Rolling mill and rolling method
10654084 ยท 2020-05-19
Assignee
Inventors
Cpc classification
B21B38/105
PERFORMING OPERATIONS; TRANSPORTING
International classification
B21B38/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A rolling mill, in particular a rolling mill having more than one mill stand, includes at least two rolls which are mounted in a roll bearing in a mill stand to absorb rolling forces, movers for moving at least one roll relative to the mill stand as well as determining devices for determining the roll pass, the determining device having a pass reference and a spatial reference as well as a measuring device for measuring the relative position between the pass reference and the spatial reference. At least one of the pass reference and the spatial reference is arranged peripherally in relation to the power flow occurring between the roll and the mill stand.
Claims
1. A rolling mill comprising: a roll stand; a first roll mounted in the roll stand, in a first roll bearing, to absorb rolling forces; a second roll mounted in the roll stand, in a second roll bearing, to absorb rolling forces; a displacement device configured to displace at least the first roll with reference to the roll stand, the displacement device comprising a piston-cylinder unit, an eccentric bushing, or an electromechanical displacement device having a hydraulic fixation element; and a determining device for determining a roll pass, wherein the determining device comprises for each of the first and the second rolls: a projection; a support; and a measuring gauge for measuring a relative position between the projection and the support; wherein rolling forces are introduced into the roll stand via two force introduction regions of the roll stand; wherein a neutral region of the roll stand is disposed between the two force introduction regions; wherein the support is disposed on the roll stand in the vicinity of the neutral region of the roll stand; and wherein a change in stresses caused by the rolling forces can also exert less of an influence.
2. The rolling mill according to claim 1, wherein the projection is free of rolling forces.
3. The rolling mill according to claim 1, wherein the measuring gauge comprises a distance meter configured to measure a distance between the projection and the support.
4. The rolling mill according to claim 1, further comprising an off-line calibrator that allows a measurement of the roll pass directly on at least one of the first and the second rolls.
5. The rolling mill according to claim 4, further comprising a regulation circuit for regulating the roll pass, wherein the regulation circuit comprises the determining device.
6. The rolling mill according to claim 1, wherein the support comprises a support ring.
7. The rolling mill according to claim 1, wherein the support comprises at least one support arm.
8. The rolling mill according to claim 1, wherein the measuring gauge comprises a waveguide.
9. A rolling mill comprising: a roll stand; a first roll mounted in the roll stand in a first roll bearing; a second roll mounted in the roll stand in a second roll bearing, said roll stand absorbing rolling forces via said first and second roll bearings and said first and second rolls; a displacement device configured to displace at least the first roll with reference to the roll stand, the displacement device comprising a piston-cylinder unit, an eccentric bushing, or an electromechanical displacement device having a hydraulic fixation element; and a determining device for determining a roll pass, wherein the determining device comprises for each roll: a projection; a support; and a measuring gauge for measuring a relative position between the projection and the support; wherein at least one of the first and the second rolls is mounted in a bearing body and the projection of the at least one of the first and the second rolls is disposed on the bearing body.
10. The rolling mill according to claim 9, further comprising a force introduction region at the roll stand, the rolling forces being introduced into the roll stand at the force introduction region, wherein the support is disposed outside of the force introduction region.
11. A rolling mill comprising: a roll stand; a first roll mounted in the roll stand in a first roll bearing; a second roll mounted in the roll stand in a second roll bearing, said roll stand absorbing rolling forces via said first and second roll bearings and said first and second rolls; a displacement device configured to displace at least one roll with reference to the roll stand, the displacement device comprising a piston-cylinder unit, an eccentric bushing, or an electromechanical displacement device having a hydraulic fixation element; and a determining device for determining a roll pass, wherein the determining device for each of the first and the second rolls comprises: a projection; a support; and a measuring gauge for measuring a relative position between the projection and the support; wherein the support is disposed separate from the roll stand.
12. A rolling method for positioning rolls, the method comprising steps of: providing a rolling mill comprising: a roll stand; a first roll mounted in the roll stand in a first roll bearing; a second roll mounted in the roll stand in a second roll bearing; a displacement device configured to displace at least the first roll with reference to the roll stand, the displacement device comprising a piston-cylinder unit, an eccentric bushing, or an electromechanical displacement device having a hydraulic fixation element; a support attached independent of the roll stand or attached to the roll stand, the support being locally fixed; and a determining device comprising a measuring gauge; calibrating the determining device off-line; determining a roll pass via the measuring gauge measuring a relative position between a projection and the support; and positioning on-line the first roll and the second roll to a desired roll pass, taking into consideration the roll pass determined by the measuring gauge.
13. The rolling method according to claim 12, wherein the calibrating is performed via directly measuring a respective position of the first and the second rolls.
14. The rolling method according to claim 12, wherein the rolling mill comprises a regulation circuit and the regulation circuit comprises the determining device.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further advantages, aims, and properties of the present invention will be explained using the following description of exemplary embodiments, which are particularly shown also in the attached drawing. The drawing shows:
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
(10) The rolling mill 1 shown schematically in
(11) The space situated between the rolls 30, in each instance, is referred to as the roll pass and is therefore a measure of the extent to which the rolls 30 act on the work piece, in each instance.
(12) It is directly comprehensible that precise knowledge of the roll pass, in each instance, allows influencing the rolling process in advantageous manner.
(13) The rolls 30 of the exemplary embodiment concretely shown in
(14) The rockers 45 furthermore have a guide side 47 that ultimately defines the movement possibilities of the rocker 45, in that this side guides the rocker 45, in each instance.
(15) For this purpose, the bearing side 46 and the bearing body 70 have a roll bearing 35, which bears the roll 30, in each instance.
(16) A projection 75 free of rolling forces is disposed on the side of the bearing side 46 facing away from the guide side 47, which projection can be used as a pass reference 54, as will be explained in detail below, using the further exemplary embodiments. As is directly evident, this projection 75 free of rolling forces and therefore the pass reference 54 are disposed away from the roll bearing 35 by less than the bearing diameter of the roll bearing 35. Also, it is directly comprehensible that the pass reference 54 or the projection 75 free of rolling forces is disposed peripheral to the force flow with reference to a force flow that occurs between the roll 30, in each instance, and the roll stand 20. In this connection, it must be taken into consideration that on the bearing side 46, facing away from the pass, a piston/cylinder unit 42 can apply force to the rolls, in each instance, in the direction toward the pass or the pass line 2, as is explained as an example in
(17) In the exemplary embodiment shown in
(18) Force introduction regions 24, in which the supporting force and therefore the rolling force is introduced into roll stand 20, lie, in each instance, where the piston/cylinder units 42 support themselves on the roll stand 20, in each instance, as a displacement device 40 that displaces the rolls 30.
(19) Each of the rockers 45 has a projection 75 free of rolling forces, as was already explained with regard to
(20) Distance meters 60 are disposed on the projections 75 free of rolling forces, in each instance, which devices support themselves on a support ring 78 that forms the spatial reference support 77.
(21) With regard to each distance meter 60, a pass reference 54 is disposed on every projection 75 free of rolling forces, and a spatial reference 56 is disposed on the spatial reference support 77, which references, together with the measurement gauge 58 embodied by the distance meter 60, form a device 50 for determining the roll pass.
(22) In the exemplary embodiment shown in
(23) The exemplary embodiment shown in
(24) As is directly comprehensible, the spatial reference 46 is disposed outside of a force introduction region, in each instance, in which the rolling forces are introduced into the roll stand 20, in this arrangement as well.
(25) The arrangement shown in
(26) In the exemplary embodiment shown in
(27) Furthermore, the roll stand 20 according to
(28) The arrangement shown in
(29) The eccentric bushings 41 are disposed on stand arms 21, which in turn are firmly attached to the roll stand 20, whereby accordingly, force introduction regions 24 into the roll stand 20 can be found in the area of this attachment. Depending on the concrete implementation of this exemplary embodiment, the stand arms 21 can also be configured in one piece with the roll stand.
(30) In the exemplary embodiment shown in
(31) The arrangement according to
(32) For this purpose, the distance meter 60 according to
(33) The distance meter 60 is affixed, with its measurement foot 63, either on the pass reference 54 or on the spatial reference 56, for example, so that the measurement tip 61 sits on the related counter-piece of this pass reference 54 or of the spatial reference 56, in each instance.
REFERENCE SYMBOL LIST
(34) 1 rolling mill 2 pass line 12 input side 13 output side 20 roll stand 21 stand arm (numbered as an example) 24 force introduction region (represented as an example) 25 neutral region (represented as an example) 30 roll 35 roll bearing 40 displacement device (numbered as an example) 41 eccentric bushing 42 piston/cylinder unit (numbered as an example) 45 rocker (numbered as an example) 46 bearing side (numbered as an example) 47 guide side (numbered as an example) 50 determination device (numbered as an example) 54 pass reference (numbered as an example) 56 spatial reference (numbered as an example) 58 measurement gauge (numbered as an example) 60 distance meter (numbered as an example) 66 measurement tip 62 measurement contour adapted to the references 54, 56 63 measurement foot 64 distance-maintaining spring 65 waveguide for measurement 66 magnet 70 bearing body 75 projection free of rolling force 77 spatial reference support 78 support ring 79 support arm