[0001] The present invention relates to a process for fixing a tubular reinforcing insert
to a tubular metal structure.
[0002] In the field of motor-vehicle construction, the tubular structure may be the chassis
of the motor vehicle, the support frame for the engine or a supporting structure in
general. At present, when it is necessary to fix a reinforcing insert to the tubular
structure at right angles thereto, a welding technique is used. The reinforcing insert
serves as an anchorage for mechanical parts. For example, in the case of engine support
frames, the reinforcing insert serves as the seat for vibration-damping supports and
is subject to traction or axial-compressive stresses and/or cutting forces.
[0003] The object of the present invention is to provide a different system for fixing the
reinforcing insert so as to avoid welding.
[0004] According to the present invention this object is achieved by means of a process
which includes the steps of:
- forming a hole in the wall of the tubular structure by inward deformation of a portion
of the wall so that the deformed wall portion forms an annular collar,
- force fitting an end portion of the tubular insert into the said collar, and
- introducing liquid at high pressure into the tubular structure so as to compress the
collar against the end portion of the tubular insert.
[0005] This technique involves a considerable reduction in the working time compared with
normal fixing by welding. Moreover, if the number of reinforcing inserts to be fixed
to the main structure is increased, the working time remains constant in that the
operation is carried out in a single forming tool. On the contrary, when inserts are
fixed by welding, the working time increases proportionally with the number of pieces
to be welded.
[0006] The joint obtained by the process of the invention has greater resistance to cutting
forces by virtue of the greater resistant surface offered by the collar formed in
the wall of the tubular structure. The dimensions of the joint are also more precise
than in traditional fixing by welding.
[0007] The invention also concerns equipment for carrying out the process defined above.
[0008] Further characteristics and advantages of the present invention will become clear
during the detailed description which follows, provided purely by way of non-limiting
example, with reference to the appended drawings, in which:
Figure 1 is a schematic section of apparatus for carrying out a process according
to the invention,
Figure 2 is a view of the part indicated by the arrow II in Figure 1, in greater detail,
Figures 3, 4 and 5 are schematic illustrations of different steps in the process of
the invention, and
Figure 6 illustrates a piece obtained by the process of the invention.
[0009] With reference to the drawings, a tubular structure is indicated 10 to which a tubular
reinforcing insert 12 is to be fixed.
[0010] Two dies, one movable relative to the other, are indicated 14 and 16 and are adapted
to clamp the tubular structure 10 between them. The die 14, 16 have respective seats
18, 20 which together form a deformation chamber. The lower die 16 has a recess 22
from the base wall of which projects a cylindrical punch 24 which, in use, extends
perpendicular to the axis of the tubular structure 10. The diameter of the punch 24
is substantially equal to the internal diameter of the reinforcing insert 12 so that
the latter may be fitted onto the punch 24 without forcing. As is seen in particular
in Figure 2, the diameter of the recess 22 is slightly greater than the outer diameter
of the insert 12. Thus the insert fitted onto the punch 24 bears against the base
wall of the recess 22. The punch 24 has a pointed part which projects beyond the corresponding
end of the reinforcing insert 12. The insert 12 has a conical end portion 26 ending
with an annular groove 28.
[0011] In order to fit the insert 12 to the tubular structure 10, one proceeds as follows.
[0012] The structure 10 is disposed between the two dies 14, 16 and is connected to a hydraulic
circuit (not illustrated) which directs high pressure fluid into the tubular structure
10. This forming technique is known per se and is generally termed "hydroforming".
As a result of the forcing of pressurised fluid into the structure 10, the portion
of the structure which is located in the deformation chamber 18, 20 expands radially
until it is brought into contact with the walls of the seats 18, 20 which form the
deformation chamber.
[0013] During the radial expansion of the wall of the tubular structure 10, the punch 24
opens a hole 30 in the wall 10 (Figure 3) causing inward deformation of a wall portion
32 which constitutes an annular collar. With the progressive radial expansion of the
wall of the tubular structure 10, the reinforcing insert 12 is inserted forcibly into
the annular collar 32 (Figure 4). The pressurised fluid acting in the structure 10
compresses the collar 32 against the outer wall of the insert 12 and clamps the collar
32 against the groove 28 and the end portion 26 of the insert 12.
[0014] Subsequently, the pressure of the fluid in the structure 10 is lowered and the liquid
is withdrawn from the structure. Figures 5 and 6 illustrate the structure 10 after
the fixing of the insert 12 in the manner described above.
[0015] It will be understood that the radial expansion of the portion of the structure 10
in correspondence with the point at which the reinforcing insert is anchored is optional,
it being possible to adopt the same technique without radial deformation of the structure
10.
1. A process for fixing a tubular reinforcing insert (12) to a tubular metal structure
(10), characterised in that it includes the following steps:
- forming a hole (30) in the wall of the tubular structure (10) by inward deformation
of a portion of the wall so that the deformed wall portion forms an annular collar
(32),
- force fitting an end portion (26) of the tubular insert (12) into the said collar
(32), and
- introducing liquid at high pressure into the tubular structure (10) so as to compress
the collar against the end portion (26) of the tubular insert (12).
2. A process according to Claim 1, characterised in that the hole (30) and the collar
(32) are formed by the force insertion of a punch (24) into the wall of the tubular
structure (10).
3. A process according to claim 2, characterised in that it further includes the step
of radially expanding a portion of the tubular structure (10) in correspondence with
the anchoring point for the insert (12) due to the effect of the introduction of pressurised
liquid into the tubular structure (10), the insertion of the punch (24) into the wall
of the tubular structure (10) being caused by the radial expansion of the wall.
4. A process according to Claim 2 or Claim 3, characterised in that the tubular insert
(12) is located on the punch (24) before the step of insertion of the punch (24) into
the wall of the tubular structure (10), the punch (24) having a pointed end which
projects beyond the end of the insert (12).
5. A process according to Claim 1, characterised in that the said end portion (26) of
the insert (12) is conical.
6. A process according to Claim 1, characterised in that the tubular insert (12) has
an annular groove (28) over which the collar (32) is closed during its compression
against the end portion (26) of the insert (12).
7. Apparatus for carrying out a process according to Claim 2, characterised in that it
includes a pair of dies, (14, 16) intended to clamp the tubular structure (10) between
them, the punch (24) being fixed to one of the said dies (14, 16).
8. Apparatus according to Claim 7, characterised in that the dies (14, 16) define a deformation
chamber (18, 20) with larger dimensions than those of the corresponding portion of
the tubular structure (10) before the introduction of the pressurised liquid into
the structure itself so that the introduction of the liquid into the tubular structure
causes the radial expansion of the portion of this structure within this chamber (18,
20) and the penetration of the punch (24) into the wall of the structure (10).