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(11) |
EP 0 876 226 B1 |
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EUROPEAN PATENT SPECIFICATION |
| (45) |
Mention of the grant of the patent: |
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05.12.2001 Bulletin 2001/49 |
| (22) |
Date of filing: 24.01.1997 |
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International Patent Classification (IPC)7: B21B 1/08 |
| (86) |
International application number: |
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PCT/IB9700/137 |
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International publication number: |
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WO 9727/009 (31.07.1997 Gazette 1997/33) |
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ROLL-FORMING UTILIZING SPLITTING TECHNOLOGY
FORMWALZEN MIT VERWENDUNG VON TRENNUNGSTECHNOLOGIE
PROFILAGE PAR TECHNIQUE DE FENDAGE
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Designated Contracting States: |
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AT DE ES FR GB IT |
| (30) |
Priority: |
26.01.1996 US 592538
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Date of publication of application: |
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11.11.1998 Bulletin 1998/46 |
| (73) |
Proprietor: COSMA INTERNATIONAL INC. |
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Markham, Ontario L3R 4Y4 (CA) |
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| (72) |
Inventor: |
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- JAEKEL, Fred, G.
Richmond Hills, Ontario L4E 2R3 (CA)
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| (74) |
Representative: Hössle, Markus, Dipl.-Phys. |
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Hössle & Kudlek,
Patentanwälte,
Diemershaldenstrasse 23 70184 Stuttgart 70184 Stuttgart (DE) |
| (56) |
References cited: :
EP-A- 0 493 333 FR-A- 2 033 349 US-A- 1 544 776
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FR-A- 369 516 GB-A- 2 200 060
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- PATENT ABSTRACTS OF JAPAN vol. 10, no. 83 (M-466), 2 April 1986 & JP 60 223621 A (HITACHI),
8 November 1985,
- PATENT ABSTRACTS OF JAPAN vol. 11, no. 114 (M-579), 10 April 1987 & JP 61 259801 A
(HITACHI), 18 November 1986,
- PATENT ABSTRACTS OF JAPAN vol. 10, no. 109 (M-472), 23 April 1986 & JP 60 240303 A
(HITACHI)
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| |
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
BACKGROUND OF THE INVENTION
Field of the Invention
[0001] The present invention relates to roll-forming structural members, and, in particular,
to a method of roll-forming I-beams using splitting technology.
Background Information
[0002] Roll-forming techniques have been employed to form structural members such as I-beams.
One example of such a method is described in JP-A-60-22362 and GB-A-2 200 060 and
includes providing a sheet blank having a thickness twice the thickness of the flanges
of the I-beam which is to be ultimately formed. In a first roll stand, ends of the
blank are split along the longitudinal axis thereof forming opposing flange portions
at each end. The flange portions are then bent or straightened at each end of the
blank in another roll stand so as to define the opposing flanges which are disposed
generally transverse to the web or central portion of the I-beam. To achieve web and
flange thicknesses which are generally equal, a further rolling operation must be
performed on the web or central portion, between the flanges, reducing the thickness
thereof to be equal to that of the flanges.
[0003] There is a continuing need to improve the method of roll-forming an I-beam structure
such that the method is easy to perform and inexpensive to accomplish.
SUMMARY OF THE INVENTION
[0004] An object of the present invention is to fulfill a need referred to above. In accordance
with the principles of the present invention, this objective is obtained by providing
a method of roll-forming an I-beam structure having a web and a pair of opposing flanges
at each end of the web. The method includes the steps of providing a flat blank having
a thickness generally equal to a thickness of the web of the I-beam to be formed.
The blank has a thickness thereof defined by opposite surfaces and terminating in
opposite longitudinal ends. The blank has a longitudinal axis extending through the
thickness of the blank. Each end of the blank is split along its thickness to form
first and second flange portions at each of the blank ends. The first and second flange
portions have respective edges on opposite sides of the longitudinal axis. The flange
portions are then moved while in their split thickness into arcuate configurations
so that the opposite surfaces at the first and second flange portions have concave
configuration. The flange portions of split thickness are compacted at each of the
blank ends to define flanges of generally equal thickness to that of the web. Each
flange is disposed generally transverse with respect to the longitudinal axis.
[0005] Another object of the present invention is the provision of a method of the type
described which is simple and economical to perform.
[0006] These and other objects of the invention will become apparent during the course of
the following detailed description and the appended claims.
[0007] The invention may best be understood with reference to the accompanying drawings
wherein an illustrative embodiment is shown.
BRIEF DESCRIPTION OF THE DRAWINGS
[0008]
FIG. 1 is a schematic illustration of a roll stand, partially in section, for initially
forming a flat blank of material,
FIG. 2 is a view similar to FIG. 1 showing a roll stand having vertical rollers for
performing an initial splitting operation at the ends of the blank,
FIG. 3 is a view similar to FIG. 2 showing a stand having vertical rollers for further
splitting the ends of the blank,
FIG. 4, is a view similar to FIG. 2 showing a roll stand having a pair of vertical
rollers for initially bending flange portions at the ends of the blank,
FIG. 5, is a view similar to FIG. 4, showing a roll stand wherein vertical rollers
further bend the flange portions at the ends of the blank defining a mass of material
at each end,
FIG. 6, is a schematic illustration, partially in section, showing a roll stand wherein
vertical rollers initially compact the mass of material at each end of the blank,
FIG. 7, is a view similar to FIG. 6, showing a roll stand wherein vertical rollers
further compact the mass of material at each end of the blank, and
FIG. 8 is a view similar to FIG. 6 showing a roll stand having vertical rollers for
further compacting the mass of material at each end of the blank to form flanges of
an I-beam structure.
[0009] Referring now more particularly to the drawings, there is shown therein a series
of successive roll stands employed in a method of the present invention. As shown
in FIG. 1, the first roll stand, generally indicated at 10, includes a pair of identical,
symmetrical horizontal rollers 12 and a pair of identical, symmetrical vertical rollers
14. Rollers 12 are mounted for rotation about axles 16, while rollers 14 are mounted
for rotation about axles 18. The horizontal rollers 12 have working faces comprising
a cylindrical surface 20. Similarly, the vertical rollers 14 have working faces comprising
a cylindrical surface 22. The horizontal rollers 12 and vertical rollers 18 cooperate
to form a blank 24 of material. The blank 24 has a longitudinal axis A, a central
portion 26 and opposing ends 28. In the roll stand 10, the blank 24 is formed as a
flat sheet having a thickness B equal to a thickness of the web of an I-beam to be
ultimately formed. It can be appreciated that the blank 24 can be formed by process
other than roll-forming in stand 10. A blank 24 need only be provided which has a
thickness B generally equal to a thickness of the web of an I-beam to be ultimately
formed. Thus, it can be appreciated that stand 10 may be only an alignment stand for
a pre-formed blank for guiding the blank to downstream roll stands.
[0010] Once the blank 24 is provided, the blank 24 is fed continuously through a series
of successive roll stands to form the I-beam structure. In the illustrated embodiment,
the blank 24 is conveyed to a roll stand 30 as shown in FIG. 2. Stand 30 is identical
to the first stand 10 except that each vertical roller 32 has frusto-conical surfaces
34. Each roller 32 splits an associated end 28 along the longitudinal axis A of the
blank 24, thereby forming a first flange portion 36 and a second flange portion 38
at each of the ends 28. The first and second flange portions 36 and 38, respectively,
are inclined with respect to each other at an acute angle.
[0011] In the illustrated embodiment, the blank 24 is then conveyed to a roll stand 40,
as shown in FIG. 3, which is similar to stand 30 and disposed downstream thereof.
However, the vertical rollers 42 of stand 40 are shaped to split the ends 28 deeper
than that shown in FIG. 2. The ends 28 are split so as to provide enough material
to ensure that each of the I-beam flanges to be ultimately formed by the flange portions
36 and 38 has a thickness generally equal to the thickness B. As shown in FIG. 3,
each of the flange portions 36 and 38 has a respective edge 44.
[0012] The blank 24 then proceeds to another roll stand 45, as shown in FIG. 4, disposed
downstream of stand 40. In the illustrated embodiment, the stand 45 is identical to
the stand 40, except that each of the vertical rollers 46 has a pair of working surfaces
48 of concave configuration. As shown, the rollers 46 bend the flange portions 36
and 38 about the longitudinal axis A such that the edges 44 of the flange portions
are moved in a direction towards the central portion 26 of the blank 24.
[0013] In the illustrated embodiment, the blank 24 is then conveyed to roll stand 50 disposed
downstream of stand 45. Stand 50 is generally identical to stand 45, except that each
of the vertical rollers 52 has a pair working surfaces 54 of concave configuration,
the concavity thereof being greater than that of the rollers 46. Thus, as shown, the
flange portions 36 and 38 are bent further with respect to the longitudinal axis A
thereby forming a mass of material 55 at each end of the blank 24. This is a thickening
process that thickens the flange portions 36 and 38, which will ultimately become
the I-beam flanges, as will become apparent below.
[0014] The blank 24 is then conveyed to the next stand 56, as shown in FIG. 6. Stand 56
is disposed downstream of stand 50 and includes a first pair of vertical rollers 58
and a second pair of back-up vertical rollers 60. Each roller 58 has a generally cylindrical
working edge 62. Each roller 60 also has a generally cylindrical back-up edge 64.
Rollers 58 and 60 cooperated to initially compact the mass of material 55 at each
end of the blank 24.
[0015] The blank 24 is then moved through roll stand 66 which further compacts the mass
of material 55. Finally, the blank 24 is directed through a stand 68 whereby the flange
portions are compacted to a point to define solid, opposing flanges 70 of the I-beam
structure at each end of the web 72. As shown, each of the flanges 70 of the I-beam
is disposed generally transverse to the longitudinal axis A and has a thickness C
which is generally equal to the thickness B of the web 72. Further, ends 74 of each
of the flanges 70 are formed in the roll stand 68 so as to be generally parallel to
axis A. This completes forming the I-beam and the I-beam can be cut to the desired
length.
[0016] It can be appreciated that the roll stands shown are exemplary only. The roll stands
may be of any construction and arrangement suitable to split, bend and compact the
ends of the blank to form the flanges 70. Further, the number of stages used to form
the I-beam is exemplary. For example, a plurality of intermediate stages may be employed
or certain stages may be combined.
[0017] It can be seen that the invention provides an effective method of roll-forming an
I-beam by continuously conveying a blank of material through a series of roll stands.
The I-beam structure formed includes flanges having a thickness generally equal to
a thickness of the web. The ability to form the flanges having the same thickness
as the web without additional forming of the web advantageously reduces manufacturing
costs.
[0018] It thus will be seen that the objects of this invention have been fully and effectively
accomplished. It will be realized, however, that the foregoing preferred embodiment
of the present invention has been shown and described for the purposes of illustrating
the structural and functional principles of the present invention. Therefore, this
invention includes all modifications encompassed within the scope of the following
claims.
1. A method of roll-forming an I-beam structure having a web and a pair of opposing
flanges at each end of the web, the method including the sequential steps of:
providing a flat blank (24) having a thickness generally equal to a thickness of the
web of the I-beam to be formed, said blank having said thickness thereof defined by
opposite surfaces and terminating in opposite longitudinal ends, said blank having
a longitudinal axis (A) extending longitudinally through said thickness (B) of said
blank,
splitting the thickness (B) of said blank at each of said opposite longitudinal ends
(28) of said blank to form first and second flange portions (36, 38) at each of said
longitudinal blank ends, such that the flange portions comprise sufficient material
to produce flanges having a thickness generally equal to the thickness of the blank
end of the web upon compacting, said first and second flange portions (36, 38) having
respective edges (44) disposed on opposite sides of said longitudinal axis (A), characterized by
first moving said flange portions (36, 38) while in their split thicknesses into respective
arcuate configurations so that said opposite surfaces at said first and second flange
portions have concave configurations, then moving said first and second flange portions
so that they are doubled over themselves and bent back so as to extend back towards
said web, and
compacting each of said bent back flange portions of said split thickness to form
respective flanges (70) on opposite sides of said longitudinal axis having a generally
constant thickness, which thickness is generally equal to the thickness of the blank
end of the web (72), said flanges (70) disposed generally transverse with respect
to said longitudinal axis.
2. The method according to claim 1, wherein the splitting step includes splitting the
longitudinal ends of the blank an amount so as to provide enough material to ensure
that the thickness of the flanges (70) is generally equal to the thickness of the
web (72) upon the completion of said compacting step.
3. The method according to claim 1, wherein the splitting step includes initially splitting
the ends of the blank, and thereafter splitting the ends of the blank a further amount
to provide enough material so as to ensure that the thickness of the flanges (70)
is generally equal to the thickness of the web (72) upon the completion of said compacting
step.
4. The method according to claim 1, wherein said moving step includes initially bending
the flange portions (36, 38) a first amount and then bending the flange portions a
second, greater amount to provide said flange portions (36, 38) with said arcuate
configuration.
5. The method according to claim 1, wherein said compacting step includes forming edges
of each of said flanges (70) so as to be generally parallel to said longitudinal axis.
6. The method according to claim 1, wherein said splitting step includes initially splitting
each of said ends of the blank (24) using at least a first pair of vertical rollers
(32) with one roller of said pair being associated with a respective end of said blank,
each said roller of said pair having frusto-conical surfaces (34) to facilitate the
splitting step.
7. The method according to claim 6, wherein said splitting step includes further splitting
each of said ends of the blank after said initial splitting, using a second pair of
vertical rollers (42), each roller of said second pair' of rollers having frusto-conical
surfaces.
8. The method according to claim 1, wherein said moving step includes initially bending
each of said ends of the blank using at least a first pair of vertical rollers (46),
each roller of said pair having a pair of concave surfaces (48) to facilitate the
bending step.
9. The method according to claim 8, wherein said moving step includes further bending
each of said ends of the blank after said initial bending using a second pair of vertical
rollers (52), each roller of said second pair of rollers having a pair of concave
surfaces (54) of concavity greater than a concavity of the concave surfaces of each
of said first pair of rollers (46).
10. The method according to claim 1, further comprising the step of cutting the formed
I-beam structure to a particular size.
11. A method according to any preceding claim wherein said method utilizes a series of
successive roll stands.
12. The method according to claim 11, wherein cooperating rollers flatten and increase
the thickness of said flange portions until said flange portions form flanges of generally
equal thickness to said web.
1. Verfahren zum Profilwalzen bzw. Formwalzen einer I-Trägerstruktur mit einem Steg und
einem Paar gegenüberliegender Flansche an jedem Ende des Stegs, wobei das Verfahren
die aufeinanderfolgenden Schritte umfaßt:
Bereitstellen eines flachen Werkstücks (24) mit einer Dikke, die im wesentlichen einer
Dicke des Stegs des zu bildenden I-Trägers entspricht, wobei das Werkstück, das dessen
Dicke hat, durch gegenüberliegende Oberflächen bestimmt ist und in gegenüberliegenden
longitudinalen Enden endet, und wobei das Werkstück eine longitudinale Achse (A) aufweist,
die sich longitudinal durch die Dicke (B) des Werkstücks erstreckt,
Trennen der Dicke (B) des Werkstücks an jedem der gegenüberliegenden longitudinalen
Enden (28) des Werkstücks, um erste und zweite Flanschabschnitte (36, 38) an jedem
der longitudinalen Werkstückenden zu bilden, so daß die Flanschabschnitte ausreichend
Material umfassen, um Flansche mit einer Dicke zu erzeugen, die im wesentlichen der
Dicke des Werkstücksendes des Stegs beim Verdichten entspricht, wobei erste und zweite
Flanschabschnitte (36, 38) jeweilige Kanten (44) aufweisen, die auf gegenüberliegenden
Seiten der longitudinalen Achse (A) angeordnet sind, dadurch gekennzeichnet, daß
zuerst die Flanschabschnitte (36, 38), während diese gespaltene Dicken haben, in jeweilige
gebogene Konfigurationen bewegt werden, so daß die entgegengesetzten Oberflächen an
den ersten und zweiten Flanschabschnitten konkave Konfigurationen aufweisen, daß dann
die ersten und zweiten Flanschabschnitte bewegt werden, so daß diese über sich selbst
verdoppelt sind und zurückgebogen werden, so daß diese zurück hin zum Steg ragen,
und
daß jeder der zurückgebogenen Flanschabschnitte mit getrennter Dicke verdichtet wird,
um jeweilige Flansche (70) an gegenüberliegenden Seiten der longitudinalen Achse zu
bilden, mit einer im wesentlichen konstanten Dicke, die im wesentlichen gleich derjenigen
des Werkstückendes des Stegs (72) ist, wobei die Flansche (70) im wesentlichen quer
bzgl. der longitudinalen Achse angeordnet sind.
2. Verfahren nach Anspruch 1, bei dem der Trennschritt den Schritt des Trennens der longitudinalen
Enden des Werkstücks um einen Betrag enthält, so daß genügend Material bereitgestellt
wird, um sicherzustellen, daß die Dicke der Flansche (70) im wesentlichen gleich der
Dicke des Stegs (72) bei der Vollendung des Verdichtungsschritts ist.
3. Verfahren nach Anspruch 1, bei dem der Trennschritt anfänglich den Schritt des Trennens
der Enden des Werkstücks enthält und danach den Schritt des Trennens der Enden des
Werkstücks um einen weiteren Betrag, um genügend Material bereitzustellen, um sicherzustellen,
daß die Dicke der Flansche (70) im wesentlichen gleich der Dicke des Stegs (72) bei
der Vollendung des Verdichtungsschrittes ist.
4. Verfahren nach Anspruch 1, bei dem der Bewegungsschritt anfänglich den Schritt des
Biegens der Flanschabschnitte (36, 38) um einen ersten Betrag enthält und dann den
Schritt des Biegens der Flanschabschnitte um einen zweiten größeren Betrag, um die
Flanschabschnitte (36, 38) mit der gebogenen Konfiguration bereitzustellen.
5. Verfahren nach Anspruch 1, bei dem der Verdichtungsschritt den Schritt des Formens
von Kanten jedes der Flansche (70) umfaßt, so daß diese im wesentlichen parallel zu
der longitudinalen Achse sind.
6. Verfahren nach Anspruch 1, bei dem der Trennschritt anfänglich den Schritt des Trennens
jedes der Enden des Werkstücks (24) unter Verwendung zumindest eines ersten Paares
von vertikalen Walzen (32) umfaßt, wobei eine Walze des Paares mit einem entsprechenden
Ende des Werkstücks in Verbindung ist, und wobei jede Walze des Paares kegelstumpfförmige
Oberflächen (34) aufweist, um den Trennschritt zu erleichtern.
7. Verfahren nach Anspruch 6, bei dem der Trennschritt weiterhin den Schritt des Trennens
jedes der Enden des Werkstücks nach dem anfänglichen Trennen umfaßt, wobei ein zweites
Paar von vertikalen Walzen (42) verwendet wird, und wobei jede Walze des zweiten Walzenpaares
kegelstumpfförmige Oberflächen hat.
8. Verfahren nach Anspruch 1, bei dem der Bewegungsschritt anfänglich den Schritt des
Biegens jedes der Enden des Werkstücks umfaßt, wobei zumindest ein Paar vertikaler
Walzen (46) verwendet wird, und wobei jede Walze des Paares ein Paar konkaver Oberflächen
(48) aufweist, um den Biegeschritt zu erleichtern.
9. Verfahren nach Anspruch 8, bei dem der Bewegungsschritt den Schritt des weiteren Biegens
jedes der Enden des Werkstücks nach dem anfänglichen Biegen umfaßt, wobei ein zweites
Paar vertikaler Walzen (52) verwendet wird, und wobei jede Walze des zweiten Walzenpaares
ein Paar konkaver Oberflächen (54) mit einer Konkavität aufweist, die größer ist als
die Konkavität der konkaven Oberflächen jeder der Walzen des ersten Walzenpaares (46).
10. Verfahren nach Anspruch 1, das weiterhin den Schritt des Schneidens der gebildeten
I-Trägerstruktur zu einer bestimmten Größe umfaßt.
11. Verfahren nach einem der vorstehenden Ansprüche, bei dem eine Reihe von aufeinanderfolgenden
Walzständen bzw. Walzwerken verwendet wird.
12. Verfahren nach Anspruch 11, bei dem zusammenwirkende Walzen die Dicke der Flanschabschnitte
verringern und vergrößern, bis die Flanschabschnitte Flansche bilden, deren Dicke
im wesentlichen der Dicke des Stegs entspricht.
1. Procédé de laminage de profilés d'une structure de poutrelle I ayant une âme et une
paire de brides opposées à chaque extrémité de l'âme, le procédé comprenant les étapes
successives:
mettre à la disposition une pièce plate (24) ayant une épaisseur qui correspond pour
l'essentiel à une épaisseur de l'âme de la poutrelle I à former, la pièce présentant
l'épaisseur de celle-ci étant définie par des surfaces opposées et se terminant dans
des extrémités longitudinales opposées, et la pièce présentant un axe longitudinal
(A) qui s'étend de façon longitudinale à travers l'épaisseur (B) de la pièce,
diviser l'épaisseur (B) de la pièce à chacune des extrémités longitudinales opposées
(28) de la pièce pour former des première et seconde sections de bride (36, 38) à
chacune des extrémités longitudinales de la pièce, de sorte que les sections de bride
comprennent suffisamment de matière pour produire des brides ayant une épaisseur qui
correspond pour l'essentiel à l'épaisseur de l'extrémité de pièce de l'âme lors du
compactage, des première et seconde sections de bride (36, 38) présentant des arêtes
respectives (44) qui sont disposées de côtés opposés de l'axe longitudinal (A), caractérisé par le fait que
d'abord les sections de bride (36, 38) - alors que celles-ci présentent des épaisseurs
divisées - sont déplacées dans des configurations courbées respectives de sorte que
les surfaces opposées sur les première et seconde sections de bride présentent des
configurations concaves, que, ensuite, les première et seconde sections de bride sont
déplacées de sorte que celles-ci sont doublées sur elles même et recourbées de sorte
qu'elles s'étendent en arrière vers ladite âme, et
que chacune des sections de bride recourbées avec l'épaisseur divisée est compactée
afin de former des brides respectives (70) de côtés opposés de l'axe longitudinal
avec une épaisseur pour l'essentiel constante qui est pour l'essentiel égale à celle
de l'extrémité de pièce de l'âme (72), les brides (70) étant disposées pour l'essentiel
transversalement par rapport à l'axe longitudinal.
2. Procédé selon la revendication 1, dans lequel l'étape de division comprend l'étape
de la division des extrémités longitudinales de la pièce d'une telle mesure que suffisamment
de matière est mise à la disposition pour assurer que l'épaisseur des brides (70)
est pour l'essentiel égale à l'épaisseur de l'âme (72) lors de l'achèvement de l'étape
de compactage.
3. Procédé selon la revendication 1, dans lequel l'étape de division comprend initialement
l'étape de la division des extrémités de la pièce et ci-après l'étape de la division
des extrémités de la pièce d'une autre mesure afin de mettre à la disposition assez
de matière pour assurer que l'épaisseur des brides (70) est pour l'essentiel égale
à l'épaisseur de l'âme (72) lors de l'achèvement de l'étape de compactage.
4. Procédé selon la revendication 1, dans lequel l'étape de déplacement comprend initialement
l'étape de pliage des sections de bride (36, 38) d'une première mesure et ensuite
l'étape de pliage des sections de bride d'une deuxième mesure plus importante afin
de mettre à la disposition lesdites sections de bride (36, 38) avec la configuration
courbée.
5. Procédé selon la revendication 1, dans lequel l'étape de compactage comprend l'étape
de la formation d'arêtes de chacune des brides (70), de sorte que celles-ci sont pour
l'essentiel parallèles à l'axe longitudinal.
6. Procédé selon la revendication 1, dans lequel l'étape de division comprend initialement
l'étape de la division de chacune des extrémités de la pièce (24) en utilisant au
moins une première paire de cylindres verticaux (32), un cylindre de la paire communiquant
avec une extrémité correspondante de la pièce, et chaque cylindre de la paire présentant
des surfaces tronconiques (34) afin de faciliter l'étape de division.
7. Procédé selon la revendication 6, dans lequel l'étape de division comprend en outre
l'étape de la division de chacune des extrémités de la pièce après la division initiale
en utilisant une deuxième paire de cylindres verticaux (42), chaque cylindre de la
deuxième paire de cylindres présentant des surfaces tronconiques.
8. Procédé selon la revendication 1, dans lequel l'étape de déplacement comprend initialement
l'étape de pliage de chacune des extrémités de la pièce en utilisant au moins une
paire de cylindres verticaux (46), chaque cylindre de la paire présentant une paire
de surfaces concaves (48) afin de faciliter l'étape de pliage.
9. Procédé selon la revendication 8, dans lequel l'étape de déplacement comprend l'étape
de l'autre pliage de chacune des extrémités de la pièce après le pliage initial en
utilisant une deuxième paire de cylindres verticaux (52), chaque cylindre de la deuxième
paire de cylindres présentant une paire de surfaces concaves (54) avec une concavité
qui est plus grande que la concavité des surfaces concaves de chacun des cylindres
de la première paire de cylindres (46).
10. Procédé selon la revendication 1, qui comprend en sus l'étape de couper la structure
formée de poutrelle I à une dimension déterminée.
11. Procédé selon l'une des revendications précédentes, dans lequel on utilise une série
de laminoirs successifs.
12. Procédé selon la revendication 11, dans lequel des cylindres coopérants diminuent
et augmentent l'épaisseur des sections de bride jusqu'à ce que les sections de bride
forment des brides dont l'épaisseur correspond pour l'essentiel à l'épaisseur de l'âme.