof to a second component, the connector (10) comprising:
at least one fastening flange (50) for affixing, in use, the connector (10) to the
second member;
an attachment web (30) arranged substantially perpendicular to the at least one fastening
flange (50) for affixing, in use, the connector (10) to the first member;
the at least one fastening flange (50) comprising at least two slots (51, 52) each
for receiving, in use, the shank of a fastener;
characterised in that the at least two slots (51, 52) permit, in use, rotation or twisting of the connector
(10) about its fastening flange (50) to effect installation of the connector (10)
such that the shanks of at least two fasteners move from a first connector insertion
position where the shank of each of the at least two fasteners passes through a slot
(51, 52) and is out of the plane of the attachment web (30) to a second connector
located position where the shank of each of the at least two fasteners passes through
a slot (51, 52) and is in the plane of the attachment web (30).
2. A connector (10) according to claim 1 wherein the at least two slots (51, 52) are
open slots.
3. A connector (10) according to claim 1 wherein the at least two slots (51, 52) are
closed slots.
4. A connector (10) according to claim 1 wherein at least one of the at least two slots
(51, 52) is a closed slot and at least one of the at least two slots (51, 52) is an
open slot.
5. A connector (10) according to any one of claims 1 to 4 wherein the connector (10)
is formed of a substantially plate like element or substantially plate like elements.
6. A connector (10) according to any one of the preceding claims wherein the connector
(10) is affixed to the first and/or second components by mechanical fasteners.
7. A connector (10) according to any one of the preceding claims wherein the connector
(10) is formed from sheet metal.
8. A connector (10) assembly comprising the connector (10) of any one of claims 1 to
7 and two or more mechanical fasteners.
9. A connector assembly according to claim 8 wherein the two or more mechanical fasteners
comprise at least one bolt.
10. A connection between a first component and a second component formed using the connector
(10) according to any one of claims 1 to 7.
11. A connection between a first timber component and a second component formed using
the connector (10) according to any one of claims 1 to 7.
12. A method of forming a connection between a first component and a second component
using the connector (10) of any one of claims 1 to 7, the method comprising the step
of rotating or twisting the connector (10) about its fastening flange (50) to effect
installation of the connector (10) such that the shanks of at least two fasteners
move from a first connector insertion position where the shank of each of the at least
two fasteners passes through a slot (51, 52) and is out of the plane of the attachment
web (30) to a second connector located position where the shank of each of the at
least two fasteners passes through a slot (51, 52) and is in the plane of the attachment
web (30).
1. Verbindungselement (10) zur Verwendung bei einem Befestigen einer ersten Komponente,
welche eine Aussparung an einer Endfläche davon aufweist, an einer zweiten Komponente,
wobei das Verbindungselement (10) umfasst:
wenigstens einen Befestigungsflansch (50) zum Anbringen des Verbindungselements (10)
an dem zweiten Element bei Verwendung;
einen Halterungssteg (30), welcher im Wesentlichen senkrecht zu dem wenigstens einen
Befestigungsflansch (50) angeordnet ist, zum Anbringen des Verbindungselements (10)
an dem ersten Element bei Verwendung;
wobei der wenigstens eine Befestigungsflansch (50) wenigstens zwei Aussparungen (51,
52) umfasst, jeweils zum Aufnehmen eines Zapfens eines Befestigungselements;
dadurch gekennzeichnet, dass die wenigstens zwei Aussparungen (51, 52) bei Verwendung eine Rotation oder ein Verdrehen
des Verbindungselements (10) um seinen Befestigungsflansch (50) erlauben, um eine
Installation des Verbindungselements (10) derart hervorzurufen, dass die Zapfen von
wenigstens zwei Befestigungselementen sich von einer ersten Verbindungselement-Einführposition,
in welcher der Zapfen von jedem der wenigstens zwei Befestigungselemente durch eine
Aussparung (51, 52) hindurchtritt und außerhalb der Ebene des Halterungsstegs (30)
liegt, zu einer zweiten Verbindungselement-Anordnungsposition bewegen, in welcher
der Zapfen von jedem der wenigstens zwei Befestigungselemente durch eine Aussparung
(51, 52) hindurchtritt und in der Ebene des Halterungsstegs (30) liegt.
2. Verbindungselement (10) nach Anspruch 1, wobei die wenigstens zwei Aussparungen (51,
52) offene Aussparungen sind.
3. Verbindungselement (10) nach Anspruch 1, wobei die wenigstens zwei Aussparungen (51,
52) geschlossene Aussparungen sind.
4. Verbindungselement (10) nach Anspruch 1, wobei wenigstens eine der wenigstens zwei
Aussparungen (51, 52) eine geschlossene Aussparung ist und wenigstens eine der wenigstens
zwei Aussparungen (51, 52) eine offene Aussparung ist.
5. Verbindungselement (10) nach einem der Ansprüche 1 bis 4, wobei das Verbindungselement
(10) aus einem im Wesentlichen Platten-artigen Element oder aus im Wesentlichen Platten-artigen
Elementen gebildet ist.
6. Verbindungselement (10) nach einem der vorhergehenden Ansprüche, wobei das Verbindungselement
(10) an der ersten oder/und zweiten Komponente durch mechanische Befestigungselemente
angebracht ist.
7. Verbindungselement (10) nach einem der vorhergehenden Ansprüche, wobei das Verbindungselement
(10) aus Metallblech gebildet ist.
8. Verbindungselement (10)-Anordnung umfassend das Verbindungselement (10) nach einem
der Ansprüche 1 bis 7 und zwei oder mehr mechanische Befestigungselemente.
9. Verbindungselement-Anordnung nach Anspruch 8, wobei die zwei oder mehr mechanischen
Befestigungselemente wenigstens einen Bolzen umfassen.
10. Verbindung zwischen einer ersten Komponente und einer zweiten Komponente, welche unter
Verwendung des Verbindungselements (10) nach einem der Ansprüche 1 bis 7 gebildet
ist.
11. Verbindung zwischen einer ersten Holzkomponente und einer zweiten Komponente, welche
unter Verwendung des Verbindungselements (10) nach einem der Ansprüche 1 bis 7 gebildet
ist.
12. Verfahren zum Bilden einer Verbindung zwischen einer ersten Komponente und einer zweiten
Komponente unter Verwendung des Verbindungselements (10) nach einem der Ansprüche
1 bis 7, wobei das Verfahren den Schritt eines Rotierens oder Verdrehens des Verbindungselements
(10) um seinen Befestigungsflansch (50) umfasst, um eine Installation des Verbindungselements
(10) derart hervorzurufen, dass die Zapfen von wenigstens zwei Befestigungselementen
sich von einer ersten Verbindungselement-Einführposition, in welcher der Zapfen von
jedem der wenigstens zwei Befestigungselemente durch eine Aussparung (51, 52) hindurchtritt
und außerhalb der Ebene des Halterungstegs (30) liegt, zu einer zweiten Verbindungselement-Anordnungsposition
bewegen, in welcher der Zapfen von jedem der wenigstens zwei Befestigungselemente
durch eine Aussparung (51, 52) hindurchtritt und in der Ebene des Halterungsgewebes
(30) liegt.
1. Connecteur (10) destiné à être utilisé pour fixer un premier composant ayant une fente
au niveau de sa surface d'extrémité, à un second composant, le connecteur (10) comprenant
:
au moins une bride de fixation (50) pour fixer, à l'usage, le connecteur (10) au second
élément ;
une âme de fixation (30) agencée sensiblement perpendiculairement à la au moins une
bride de fixation (50) pour fixer, à l'usage, le connecteur (10) au premier élément
;
la au moins une bride (50) comprenant au moins deux fentes (51, 52) recevant chacune,
à l'usage, la tige d'une fixation ;
caractérisé en ce que les au moins deux fentes (51, 52) permettent à l'usage, la rotation ou la torsion
du connecteur (10) autour de sa bride de fixation (50) pour effectuer l'installation
du connecteur (10) de sorte que les tiges d'au moins deux fixations passent d'une
première position d'insertion de connecteur dans laquelle la tige de chacune des au
moins deux fixations passe à travers une fente (51, 52) et sort du plan de l'âme de
fixation (30), à une seconde position déterminée de connecteur dans laquelle la tige
de chacune des au moins deux fixations passe à travers une fente (51, 52) et est dans
le plan de l'âme de fixation (30).
2. Connecteur (10) selon la revendication 1, dans lequel les au moins deux fentes (51,
52) sont des fentes ouvertes.
3. Connecteur (10) selon la revendication 1, dans lequel les au moins deux fentes (51,
52) sont des fentes fermées.
4. Connecteur (10) selon la revendication 1, dans lequel au moins l'une des au moins
deux fentes (51, 52) est une fente fermée et au moins l'une des au moins deux fentes
(51, 52) est une fente ouverte.
5. Connecteur (10) selon l'une quelconque des revendications 1 à 4, dans lequel le connecteur
(10) est formé avec un élément sensiblement en forme de plaque ou des éléments sensiblement
en forme de plaque.
6. Connecteur (10) selon l'une quelconque des revendications précédentes, dans lequel
le connecteur (10) est fixé aux premier et/ou second composants par des fixations
mécaniques.
7. Connecteur (10) selon l'une quelconque des revendications précédentes, dans lequel
le connecteur (10) est formé à partir d'une tôle métallique.
8. Ensemble de connecteur (10) comprenant le connecteur (10) selon l'une quelconque des
revendications 1 à 7 et deux ou plusieurs fixations mécaniques.
9. Ensemble de connecteur selon la revendication 8, dans lequel les deux ou plusieurs
fixations mécaniques comprennent au moins un boulon.
10. Raccordement entre un premier composant et un second composant, formé en utilisant
le connecteur (10) selon l'une quelconque des revendications 1 à 7.
11. Raccordement entre un premier composant en bois de charpente et un second composant
formé en utilisant le connecteur (10) selon l'une quelconque des revendications 1
à 7.
12. Procédé pour former un raccordement entre un premier composant et un second composant
en utilisant le connecteur (10) selon l'une quelconque des revendications 1 à 7, le
procédé comprenant l'étape consistant à faire tourner ou tordre le connecteur (10)
autour de sa bride de fixation (50) pour effectuer l'installation du connecteur (10)
de sorte que les tiges d'au moins deux fixations passent d'une première position d'insertion
de connecteur dans laquelle la tige de chacune des au moins deux fixations passe à
travers une fente (51, 52) et sort du plan de l'âme de fixation (30) à une seconde
position déterminée de connecteur dans laquelle la tige de chacune des au moins deux
fixations passe à travers une fente (51, 52) et est dans le plan de l'âme de fixation
(30).