KIT AND METHOD FOR JUNCTION OF PIPES
20200101518 ยท 2020-04-02
Inventors
Cpc classification
B21D39/046
PERFORMING OPERATIONS; TRANSPORTING
F16L13/142
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B21D39/048
PERFORMING OPERATIONS; TRANSPORTING
International classification
B21D39/04
PERFORMING OPERATIONS; TRANSPORTING
F16L13/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A kit and a related method for connecting pipes, comprising: including: a tubular fitting having at least one access end for an end portion of a respective pipe to be connected; said access end of the fitting having at least one fluid-sealing gasket interposed between an inner surface of the fitting and an outer surface of the pipe; and a pressing tool configured to implement a radial plastic deformation action on the access end defining a stable coupling condition between said fitting and the respective pipe; the pressing tool comprising including at least one tooth extending radially with respect to the circumferential extension of the fitting and the pipe; said access end of the fitting comprising including at least one radial projection formed as a result of the plastic deformation action, said projection being at least partially inserted in the outer surface of said pipe.
Claims
1. A kit for connecting pipes, comprising: a tubular fitting having at least one access end for an end portion of a respective pipe to be connected; said access end of the fitting having at least one fluid-sealing gasket interposed between an inner surface of the fitting and an outer surface of the pipe; and a pressing tool configured to implement a radial plastic deformation action on the access end defining a stable coupling condition between said fitting and the respective pipe; wherein said pressing tool comprises at least one tooth extending radially with respect to the circumferential extension of the fitting and the pipe; and that said access end of the fitting comprises at least one radial projection formed as a result of the plastic deformation action, said projection being at least partially inserted in the outer surface of said pipe.
2. The kit according to claim 1, wherein said pressing tool comprises an annular surface configured to be positioned around the outer surface of the access end to implement said radial deformation action; said tooth extending from said annular surface.
3. The kit according to claim 1, wherein said pressing tool comprises at least two jaws, each of which defining a respective portion of said annular surface.
4. The kit according to claim 2, wherein said pressing tool comprises a plurality of segments hinged to each other, each of which defining a respective portion of said annular surface.
5. The kit according to claim 2, wherein said tooth substantially has the shape of a wedge defining an end, which is distal to the annular surface, is tapered and has a decreasing section.
6. The kit according to claim 2, wherein said tool comprises a plurality of teeth extending radially from said annular surface.
7. The kit according to claim 1, wherein said radial projection substantially has the shape of a wedge defining an end, which is distal to the inner surface of the fitting, is tapered and has a decreasing section; said end being inserted in the outer surface of the pipe for mechanically linking the pipe itself.
8. The kit according to claim 7, wherein it comprises a plurality of projections extending radially from the inner surface of the fitting and arranged along an annular area of said access end.
9. The kit according to claim 8, wherein said annular area is arranged upstream of the gasket with respect to the direction of insertion of the pipe in the access end.
10. The kit according to claim 8, wherein said annular area is arranged downstream of the gasket with respect to the direction of insertion of the pipe in the access end.
11. The kit according to claim 7, wherein it comprises a plurality of projections extending radially from the inner surface of the fitting and arranged along two annular areas of said access end, which are arranged on opposite sides of the gasket.
12. The kit according to claim 2, wherein said fluid-sealing gasket is housed in an annular chamber formed in said access end; said annular surface of the pressing tool having a circumferential lead adapted to abut against the annular chamber in order to deform said chamber and the gasket contained therein on the outer surface of the pipe.
13. A method for connecting pipes, comprising the steps of: inserting at least one end portion of a respective pipe inside one access end of a tubular fitting; carrying out a radial plastic deformation action on the access end of the fitting to define a stable coupling condition between said fitting and the respective pipe; wherein said step of carrying out the plastic deformation comprises the substeps of: forming at least one projection extending radially from an inner surface of the access end of the fitting; and inserting, at least partially, the projection in the outer surface of said pipe.
14. The method according to claim 13, wherein said plastic deformation action is implemented only on the access end of the fitting; said pipe not being deformed.
15. The method according to claim 13, wherein said step of carrying out the plastic deformation comprises the substep of simultaneously forming a plurality of projections extending radially from the access end of the fitting, each of which interfering with the outer surface of the pipe.
16. The method according to claim 13, wherein said radial plastic deformation action is carried out by a pressing tool configured to press the fitting on the pipe.
17. The method according to claim 16, wherein said substep of forming at least one projection is performed by at least one tooth arranged in said tool for bending a portion of the fitting so that at least one portion of the projection interferes with the outer surface of the pipe.
18. The method according to claim 13, wherein said step of carrying out the plastic deformation further comprises the substep of radially pressing a gasket arranged in the access end of the fitting to define a fluid seal between the fitting and the pipe.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0036] This description will be set forth hereinafter with reference to the accompanying drawings, provided to a merely indicative and therefore non-limiting purpose, in which:
[0037]
[0038]
[0039]
[0040]
[0041]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS OF THE INVENTION
[0042] With reference to the accompanying figures, the numeral 1 indicates, as a whole, a kit for connecting pipes according to the present invention.
[0043] In particular, the present invention finds use in pipes 2 of various kinds which are used for the construction of plants for the passage of fluids such as water or gas.
[0044] However, as specified above, the Applicant has found important advantages in the use of the kit 1 and the related method in accordance with the present invention, according to the United States standards, for the connection of pipes of the black iron pipe type ASTM A53, A106, A135 and A795 schedule 5-schedule 40, and according to European standards, for the connection of black, galvanized or painted, steel pipes, referring to the following regulations: UNI EN 10255, UNI EN 10220/10216-1, UNI EN 10220/10217-1.
[0045] These pipes may have nominal diameters ranging from 10 to 50 mm, and a nominal outside diameter of from 17.2 to 60.3 mm.
[0046] Moreover, these pipes have a large thickness preferably comprised between 1.8 to 16 mm.
[0047] In addition, the pipes may have a surface finish designed to give greater protection to the pipes themselves. The surface coatings can be of any known type.
[0048] As is better illustrated in
[0049] The fitting 3, which displays a circular profile in cross-section, may be of the V-shaped profile type as shown in
[0050] Preferably, the fitting 3 is made of carbon material and has a thickness of about 1.5 mm.
[0051] Furthermore, the fitting 3 may extend rectilinearly and therefore along the same longitudinal axis, or may define a coupling angle or curve between two pipes 2 transverse to each other.
[0052] Moreover, the fitting 3 may have a single access end 4 for connecting a pipe 2 or, as shown in
[0053] Each access end 4 of the fitting 3 has at least one fluid-sealing gasket 6 interposed between an inner surface 3a of the fitting 3 and an outer surface 2a of the pipe 2.
[0054] The kit 1 also comprises a pressing tool 7 configured to implement a radial plastic deformation action on the access end 4.
[0055] This compression action (
[0056] As will be better clarified in the following of this specification, the pressing tool 7 comprises at least one tooth 8 extending radially with respect to the circumferential extension of the fitting 3 and the pipe 2.
[0057] The tooth 8 defines a radial projection 9 extending from the access end 4 of the fitting 3 which is formed as a result of the plastic deformation action. As is better illustrated in
[0058] In greater detail, the pressing tool 7 comprises an annular surface 10 configured to be positioned around the outer surface 4a of the access end 4 and compress the same by radially pressing the end 4 itself around the outer surface 2a of the pipe 2.
[0059] In accordance with a first possible embodiment exemplarily illustrated in
[0060] Each jaw 11 has a respective portion 10a (half) that defines the entire annular surface 10.
[0061] In accordance with a second embodiment illustrated in
[0062] In this case, too, the segments 12 are hinged to each other and are movable towards/away from each other to define the pressing action on the fitting 3.
[0063] Advantageously, the tool 7 in the two possible embodiments has an actuator, not shown because of known type, which can be operated manually and is adapted to apply a predetermined pressure force on the fitting 3.
[0064] As is illustrated in the accompanying figures, the tooth 8 extends radially from said annular surface 10.
[0065] Advantageously, a plurality of teeth 8 are provided, which extend radially from the annular surface 10 and are suitably spaced so as to be arranged according to a circumferential path defined by the surface 10.
[0066] The number and positioning of the teeth 8 may be of any type depending on the various operating requirements and on the basis of the type of pipes to be connected.
[0067] In this situation, a projection 9 is formed for each tooth 8.
[0068] In greater detail, each tooth 8 substantially has the shape of a wedge defining an end 8a, which is distal to the annular surface 10, is tapered and has a decreasing section.
[0069] Consequently, each projection 9 substantially has the shape of a wedge shaped complementarily to the respective tooth 8.
[0070] The projection 9 has an end 9a, which is distal to the inner surface 3a of the fitting 3, is tapered and has a decreasing section. This end 9a has the function of scratching the surface of the pipe 2 to interfere with it.
[0071] Consequently, each end 9a appears to be inserted in the outer surface 2a of the pipe 2 in order to define a mechanical constraint between the pipe 2 and the fitting 3.
[0072] It should also be noted that the projections 9 extend radially from the inner surface 3a of the fitting 3 and along an annular area 13 of the above-mentioned access end 4.
[0073] In accordance with a first embodiment shown in
[0074] In other words, in this situation the projections 9 are formed in an annular flap of the fitting 3 which defines the insertion mouth of the pipe 2.
[0075] Alternatively, as shown in
[0076] Still in accordance with a further embodiment shown in
[0077] In accordance with a further embodiment shown in
[0078] In this situation, the projections 9 are formed towards an innermost area of the fitting 3, whereas the gasket 6 is closer to the insertion mouth of the pipe 2.
[0079] Preferably, the fluid-sealing gasket 6 is housed in an annular chamber 14 formed in said access end 4 and projecting with respect to the upper surface 4a of the end 4 itself.
[0080] The annular surface 10 of the tool 7 has a circumferential lead 15 adapted to abut against the annular chamber 14 in order to allow for the deformation of the chamber 14, which causes the compression of the gasket 6 on the outer surface 2a of the pipe 2.
[0081] The present invention further relates to a method for connecting pipes 2 by using the kit 1 described above mainly as regards structure.
[0082] The method comprises the steps of inserting at least one end portion 5 of a respective pipe 2 inside the access end 4 of a tubular fitting 4 and along the said insertion direction D.
[0083] Subsequently, the radial plastic deformation action is carried out on the access end 4 of the fitting 3 to define a stable coupling condition between the fitting 3 and the respective pipe 2.
[0084] In turn, the step of implementing the plastic deformation is carried out by providing at least one projection 9 extending radially from an inner surface 3a of the fitting 3, and inserting, at least partially, the projection 9 in the outer surface 2a of the pipe 2.
[0085] Preferably, the plastic deformation action is carried out by simultaneously forming a plurality of projections 9 extending radially from the access end 4 of the fitting 3, each of which interfering with the outer surface 2a of the pipe 2.
[0086] It should be noted that, as shown in
[0087] In other words, the sole deformation action bends the fitting 3, thus leaving the pipe section 2 unchanged (not compressed). The sole interference action of the projections 9 only scratches the surface of the pipe 2 in order to implement the mechanical coupling.
[0088] However, in the case of pipes with reduced thickness, it is also possible to deform the pipe, thus ensuring a greater mechanical seal.
[0089] As specified above, the radial plastic deformation action is carried out by the pressing tool 7 of the type described above and illustrated in
[0090] The creation of each projection 9 is performed by at least one respective tooth 8 adapted to bend a portion of the fitting 3 so that at least the end 9a of the projection 9 interferes with the outer surface 2a of the pipe 2.
[0091] Simultaneously with the creation of the projection 9, the gasket 6 arranged in the access end 4 of the fitting 3 is also radially pressed to define the aforementioned fluid seal between the fitting 3 and the pipe 2.
[0092] Therefore, the present invention solves the problems encountered in the prior art and entails major advantages.
[0093] Firstly, the connection kit 1 can be used for thick-walled pipes 2 since it acts by deforming not the pipe 2 itself but only the fitting 3 which, in turn, can be manufactured with a reduced thickness.
[0094] As a result, the kit 1 proves to be structurally simple and with particularly low costs since the fittings 3 are not modified in their structure with respect to those normally used in the context of the press fitting connections used for pipes of different sizes.
[0095] In other words, the fitting 3 is usable both for the press fitting solution, in which also limited thickness pipes are bent, and for the connection of thick-walled pipes 2.
[0096] It should be noted that for reduced thickness pipes, the deformation is simultaneously carried out on the fitting and the pipe itself, thus ensuring a better mechanical seal of the connections.
[0097] Advantageously, the fitting 3 (both with the V-shaped profile and the M-shaped profile) is thus very versatile for any pipe to be connected.
[0098] Moreover, the formation of the projections 9 for the coupling to the pipe 2 is particularly simple since it is achieved by the action of the tool 7 with a predetermined pressure value.
[0099] This entails a method that is very simple, fast and therefore with particularly low costs, which allows for connecting pipes of various kinds, even thick-walled pipes.
[0100] Even the size of the tool 7 can be reduced, as it does not need to bend the pipe 2 but only the fitting 3, which as described above has a reduced thickness.