FIELD OF THE INVENTION
[0001] Embodiments of the present disclosure relate to a machine to bend tubular products,
for example metal tubes to make fluid dynamic tubes, pipes, plants or other. In particular,
the machine according to the present disclosure allows to bend such tubular products
in an automated way and feed them substantially continuously onto a bend core.
[0002] Embodiments of the present disclosure also relate to a bending method for the tubular
elements.
[0003] Here and in the following description and claims, by the term continuous feed we
mean a feed of the tubular product starting from a product in a roll or in a bar,
but which in any case has a starting length higher in multiples than the length of
the segment which is the finished product.
BACKGROUND OF THE INVENTION
[0004] Machines are known for the automatic or substantially automated bending of tubular
elements, which allow to make parts of pipes, plants, tubing, fluidic connections
or other, according to different design bends.
[0005] The known bending machines for this type of product can be distinguished into substantially
two groups, that is, bending machines with a core and bending machines without a core.
[0006] In particular, in bending machines with a core the tubular elements are pre-cut to
size into segments and then loaded onto the machine to feed them onto the core.
[0007] This type of known machine, although it guarantees a high bending quality of large-size
tubular elements with limited radiuses for each bending operation, needs different
auxiliary equipment both for the preliminary cutting into segments and also for loading
the segments onto the core, prior to the bending steps.
[0008] This causes an increase in the costs of managing the machine and an increased operating
complexity and automation.
[0009] Moreover, very often, this type of known machine has a mainly manual use, with consequent
operating delays, the need for specialized personnel and an increase in production
costs.
[0010] Moreover, known bending machines with a core, due to their conformation and operating
conception, carry out a tail bending, that is, starting from the opposite end of the
tube with respect to the end that is fed.
[0011] Tail bending, for many products, needs to provide that the length of the segment
is suitably longer than the length of the actual development of the tubular element
once it is bent, since it is necessary that the segment is still gripped by the part
not bent during the execution of the last bend.
[0012] Some types of known bending machines are also characterized by the formation of high
quantities of waste caused by short rectilinear sections of the end of the bent tubes.
[0013] The formation of waste has two main reasons. On the one hand, the traditional machines
with core, because of their operating conception, need the tube to be supported at
one end, so that the section of tube which acts as a support causes waste to be eliminated
at the end. On the other hand, waste is caused because, starting from the segment
in the bending step, the external material stretches and creates a deforming effect
on the end of the cut tube, which obliges one section to be eliminated.
[0014] Coreless bending machines, on the contrary, are applied in particular for bending
tubular elements of reduced diameter with high radiuses, and fed from a roll.
[0015] These known machines, which provide a bending system with a matrix and clamp, and
not a core, can entail, in the case where reduced radiuses of curvature are required,
an ovalization of the usable section for the passage of the tubular element, and the
fluidic characteristics of the tubular element itself may vary.
[0016] In some conditions, a partial occlusion of the tubular element can occur at the bent
point, with consequent lack of performance of the final product.
[0017] There is therefore a need to improve a machine for bending tubular products and a
relative bending method, which overcome at least one of the drawbacks in the art.
[0018] In particular, one purpose of the present disclosure is to produce a machine for
bending tubular elements which allows an efficient bending both of tubular elements
with an ample diameter with reduced radiuses of curvature, and tubular elements of
a limited diameter with ample bending radiuses.
[0019] A further purpose of the present disclosure is to make a machine for bending tubular
elements which is simple and economic, which allows great operating automation, which
uses a bend core and can be fed substantially continuously.
[0020] Another purpose of the present disclosure is to perfect a method for bending tubular
elements which overcomes the shortcomings of the state of the art.
[0021] The Applicant has devised, tested and embodied the present invention to overcome
the shortcomings of the state of the art and to obtain these and other purposes and
advantages.
SUMMARY OF THE INVENTION
[0022] The present invention is set forth and characterized in the independent claims, while
the dependent claims describe other characteristics of the invention or variants to
the main inventive idea.
[0023] In accordance with the above purposes and with embodiments described herein, a machine
for bending tubular elements is provided. In one embodiment, the machine comprises
bending means provided with at least one bending arm able to act on an external surface
of the tubular element in order to make a bend, and with a bend core able to be disposed
inside the tubular element to contrast from the inside the action of the bending arm,
and to conform, in a desired way, the bend of the tubular element.
[0024] The machine according to embodiments described herein also comprises movement means
able to move the tubular element in a linear manner, both in the first feed step toward
the bending means and also during the bending steps.
[0025] According to embodiments, the bending machine also comprises holding means selectively
connected to the bend core in order to keep the latter in a condition of substantial
suspension inside the tubular element.
[0026] The condition of suspension defined by the holding means is such that the movement
means feed the tubular element toward the bending means in a direction and sense concordant
with a work direction of the bending means on the tubular element.
[0027] In this way, the tubular element is worked head-wise, that is, starting from the
same end as that with which the tubular element is fed.
[0028] This work condition allows to feed the tubular element substantially continually,
exploiting the advantages of automation of known coreless machines. Unlike these known
machines, the machine according to the present disclosure, also exploits the advantageous
characteristics of using the core to carry out the bending.
[0029] In this way, it is possible to provide a machine for bending tubular elements which
is substantially automated, or can be automated, more or less completely, which allows
to bend with both large and reduced radiuses, substantially of the whole dimensional
range of tubular elements.
[0030] With the embodiments of the present disclosure there is a reduction in operating
and management costs of the machine, optimizing the yield.
[0031] According to a variant, the holding means are of the magnetic type, that is, they
provide at least a magnetic element disposed on the perimeter around the zone where
the tubular element is disposed in the operating condition. By magnetic element, here
and in the following description and claims, we mean any element suitable to exert
a magnetic force of attraction on an element, which is also magnetic, magnetized or
has magnetic means (in this case the bend core), therefore including permanent magnets,
electromagnets, elements which can be magnetized and any other element suitable for
the purpose.
[0032] The at least one magnetic element, or the plurality of magnetic elements, is/are
disposed around the tubular element in order to generate a magnetic field which keeps
the core in a condition of suspension inside the tubular element.
[0033] The position of the magnetic element or elements is lateral, that is, not interfering
with the axis of feed of the tubular element, and this determines a considerable operating
advantage, promoting the automation of the advance and feed movements of the tubular
element toward the bending means.
[0034] The bending core is disposed axially in correspondence to the central zone of magnetic
balance, thus staying in a condition of substantial suspension inside the space defined
by the magnetic elements.
[0035] The tubular element is thus fed by the movement means in the direction of feed, inserting
itself into the interspace defined between the magnetic elements and the bend core,
without any interference by any possible supports of the bend core or the tubular
element itself. In this disposition, the tubular element is further fed by the movement
means in the same direction and the same sense, in a manner coordinated with the drive
of the bending means in order to carry out the bends required.
[0036] In this solution, it is obvious that no working waste at all is produced, in that
once a first portion of tubular element has been bent according to the desired pattern,
the tubular element can be cut exactly to size, separating only the bent portion.
In this condition, the tail end of the remaining tubular element coincides with the
leading end of the new portion to be bent, and so on.
[0037] According to a variant, the magnetic elements can be conformed so as to command an
axial recovery movement of the core after the bending steps.
[0038] According to another variant, the holding means comprise a first gripping member
disposed in cooperation with a first end, or tail end, of the bend core, and able
to maintain the bend core in the suspended condition during the feed steps of the
tubular element in the direction of feed.
[0039] In this variant solution, the holding means also comprise a second gripping member
disposed in cooperation with a second end, or tail end, of the bend core, and able
to maintain the bend core in the suspended condition during the bending steps of the
tubular element.
[0040] In this solution too, as in the previous one, the holding means are disposed and
act laterally with respect to the position of the tubular element, so that there is
no interference by the holding means with respect to the axis of feed of the tubular
element.
[0041] In this variant solution, the tubular element is initially fed head-wise by the movement
means. Then the tubular element is cut or sheared in order to define a segment of
desired length.
[0042] Subsequently the segment is fed along the direction of feed so as to free the tail
end of the bend core.
[0043] In this condition the second gripping member is activated and the first gripping
member is de-activated, so that the movement means can feed the segment in the same
direction and sense in order to bring it into cooperation with the bending means and
carry out the bends required.
[0044] The suspended condition of the bend core is guaranteed at the rear by the second
gripping member.
[0045] With this variant, the bending occurs only on a segment coinciding with the dimension
of the development of the portion to be bent, so as to facilitate the operations to
move the segment, and to further improve the quality results of the bend carried out.
[0046] According to a further variant, the holding means comprise a support member, for
example made of flexible material, articulated meshes or other, which support and
feed the core inside a tubular bar, from which a plurality of bent portions are made.
[0047] In this variant solution, the core is moved by the movement means, axially to the
tubular bar by a tail end of the latter, until the leading end is reached, and then
positioned in cooperation with the bending arm of the bending means.
[0048] The movement of the tubular bar to bend its portions is, however, carried out head-wise.
[0049] These and other features, aspects and advantages of the present disclosure will become
better understood with reference to the following description, the drawings and appended
claims. The drawings, which are incorporated in and constitute a part of this specification,
illustrate embodiments of the present subject matter and, together with the description,
serve to explain the principles of the disclosure.
[0050] The various aspects and features described in the present disclosure can be applied,
individually, wherever possible. These individual aspects, for instance the aspects
and features described in the attached dependent claims, can be made subject of divisional
patent applications.
[0051] It is noted that anything found to be already known during the patenting process
is understood not to be claimed and to be the subject of a disclaimer.
BRIEF DESCRIPTION OF THE DRAWINGS
[0052] These and other characteristics of the present invention will become apparent from
the following description of some preferential forms of embodiment, given as a non-restrictive
example with reference to the attached drawings wherein:
- fig. 1 is a schematized view, lateral and partially sectioned, of a first form of
embodiment of a machine for bending tubular elements according to embodiments of the
present disclosure, in a first operating step;
- fig. 2 is a schematized view, lateral and partially sectioned, of the bending machine
in fig. 1, in a second operating step;
- fig. 3 is a schematized view, lateral and partially sectioned, of the bending machine
in fig. 1, in a third operating step;
- fig. 4 is a schematized view, lateral and partially sectioned, of a second form of
embodiment of a machine for bending tubular elements according to the present disclosure,
in a first operating step;
- fig. 5 is a schematized view, lateral and partially sectioned, of the bending machine
in fig. 4, in a second operating step;
- fig. 6 is a schematized view, lateral and partially sectioned, of the bending machine
in fig. 4, in a third operating step;
- fig. 7 is a schematized view, lateral and partially sectioned, of a third form of
embodiment of a machine for bending tubular elements according to the present disclosure,
in a first operating step;
- fig. 8 is a schematized view, lateral and partially sectioned, of the bending machine
in fig. 7, in a second operating step;
- fig. 9 is a schematized view, lateral and partially sectioned, of the bending machine
in fig. 7, in a third operating step.
[0053] In order to facilitate comprehension, the same reference numbers have been used,
where possible, to identify common elements in the drawings that are substantially
identical. It is understood that elements and characteristics of one form of embodiment
can conveniently be incorporated into other forms of embodiment without further clarifications.
DETAILED DESCRIPTION OF THR EMBODIMENT
[0054] Reference will now be made in detail to the various embodiments of the invention,
one or more examples of which are illustrated in the figures. Within the following
description of the drawings, the same reference numbers refer to the same components.
Generally, only the differences with respect to individual embodiments are described.
Each example is provided by way of explanation of the invention and is not meant as
a limitation of the invention. For example, features illustrated or described as part
of one embodiment can be used on or in conjunction with other embodiments to yield
yet a further embodiment. It is intended that the present invention includes such
modifications and variations.
[0055] With reference to figs. 1, 2 and 3, a first form of embodiment of a machine 10 used
for the bending of tubular elements, or tubes 11 is shown.
[0056] Both for this form of embodiment described and for the forms of embodiment described
hereafter, the relative representations are deliberately schematic, in order to better
understand the characteristics of the machine according to the present disclosure.
[0057] Operating details such as, for example, the diameters of the tubes, the radiuses
of curvature achieved, the sizes of the core and others, have been deliberately chosen
randomly so as not to constrain the individual forms of embodiment to specific operating
solutions, also considering the fact that one of the main advantages of the present
disclosure is the excellent operating applicability of the bending machine substantially
for any type of tube with any radius of curvature.
[0058] In this case, the machine 10 comprises a bending member 12 and a movement member
13, in this case represented by an unwinding reel 23. The movement of the tube 11,
in a manner known in the state of the art, is achieved by means of a motorized roller-way
or with other systems of an alternative type, such as a gripper, or similar means,
not shown here in detail, which carry out both the first feed of the tubes 11 toward
the bending member 12 and the advance of the tubes 11 during the work steps.
[0059] In the following description, the reference numbers 13, 113, 213 are used to indicate
in general the member which moves the tube 11 linearly in the direction of feed which,
being known, is not shown in detail in the drawings.
[0060] The machine 10 according to embodiments of the present disclosure also comprises
a holding member 15, the function of which will be described in detail hereafter.
[0061] The bending member 12 comprises a bend core 16 and a bending arm 17, which is mobile
with respect to the bend core 16 in order to bend the tubes 11 fed.
[0062] In particular the bend core 16 is disposed inside the tubes 11 so as to function
as contrast, inside the tube 11, to the bending action exerted externally by the bending
arm 17.
[0063] The bend core 16 comprises, in its turn, a polarized support bar 19, a contrasting
ogive 20 and, in the case shown in the drawings, at least a bend-follower element
21 disposed articulated at the head of the contrasting ogive 20.
[0064] There may be only one bend-follower element 21, as in the drawings, or of the multiple
type, or it may not be there at all, if the type of bending and/or machine does not
require it.
[0065] The bending arm 17 is of the substantially known type and is only shown schematized
in the drawings. The bending arm 17 acts externally to the tube 11 to be bent in order
to confer on the latter, in coordination with the advance imparted by the movement
member 13, the bending radius envisaged. The bending arm 17 can be selectively positioned
on different planes transverse to the direction F, in order to bend the tubes 11 on
different planes.
[0066] The machine 10 also comprises a cutting tool 22, for example a milling cutter or
other, in this case, disposed downstream of the holding member 15 and upstream of
the bending member 12, which allows to cut to size one segment of tube 11, at the
end of the bending steps.
[0067] Within the framework of the present disclosure, here and in the variant solutions
shown hereafter, it is understood that the cutting tool 22 could also be disposed
downstream of the bending member 12, or there could be one or more cutting members
22 upstream and one or more cutting tools downstream of the bending member 12.
[0068] The tube 11 is fed in the same direction of feed "F", and in the same sense, both
in the feed step of the tube 11 to the bending member 12, and also during the bending
steps. The direction and sense of feed define a head-wise feed and a head-wise working
of the tube 11.
[0069] The holding member 15 comprises at least a magnetic element 25; by this term we mean
permanent magnets, electro-magnets or other similar or comparable element. The magnetic
element or elements 25 are disposed annularly around a zone in which the tube 11 is
fed, in proximity to the bending member 12, defining an interspace between it and
the bend core 16 in which the tube 11 can be inserted.
[0070] The permanent magnets 25 thus disposed define, with their magnetic fields, a median
zone, axial to the direction of feed "F", of magnetic balance. The bend core 16 is
disposed with its support bar 19 in this median zone of magnetic balance. The support
bar 19, being polarized, remains substantially suspended in correspondence to this
zone, also absorbing, among other things, the axial forces which they generate during
bending.
[0071] Therefore, the whole bend core 16 is maintained suspended by the action of the magnetic
fields generated by the permanent magnet or magnets 25, so as to allow the feed in
the direction "F" required, without risk of interference with possible structures
for the support of the bend core 16 in its operating position.
[0072] As shown in sequence in figs. 1, 2 and 3, in this form of embodiment of the machine
10, the tube 11 is fed from a roll by the action of the unwinding reel 23 in the direction
of feed "F", and directed head-wise toward the bending member 12.
[0073] Before reaching the bending arm 17, the leading end of the tube 11 is made to pass
inside the holding member in the interspace defined between the permanent magnet or
magnets 25 and the bend core 16, so that the latter is disposed in suspension inside
the tube 11.
[0074] In the form of embodiment shown in figs. 4, 5 and 6, a second form of embodiment
of the machine 110 according to the present disclosure is shown schematically.
[0075] In this case the machine 110 comprises a bending member 12, a movement member 113,
and a holding member 115, the latter two being of a different conformation than has
so far been described.
[0076] The bending member 12 is the same as that described for the solution in figs. 1,
2 and 3, and comprises the bend core 16 and the bending arm 17, for bending the tubes
11 fed.
[0077] The movement member 113, in this case, comprises a motorized unwinding reel 23 able
to unwind from a roll the tube 11 to be bent, and a movement pincers 123 disposed
downstream of the unwinding reel 23 and upstream of the bending member 12, with respect
to the direction of feed "F".
[0078] In this case too there can be other feed members present, but not shown here, such
as a roller-way, etc.
[0079] In this variant solution too, the tube 11 is fed head-wise in the same direction
of feed "F", and in the same sense, both by means of the unwinding reel 23 and also
by means of the movement pincers 123.
[0080] The holding member 115 comprises a first gripping pincers 26 and a second gripping
pincers 27 disposed in cooperation with the bend core 16, in order to keep it in a
suspended condition, acting on one side of the tube 11.
[0081] In particular the first gripping pincers 26 is suitable to cooperate with a tail
end of the support bar 19 of the bend core 16; while the second gripping pincers 27
is suitable to cooperate with the contrasting ogive 20 of the bend core 16. The operating
sequence of the two gripping pincers 26 and 27 will be described in detail hereafter.
[0082] The machine 110 in this case also comprises a cutting tool 122, for example a milling
cutter or other, in this case disposed upstream of the first gripping pincers 26,
and able to cut to size a segment of tube 11 before bending.
[0083] As shown in sequence in figs. 4, 5 and 6, in this form of embodiment of the machine
110, the tube 11 is initially unwound from a roll by the action of the unwinding reel
23, and moved in the direction of feed "F" by the feed member 113, and directed head-wise
toward the bending member 12.
[0084] During the feed of the tube 11, the bend core 16 is kept in a suspended condition
by the action of the second gripping pincers 27.
[0085] Before reaching the second gripping pincers with the leading end of the tube 11,
the unwinding reel 23 stops the feed of the tube 11 and the cutting tool 122 cuts
to size the segment of tube 11 to be bent. Before the definitive cut of the segment
of tube 11, the segment is associated to the movement pincers 123. In a variant of
this solution two cutting units can be provided, in which a first cuts one segment
made from multiples of the product, and a second is positioned after the bending member
12 and cuts to size the bent tube.
[0086] Once the cutting to size has been carried out, the unwinding reel 23 partly recovers
the tube 11, separating from the cut segment, and freeing a back section of the support
bar 19 of the bend core 16.
[0087] In this condition, the first gripping pincers 26 is brought into cooperation with
this back section of the support bar 19, and subsequently the second gripping pincers
27 is discharged, releasing the contrasting ogive 20.
[0088] At this point the movement pincers 123 feed the segment head-wise in the direction
F in the same sense of feed executed with the unwinding reel 23, so as to bring it
into cooperation with the bending member 12 and perform the required bends.
[0089] In the form of embodiment shown in figs. 7, 8 and 9, the bending machine according
to the present disclosure is shown in its entirety with the reference number 210.
[0090] In this case the machine 210 comprises a bending member 12, a movement member 213,
and a holding member 215, the latter two having a conformation different from both
the solutions so far described.
[0091] The bending member 12 is the same as that described for the previous solutions and
comprises the bend core 16 and the bending arm 17.
[0092] In this case the tube, rather than being fed from a roll, is fed in bars 211 of a
length substantially multiple to the length of the individual segments to be bent.
[0093] In this case, the movement member 213 comprises movement pincers 223 disposed in
cooperation with a back end of the bar 211, in order to determine a movement thereof
toward the bending member 12 in the direction of feed F.
[0094] The holding member 215 comprises a support bar 219 directly connected to the back
part of the contrasting ogive 20 of the bend core 16.
[0095] The support bar 219 is made of flexible material, with articulated meshes or other,
so as to be able to feed the contrasting ogive 20 from the back surface of the tubular
bar 211, with a curvilinear path, and in any case guarantee sufficient rigidity in
the operating position of the contrasting ogive 20.
[0096] The machine 210 in this case also comprises a cutting tool 222, for example a milling
cutter or other, in this case disposed upstream of the bending arm 17, and able to
cut to size a segment of tube 11 after bending.
[0097] As shown in sequence in figs. 7, 8 and 9, in this form of embodiment of the machine
210, the tubular bar 211 is initially fed from a store and disposed in the direction
of feed F. From here the movement pincers 223 feed the bar 211 head-wise toward the
bending member 12.
[0098] Once the bar 211 is disposed in cooperation with the bending member 12, the bend
core 16 is inserted axially to the bar 211 from a back end of the latter, until it
reaches the position of cooperation, inside the bar 211, with the bending arm 17.
[0099] The bar 211 is then progressively fed by the movement pincers 233 to carry out the
desired bends.
[0100] At the end of bending, the cutting tool 222 cuts the segment to size, in order to
resume the bending cycle of a new section of the bar 211, always fed head-wise.
[0101] It is clear that modifications and/or additions of parts or steps may be made to
the machine 10 and the cutting method as described heretofore, without departing from
the field and scope of the present disclosure.
[0102] For example, it comes within the scope of the present disclosure to provide that
cutting tools 22, 122, 222 are disposed downstream of the bending member 12, or in
another position with respect to the bending member 12, depending on the different
operating conditions.
[0103] According to another variant, the support bar 19 is polarized by means of a magnetic
core, or an electric current or other known polarization system, able to generate
a magnetic field contrasting the action of the field generated by the permanent magnets
25, or by the electro-magnets.
[0104] It is also clear that, although the present disclosure has been described with reference
to some specific examples, a person of skill in the art shall certainly be able to
achieve many other equivalent forms of machine for bending tubular products and relative
cutting method, having the characteristics as set forth in the claims and hence all
coming within the field of protection defined thereby.
1. Machine to bend tubular elements (211) in the form of a bar, from which a plurality
of bent portions are made, said machine comprising bending means (12) provided with
at least one bending arm (17) and a bend core (16) disposed, when in use, inside a
tubular element (211), the bend core (16) comprising a contrasting ogive (20) and
a possible bend-follower element (21) disposed articulated at the head of the contrasting
ogive (20), the machine also comprising movement means (213), configured to move said
tubular element (211) in a direction (F) toward said bending means (12), and cutting
means (222) to cut a segment of tube, characterized in that said machine also comprises holding means (215) configured to maintain said bend
core (16) in a condition of suspension inside said tubular element (211),
wherein said holding means (215) comprise a support member (219) made of flexible
or articulated components or materials, said support member (219) being configured
to support and feed, in said condition of suspension, at least the contrasting ogive
(20) and the possible bend-follower element (21) of the bend core (16) inside the
tubular element (211).
2. Machine as in claim 1, characterized in that said support member (219) made of flexible or articulated components or materials
is configured to feed the contrasting ogive (20) from the back surface of the tubular
element (211) with a curvilinear path and guarantee rigidity in the operating position
of the contrasting ogive (20
3. Machine as in claim 1 or 2, characterized in that said machine also comprises a cutting member (222) configured to divide the tubular
element (211) in bar into segments of the desired length.
4. Machine as in claim 3, characterized in that said cutting member (222) is disposed upstream of the bending means (12) with respect
to the direction of feed (F).
5. Machine as in claim 4, characterized in that said cutting member (222) is disposed upstream of the bending arm (17).
6. Machine as in claim 3, characterized in that said cutting member (222) is disposed downstream of the bending means (12) with respect
to the direction of feed (F).
7. Machine as in any claims from 3 to 6, characterized in that said cutting member (222) is configured to cut to size a segment of tube (211) after
bending.
8. Machine as in any claims from 3 to 7, characterized in that said cutting member (222) is a milling cutter.
9. Machine as in any claims hereinbefore, characterized in that the movement means (213) comprise movement pincers (223) disposed in cooperation
with a tail end of the tubular element (211) in order to feed said tubular element
(211) toward the bending means (12) in the direction of feed (F).
10. Method to bend tubular elements (211) in the form of a bar, from which a plurality
of bent portions are made, said method comprising at least one bending step, in which
bending means (12) provided with at least one bending arm (17) act on an external
surface of a tubular element (211), and a bend core (16) disposed inside said tubular
element (211) contrasts the action of said bending arm (17) from the inside, by means
of a contrasting ogive (20) and a possible bend-follower element (21) disposed articulated
at the head of the contrasting ogive (20), and conforms the bend of said tubular element
(211) in a desired manner, and at least one movement step in which movement means
(213) move said tubular element (211) both to feed it toward said bending means (12)
and also during the bending step, characterized in that, both in said bending step and also in said movement step, said method provides that
said bend core (16) is maintained in a condition of suspension inside said tubular
element (211) by means of holding means (215),
wherein said method provides to activate a support member (219) of the holding means
(215) which is made of flexible or articulated components or materials, and supports
and feeds in said condition of suspension at least the contrasting ogive (20) and
the possible bend-follower element (21) of the bend core (16) inside said tubular
element (211).
11. Method as in claim 10, characterized in that said method provides to use said support member (219) to feed the contrasting ogive
(20) from the back surface of the tubular element (211) with a curvilinear path and
guarantee rigidity in the operating position of the contrasting ogive (20).
12. Method as in claim 11, characterized in that the bend core (16) is moved axially to the tubular element (211) by a tail end of
the tubular element (211), until the leading end is reached, and then positioned in
cooperation with the bending means (12) and in that the movement of the tubular element (211) to bend its portions is carried out head-wise.
13. Method as in any claims from 10 to 12, characterized in that the tubular element (211) is initially fed from a store and disposed in the direction
of feed (F).
14. Method as in claim 13, characterized in that, from said store, movement pincers (223) feed the tubular element (211) head-wise
toward the bending means (12) and once the tubular element (211) is disposed in cooperation
with the bending means (12), the bend core (16) is inserted axially to the tubular
element (211) from a back end of the tubular element (211), until the bend core (16)
reaches the position of cooperation, inside the tubular element (211), with the bending
arm (17).
15. Method as in claim 14, characterized in that the tubular element (211) is then progressively fed by the movement pincers (223)
to carry out the desired bends and, at the end of bending, a cutting member (222)
cuts the segment to size, in order to resume the bending cycle of a new section of
the tubular element (211), always fed head-wise.