JUNCTION DEVICE FOR CONNECTING AN ADAPTER TO A FLANGE FOR MOTION TRANSMISSION FROM A MOTOR TO ONE OR MORE ROLLING ROLLS
20220307557 · 2022-09-29
Inventors
Cpc classification
F16D3/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/382
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2300/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D3/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates to an elastic junction device for the dynamic connection, in a rolling mill, between the motor side and the head of an adapter or between the adapter and one or more rolling rolls. The junction device comprises a central body which can be connected to an end of said flange so that it can rotate integrally therewith, said device comprising two skids through a connecting pin so that said block rotates integrally with said flange, said skids being mechanically couplable to said adapter to allow the rotation thereof upon the rotation of said flange and vice versa. The junction device comprises at least a first damper element and at least a second damper element housed in the block and which act on opposite parts of the connecting pin so as to absorb the axial tensions which are transmitted along the adapter as a result of the stresses caused by rolling.
Claims
1. A junction device for connecting an adapter to a flange which can be used in a rolling mill, wherein said junction device comprises: a block which can be connected to said flange so as to rotate integrally therewith about a first rotation axis; a pair of skids arranged on opposite sides of said block and connected to the same block through a connecting pin, wherein said pin crosses said block and at least partially said skids so that, upon the connection of said block to said flange, the longitudinal axis of said pin is orthogonal to said first axis, said pin making said skids integral with said block during the rotation about said first axis; wherein each of said skids comprises a mechanical coupling surface which is geometrically compliant with a coupling surface of said adapter, wherein, upon the mechanical coupling of said surfaces, the rotation motion of said flange is transferred to said adapter or vice versa, and wherein said coupling surface is configured to allow a relative rotation of said adapter with respect to said block and said skids about a further axis orthogonal to a plane identified by said first axis and by the longitudinal axis of said pin; and wherein said junction device further comprises at least a first damper element and at least a second damper element housed in said block and arranged on opposite sides of said pin in a position opposite to a reference plane on which said longitudinal axis of said pin lies and which is orthogonal to said first rotation axis.
2. The junction device according to claim 1, wherein said junction device comprises a first plurality of damper elements and a second plurality of damper elements, wherein said pluralities of damper elements are housed inside said block and arranged on opposite sides with respect to said pin, wherein each damper element of said first plurality of damper elements mirrors a damper element of said second plurality of damper elements with respect to said reference plane.
3. The junction device according to claim 1, wherein said damper elements are spring packs, hydraulic dampers, or a combination thereof.
4. The junction device according to claim 1, wherein said block comprises a first body in which a second body is inserted, said bodies being configured to define, upon the insertion of one into the other, a plurality of housings for said damper elements and at least one seat for the passage of the pin which connects said block to said skids.
5. The junction device according to claim 4, wherein said block has a prismatic shape, wherein a first pair of opposite sides is identified, from which corresponding end parts of said junction device emerge, a second pair of opposite sides from which corresponding ends of said damper elements protrude, along with a third pair of opposite sides comprising a connecting part to connect said block to said flange.
6. The A junction device according to claim 1, wherein said skids are free to rotate, with respect to said block about said longitudinal axis of said pin.
7. The A junction device according to claim 1, wherein for each of said skids said coupling surface has a spherical cap shape seen on an observation plane defined by said first axis and by said longitudinal axis of said pin, wherein each of said skids develops along a direction parallel to said further third rotation direction, and wherein each of said skids comprises a substantially flat inner surface adjacent to a corresponding side of said block each of said skids having a hole which runs between said coupling surface and said inner surface to house a corresponding end part of said pin.
8. A transmission system which can be used in a rolling mill to transmit the rotational motion generated by a motor to one or more rolls through an adapter, wherein said transmission system comprises at least one flange which connects said motor to said adapter or which connects said one or more rolls to said adapter, characterized in that said transmission system comprises at least one junction device according to claim 1 to connect said flange to said adapter.
9. A transmission system according to claim 8, wherein said first rotation axis of said flange is substantially aligned to the rotation axis of said adapter.
10. A transmission system according to claim 8, wherein said rotation axis of said adapter is inclined with respect to the rotation axis of said flange.
11. The transmission system according to claim 8, wherein said flange defines a seat in which said block can be inserted, said seat defining two opposing guides in each of which a connecting part can slide, defined on a corresponding side of a pair of opposite sides of said block said flange comprising a retaining element which retains said block in said seat.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0021] Further features and advantages of the present invention will become more apparent in light of the detailed description of a preferred, but not exclusive, embodiment of a junction device for connecting an adapter to a flange disclosed by way of non-limiting example, with the aid of the accompanying drawings, in which:
[0022]
[0023]
[0024]
[0025]
[0026]
[0027] The same reference numbers in the figures identify the same members.
DETAILED DESCRIPTION
[0028] With reference to the aforementioned figures, the present invention relates to a junction device 1 for connecting a flange 2 to an adapter 3, wherein such components (flange and adapter) can be used in a motion transmission system 150 from a motor M to one or more rolls R of a rolling mill stand. The flange 2 may be connected to the motor M or the rolls R. Therefore, the junction device 1 according to the present invention may be used to connect the adapter 3 on “motor side” (i.e. to connect the adapter 3 to the flange 2 associated with the motor M) or on “mill stand side” (i.e. to connect the adapter 3 to the flange 2A associated with the rolls R—see
[0029]
[0030] The junction device 1 comprises a pair of skids 4A,4B on opposite sides of the block 10. In particular, a first skid 4A is arranged in a position adjacent to a first side 10A of the block 10, while a second skid 4B is placed in a position adjacent to a second side 10B of the block 10 so that it is opposite to the first skid 4A with respect to the block 10. Preferably, each of the two skids 4A, 4B is in contact with the corresponding side of 10A, 10B to which it is adjacent.
[0031] The skids 4A, 4B have substantially the same configuration and are connected to the block 10 by a connecting pin 5 which crosses the block itself and at least partially the two skids 4A, 4B. In particular, the pin 5 is arranged so that its longitudinal axis 104 is orthogonal to the first rotation axis 101 once the block 10 is connected to the flange 2. Therefore, the pin 5 makes the skids 4A, 4B integral to block 10. Thereby, the rotation of the block 10, determined by the rotation of the flange 2, results in a rotation of the two skids 4a, 4b about the first axis 101.
[0032] Each of the skids 4A, 4B comprises a mechanical coupling surface 41 with the adapter 3. In particular, for each skid 4A, 4B, said coupling surface 41 is geometrically compliant with a corresponding coupling surface 42 of the adapter 3. Upon the mechanical coupling of such surfaces 41, 42, the two skids 4A, 4B transmit the torque from the flange 2 to the adapter 3, in case the flange 2 is arranged on the motor side, or from the adapter 3 to the flange 2, in case the flange 2 is on the mill stand side (rolls R). In any case, the adapter 3 is free to rotate about a second rotation axis 102 (hereinafter also referred to as the longitudinal axis 102 of the adapter 3).
[0033] The coupling surfaces 41 of the skid 4A, 4B are further configured to allow, upon the coupling to the adapter 3, a relative rotation of the latter about a third rotation axis 103 (shown in
[0034] The junction device 1 according to the present invention further comprises at least a first damper element 61 and at least a second damper element 62 housed, at least partially, inside the body of the block 10 on the opposite side with respect to the pin 5 which crosses the block itself to connect the two skid 4A, 4B. More precisely, the two damper elements 61, 62 are arranged on opposite sides, preferably in a mirroring position, with respect to a reference plane containing the longitudinal axis 104 of the pin 5 and orthogonal with the first axis 101 of the flange 2. As a result of the axial loads to which the adapter 3 is subjected, the damper elements 61, 62 act on the pin 5 from the opposite sides allowing relative displacements of the pin 5 (and consequently of the block 10 and the skids 4A, 4B) with respect to the flange 2. Indeed, the damper elements 61, 62 are operationally interposed between the flange 2 and the pin 5 and are either compressed or extended according to the direction of the axial load on the adapter 3.
[0035] According to a preferred embodiment, depicted in
[0036] In general, the damper elements 61, 62 may be of different types and chosen from those already known. Preferably, the damper elements 61,62 may be spring packs, hydraulic dampers, or a combination thereof. Hereinafter, for descriptive purposes only, the damper elements 61,62 are also referred to as spring packs 61,62, but it is understood that they may have a different shape.
[0037] With reference again to
[0038]
[0039] In this embodiment, a second pair of opposite sides 13A, 13B are identified for the block 10 from which the ends of the damper elements 61, 62 and a third pair of opposite sides 14A, 14B, comprising a connection part 15 to connect the block 10 to the flange 2, protrude.
[0040] In this regard, according to a preferred embodiment also depicted in
[0041] As indicated above, as a result of a force induced on the adapter 3, the skids 4A, 4B constrained to the pin 5, and consequently the block 10, move axially with respect to the flange 2 along the direction defined by the guides 28A of the seat 29. However, for this relative movement to take place, the axial loads (F1-F2) must exceed the friction forces which arise between the components constrained to the skids 4A,4B, and the flange 2 as a result of the torque transmitted from the flange 2 to the adapter 3 via the skids 4A,4B. Thereby, the junction 1 is only activated when the need arise, i.e. the damper elements 61, 62 only come into play when the loads exceed the friction forces between the flange 2 and the skids 4A, 4B. It is worth noting that the damper elements 61 are interposed between the covering element 29A and the pin 5, while the damper elements 62 are interposed between the pin 5 and the bottom 28C of the seat 28 defined on the flange 2. Therefore, upon the movement of the block 10 towards the covering element 29, the damper elements 61 are compressed between the pin 5 and the same covering element 29, while the damper elements 62 remain either unloaded 8 or are stretched. In an entirely similar manner, when the block 10 moves towards the bottom 28C of the seat 28, the damper elements 62 are compressed, while the damper elements 61 are either stretched or otherwise not compressed.
[0042] With reference to
[0043] According to a preferred embodiment depicted in
[0044] The present invention further relates to a motion transmission system 150 which can be used in a rolling mill and comprises at least one elastic junction with the technical features described above. In particular, the system comprises at least one motor M and at least one adapter 3 for transmitting the motion of said motor M to at least one roll R of a rolling mill stand, wherein said system comprises a first flange 2 connected to said motor M and a second flange 2B connected to said roll R. The system comprises at least one connecting junction 1 according to the present invention which connects one of said flanges 2, 2B to said adapter 3. In the embodiment depicted in
[0045] In the embodiment depicted in
[0046] In an alternative embodiment of the transmission system, the adapter 3 could be arranged so that its rotation axis 102 is aligned with the rotation axis of the flange 2.
[0047] The attached Figures also allow an understanding of how, according to a preferred embodiment, the junction device is installed in accordance with the present invention. In particular, the block 10 is inserted into the seat 28 through the straight guides 28A and without the connecting pin 5. Once the block 10 is inserted, the retainer element 29 is applied so as to prevent the block 10 from escaping. The adapter 3 is then moved to the block 10 and the two skids 4A, 4B are coupled to the adapter 3 on opposite sides of the block 10. At this point, the connection pin 5 is inserted into the appropriate seats defined through each the skid 4A, 4B, and through the block 10. In particular, the pin 5 is positioned by utilizing an appropriate hole 7 which substantially defines the position of the longitudinal axis 104 of the pin 5. Once the pin is inserted, the hole 7 can be obstructed through a plug 8 inserted therein. If the hole diametrically crosses the entire adapter 3 (as in
[0048] The described technical solutions allow to fully achieve the predetermined tasks and objects. In particular, with the aid of the junction device of the present invention, the loads applied on the adapters are not transmitted to the motor as a whole. Indeed, it has been seen that they can be reduced by more than 50% compared to the previously adopted solutions until they are almost completely eliminated.