ADAPTATION OF A ROLL MODEL
20210213500 ยท 2021-07-15
Assignee
Inventors
Cpc classification
B21B37/74
PERFORMING OPERATIONS; TRANSPORTING
B21B31/103
PERFORMING OPERATIONS; TRANSPORTING
B21B38/04
PERFORMING OPERATIONS; TRANSPORTING
B21B31/10
PERFORMING OPERATIONS; TRANSPORTING
B21B1/22
PERFORMING OPERATIONS; TRANSPORTING
International classification
B21B37/74
PERFORMING OPERATIONS; TRANSPORTING
B21B1/22
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A storage device for two rolls in a roll stand is a component part of the roll stand or can be positioned relative to the roll stand in such a way that the rolls can be transferred from the roll stand into the storage device or vice versa. At least one measuring system is provided, by means of which the temperatures and/or the diameters of the rolls can be detected individually and independently of one another, at least at predefined detection positions, as viewed in the direction of the roll axes. After transmission to an automation unit that controls the roll stand, the unit can adapt a roll model, by means of which it repeatedly determines the temperatures and/or the diameters of the rolls, at predefined determination positions, in the direction of the roll axes, using operating data of the roll stand for the rolls of the same type.
Claims
1-9. (canceled)
10. A storage device for two rolls of a same type in a roll stand, comprising: at least one measuring system for detecting at least one of a temperature and a diameter of the two rolls individually and independently of one another, at least at predefined detection positions, as viewed in a direction of roll axes of the two rolls; wherein the storage device is one of a component part of the roll stand and positioned relative to the roll stand in such a way that the two rolls can be transferred from the roll stand into the storage device and from the storage device into the roll stand.
11. The storage device of claim 10, wherein the storage device is designed as a roll changing carriage.
12. The storage device of claim 11, wherein, for each roll, the at least one measuring system has a plurality of measuring devices that are fixed in location relative to a main body of the storage device, the at least one measuring system adapted to detect the at least one of the temperature and the diameter of a respective roll of the two rolls at one of the predefined detection positions, as viewed in the direction of the roll axes, by the plurality of measuring devices.
13. The storage device of claim 11, wherein, for each roll, the at least one measuring system has a plurality of measuring devices that are movable relative to a main body of the storage device, the at least one measuring system adapted to detect the at least one of the temperature and the diameter of a respective roll of the two rolls in a respective subsection, including in each case at least one of the predefined detection positions, as viewed in the direction of the roll axes, by the plurality of measuring devices.
14. The storage device of claim 10, wherein, for each roll, the at least one measuring system has a single measuring device, the single measuring device adapted to detect the at least one of the temperature and the diameter of a respective roll of the two rolls at all of the predefined detection positions, as viewed in the direction of the roll axes.
15. The storage device of claim 14, wherein the single measuring device is arranged on a main body so as to be movable as viewed in the direction of the roll axes, the single measuring device adapted to be moved over an entire effective barrel length of the respective roll.
16. The storage device of claim 14, wherein the single measuring device is arranged in a fixed location on a main body of the storage device so that the respective roll is moved past the single measuring device during transfer one of from the roll stand into a roll changing carriage, and from the roll changing carriage to the roll stand.
17. The storage device of claim 10, wherein there is a data link between the at least one measuring system and an automation unit that controls the roll stand, the at least one measuring system adapted to transmit at least one of the detected temperatures and the detected diameters automatically to the automation unit, the automation unit adapted to associate the at least one of the detected temperatures and the detected diameters with the predefined detection positions.
18. An operating method for a roll stand, comprising: rolling flat rolling stock between two rolls of a same type in the roll stand; determining repeatedly, by an automation unit that controls the roll stand, at least one of temperatures and diameters of the two rolls, at least at predefined determination positions, as viewed in the direction of the roll axes, using a roll model and operating data of the roll stand for the rolls of the same type; activating, based on the at least one of the temperatures and the diameters determined, the roll stand, so that a rolling gap of the roll stand is set during the rolling of the flat rolling stock, in accordance with setpoint inputs; removing the two rolls from the roll stand; transferring the two rolls into a roll changing carriage; detecting at least one of detected temperatures and detected diameters of the two rolls in an automated manner, at least at predefined detection positions, as viewed in the direction of the roll axes, one of during the removing of the two rolls from the roll stand, during the transferring of the two rolls into the roll changing carriage, and immediately following the transferring operation, by a measuring system arranged one of on the roll stand and on the roll changing carriage; transmitting automatically the at least one of the detected temperatures and the detected diameters to the automation unit, the automation unit adapted to associate the at least one of the detected temperatures and the detected diameters with the predefined detection positions; comparing, by the automation unit, the at least one of the temperatures and the diameters determined by the roll model with the at least one of the detected temperatures and the detected diameters; and adapting the roll model based on the comparing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024] The above-described properties, features and advantages of this invention and the manner in which these are achieved will become more clearly and distinctly comprehensible in conjunction with the following description of the illustrative embodiments, which are explained in greater detail in combination with the drawings. Here, in schematic illustration:
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DETAILED DESCRIPTION
[0036] According to
[0037] The roll train is controlled by an automation unit 4. In particular, the automation unit 4 thus also controls the roll stands 2. The control of one of the roll stands 2 by the automation unit 4 is explained in greater detail belowas a representative example of all roll stands 2in combination with
[0038] According to
[0039] The automation unit 4 then compares the expected actual properties of the flat rolling stock 1 as it passes out of the roll stand 2, which have been determined by means of the roll model 5, with the desired setpoint properties of the flat rolling stock 1 as it passes out of the roll stand 2. As far as necessary, the automation unit 4 thereupon varies the control data SD in order to approximate the expected actual properties of the flat rolling stock 1 as it passes out of the roll stand 2 as far as possible to the desired setpoint properties of the flat rolling stock 1 as it passes out of the roll stand 2. As far as necessary, this involves an iterative procedure. The variation of the control data SD is indicated in
[0040] As already mentioned, the procedure explained is already widely known and familiar as such to those skilled in the art. It is carried out repeatedly during the rolling of the flat rolling stock 1, e.g. for a new section of the flat rolling stock 1 or for subsequent flat rolling stock 1. As a result, the automation unit 4 thus repeatedly determines the temperatures T and/or the diameters D of the rolls 3 (among other factors and with location resolution as viewed in the direction of the roll axes) and, based thereon, determines the respective activation SD of the roll stand 2, i.e. the control data SD. The determination of the diameters D incorporates both the temperature-induced expansion of the rolls 3 and also the wear-related change in the diameter D. Corresponding models are known to those skilled in the art by the term TWC (thermal wear crown). As part of modeling, the temperature of the flat rolling stock 1 is often also determined. This too is widely known and familiar to those skilled in the art.
[0041] After rolling a certain number of pieces of flat rolling stock 1e.g. after rolling 20 or 25 pieces of flat rolling stock 1the rolls 3 must be changed. For this purpose, a roll changing carriage 6 is positioned next to the roll stand 2, the rolls 3 of which are to be changed, in accordance with the illustration in
[0042] In general, a pause in rolling, during which no flat rolling stock 1 is rolled in the roll train, is introduced for this process.
[0043] The removal of the rolls 3 and transfer of the rolls 3 into the roll changing carriage 6 can be performed in a conventional, widely known manner. It is important, however, that the temperatures T and/or the diameters D of the two rolls 3 are detected during the removal of the rolls 3 from the roll stand 2 and transfer of the rolls 3 into the roll changing carriage 6 or immediately following said procedures in time. Thus, detection is carried out before the roll changing carriage 6 is moved away from the roll stand 2.
[0044] Detection is carried out in an automated manner by means of a measuring system 7, which is arranged on the roll stand 2 or on the roll changing carriage 6. Furthermore, detection is carried out with location resolution as viewed in the direction of the roll axes, namely at least at predefined detection positions p. Directly adjacent detection positions p can have a spacing of 8 cm, 10 cm, 12 cm, 15 cm or 20 cm from one another, for example.
[0045] Furthermore, the temperatures T and/or the diameters D can be detected individually and independently of one another by means of the measuring system 7. Thus, from the temperature T detected for a certain detection position p, it is not possible or not readily possible to derive conclusions about the temperature T for another detection position p. A similar situation applies in respect of the detected diameter D. Possible implementations of this procedure will be explained below.
[0046] The detected temperatures T and/or diameters D are transmitted automatically from the measuring system 7 to the automation unit 4. For this purpose, the measuring system 7 has a data link with the automation unit 4. Wired transmission or wireless transmission are possible alternatives here. To implement wireless transmission, the measuring system 7 and the automation unit 4 can implement a radio link via antennae 8 in accordance with the illustration in
[0047] The detected temperatures T and/or diameters D are transmitted in a manner which puts the automation unit 4 in a position to associate the detected temperatures T and/or diameters D with the predefined detection positions p. For example, the detection positions p can be transmitted at the same time. It is also possible for the automation unit 4 to know in advance at which detection positions p the temperatures T and/or diameters D will be detected and in what sequence the detected temperatures T and/or diameters D will be transmitted from the measuring system 7 to the automation unit 4.
[0048] The automation unit 4 receives the transmitted temperatures T and/or diameters D in a step S1 according to
[0049] In a step S3, the automation unit 4 compares the temperatures T and/or the corresponding diameters D of the rolls 3 determined by means of the roll model 5 with the temperatures T and/or diameters D of the rolls 3 detected by means of the measuring system 7. In particular, it is possible in step S3 for the automation unit 4 to determine a first modification value k1 for a first model parameter k1 of the roll model 5 on the basis of the comparison of the temperatures T and to determine a second modification value k2 for a second model parameter k2 of the roll model 5 on the basis of the comparison of the diameters D. Using the modification values k1, k2 determined, the automation unit 4 can then correct the model parameters k1, k2 in a step S4 and can thereby adapt the roll model 5. Of course, the model parameters k1, k2 enter into the determination of the temperatures T and/or diameters D of the rolls 3, which is carried out by means of the roll model 5.
[0050] Possible embodiments on which the detection of the temperatures T and/or diameters D can be performed are now explained below in combination with
[0051] In all the embodiments, there is a storage device for the two rolls 3. In most of the embodiments, the storage device is designed as a roll changing carriage 6 in accordance with the illustrations in
[0052] It is thus possible, for example, in accordance with the illustration in
[0053]
[0054] In the case of the embodiments shown in
[0055] In order to enable such detection, the embodiment of
[0056] Consequently, the only important factor for data acquisition at all of the predefined detection positions p by means of a single measuring device 9 for each roll 3 is the relative movement of the measuring device 9 relative to the roll 3. It is therefore not important during data acquisition whether the roll 3 is at rest in the main body 10 of the roll changing carriage 6 and the measuring device 9 is moved or whether, conversely, the measuring device 9 is at rest and the roll 3 is moved. In accordance with the illustration in
[0057] Precisely this embodimenti.e. the embodiment in which the measuring device 9 is arranged in a fixed location and the respective roll 3 is moved past the measuring device 9 during transfer from the roll stand 2 into the roll changing carriage 6 or vice versacan also be implemented in such a way that the measuring device 9 is not arranged in a fixed location on the roll changing carriage 6 but on the roll stand 2 itself, in particular on the operator-side stand housing 2, in accordance with the illustration in
[0058] The present invention has many advantages. In particular, continuous correction of the model parameters k1, k2 of the roll model 5 is possible in a simple and reliable manner Owing to the improved modeling, quality in the rolling of the rolling stock 1 can also be improved. In particular, the quality of the thickness, flatness and contour can be enhanced. Modeling of the temperature of the rolling stock 1 can also be improved. Furthermore, improved prediction in the rolling of new materials is possible.
[0059] Although the invention has been illustrated and described more specifically in detail by means of the preferred illustrative embodiment, the invention is not restricted by the examples disclosed, and other variants can be derived therefrom by a person skilled in the art without exceeding the scope of protection of the invention.
LIST OF REFERENCE SIGNS
[0060] 1 Rolling stock [0061] 2 Roll stand [0062] 2, 2 Stand housing [0063] 3 Rolls [0064] 4 Automation unit [0065] 5 Roll model [0066] 6 Roll changing carriage [0067] 7 Measuring system [0068] 8 Antennae [0069] 9 Measuring devices [0070] 10 Main body [0071] BD Operating data [0072] D Diameter [0073] k1, k2 Model parameters [0074] p Determination positions [0075] p Detection positions [0076] S1 to S4 Steps [0077] SD Control data [0078] T Temperatures [0079] k1, k2 Modification values