JOINING PIECE COMPRISING TWO PARTS FITTED ONE INSIDE THE OTHER AND ASSEMBLED TOGETHER, AND ASSOCIATED MANUFACTURING METHOD
20200158271 ยท 2020-05-21
Inventors
- Jean RIVOIRE (Saint Paul Les Romans, FR)
- Frederic Impellizzeri (Salon de Provence, FR)
- Frederic BAROZIER (Soyons, FR)
Cpc classification
F01N2450/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/1844
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L27/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C11/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/1811
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/1872
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
Joining piece that includes two parts fitted one inside the other and assembled together, and associated manufacturing method. The joining piece is for producing a mechanical joint between two elements, and includes a female part including a mechanical assembly portion and a receiving portion continuing on from the assembly portion, with the receiving portion being in the shape of an equatorial section of a sphere, and a male part including a mechanical assembly portion and an insertion portion continuing on from the assembly portion, the insertion portion being in the shape of an equatorial section of a sphere, inserted with clearance into the receiving portion and being retained in it, so that the male part is rotatably mobile in one or more degrees of freedom relative to the female part while being mechanically assembled with it.
Claims
1. for producing a mechanical joint between two elements, comprising: a female part comprising a portion for mechanical assembly with a first element separate from the part, and a receiving portion continuing on from the mechanical assembly portion, the receiving portion comprising a single shell in the shape of an equatorial section of a sphere, a male part comprising a portion for mechanical assembly with a second element separate from the part, and an insertion portion continuing on from the mechanical assembly portion, the insertion portion being in the shape of an equatorial section of a sphere, inserted with clearance into the shell of the receiving portion and being retained in it, so that the male part is rotatably mobile in one or more degrees of freedom relative to the female part while being mechanically assembled with it.
2. Joining piece for producing a mechanical joint between two elements, comprising: a female part comprising a portion for mechanical assembly with a first element separate from the part, and a receiving portion continuing on from the mechanical assembly portion, the receiving portion comprising two shells each in the shape of an equatorial section of a sphere, the two equatorial sections of a sphere being concentric and separated by a free space, a male part comprising a portion for mechanical assembly with a second element separate from the part, and an insertion portion continuing on from the mechanical assembly portion, the insertion portion being in the shape of an equatorial section of a sphere, inserted with clearance into the free space of the receiving portion and being retained in it, so that the male part is rotatably mobile in one or more degrees of freedom relative to the female part while being mechanically assembled with it.
3. Joining piece according to claim 1, one of the receiving portion and the insertion portion also including a slot, the other of the receiving portion and the insertion portion including a pin inserted into the slot, the slot and the pin being configured so that the male part is rotatably mobile in two degrees of freedom relative to the female part.
4. Joining piece according to claim 1, one of the receiving portion and the insertion portion also including a slot, the other of the receiving portion and the insertion portion including a tab that is shorter than the slot and inserted into the slot, the slot and the tab being configured so that the male part is rotatably mobile in one degree of freedom relative to the female part.
5. Joining piece according to claim 1, the amplitude of movement between the female part and the male part, defined by the angle of inclination () between the axis of symmetry (X1) of the receiving portion and the axis of symmetry (X2) of the insertion portion, being between 0 and 20, preferably between 0 and 10.
6. Joining piece according to claim 1, the mechanical assembly portions of the female part and the male part respectively being cylindrical portions.
7. Joining piece according to claim 1, the mechanical assembly portions of the female part and the male part respectively being truncated cones.
8. Joining piece according to claim 6, the cylindrical portions having identical outer diameters.
9. Joining piece according to claim 1, the male and female parts being open-ended, so that a fluid can circulate inside the joining piece, from one of the mechanical assembly portions towards the other.
10. Joining piece according to claim 6, the male and female parts being open-ended, so that a fluid can circulate inside the joining piece, from one of the mechanical assembly portions towards the other the cylindrical portions having identical inner diameters.
11. Joining piece according to claim 6, the male and female parts being open-ended, so that a fluid can circulate inside the joining piece, from one of the mechanical assembly portions towards the other the cylindrical portions having different inner diameters.
12. Joining piece according to claim 1, the material(s) forming the male part and the female part being suitable for withstanding temperatures of between 50 C. and 1,100 C. and in particular, up to 1,050 C.
13. Joining piece according to claim 1, the material(s) forming the male part and/or female part being selected from any type of weldable material, such as a nickel-based alloy or a stainless steel.
14. Joining piece according to claim 2, one of the receiving portion and the insertion portion also including a slot, the other of the receiving portion and the insertion portion including a pin inserted into the slot, the slot and the pin being configured so that the male part is rotatably mobile in two degrees of freedom relative to the female part, and comprising one or more through-orifices from the outside into the free space.
15. Joining piece according to claim 1, one and/or the other of the portions for mechanical assembly to the first and second element incorporating a coupling flange.
16. Method for manufacturing a joining piece according to claim 1, according to which the female part and the male part are produced and mechanically assembled together in a single step by additive manufacturing.
17. Use of a joining piece according to claim 1 in an exhaust gas circuit at the outlet of an internal combustion engine, particularly of motor vehicle, and/or at the inlet of a motor vehicle turbocharger.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0066] For clarity, the same reference signs denote the same elements both for the alternative of the invention described with reference to
[0067] A joining piece 1 according to a first alternative of the invention will now be described with reference to
[0068] A joining piece 1 according to the invention comprises a female part 10 and a male part 20 mechanically assembled together. In the example shown, the parts 10 and 20 are open-ended in order to permit the circulation of fluid inside the joining piece.
[0069] As can be seen more particularly in
[0070] Each of the parts 10, 20 includes a mechanical assembly portion 11, 21 that makes it possible to connect the joining piece to an external element, such as a turbocharger outlet or a motor vehicle combustion engine exhaust line. The mechanical assembly with the external elements can be carried out by welding, bonding or screwing by means of coupling flanges incorporated as set out in detail below.
[0071] In the example shown, the mechanical assembly portions 11, 21 can be right cylinders.
[0072] The female part 10 also includes an integral receiving portion 12 continuing on from the mechanical assembly portion 11. According to this first alternative of the invention, the receiving portion 12 is made up of a single shell 14 in the shape of an equatorial section of a sphere.
[0073] As it is an equatorial section, this section of a sphere is shaped so that the opening of the section of a sphere initially widens from the mechanical assembly portion until it reaches the diameter of the sphere defined by the section of a sphere, and then narrows.
[0074] The male part 20 includes an integral insertion portion 22 continuing on from the mechanical assembly portion 21. The insertion portion 22 is made up of a single equatorial section of a sphere, shaped so that the opening of the section widens from the mechanical assembly portion until it reaches the diameter of the sphere defined by the section of a sphere, and then narrows.
[0075] The dimensions of the insertion portion 22 and the receiving portion 12 are such that the insertion portion 22 can be inserted with clearance and mechanically retained in the single shell 14 of the female part. The mechanical retention between the two complementary portions 12, 22 allows free rotational movement in all directions between the two parts 10, 20.
[0076] The complementary portions 12, 22 are separated by a clearance, the value of which depends particularly on the diameters of the portions 12, 22. The clearance can for example be between 0.02 mm and 0.30 mm.
[0077] The female part 10 can, according to a second alternative of the invention, include two shells 13, 14.
[0078] A joining piece 1 according to this second alternative comprises a female part 10 and a male part 20 mechanically assembled together. In the example shown, the parts 10 and 20 are open-ended in order to permit the circulation of fluid inside the joining piece.
[0079] As can be seen more particularly in
[0080] In a similar manner to the first alternative described above, each of the parts 10, 20 includes a mechanical assembly portion 11, 21 that makes it possible to connect the joining piece to an external element, such as a turbocharger outlet or a motor vehicle combustion engine exhaust line. The mechanical assembly with the external elements can be carried out by welding, bonding or screwing by means of coupling flanges incorporated as set out in detail below.
[0081] In the example shown, the mechanical assembly portions 11, 21 can be right cylinders.
[0082] The female section 10 also includes an integral receiving portion 12 continuing on from the mechanical assembly portion 11. According to this second alternative of the invention, the receiving portion 12 is made up of two shells 13, 14 each in the shape of an equatorial section of a sphere.
[0083] As these are equatorial sections, these sections of a sphere are shaped so that the opening of sections of a sphere initially widens from the mechanical assembly portion until it reaches the diameter of the sphere defined by the section of a sphere, and then narrows.
[0084] The two equatorial sections of a sphere 13, 14 are concentric and separated by a free space (S).
[0085] The male part 20 includes an integral insertion portion 22 continuing on from the mechanical assembly portion 21. The insertion portion 22 is made up of a single equatorial section of a sphere, shaped so that the opening of the section initially widens from the mechanical assembly portion until it reaches the diameter of the sphere defined by the spherical section, and then narrows.
[0086] The dimensions of the insertion portion 22 and the receiving portion 12 are such that the insertion portion 22 can be inserted with clearance and mechanically retained in the free space S of the female part. The mechanical retention between the two complementary portions 12, 22 allows free rotational movement in all directions between the two parts 10, 20.
[0087] The complementary portions 12, 22 are separated by clearance, the value of which depends particularly on the diameters of the portions 12, 22. The clearance can for example be between 0.02 mm and 0.30 mm.
[0088] As a result, in any alternative of the joining piece according to the invention considered, the male part cannot be inserted into and mechanically assembled with the female part if the two parts are manufactured separately. This is due to the shape of the receiving and insertion portions 12, 22.
[0089] Thus, to produce the joining piece 1, an additive manufacturing step makes it possible to produce and mechanically assemble the male and female parts of the joining piece according to the invention simultaneously.
[0090] Due to the geometry of the complementary parts 10, 20, the assembly thereof obtained directly by additive manufacturing cannot be dismantled.
[0091] Advantageously, the design of the joining piece 1 allows the female and male parts 10, 20 to be rotatably mobile relative to each other in all three degrees of freedom: the joining piece according to the invention therefore makes it possible to establish a ball joint between two external elements.
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[0093] In the examples shown, the inner and outer diameters of the mechanical assembly portion 11 of the female part 10 are equal to those of the portion 21 of the male part. However, the sections of the portions 11 and 21 can be different, so that either a convergent or a divergent profile is obtained. Depending on the application envisaged, a convergent or divergent profile can be advantageous from the point of view of the dynamics of a fluid circulating through the joining piece.
[0094] Advantageously, when the joining piece forms part of a gas circuit such as a combustion engine exhaust line of a motor vehicle, the dynamic sealing of the joining piece is ensured: the inventors have noted the absence of gas leaks to the outside through the clearance between the male part 20 and the female part 10 or through the free space S of the female part 10. This can be explained by the dynamics of the flow of the fluid through the joining piece.
[0095] Preferably, in the case of a joining piece as shown in
[0096] Conversely, in the case of a joining piece as shown in
[0097] In both cases, the direction of circulation of the gases is such that the gases first enter the part that has the section of a sphere with the smallest diameter. This therefore promotes the dynamic sealing of the joining piece, as the direction of circulation of the gases prevents, or at least limits, the entry thereof into the clearance between the single shell 14 and the insertion portion 22 or into the free space S, depending on the alternative of the invention under consideration.
[0098] Static sealing between the male and female parts, without an additional sealing element, can also be envisaged, depending on the application envisaged.
[0099] According to the first alternative of the invention in which the female part includes a single shell 14, continuous contact over the entire circumference of the inside of the joining piece can easily be obtained between the outer surface of the insertion portion 22 and the inner surface of the single shell 14 of the receiving portion 12.
[0100] This continuous contact makes it possible to obtain static sealing. The contact is for example obtained by applying stress tending to separate the male and female parts from each other, or conversely by applying stress tending to bring the male and female parts closer together. The contact does not prevent the differential rotation of the male and female parts.
[0101] Similarly, according to the second alternative of the invention in which the female part includes two shells 13, 14, continuous contact over the entire circumference of the inside of the joining piece can easily be obtained either between the outer surface of the insertion portion 22 and the inner surface of the shell 14 of the receiving portion 12, or between the inner surface of the insertion portion 22 and the outer surface of the shell 13 of the receiving portion 12.
[0102] Again, this continuous contact makes it possible to obtain static sealing. The contact is for example obtained by applying stress tending to separate the male and female parts from each other, or conversely by applying stress tending to bring the male and female parts closer together. The contact does not prevent the differential rotation of the male and female parts. Whichever alternative of the invention is considered, the material(s) forming the joining piece according to the invention is/are advantageously selected so that the joining piece withstands temperatures in the region of 1,000 C., usually encountered on combustion engine exhaust lines.
[0103] However, depending on the applications envisaged, a joining piece according to the invention can be manufactured using any type of material that can be implemented by additive manufacturing. The selection of the material used can particularly depend on the type of fluid that might be circulating through the joining piece, the temperatures and the pressures to which the joining piece is subject.
[0104] In order to improve the dynamic sealing, it can be envisaged in the scope of the second alternative of the invention to produce one or more through-orifices 15 between the free space S and the outside, as shown in
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[0107] The inventors carried out endurance tests on several joining pieces 1, of different diameters, as described above. These pieces 1 were thus assembled using flanges 16, 26 at the turbocharger inlet and outlet and at the wastegate outlet of an internal combustion engine respectively.
[0108] The tests, which were performed for several months, revealed that none of the joining pieces 1 according to the invention showed any sign of fatigue or wear, nor deterioration in operation (all of the pieces 1 retained their degrees of freedom and dynamic sealing).
[0109] Other variants and alternatives of the invention can be produced without departing from the scope of the invention. The invention is not limited to the examples described above.
[0110] Although it is described with reference to the main application envisaged, namely a ball joint in a gas circulation circuit at the outlet of a motor vehicle combustion engine, the invention is also applicable to any field in which it is advantageous to introduce a simple, reliable mechanical joint including one or more degrees of freedom, with or without the circulation of fluid through the joining piece.