ROLLING METHOD WITH A STEP FOR ADJUSTING THE INTERSPACE BETWEEN THE LATERAL BACKUP ROLL AND THE SUPPORT ROLL
20200406323 ยท 2020-12-31
Inventors
Cpc classification
B21B31/20
PERFORMING OPERATIONS; TRANSPORTING
B21B13/145
PERFORMING OPERATIONS; TRANSPORTING
B21B31/22
PERFORMING OPERATIONS; TRANSPORTING
International classification
B21B31/22
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Disclosed is a rolling method for rolling a strip including: rolling the strip by a pair of working rolls; transmitting a rolling force to the working rolls by a pair of support rolls; holding each of the working rolls by a pair of side support rollers; supporting each side support roller by two rows formed by rollers; supporting each row formed by the rollers, by a bearing support carrying rollers, the bearing support mounted pivotally on an articulation axis. The dimensions of a first interspace between the side support roller and the support roll and a second interspace between the strip and the assembly consisting of side support roller and bearing support vary in the course of the rolling. The method includes adjusting the dimension separating the axis of the support roll and the axis of the side support roller defining the first interspace.
Claims
1. Rolling method adapted to a mill for rolling a strip (ST), comprising: a rolling, by a pair of working rolls (WR) with parallel axes, of said strip taken between said working rolls (WR) and travelling between the pair of working rolls, each of said working rolls having at least one generatrix of contact with the strip, a transmission to said working rolls (WR) of a rolling force substantially normal to the strip, by a pair of support rolls (SR), said working rolls (WR) and said support rolls (SR) situated on the same side of the strip being in contact with each other along a common support generatrix in order to transmit said rolling force, a plane perpendicular to a direction of travel of the strip, in which at least one contact generatrix and the axes of said working rolls are situated, holding of each of said working rolls (WR) by a pair of side support rollers (SSR), situated on either side of said perpendicular plane, each of the side support rollers (SSR) being able to exert, along a bearing generatrix of said working roll (WR), a force holding the axis of the working roll (WR) in a given position with respect to a rolling cage of the mill and with respect to said side support rollers, support of each of said side support rollers by means of two rows formed by a plurality of rollers (G) mounted side by side, for holding the side support rollers (SSR) in a given position, a support of each of the two rows formed by said plurality of rollers (G), by means of a bearing support (BS) carrying the two rows of rollers, said bearing support is mounted pivotably on an articulation axis (A1), parallel to the support roll (SR), carried by an axis support (AS), such as the chocks (Ep) of the support roll, or the Maes blocks (MB) intended for cambering the support roll, said axis support being fixed with respect to the axis of the support roll (SR). and in which method the dimensions of a first interspace (It1) defined between the side support roller (SSR) and the support roll (SR) and a second interspace (It2) defined between the strip (ST) and the assembly consisting of side support roller (SST) and bearing support (BS) vary during rolling because of the reductions in diameters of the support roll and working roll caused by wear and planing of the rolls, wherein said method comprises a readjustment step for which the dimension of said first interspace (It1) and of the second interspace (It2) is adjusted by carrying out an adjustment of the dimension separating the axis (A.sub.SR) of said support roll (SR) and the axis (A.sub.SSR) of said side support roller (SSR) defining, with the support roll, said first interspace (It1).
2. The method according to claim 1, wherein said readjustment step consists of adjusting the dimension separating the axis of said support roll (SR) and the axis of said side support roller (SSR) so that the dimension of the first interspace is at least equal to a lower limit min1 and the dimension of the second space is at least equal to a lower limit min2, said lower limit min1 and the lower limit min2 being greater than or equal to 5 mm;
3. The method according to claim 1, wherein the diameter of the support roll (SR) lying between a maximum diameter and a minimum diameter, a method wherein a nominal diameter is defined, smaller than the maximum diameter and larger than the minimum diameter, and wherein: a first rolling configuration is maintained without a readjustment step so long as the diameter of the support roll lies between the maximum diameter and the nominal diameter, a second rolling configuration is obtained, when the support roll is at the nominal diameter, by performing said readjustment step with reduction of the dimension separating the axis (A.sub.SR) of said support roll (SR) and the axis (A.sub.SSR) of said side support roller (SSR), said second configuration obtained by said readjustment step is maintained as long as the diameter of the support roll lies between the nominal diameter and the minimum diameter.
4. The rolling method according to claim 1, wherein the rolling mill has at least spray nozzles (SN1, SN2) affording cooling by spraying of at least one jet of fluid onto at least part of the strip (ST) and at least part of one of said rolls and wherein a cooling step is implemented comprising at least one direct spraying of at least part of the working rolls (WR), on either side of said plane perpendicular to the direction of travel of the strip, said nozzles (SN1, SN2) being configured to: produce a jet (J1) directed towards the working roll (WR), from at least one side of the plane perpendicular to the direction of travel, the jet passing through said first interspace (It1) between the side support roller (SSR) and the support roll (SR), before reaching said working roll (WR), and/or producing a jet (J2) directed towards the working roll (WR), from at least one side of the plane perpendicular to the direction of travel, passing through the interspace between the strip and the side support roller, before reaching said working roll and/or said strip;
5. The method according to claim 1, wherein said bearing support (BS) is fixedly mounted removably on an arm (AR), with an adjustable position on the arm, said arm (AR) itself being articulated on said articulation axis (A1), parallel to said support roll, providing the pivoting of said bearing support about said articulation axis (A1), and wherein said adjustment of the dimension separating the axis of said support roll (SR) and the axis of said side support roller (SSR) implemented during the readjustment step is performed by a step of modifying the position of said bearing support (BS) on the arm (AR);
6. The method according to claim 5, wherein the mill comprises a removable means of fixing between said bearing support (BS) and said arm (AR) comprising a groove/key positive-location system (1), said key and the groove carried respectively by said bearing support (BS) and said arm (AR), or vice versa, said key or the groove carried by the bearing support being offset in the longitudinal direction of the arm (AR), with respect to the plane, parallel to the backup-roll axis, passing through the median line (Md) to the segment, perpendicular to the side support roller, joining the two axes of the two rows of rollers (G), and in said adjustment of the dimensions separating the axis of said support roll and the axis of said side support roller implemented during the readjustment step is performed by a step of turning over said bearing support (BS) on the arm.
7. The method according to claim 1, wherein said bearing support (BS) being mounted fixed on an arm (AR) itself articulated on said articulation axis (A1) parallel to said support roll providing the pivoting of said bearing support about said articulation axis (A1), and wherein said adjustment of the dimension separating the axis of said support roll and the axis of said side support roller implemented during the readjustment step is performed by a step of adjusting the position of said articulation axis (A1) with respect to the support arm (AR).
8. The method according to claim 7, wherein an eccentric (Ex1) is provided between the articulation axis (A1) and said arm (AR), and wherein said adjustment of the dimension separating the axis of said support roll (SR) and the axis of said side support roller (SSR) implemented during the readjustment step is performed by a step of rotation of said eccentric (Ex1).
9. The method according to claim 1, wherein said articulation axis (A1), around which the bearing support (BS) is mounted, is supported and mounted on said axis support (AS) and wherein said adjustment of the dimension separating the axis of said support roll and the axis of said side support roller implemented during the readjustment step is performed by a step of modifying the position of said articulation axis (A1) on said axis support (AS).
10. The method according to claim 9, wherein said step of modifying the position of said articulation axis on said axis support (AS) is obtained by adding or removing shims between the axis support and said articulation axis, or alternatively said step of modifying the position of said articulation axis on said axis support is obtained by rotating an eccentric (Ex2) provided between said articulation axis (A1) and said axis support (AS).
11. The method according to claim 1, wherein said support roll (SR) is supported at the ends thereof by chocks (Ep), and wherein said adjustment of the dimension separating the axis of said support roll and the axis of said lateral bearing roll implemented during the readjustment step is performed by a step of modifying the position of the axis (A.sub.SR) of said support roll with respect to the Maes blocks (MB) intended for cambering the support roll.
12. The method according to claim 1, wherein said readjustment step is implemented when rolling is interrupted, after planing of the working roll and/or of the support roll.
13. Mill for rolling a strip (ST) including at least one cage, comprising: a pair of working rolls (WR) with parallel axes, between which the strip (ST) passes, each of said working rolls having at least one generatrix of contact with the strip, a plane perpendicular to a direction of travel of the strip, wherein at least one contact generatrix and the axes of said working rolls (WR) are situated, a pair of support rolls (SR), with axes parallel to the plane of the strip and situated on either side of said strip, said support rolls and working rolls situated on the same side of the strip being in contact with each other along a common support generatrix in order to transmit to the working rolls a rolling force substantially normal to the strip, two pairs of side support rollers with parallel axes, said rolls in the same pair being situated symmetrically on either side of one of said working rolls, in a plane parallel to the strip, so that each of the side support rollers (SSR) in the same pair is able to transmit, along a bearing generatrix of said working roll (WR), a force affording holding in a given position in relation to the support roll (SR), a support for each of said support rollers by means of two rows formed by a plurality of support rollers (G) mounted side by side, for holding the side support rollers (SSR) in a given position, support of each of the two rows formed by said plurality of support rollers, by means of a bearing support (BS) carrying the two rows, said bearing support (BS) being mounted pivotally on an articulation axis (A1), parallel to the support roll, carried by an axis support (AS), fixed with respect to the axis of the support roll, such as the chocks (Ep) of the support roll, or the Maes blocks (MB) intended for cambering the support roll, wherein the mill comprises, during the rolling of the metal strip, a first interspace (It1) defined between the side support roller (SSR) and the support roll (SR) and a second interspace (It2) defined between the strip (ST) and the assembly consisting of side support roller (SSR) and bearing support (BS) liable to vary during rolling because of the reductions in diameters of the support roll and of the working roll caused by wear or planing of the rolls, further comprising an adjustment device configured to adjust the dimension of said first interspace (It1) and the dimension of the second interspace (It2) using an adjustment of the dimension separating the axis (A.sub.SR) of said support roll (SR) and the axis (A.sub.SSR) of said side support roller (SSR) defining, with the support roll, said first interspace (It1).
14. The mill according to claim 13, comprising a device configured for cooling by spraying at least one jet of fluid on at least part of the strip and at least part of one of said rolls, comprising at least one system of nozzles with nozzles (SN1, SN2) configured to: produce a jet (J1) directed towards the working roll, from at least one side of the plane perpendicular to the direction of travel, the jet passing through a first interspace (It1) between the side support roller (SSR) and the support roll (SR), before reaching said working roll (WR), and/or produce a jet (J2) directed towards the working roll, from at least one side of the plane perpendicular to the direction of travel, passing through the interspace between the side support roller (SSR) and the strip (ST), before reaching said working roll and/or the strip.
15. The mill according to claim 13, wherein the adjustment device comprises said bearing support (BS) that is fixedly mounted removably on an arm (AR), with a position adjustable on the arm, said arm being itself articulated on said articulation axis parallel to the support roll (SR) providing the pivoting of said bearing support (BS) about said articulation axis, and wherein the adjustment device is configured so that the adjustment of the dimension separating the axis (A.sub.SR) of said support roll (SR) and the axis (A.sub.SSR) of said side support roller (SSR) is performed by modifying the position of said bearing support (BS) on the arm (AR).
16. The mill according to claim 15, wherein the adjustment device comprises a removable means of fixing between said bearing support and said arm comprising a groove/key positive-location system (1), said key and the groove carried respectively by said bearing support and said arm, or vice versa, said key or the groove carried by the bearing support (BS) being offset in the longitudinal direction of the arm, with respect to the plane, parallel to the side support roller, passing through the median line (Md) to the segment perpendicular to the side support roller joining the two axes of two rows of rollers, and wherein the adjustment device is configured so that said adjustment of the dimension separating the axis of said support roll and the axis of said side support roller is performed by turning over said bearing support (BS).
17. The mill according to claim 13, wherein said bearing support (BS) being mounted fixedly on an arm (AR) itself articulated on said articulation axis (A1) parallel to said support roll providing the pivoting of said bearing support (BS) about said articulation axis, and wherein the adjustment device is configured so that the adjustment of the dimension separating the axis (A.sub.SR) of said support roll (SR) and the axis (A.sub.SSR) of said side support roller (SSR) implemented during the readjustment step is performed by adjusting the position of said articulation axis (A1) on the arm (AR).
18. The mill according to claim 17, wherein said adjustment device comprises an eccentric (Ex1) provided between the articulation axis (A1) and said arm (AR), and wherein the adjustment device is configured so that said adjustment of the dimension separating the axis (A.sub.SR) of said support roll (SR) and the axis (A.sub.SSR) of said side support roller (SSR) is performed by a step of rotating said eccentric (Ex1).
19. The mill according to claim 13, wherein said articulation axis (A1) around which the bearing support (BS) is mounted is supported and mounted on an axis support (AS) and wherein the adjustment device is configured so that the adjustment of the dimension separating the axis (A.sub.SR) of said support roll (SR) and the axis (A.sub.SSR) of said side support roller (SSR) is performed by modifying the position of said articulation axis (A1) on said axis support (AS).
20. The mill according to claim 19, wherein the adjustment device comprises shims, said adjustment device configured so that the modification of the position of said articulation axis on said axis support is obtained by adding or removing shims between the axis support and said articulation axis, or alternatively said adjustment device comprises an eccentric (Ex2) provided between said articulation axis and said axis support (AS) and wherein said adjustment device is configured so that the modification of the position of said articulation axis (A1) on said axis support (AS) is obtained by rotating the eccentric (Ex2).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0108] The invention will be understood better from a reading of the description accompanied by the appended figures, depicting the invention, among which:
[0109]
[0110] a configuration illustrated in
[0111] two configurations illustrated respectively in
[0112] a configuration illustrated in
[0113] a configuration illustrated in
[0114] two configurations illustrated respectively in
[0115]
[0116]
[0117]
[0118]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0119] Thus the invention relates to a rolling method adapted to a strip rolling mill ST comprising the following steps: [0120] a rolling, by a pair of working rollers WR with parallel axes, of said strip taken between said working rolls WR and travelling between the pair of working rolls, each of said working rolls having at least one generatrix of contact with the strip, [0121] a transmission, to said working rolls WR, of a rolling force substantially normal to the strip, by a pair of support rolls SR, said working rolls WR and said support rolls SR situated on the same side of the strip being in contact with each other along a common support generatrix in order to transmit said rolling force, [0122] a plane perpendicular to a direction of travel of the strip, in which at least one contact generatrix and the axes of said working rolls are situated, [0123] holding of each of said working rolls WR by a pair of side support rollers SSR, situated on either side of said perpendicular plane, each of the side support rollers SSR being able to exert, along a bearing generatrix of said working roll WR, a force maintaining the axis of the working roll WR in a given position with respect to a rolling cage of the mill and with respect to said side support rollers, [0124] support of each of said side support rollers by means of two rows formed by a plurality of rollers G mounted side by side, for maintaining the side support rollers SSR in a given position, [0125] support of each of the two rows formed by said plurality of rollers G, by means of a bearing support BS carrying the two rows, said bearing support being mounted pivotally on an articulation axis A1, parallel to the support roll SR, carried by an axis support AS, such as the chocks Ep of the support roll, or the Maes blocks MB intended for cambering the support roll, said axis support AS being fixed with respect to the axis of the support roll SR.
[0126] The rolling mill may be a rolling cage comprising the two working rolls, the two support rollers and the two support rolls, each support roll being intermediate between said bearing roller and said working roll, namely a rolling-mill cage of the laterally supported sexto type.
[0127] According to a possibility illustrated in accordance with
[0128] According to another possibility illustrated in
[0129] When the rolling method is implemented, the dimensions of a first interspace It1 defined between the side support roller SSR and the support roll SR and of a second interspace It2 defined between the strip ST and the assembly consisting of side support roller SSR and bearing support BS vary during rolling because of the reductions in diameters of the support roll and of the working roll.
[0130] The reductions in diameter are caused by wear and planing of the rolls. Periodically, and in a known manner, the working rolls and the support rolls are removed from the cage: planing of the working roll is carried out, and less frequently planing of the intermediate roll, in order to restore the surface state thereof.
[0131] The inventors observe that the mechanism supporting and positioning the side support rollers with a pivot position fixed with respect to the axis of rotation of the intermediate roll, and a fixed arm length (as in particular taught by the document WO 2011/107165 or WO 2015/011373) have drawbacks for some configurations of diameters of the intermediate roll and of the working roll: thus risks of interferences between the intermediate roll and the side support roller are observed, or a risk of obstruction of the passage opening for the jets spraying and lubricating the contact between intermediate roll and working roll, or obstruction of the jets for lubricating the rolling area.
[0132] Thus, and in
[0133] Likewise in
[0134] The invention advantageously makes it possible to avoid such mechanical interferences by using a readjustment step for which the dimension of said first interspace It1 and of the second interspace It2 is adjusted by implementing an adjustment of the dimension separating the axis A.sub.SR of said support roll SR and the axis A.sub.SSR of said side support roller SSR defining, with the support roll, said first interspace It1.
[0135] This readjustment step can advantageously be implemented when there is an interruption of the rolling, for example simultaneously with an interruption of rolling for planing of the working roll and/or of the support roll.
[0136] This readjustment step consists in adjusting the dimension separating the axis of said support roll SR and the axis of said side support roller SSR so that the dimension of the first interspace It1 is at least equal to a lower limit min1 and the dimension of the second space It2 is at least equal to a lower limit min2, whatever the configurations, namely as long as: [0137] the diameter of the working roll WR is between a minimum diameter and a maximum diameter, [0138] the diameter of the support roll SR is between a minimum diameter and a maximum diameter.
[0139] This lower limit min1 and this lower limit min2, which may be equal or distinct, may be greater than or equal to 5 mm.
[0140]
[0141] These
[0142] On either side of the clamping plane, each side support roller SSR is held by two rows of rollers G of a bearing support BS mounted pivotally via an arm AR on the articulation axis A1 on an axis support formed by the chocks of the support roll SR. The support roll SR with its chocks, the arms AR, the bearing supports BS and the pair of side support rollers form a self-supporting assembly that can be removed when the cage is opened, in a way known per se from the prior art.
[0143] According to this embodiment, said bearing support BS is fixedly mounted removably on an arm
[0144] AR, with an adjustable position on the arm, said arm AR itself being articulated on said articulation axis A1, parallel to said support roll, providing the pivoting of said bearing support about said articulation axis A1.
[0145] Remarkably, and according to this embodiment, said adjustment of the dimension separating the axis of said support roll SR and the axis of said side support roller SSR implemented during the readjustment step is performed by a step of modification of the position of said bearing support BS on the arm AR.
[0146] More particularly, provision can be made for a removable fixing means between said bearing support BS and said arm AR comprising a groove/key positive-location system 1, said key and a groove carried respectively by said bearing support BS and said arm AR, or vice versa.
[0147] As can be seen in
[0148] The adjustment of the dimension separating the axis of said support roll and the axis of said side support roller implemented during the readjustment step is carried out by a step of turning over said bearing support BS on the arm.
[0149] This readjustment step carried out by turning over said bearing support BS on the arm AR is illustrated by way of example in
[0150] The two configurations illustrated respectively in
[0151]
[0152] The passage from the first position P1 of the bearing support to the second position P2 of the bearing support is obtained by simple turning of said bearing support BS through 180 on the arm, when rolling is interrupted.
[0153] This turning over effects a modification of the dimension separating the axis A.sub.SR of said support roll SR and the axis A.sub.SR of said side support roller SSR defining, with the support roll, said first interspace It1, and in this case a reduction in the dimension separating the axis A.sub.SR of said support roll SR and the axis A.sub.SSR of said side support roller SSR (from
[0154] A readjustment (a modification) of the dimension of said first interspace It1 and of the second interspace It2 is then observed: [0155] in
[0157] It will be noted that, at this nominal diameter of the support roll SR (here in this case equal to 342.5 mm) and whereas the working roll is at minimum diameter (here in this case 120 mm), the most critical case in terms of risks of mechanical interference, it is possible to proceed with the readjustment step, keeping, before (
[0158] It will be noted that this change to be made by turning over the bearing support when the support roll is at its nominal diameter (342.5 mm) but the working roll is at its maximum diameter (140 mm) does not pose any difficulty in that the first interspace It1 and the second interspace It2 have values that are even more comfortable in terms of risks of mechanical interference, and as can be seen in
[0159] As can be understood from
[0162] The problems of mechanical interferences and obstruction of jets identified in
[0165] Thus and in general terms and according to an advantageous embodiment, the diameter of the support roll SR being between a maximum diameter and a minimum diameter, a method in which a nominal diameter is defined, less than the maximum diameter and greater than the minimum diameter and wherein: [0166] a first rolling configuration is maintained (without readjustment step) as long as the diameter of the support roll is between the maximum diameter and the nominal diameter, [0167] a second rolling configuration is obtained, when the support roll is at the nominal diameter, to within a tolerance, by performing the readjustment step with reduction in the dimension separating the axis A.sub.SR of said support roll SR and the axis A.sub.SSR of said side support roller SSR, [0168] said second configuration obtained by the readjustment step as long as the diameter of the support roll is between the nominal diameter is maintained as long as the diameter of the support roll is between the nominal diameter and the minimum diameter.
[0169] It will be noted that the invention also makes it possible to considerably reduce the risks of mechanical interference between the strip and the assembly consisting of bearing support and side support roller on the one hand, or between the assembly consisting of bearing support and side support roller and the support roll on the other hand.
[0170] As can be seen in
[0171] Advantageously, the rolling mill may thus have at least spray nozzles SN1, SN2 allowing cooling by spraying of at least one jet of fluid on at least part of the strip ST and at least part of said rolls and in which method a cooling step is implemented, comprising at least one direct spraying of at least part of the working rolls WR, on either side of said plane perpendicular to the travel direction of the strip, said nozzles SN1, SN2 being configured to: [0172] produce a jet J1 directed towards the working roll WR, from at least one side of the plane perpendicular to the direction of travel, the jet passing through said first interspace It1 between the side support roller SSR and the support roll SR, before reaching said working roll WR, and/or [0173] produce a jet J2 directed towards the working roll WR, from at least one side of the plane perpendicular to the direction of travel, passing through the interspace between the strip and the side support roller, before reaching said working roll and/or the strip.
[0174] For each working roll, a direct spraying can thus be implemented on either side of the clamping plane. The nozzles SN1 and SN2 may be carried by the arm A.R. and/or the bearing support B.S.
[0175]
[0176] Other technical solutions can be envisaged without departing from the scope of the invention, and still with the objective of modifying (adjusting) the dimension separating the axis A.sub.SR of said support roll SR and the axis A.sub.SSR of said side support roller SSR.
[0177] According to another embodiment, said bearing support BS being fixedly mounted on an arm AR itself articulated on said articulation axis A1 parallel to said support roll providing the pivoting of said bearing support about said articulation axis A1, and in said adjustment of the dimension separating the axis of said support roll and the axis of said side support roller implemented during the step of readjustment is performed by a step of adjusting the position of said articulation axis A1 on the support arm AR.
[0178] For example, an eccentric Ex1 may be provided between the articulation axis A1 and said arm AR, and wherein the adjustment of the dimension separating the axis A.sub.SR of said support roll SR and the axis A.sub.SSR of said side support roller SSR implemented during the readjustment step is performed by a step of rotation of said eccentric Ex1.
[0179] Such an embodiment is illustrated in
[0180] According to another embodiment, said articulation axis A1 around which the bearing support BS is mounted is supported and mounted on said axis support AS and in which method said adjustment of the dimension separating the axis A.sub.SR of said support roll SR and the axis A.sub.SSR of said side support roller SSR implemented during the readjustment step is performed by a step of modifying the position of said articulation axis A1 on said axis support AS.
[0181] For example, said step of modifying the position of said articulation axis on said axis support AS is obtained by adding or removing shims between the axis support and said articulation axis (example not illustrated), or said step of modifying the position of said articulation axis on said axis support is obtained by rotating an eccentric Ex2 provided between said articulation axis A1 and said axis support AS.
[0182] This latter embodiment with eccentric Ex2 is illustrated in
[0183] Again, and according to a fourth possible embodiment, said support roll SR is supported at the ends thereof by chocks Ep, and in which method said adjustment of the dimension separating the axis A.sub.SR of said support roll SR and the axis A.sub.SSR of said side support roller SSR implemented during the readjustment step is performed by a step of modifying the position of the axis A.sub.SR of said support roll with respect to the Maes blocks MB intended for cambering the support roll.
[0184] For example, and according to the embodiment illustrated in
[0185] It should also be noted that the chocks Ep are asymmetric, in that they make it possible to obtain two positions of mounting the support roll, with offset of the axis A.sub.SR of the support roll depending on whether the chock is mounted in a first mounting direction in the Maes block, or in the second mounting direction, obtained by turning over the chock Ep.
[0186] According to this embodiment, the adjustment during the readjustment step is obtained by turning over the block through 180.
[0187] The invention also relates to a mill for rolling a strip ST suitable for implementing the method. Said rolling mill includes at least one cage comprising: [0188] a pair of working rollers WR with parallel axes, between which the strip ST travels, each of said working rolls having at least one generatrix for contact with the strip, [0189] a plane perpendicular to a direction of travel of the strip, wherein at least one contact generatrix and said axes of said working rolls WR are situated, [0190] a pair of support rolls SR, with axes parallel to the plane of the strip and situated on either side of said strip, said support rolls and working rolls situated on the same side of the strip being in contact with each other along a common support generatrix in order to transmit to the working rolls a rolling force substantially normal to the strip, [0191] two pairs of side support rollers with parallel axes, said rolls in the same pair being situated symmetrically on either side of one of said working rolls, in a plane parallel to the strip, so that each of the side support rollers SSR in the same pair is able to transmit, along a bearing generatrix of said working roll WR, a force allowing holding in a given position relative to the support roll SR, [0192] a support of each of said support rollers by means of two rows formed by a plurality of support rollers G mounted side by side, making it possible to maintain the side support rollers SSR in a given position, [0193] a support of each of the two rows formed by said plurality of support rollers, by means of a bearing support BS carrying the two rows of rollers, said bearing support BS being mounted pivotally on an articulation axis A1, parallel to the support roll, carried by an axis support AS, fixed with respect to the axis of the support roll, such as the chocks Ep of the support roll, or the Maes blocks MB intended for cambering the support roll.
[0194] Such a mill comprises, during the rolling of the metal strip, a first interspace It1 defined between the side support roller SSR and the support roll S and a second interspace It2 defined between the strip ST and the assembly consisting of side support roller SSR and bearing support BS liable to vary during rolling because of reductions in diameters of the support roll and of the working roll caused by wear or planing of the cylinders.
[0195] According to the invention, said mill comprises an adjustment device configured to adjust the dimension of said first interspace It1 and of the dimension of the second interspace It2 by implementing an adjustment of the dimension separating the axis A.sub.SR of said support roll SR and the axis A.sub.SSR of said side support roller SSR defining, with the support roll, said first interspace It1.
[0196] The mill may comprise a device configured for cooling by spraying at least one jet of fluid on at least one part of the strip and at least one part of said rollers, comprising at least one nozzle system with nozzles SN1, SN2 configured to: [0197] produce a jet J1 directed towards the working roll, from at least one side of the plane perpendicular to the travel direction, the jet passing through a first interspace It1 between the side support roller SSR and the support roll SR, before reaching said working roll WR, and/or [0198] produce a jet J2 directed towards the working roll, from at least one side of the plane perpendicular to the direction of travel, passing through the interspace between the side support roller SSR and the strip ST, before reaching said working roll and/or the strip.
[0199] According to one embodiment, the adjustment device comprises said bearing support BS that is fixedly mounted removably on an arm AR, with an adjustable position on the arm, said arm itself being articulated on said articulation axis parallel to the support roll SR providing the pivoting of said bearing support BS about said articulation axis. The adjustment device is configured so that the adjustment of the dimension separating the axis A.sub.SR of said support roll SR and the axis A.sub.SSR of said side support roller SSR is performed by modifying the position of said bearing support BS on the arm AR.
[0200] For example, and according to the example in
[0201] According to another embodiment illustrated by way of indication in
[0202] Said adjustment device may comprise an eccentric Ex1 provided between the articulation axis A1 and said arm AR, said adjustment device being configured so that said adjustment of the dimension separating the axis A.sub.SR of said support roll SR and the axis A.sub.SSR of said side support roller SSR is performed by a step of rotating said eccentric Ex1.
[0203] According to another embodiment illustrated by way of indication in
[0204] The adjustment device may then comprise shims, said adjustment device being configured so that the modification of the position of said articulation axis on said axis support is obtained by adding or removing shims between the axis support and said articulation axis.
[0205] Alternatively, said adjustment device comprises the eccentric Ex2 provided between said articulation axis and said axis support AS: said adjustment device is configured so that modification of the position of said articulation axis A1 on said axis support AS is obtained by rotating the eccentric Ex2.
LIST OF COMPONENTS
[0206] A1. Articulation axis (between the bearing support BS and the axis support AS) [0207] A.sub.SR. Axis of the support roll [0208] A.sub.SSR. Axis of the side support roller [0209] AR. Arm [0210] AS. Axis support [0211] BS. Bearing support [0212] Ep. Chock [0213] Ex1, Ex2. Eccentrics [0214] G. Rollers (bearing support) [0215] IR. Intermediate roll (support roll) [0216] It1. First interspace between the side support roller and the support roll [0217] It2. Second interspace between the assembly consisting of a side support roller and bearing support and the strip [0218] J1. First jet [0219] J2. Second jet [0220] MB. Maes block [0221] Md. Median line [0222] SR. Support roll [0223] SSR. Lateral bearing roller [0224] ST. Strip [0225] WR. Working rolls [0226] 1. Groove/key positive-location system