| (19) |
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(11) |
EP 2 490 833 B1 |
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EUROPEAN PATENT SPECIFICATION |
| (45) |
Mention of the grant of the patent: |
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30.04.2014 Bulletin 2014/18 |
| (22) |
Date of filing: 19.10.2009 |
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International Patent Classification (IPC):
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| (86) |
International application number: |
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PCT/NL2009/050630 |
| (87) |
International publication number: |
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WO 2011/049432 (28.04.2011 Gazette 2011/17) |
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METHOD FOR PRODUCING A BENT PIPE COMPRISING AT LEAST ONE DESIRED CURVATURE, A DEVICE
SUITABLE FOR CARRYING OUT SUCH A METHOD
VERFARHREN ZUR HERSTELLUNG EINES GEKRÜMMTEN ROHRS MIT MINDESTENS EINER GEWÜNSCHTEN
KRÜMMUNG, VORRICHTUNG ZUR AUSFÜHRUNG EINES DERARTIGEN VERFAHRENS
PROCÉDÉ POUR PRODUIRE UN TUBE CINTRÉ COMPRENANT AU MOINS UNE COURBURE DÉSIRÉE, DISPOSITIF
APPROPRIÉ POUR LA MISE EN OEUVRE DE CE PROCÉDÉ
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Designated Contracting States: |
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AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO
PL PT RO SE SI SK SM TR |
| (43) |
Date of publication of application: |
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29.08.2012 Bulletin 2012/35 |
| (73) |
Proprietor: Kiss Engineering B.V. |
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6101 XJ Echt (NL) |
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Inventor: |
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- DERHAAG, Maurice Wilhelmus Jozefa
NL-6141 LN Limbricht (NL)
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Representative: Veldman-Dijkers, Cornelia G. C. |
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Ab Ovo Patents B.V.
Platz 1 Limbricht 6141 AT Sittard-Geleen 6141 AT Sittard-Geleen (NL) |
| (56) |
References cited: :
DE-A1- 19 810 196 DE-C- 688 157 GB-A- 1 081 597 NL-C2- 1 035 330
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DE-C- 455 607 GB-A- 408 825 JP-A- 11 197 758 US-A- 1 958 447
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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).
|
[0001] The invention relates to a method for producing a bent pipe comprising at least one
desired curvature, wherein a substantially straight pipe is divided into a number
of segments and zones present between two successive segments.
[0002] The invention also relates to a device suitable for carrying out such a method
and comprising a number of pivotally interconnected parts. Such a device is for example
disclosed in
GB-A-1081597.
[0003] With such a method, which is known from US patent
US-B2-7,222,512, outwardly extending bulges are formed in zones in a substantially straight pipe,
whilst segments located on either side of a zone are present in parts which are pivotable
relative to each other. The bulges form a beginning of a crease to be formed in the
zone. After the bulges have been formed, the segments are pivoted relative to each
other by means of the aforesaid parts, as a result of which bending of the pipe takes
place. Since the dimension in axial direction of a bulge formed on an inside bend
of the bent pipe to be formed is larger than that of the bulge on an outside bend
of the bent pipe, it is possible to compensate for the difference in length in the
inside bend and the outside bend of the bent pipe, or, in other words, the difference
in radius between the inside bend and the outside bend of the bent pipe.
[0004] A drawback of the known method is that the bulges formed in the zones form creases
which extend along the entire circumference of the pipe. In addition, the segments
located between the zones are substantially identical in shape both in the original,
substantially straight pipe and in the bent pipe that is eventually formed. As a result,
walls including an angle with each other are obtained in the interior of the pipe,
so that an even flow is not obtained in the bent pipe when the pipe is used as a flow
channel.
[0005] The object of the invention is to provide a method by means of which a pipe can be
given practically any curvature, whilst an even transition between the segments is
obtained.
[0006] This object is accomplished with the method according to the features of claim 1
and a device according to the features of claim 11.
[0007] Starting from a desired curvature in a pipe, the local curvatures in the pipe wall
are determined for every segment of the bent pipe, along the entire circumference
of said pipe.
[0008] Then a substantially straight pipe is theoretically divided into said segments, and
the walls of said segments are given the local curvatures. Since the segments form
part of a curvature, for example a circular arc or a differently configured bend,
zones will be present between the segments, at least on inside bend of the curvature
to be formed, when a substantially straight pipe is divided into said segments. When
the substantially straight pipe is bent to form the bent pipe, the segments are moved
towards each other, with the local curvatures of the adjoining segments becoming aligned
and the, preferably contiguous, local curvatures forming a continuous curvature in
the bent pipe.
[0009] In this way it is possible to form practically any curvature or bend in a pipe, whilst
a smooth surface can be realised at least on an outside bend of the curvature.
[0010] The term "pipe" as used herein is understood to mean a tubular section having a circular
or other cross-section, which may be constant or change in the longitudinal direction
of the pipe.
[0011] It is noted that from
US 1,958,447 a method for forming a bent pipe is known wherein part of the pipe is bent relative
to the remaining straight part of the pipe and provided with creases. Then a part
of the pipe between the bent part of the pipe and the remaining part of the pipe is
bent and provided with creases. This process is repeated until the pipe has obtained
the desired curvature. The device used for carrying out the method comprises a single
part which is pivotable relative to a part in which the remaining pipe part is clamped
down.
[0012] With the pipe according to the present invention, all the segments in the substantially
straight pipe are provided with a local curvature. Only then are the segments moved
relative to each other so as to form the curved pipe. The device that is used for
this purpose comprises a number of pivotally interconnected parts, which number preferably
corresponds to the number of segments of which the curved pipe is formed.
[0013] One embodiment of the method according to the invention is characterised in that
the local curvature of a segment of the substantially straight pipe has a smaller
radius on an inside bend of the curvature to be formed than on an outside bend of
the curvature to be formed.
[0014] In this way both the inside bend and the outside bend will have obtained the radius
associated with the respective inside bend and outside bend after the substantially
straight pipe has been bent to form the bent pipe.
[0015] Another embodiment of the method according to the invention is characterised in that
the internal wall on the outside bend of the curvature of the bent pipe is substantially
smooth.
[0016] By providing each segment of the original straight pipe with a local curvature, at
least on the outside bend of the curvature to be formed, which curvature corresponds
to the eventually desired curvature of the bent pipe, the outside bend part of the
bent pipe that is eventually formed will be substantially completely smooth. The interior
of the pipe will be substantially completely smooth as well, thus enabling a smooth
flow through the bent pipe.
[0017] Yet another embodiment of the method according to the invention is characterised
in that a segment of the substantially straight pipe tapers off from an inside bend
of the curvature to be formed to an outside bend of the curvature to be formed.
[0018] As a result, a bent pipe will be obtained when the sides of the segments facing the
inner side are moved together, in which bent pipe the segments are substantially contiguous.
[0019] Another embodiment of the method according to the invention is characterised in that
a zone comprises a part of the straight pipe that can be creased between two successive
segments, each zone in the bent pipe being folded into a crease.
[0020] As a result of the zones being folded into a crease, the segments are moved together.
The crease is larger near the inside bend than near the outside bend, and gradually
decreases in size in the circumferential direction of the pipe. Creases need not be
formed near the outside bend, since the segments can directly join one another at
that location. As a result of the presence of the aforesaid creases, hardly any stretch
will occur when the material is being bent. As a result, also materials having a low
plastic deformation capability, to be expressed in elongation at break, for example,
can be used for producing bent pipes. Think in this connection of materials such as
steel, aluminium and other metals or plastics.
[0021] Yet another embodiment of the method according to the invention is characterised
in that a beginning of a crease is formed in each zone of the substantially straight
pipe.
[0022] In this way each zone will be creased to the desired configuration when the substantially
straight pipe is bent to form the bent pipe.
[0023] Instead of forming creases, it is also possible to remove the zone that is present
between two successive segments from a substantially straight pipe, wherein, after
the straight pipe has been bent to form the bent pipe, sides of adjacent segments
of the bent pipe will at least substantially abut against each other. Preferably,
said abutting sides are connected together. Said removal of the zones present between
two successive segments can take place prior to the formation of the local curvature
in the segments; preferably, however, it will take place after the formation of the
local curvatures in the segments.
[0024] In this way a more precise formation of the segments is ensured.
[0025] Yet another embodiment of the method according to the invention is characterised
in that the substantially straight pipe is positioned in a number of pivotally interconnected
parts, each part comprising at least one curvature to be locally provided of a segment
positioned therein, whereupon the pipe is deformed, during which deformation each
segment is pressed against the wall of the associated part, as a result of which the
segment is provided with the local curvature, and the parts are subsequently pivoted
relative to each other, thus forming the desired curvature in the pipe.
[0026] In this way a controlled formation of the local curves in the segments is realised,
wherein, once the local curvatures have been formed, the substantially straight pipe
is bent to formed the bent pipe by pivoting the parts relative to each other.
[0027] Creases may be formed in the zones between the parts, if desired.
[0028] The invention will now be explained in more detail with reference to the drawings,
in which:
Figure 1 shows a theoretical model of a bent pipe;
Figure 2 shows the bent pipe of figure 1, divided into segments;
Figure 3 shows the bent pipe of figure 2 developed along a line;
Figure 4A shows a theoretical model of the substantially straight pipes comprising
removed zones that is to be formed;
Figure 4B shows a detail of the substantially straight pipe shown in figure 4A;
Figure 5 shows a theoretical model of the substantially straight pipe comprising removed
zones that is to be formed, in which zones to be creased are present between the segments;
Figures 6A-6L and figures 7A-7E show various views of the forming of a bent pipe from
a substantially straight pipe;
Figures 8A-8C show a perspective front view, a perspective top plan view and perspective
side view, respectively, of another bent pipe according to the invention;
Figure 9 shows a perspective front view, a perspective top plan view and perspective
side view, respectively, of yet another bent pipe according to the invention;
Figure 10 shows a perspective front view, a perspective top plan view and perspective
side view, respectively, of yet another bent pipe according to the invention;
Figures 11A and 11B show a perspective view and a top plan view, respectively, of
a device according to the invention;
Figures 12A and 12B show top plan views of a device according to the invention with
a substantially straight pipe and a bent pipe formed by means of the device, respectively,
present therein.
[0029] Like parts are indicated by the same numerals in the figures.
Figure 1 shows a theoretical model of a bent pipe 1 which extends along an axis 2.
The bent pipe 1 has a circular cross-section. The bent pipe 1 has an inside bend 3
with a radius Ri as well as an outside bend 4 with a radius Ro" wherein Ro > Ri.
Figure 2 shows the bent pipe 1 of figure 1, in which the bent pipe 1 is divided into
segments S1, S2...Sn formed by lines 5 which extend from the centre M of the radii Ri and Ro. Each segment S1, S2...Sn extends through the same angle α. Each segment S1, S2...Sn has an inside radius Ri1, Ri2 ...... Rin and an outside radius Ro1 Ro2..Ron which, in this theoretical model, are the same as the radii Ri and Ro, respectively, of the bent pipe 1. Segment S1 is bounded by the angular points ao and a1 on the outside of the bend and angular points bo and b1 on the inside of the bend. Segment S2 is bounded by the angular points a1, a2, b1, b2. The angular point a1 thus forms an angular point both of the segment S1 and of the segment S2. Similarly, the angular point b1 forms an angular point of the segments S1 and S2.
Figure 3 shows the bent pipe 1 shown in figure 2, in which the segments S1 - S4 have been pivoted away from each other, such that the angular points ao, a1, a2, a3, a4 lie on a straight line L. The opposite longitudinal sides 7, 8 of adjacent segments
S1, S2 include the angle α with each other.
[0030] As is clearly shown in figure 3, each segment S
1, S
2 .... S
n has an inside radius R
i1, R
i2 ...... R
in and an outside radius R
o1 R
o2..R
on. Because the segments S
1, S
2 have been pivoted away from each other, the angular point b
1 is no longer a common angular point, but it is now formed by two angular points b
1.
[0031] Figure 4A shows the bent pipe 1 fully developed into a substantially straight pipe
10, in which all the angular points a
1, a
2 ..... a
s lie on the line L. Zones Z
1, Z
2 .... Z
n are present between the adjacent segments S
1, S
2 .... S
n, which zones are not filled in the substantially straight pipe 10 that is shown in
figure 4.
[0032] Figure 4B shows a larger-scale detail of segment S
3, in which the outside radius R
o3 can be clearly distinguished.
[0033] Figure 5 shows a substantially straight pipe 11, which is different from the straight
pipe 10 shown in figure 4A in that, in contrast to figure 4, the zones Z
1, Z
2 ..... Z
n-1 present between the segments S
1, S
2 ..... S
n are filled.
[0034] When the substantially straight pipe 10 shown in figure 4A is being bent, with the
segments S
1, S
2 ..... S
n being moved together, the bent pipe shown in figure 1 is obtained again. By interconnecting
the sides 7, 8 of the segments S
1, S
2 ..... S
n, a pipe 1 having a fully closed wall is obtained again. It is also possible, of course,
not to interconnect the longitudinal sides 7, 8 if the intended use of the pipe 1
allows this.
[0035] With the substantially straight pipe 11 shown in figure 5, the zones Z
1, Z
2 ..... Z
n-1 will need to be folded to form a crease when the pipe 11 is bent to obtain the pipe
1 shown in figure 1, so as to ensure that the sides 7, 8 of adjacent segments can
be positioned substantially opposite each other.
[0036] The theory of determining the local curvatures in the segments of a substantially
straight pipe as well as the subsequent formation of a bent pipe from a substantially
straight pipe comprising segments and zones present therebetween has been explained
with reference to figures 1-5.
[0037] Now various practical examples will be explained with reference to figures 6A-11B.
[0038] Figures 6A-7E show the deformation of a cylindrical pipe 21 having a constant diameter
over its entire length, via a substantially straight pipe 22 that is divided into
segments and zones present therebetween, into a bent pipe 23. In addition to the deformation
of the straight pipe 21 into the bent pipe 23, also the cross-sectional shape of the
pipe 21 is changed from a cylindrical cross-section with a constant diameter to a
cross-sectional shape that changes along the length of the pipe from triangular into
cylindrical.
[0039] Figure 6A shows a longitudinal section of the substantially straight pipe 22, which
has been divided into a number of segments S
1, S
2 ..... S
n and zones Z
1, Z
2 ..... Z
n-1 present therebetween in the above-described manner, on the basis of the desired curvatures
in the bent pipe to be formed. As figure 6A clearly shows, zone Z
1 extends less far towards the wall 24 that is to form the outside bend than the zone
Z
n-1. The segments S
1, S
2 ..... S
n have a curvature with a radius R
o1, R
o2 ..... R
on at the wall 24. If all the radii are identical, the outside bend of bent pipe to
be formed will be circular in shape. It is also possible for the radii to change gradually,
to that the final bent pipe 23 will have a curvature different from a circular arc.
The same applies, of course, with regard to the wall 25 of the substantially straight
pipe 22 that is to form the inside bend.
[0040] Seen in the circumferential direction of the substantially straight pipe 22, the
curvature of a segment S
1, S
2 ..... S
n changes gradually from the curvature with radius R
i1, R
i2 ...... R
in near the wall 25 that is to form the inside bend to the curvature with radius R
o1, R
o2 ..... R
on at the wall 24. Each zone Z
1, Z
2 ..... Z
n-1 has an outwardly projecting bulge 26 in the wall thereof, whose degree of bulging
varies along the circumference of the substantially straight pipe 22.
[0041] The substantially straight pipe 22 with the segments S
1, S
2 ..... S
n formed therein and the zones Z
1, Z
2 ..... Z
n-1 present therebetween can be formed by means of a hydroforming technique. With this
technique, which is known per se, the cylindrical pipe 21 is placed in a space present
in a device. Said space is bounded by walls comprising a profile corresponding to
the profile to be formed in the substantially straight pipe 22 that is to be produced.
Then a fluid, such as oil, is introduced into the pipe 21 under pressure, whilst simultaneously
forces are exerted on the pipe 21, in axial direction. As a result, the pipe 21 is
deformed to obtain the substantially straight pipe 22 comprising the segments, the
zones and the curvatures and bulges formed therein. The straight axis of the pipe
21 is substantially identical to the axis of the substantially straight pipe 22 with
the local curvatures formed in the segments.
[0042] Once the substantially straight pipe 22 has been formed, the pipe 22 is bent to form
the bent pipe 23. Said bending comprises moving the segments S
1, S
2 ..... S
n towards each other on a side facing the wall 25, causing the zones Z
1, Z
2 ..... Z
n-1 to be folded together, resulting in the formation of a crease 27 (see figure 6E).
The wall 25 that forms the inside bend comprises the substantially contiguous segments
S
1, S
2 ..... S
n, with the local curvature with radii R
i1, R
i2 ..... R
in forming a substantially continuous internal wall 28, which is interrupted only by
the creases 27.
[0043] Since the zones Z
1, Z
2 ...., Z
n-1 do not extend to the wall 24 that forms the outside bend, the segments S
1, S
2 ..... S
n join one another in a perfectly contiguous manner at the wall 24, so that a substantially
completely smooth inner wall is obtained. Thus a good flow is obtained in the bent
pipe 23 when the pent pipe 23 is used as a flow channel. The central axis of the bent
pipe 23 has a curvature with the same centre of curvature as the outside bend of the
bent pipe 23.
[0044] Figure 6E1 and figure 6E2 show the same view of the bent pipe 23 but with different
details VID, VIE and VIH, VIL, VIK, respectively.
[0045] As appears from the cross-sections VIH-VIH, VIL-VIL and VIK-VIK shown in figure 6H,
figure 6K, figure 6L, the cross-sectional shape of the bent pipe 23 gradually changes
from circular to triangular.
[0046] This also appears from figure 6F and figure 6G, which show a side view of the substantially
straight pipe 22 and the bent pipe 23 formed therefrom, respectively.
[0047] As figures 7D, 7E clearly show, the creases 27 formed by zone Z
1, Z
2 ..... Z
n-1 do not extend along the entire circumference of the bent pipe 23. Moreover, each
crease 27 decreases in size, seen in circumferential direction from the inside bend
to the outside bend.
[0048] Figures 8A-8C show another bent pipe 31 formed by using the method according to the
invention, which pipe is provided with identical cylindrical openings 32, 33 at both
ends and which comprises a part 34 having a triangular cross-section near the centre.
The bent pipe 31 comprises a first bent part 35, which extends between the circular
passage 32 to the part 34 with the triangular cross-section, and a second bent part
36, which extends from the part 34 with the triangular cross-section to the circular
passage. Such a pipe 31 is for example obtained by providing inter alia the segments
and zones desired for the bent parts 35, 36 in a straight pipe. Then the substantially
straight pipe thus formed is bent in a number of steps to obtain the desired bent
pipe.
[0049] Figures 9A-9C show another embodiment of a bent pipe 41 which is different from the
bent pipe 31 shown the in figure 8A-8C in that the circular passages 42, 43 at the
ends of the bent pipe 41 are different in diameter.
[0050] Figures 10A-10C show yet another embodiment of a bent pipe 51 according to the invention,
which comprises two bent parts 52, 53 and a part 54 with a triangular cross-section,
which extends therebetween. A cylindrical pipe 55, which has a larger diameter near
the end 56 than near the bent part 53 and the other end 57, joins the bent part 53.
[0051] Figures 11A and 11B show a perspective view and top plan view, respectively, of a
device 61 according to the invention, which is suitable for producing the bent pipe
23, for example. The device 61 comprises two parts 62, 63 to be positioned opposite
each other, which are each provided with parts 65 interconnected via pivot arms 64.
Mating parts 65 of the lower part 63 and the part 62 positioned thereabove jointly
define a passage 66, whose wall 67 is provided with local curvatures which correspond
to curvatures to be formed in a segment S
1, S
2 ..... S
n.
[0052] The operation of the device 61 is as follows. The upper part 62 is removed from the
lower part 63, whereupon a pipe 21 is placed in the passages 66. Then the upper part
62 is positioned over the straight pipe 21. Subsequently, fluid pressure is applied
in the pipe 21, whilst at the same time axial forces are exerted on the ends of the
pipe 21. As a result, the wall of the pipe 21 is deformed, and the curvatures are
formed in the segments S
1, S
2 ..... S
n by the walls 67 of the passages 66. As is shown in figure 11A, free spaces 68 are
present between the passages of adjacent parts 65. The pipe 21 will slightly move
out at the location of the free space 68, as a result of which the bulges 26 are formed
in the zones Z
1, Z
2 .... Z
n-1. Thus, the substantially straight pipe 22 is obtained.
[0053] Figures 12A-12B show a similar device 71 according to the invention, which is provided
with supports 72, 73 at both ends. After the pipe 21 has been deformed by means of
the device 61 or 71 into the substantially straight pipe 22 with segments S
1, S
2 ..... S
n formed therein and zones Z
1, Z
2 .... Z
n-1 present therebetween, the parts 65 are pivoted relative to each other in the directions
indicated by the double arrow, as a result of which the substantially straight pipe
22 is bent to obtain the bent pipe 23. Since the segments S
1, S
2 ..... S
n firmly abut against the walls 67 of the passages 66 during said bending, the segments
S
1, S
2 ..... S
n will not deform. The hydraulic pressure applied by the fluid may or may not be maintained
during the bending of the substantially straight pipe to form the bent pipe.
[0054] The zones Z
1, Z
2 ..... Z
n-1 present between the segments S
1, S
2 ..... S
n are deformed further outwards upon forming the bent pipe 23, resulting in the formation
of the creases 27. Walls of each crease 27 are pressed firmly together by the ends
69 of the parts 65 during this process.
[0055] It is also possible to carry out the bending of the substantially straight pipe provided
with the segments and the zones to obtain the bent pipe by means of a separate device.
[0056] In the theoretical model shown in figure 1-5, the angle α is the same for all the
segments S
1, S
2 ..... S
n. It is also possible, however, to have the segments S
1, S
2 ..... S
n extend through different angles α
1, α
2 ..... α
n.
[0057] The forming of the segments and zones in the pipe can take place not only by hydroforming
but also by means of explosion transformation, rubber pressing, hot forming, etc.
1. A method for producing a bent pipe (1, 23, 31, 41, 51) comprising at least one desired
curvature, wherein a substantially straight pipe (10, 11, 22) is divided into a number
of segments (S1, S2...Sn) and zones present between two successive segments (S1, S2...Sn), characterised in that prior to the forming of the bent pipe (1, 23, 31, 41, 51), each segment of the substantially
straight pipe (10, 11, 22) is provided with a local curvature of the segment (S1, S2...Sn) in question of the bent pipe (1, 23, 31, 41, 51) eventually to be formed, whereupon
all segments (S1, S2...Sn) of the substantially straight pipe (10, 11, 22) are pivoted relative to each other
and are moved towards each other, with the local curvatures of the adjoining segments
(S1, S2...Sn) becoming aligned and the, preferably contiguous, local curvatures forming a continuous
curvature in the bent pipe (1, 23, 31, 41, 51), with the bent pipe (1, 23, 31, 41,
51) exhibiting the desired curvature.
2. A method according to claim 1, characterised in that the local curvature of a segment (S1, S2...Sn) before pivoting the segments (S1, S2...Sn) relative to each other has a smaller radius (Ri1, Ri2...Rin) on a side which will form an inside bend (3) than on a side which will form an outside
bend (4) of the to be formed bent pipe (1, 23, 31, 41, 51).
3. A method according to claim 1 or 2, characterised in that the internal wall (24) on the outside bend (4) of the curvature of the bent pipe
(1, 23, 31, 41, 51) is substantially smooth.
4. A method according to any one of the preceding claims, characterised in that a segment (S1, S2...Sn) of the substantially straight pipe (10, 11, 22) tapers off from a side which will
form an inside bend (3) of the bent pipe (1, 23, 31, 41, 51) to a side which will
form an outside bend (4) of the bent pipe (1, 23, 31, 41, 51).
5. A method according to any one of the preceding claims, characterised in that a zone (Z1, Z2...Zn) comprises a part (34) of the substantially straight pipe (10, 11, 22) that can be
creased between two successive segments (S1, S2...Sn), wherein each zone (Z1, Z2...Zn) in the bent pipe (1, 23, 31, 41, 51) is folded into a crease (27).
6. A method according to claim 5, characterised in that a beginning of a crease (27) is formed in each zone of the substantially straight
pipe (10, 11, 22).
7. A method according to any one of the preceding claims 1-4, characterised in that a zone (Z1, Z2...Zn) comprises a part (34) of the substantially straight pipe (10, 11, 22) that has been
removed between two successive segments (S1, S2...Sn), wherein sides of adjacent segments (S1, S2 ... Sn) of the bent pipe (1, 23, 31, 41, 51) at least substantially abut against each other.
8. A method according to claim 7, characterised in that the abutting sides of the segments (S1, S2...Sn) are connected together.
9. A method according to any one of the preceding claims, characterised in that the local curvatures are formed by hydroforming.
10. A method according to any one of the preceding claims, characterised in that a straight pipe (21) is positioned in a number of pivotally interconnected parts
(65), each part (65) comprising at least one curvature to be locally provided on a
segment positioned therein, whereupon the pipe is deformed, during which deformation
each segment is pressed against the wall (67) of the associated part (65), as a result
of which the substantially straight pipe (10, 11, 22) is being formed with each segment
(S1, S2 ...Sn) being provided with its local curvature, whereupon the parts (65) are subsequently
pivoted relative to each other, thus forming the desired curvature in the bent pipe
(1, 23, 31, 41, 51).
11. A device (61) suitable for carrying out the method according to any one of the preceding
claims, which device (61) comprises a number of pivotally interconnected parts (65),
characterised in that each part (65) has at least one local curvature, the device (61) comprising two parts
(62, 63) to be positioned opposite each other, which are each provided with the pivotally
interconnected parts (65) being interconnected via pivot arms (64), wherein mating
pivotally interconnected parts (65) of the lower part (63) and the part (62) positioned
thereabove jointly define a passage (66) for a pipe to be bent, whose wall (67) is
provided with local curvatures which correspond to curvatures to be formed in a segment
(S1, S2, ...Sn) of the pipe, and wherein adjoining local curvatures of adjacent pivotally
interconnected parts (65) define the curvatures of a bent pipe (1, 23, 31, 41, 51)
to be formed by means of the device (61).
1. Verfahren zum Herstellen eines gebogenen Rohrs (1, 23, 31, 41, 51), das wenigstens
eine gewünschte Krümmung aufweist, wobei ein im Wesentlichen gerades Rohr (10, 11,
22) in eine Anzahl von Segmenten (S1, S2,... Sn) und zwischen zwei aufeinanderfolgenden Segmenten (S1, S2,... Sn) vorhandenen Zonen unterteilt wird, dadurch gekennzeichnet, dass vor dem Bilden des gebogenen Rohrs (1, 23, 31, 41, 51) jedes Segment des im Wesentlichen
geraden Rohrs (10, 11, 22) mit einer lokalen Krümmung des betreffenden Segments (S1, S2... Sn) des schließlich zu bildenden gebogenen Rohrs (1, 23, 31, 41, 51) versehen wird,
worauf alle Segmente (S1, S2... Sn) des im Wesentlichen geraden Rohrs (10, 11, 22) relativ zueinander geschwenkt werden
und zueinander hin bewegt werden, wobei die lokalen Krümmungen der benachbarten Segmente
(S1, S2... Sn) ausgerichtet werden und die, bevorzugt zusammenhängenden, lokalen Krümmungen eine
kontinuierliche Krümmung in dem gebogenen Rohr (1, 23, 31, 41, 51) bilden, wobei das
gebogene Rohr (1, 23, 31, 41, 51) die gewünschte Krümmung zeigt.
2. Verfahren gemäß Anspruch 1, dadurch gekennzeichnet, dass die lokale Krümmung eines Segments (S1, S2... Sn) vor dem Schwenken der Segmente (S1, S2... Sn) relativ zueinander auf einer Seite, die eine innere Biegung (3) des zu bildenden
gebogenen Rohrs (1, 23, 31, 41, 51) bilden wird, einen kleineren Radius (Ri1, Ri2 ... Rin) hat als auf einer Seite, die eine äußere Biegung (4) desselben bilden wird.
3. Verfahren gemäß Anspruch 1 oder 2, dadurch gekennzeichnet, dass die Innenwand (24) an der äußeren Biegung (4) der Krümmung des gebogenen Rohrs (1,
23, 31, 41, 51) im Wesentlichen glatt ist.
4. Verfahren gemäß einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass ein Segment (S1, S2... Sn) des im Wesentlichen geraden Rohrs (10, 11, 22) sich von einer Seite, die eine innere
Biegung (3) des gebogenen Rohrs (1, 23, 31, 41, 51) bilden wird, zu einer Seite, die
eine äußere Biegung (4) des gebogenen Rohrs (1, 23, 31, 41, 51) bilden wird, verjüngt.
5. Verfahren gemäß einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass eine Zone (Z1, Z2... Zn) einen Teil (34) des im Wesentlichen geraden Rohrs (10, 11, 22), der mit Falten versehen
sein kann, zwischen zwei aufeinanderfolgenden Segmenten (S1, S2... Sn) aufweist, wobei jede Zone (Z1, Z2... Zn) in dem gebogenen Rohr (1, 23, 31, 41, 51) zu einer Falte (27) gefaltet ist.
6. Verfahren gemäß Anspruch 5, dadurch gekennzeichnet, dass ein Anfang einer Falte (27) in jeder Zone des im Wesentlichen geraden Rohrs (10,
11, 22) gefaltet ist.
7. Verfahren gemäß einem der vorhergehenden Ansprüche 1 - 4, dadurch gekennzeichnet, dass eine Zone (Z1, Z2... Zn) einen Teil (34) des im Wesentlichen geraden Rohrs (10, 11, 22), der entfernt wurde,
zwischen zwei aufeinanderfolgenden Segmenten (S1, S2... Sn) aufweist, wobei Seiten von angrenzenden Segmenten (S1, S2,... Sn) des gebogenen Rohrs (1, 23, 31, 41, 51) zumindest im Wesentlichen gegeneinander
anliegen.
8. Verfahren gemäß Anspruch 7, dadurch gekennzeichnet, dass die anliegenden Seiten der Segmente (S1, S2... Sn) miteinander verbunden sind.
9. Verfahren gemäß einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass die lokalen Krümmungen durch Innenhochdruckumfornung gebildet sind.
10. Verfahren gemäß einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass ein gerades Rohr (21) in einer Anzahl von schwenkbar verbundenen Teilen (65) angeordnet
wird, wobei jeder Teil (65) wenigstens eine lokal an einem darin angeordneten Segment
bereitzustellende Krümmung aufweist, worauf das Rohr verformt wird, wobei während
dieser Verformung jedes Segment gegen die Wand (67) des zugeordneten Teils (65) gepresst
wird, wodurch das im Wesentlichen gerade Rohr (10, 11, 22) geformt wird, wobei jedes
Segment (S1, S2... Sn) mit seiner lokalen Krümmung versehen wird, worauf die Teile (65) nachfolgend relativ
zueinander geschwenkt werden, so dass die gewünschte Krümmung in dem gebogenen Rohr
(1, 23, 31, 41, 51) gebildet wird.
11. Vorrichtung (61), die zum Durchführen des Verfahrens gemäß einem der vorhergehen Ansprüche
geeignet ist, wobei die Vorrichtung (61) eine Anzahl von schwenkbar verbundenen Teilen
(65) aufweist, dadurch gekennzeichnet, dass jeder Teil (65) wenigstens eine lokale Krümmung hat, wobei die Vorrichtung (61) zwei
einander gegenüber anzuordnende Teile (62, 63) aufweist, die jeweils mit den schwenkbar
verbundenen Teilen (65) versehen sind, die über Schwenkarms (64) verbunden sind, wobei
zusammenpassende schwenkbar verbundene Teile (65) des unteren Teils (63) und des darüber
angeordneten Teils (62) gemeinsam einen Durchgang (66) für ein zu biegendes Rohr bilden,
dessen Wand (67) mit lokalen Krümmungen versehen ist, die in einem Segment (S1, S2... Sn) des Rohrs zu bildenden Krümmungen entsprechen, und wobei benachbarte lokale Krümmungen
von angrenzenden schwenkbar verbundenen Teilen (65) die Krümmungen eines mittels der
Vorrichtung (61) zu bildenden gebogenen Rohrs (1, 23, 31, 41, 51) bestimmen.
1. Procédé de production d'un tube cintré (1, 23, 31, 41, 51) comprenant au moins une
courbure souhaitée, dans lequel un tube sensiblement droit (10, 11, 22) est divisé
en un nombre de segments (S1, S2... Sn) et de zones présentes entre deux segments successifs (S1, S2... Sn), caractérisé en ce qu'avant la formation du tube cintré (1, 23, 31, 41, 51), chaque segment du tube sensiblement
droit (10, 11, 22) est doté d'une courbure locale du segment (S1, S2... Sn) en question du tube cintré (1, 23, 31, 41, 51) à former éventuellement, après quoi
tous les segments (S1, S2... Sn) du tube sensiblement droit (10, 11, 22) sont pivotés les uns par rapport aux autres
et sont déplacés les uns vers les autres, les courbures locales des segments attenants
(S1, S2... Sn) s'alignant et les courbures locales, de préférence contiguës, formant une courbure
continue dans le tube cintré (1, 23, 31, 41, 51), le tube cintré (1, 23, 31, 41, 51)
présentant la courbure souhaitée.
2. Procédé selon la revendication 1, caractérisé en ce que la courbure locale d'un segment (S1, S2... Sn), avant le pivotement des segments (S1, S2... Sn) les uns par rapport aux autres, a un rayon plus petit (Ri1, Ri2... Rin) sur un côté qui formera un coude intérieur (3) que sur un côté qui formera un coude
extérieur (4) du tube cintré à former (1, 23, 31, 41, 51).
3. Procédé selon la revendication 1 ou 2, caractérisé en ce que la paroi interne (24) sur le coude extérieur (4) de la courbure du tube cintré (1,
23, 31, 41, 51) est sensiblement lisse.
4. Procédé selon l'une quelconque des revendications précédentes, caractérisé en ce qu'un segment (S1, S2... Sn) du tube sensiblement droit (10, 11, 22) s'effile depuis un côté qui formera un coude
intérieur (3) du tube cintré (1, 23, 31, 41, 51) jusqu'à un côté qui formera un coude
extérieur (4) du tube cintré (1, 23, 31, 41, 51).
5. Procédé selon l'une quelconque des revendications précédentes, caractérisé en ce qu'une zone (Z1, Z2... Zn) comprend une partie (34) du tube sensiblement droit (10, 11, 22) qui peut être pliée
entre deux segments successifs (S1, S2... Sn) ; dans lequel chaque zone (Z1, Z2... Zn) du tube cintré (1, 23, 31, 41, 51) est pliée en un pli (27).
6. Procédé selon la revendication 5, caractérisé en ce qu'un début de pli (27) est formé dans chaque zone du tube sensiblement droit (10, 11,
22).
7. Procédé selon l'une quelconque des revendications 1 à 4 précédentes, caractérisé en ce qu'une zone (Z1, Z2... Zn) comprend une partie (34) du tube sensiblement droit (10, 11, 22) qui a été retirée
entre deux segments successifs (S1, S2... Sn) ; dans lequel des côtés de segments adjacents (S1, S2... Sn) du tube cintré (1, 23, 31, 41, 51) viennent au moins sensiblement en butée les uns
contre les autres.
8. Procédé selon la revendication 7, caractérisé en ce que les côtés en butée des segments (S1, S2... Sn) sont reliés entre eux.
9. Procédé selon l'une quelconque des revendications précédentes, caractérisé en ce que les courbures locales sont formées par hydroformage.
10. Procédé selon l'une quelconque des revendications précédentes, caractérisé en ce qu'un tube droit (21) est positionné à l'intérieur d'un certain nombre de parties reliées
entre elles en pivotement (65), chaque partie (65) comprenant au moins une courbure
à former localement dans un segment positionné à l'intérieur ; après quoi le tube
est déformé, déformation pendant laquelle chaque segment est appuyé contre la paroi
(67) de la partie associée (65), en conséquence de quoi le tube sensiblement droit
(10, 11, 22) est formé avec chaque segment (S1, S2... Sn) doté de sa courbure locale ; après quoi les parties (65) sont par la suite pivotées
les unes par rapport aux autres, formant ainsi la courbure souhaitée dans le tube
cintré (1, 23, 31, 41, 51).
11. Dispositif (61) adapté pour réaliser le procédé selon l'une quelconque des revendications
précédentes, lequel dispositif (61) comprend un certain nombre de parties reliées
entre elles en pivotement (65), caractérisé en ce que chaque partie (65) a au moins une courbure locale ; le dispositif (61) comprenant
deux parties (62, 63) à positionner en opposition l'une par rapport à l'autre, qui
sont dotées chacune de parties reliées entre elles en pivotement (65), reliées entre
elles via des bras de pivot (64) ; dans lequel les parties reliées entre elles en
pivotement (65) couplant la partie inférieure (63) et la partie (62) positionnée dessus,
définissent conjointement un passage (66) pour un tube à cintrer ; dont la paroi (67)
est dotée de courbures locales qui correspondent à des courbures à former dans un
segment (S1, S2... Sn) du tube, et dans lequel des courbures locales attenantes de parties adjacentes (65)
reliées en pivotement définissent les courbures d'un tube cintré (1, 23, 31, 41, 51)
à former au moyen du dispositif (61).
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description