Rolling stand and method for operating said rolling stand - Patents.com

By integrating measuring devices into the frame struts of rolling stands to detect deformation, the method addresses inaccuracies in rolling force measurements, ensuring precise and stable rolling operations.

JP2025510871A5Active Publication Date: 2025-11-18SMS GROUP GMBH
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Patent Information

Application Number
JP2024557093
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2022-03-30
Filing Date
2023-03-08
Publication Date
2025-11-18
Estimated Expiration
2043-03-08

AI Technical Summary

Technical Problem

Existing rolling force measurement technologies in rolling stands are prone to inaccuracies due to exposure to harsh ambient conditions and frictional forces, leading to quality issues in rolled materials and process instabilities.

Method used

The rolling stand incorporates measuring devices into boreholes within the frame struts to detect deformation caused by rolling forces, providing accurate measurements by converting these deformations into rolling forces, while protecting the devices from contamination and corrosion.

Benefits of technology

This method ensures highly reliable rolling force measurements, improving the accuracy and stability of the rolling process by eliminating external environmental influences and enhancing redundant measurement capabilities.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a rolling stand 20 for rolling stock, comprising a rolling stand frame 3 at a drive side AS; and a rolling stand frame 3 at an operating side BS, in which in both rolling stand frames the roll necks of the work rolls 1 are rotatably mounted in chocks 13; a screw down device 4 in both rolling stand frames 3 for applying a rolling force via the chocks 13 to the work rolls of the rolling stand 20; at least one measuring device 6 for generating a measuring signal, assigned to one of both rolling stand frames 3; and an evaluation device 8 for evaluating the measuring signal taking into account the rolling force exerted by the screw down device 4 on the work rolls. In order to better protect the measuring device 6 from contamination and corrosion and, as a result, to achieve more accurate measurement signals and control results, the roll stand according to the invention has in at least one frame support 3a, 3b of at least one of the roll stand frames 3 at least one bore 7; and the measuring device 6 is inserted into the bore 7 and is configured for detecting a deformation of the bore 7 upon the action of the rolling force and for generating the measurement signal representative of the detected deformation of the bore 7.
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Description

[Technical Field]

[0001] The present invention relates to a rolling stand for rolling stock and to a method for operating this rolling stand, in particular to the measurement of rolling forces in a rolling stand. [Background technology]

[0002] For this purpose, basically different solutions are known in the prior art. Thus, US Pat. No. 5,699,499 discloses an apparatus and method for measuring rolling forces in a rolling stand using an ultrasonic transmitter-receiver device, which measures the length changes in the columns of the rolling stand frame as a result of the applied rolling force, and then converts the measured length changes into the desired rolling force.

[0003] Furthermore, Patent Document 2 discloses a sensor for measuring rolling force, In this case, the sensor is mounted on the outside of the frame support of the rolling stand frame, and The change in length of this frame strut under load, i.e. under the applied rolling force, is measured by the strain of the coil, and The measured change in length is then converted into the rolling force sought.

[0004] This rolling force is used for several controls during the operation of the rolling stand, and it is therefore desirable to be able to measure this rolling force accurately, even under high dynamic conditions.

[0005] In rolling operations, however, there are often situations of inaccurate or inaccurate rolling force measurements, which can be due to, for example, frictional forces between the roll stand frame and the chocks for the backup rolls in the roll stand, or the introduction of non-uniform forces in traditional force measuring devices, for example, due to corroded or misshapen surfaces. These inaccurate force measurements then lead to quality problems in the rolled material or to instabilities in the rolling process, for example in the form of lateral movements of the ends of the rolled material.

[0006] In both of these patent documents, the measuring devices are mounted outside the respective roll stand frame and are therefore exposed to the harsh conditions in the ambient environment of the roll stand, such as contamination, dust, etc. This also results in a certain risk of inaccuracy of the measurement results. [Prior art documents] [Patent documents]

[0007] [Patent Document 1] International Publication No. 2007 / 147766 A1 [Patent Document 2] Chinese Patent Application Publication No. 101695717 A Summary of the Invention [Problem to be solved by the invention]

[0008] The problem underlying the present invention is to provide an optional rolling stand for rolling stock, as well as an optional method for operating this rolling stand, which allows for an accurate measurement of the rolling force. [Means for solving the problem]

[0009] This problem is solved by the subject matter of claim 1 in relation to a rolling stand. Accordingly, the rolling stand according to the invention comprises: at least one frame strut of at least one of the roll stand frames having at least one bore formed therein; the measuring device is inserted into the borehole; and - designed for detecting a deformation of the perforation during the application of the rolling force and for generating the measurement signal representative of the detected deformation of the perforation. It is characterized by: [Effects of the Invention]

[0010] The deformation of the perforations detected by the measuring device essentially represents the support forces in the respective rolling stand frame. These support forces are, however, directly proportional to the rolling forces acting on the rolls. These support forces are converted into actual rolling forces using an evaluation device.

[0011] It is essential that each rolling stand has two rolling stand frames; one rolling stand frame on the drive side and one rolling stand frame on the operating side. Each roll stand frame typically has two frame struts, and the perforations according to the present invention are formed in each of the frame struts.

[0012] From this, we can approximately deduce the following: That is, Measuring devices 6 in boreholes 7 measure the frame brace forces, or simply the brace forces, respectively. 2 x Column force = Frame force; 2 x Frame force = Rolling stand rolling force

[0013] Within the drill hole, the measuring device is advantageously protected, in particular against contamination in the ambient environment of the rolling stand and against corrosion, so that the measuring signal of this measuring device is not corrupted thereby. Rather, the measurement signal of the measuring device thus detected according to the invention provides a highly reliable basis for the calculation of the desired rolling force by the evaluation device.

[0014] According to a first embodiment, the measuring device is inserted into the drill hole under a preload, the preload of the measuring device then having to be so great that the measuring device still abuts in the drill hole even at maximum rolling force. This preload then defines a working point for the measuring device. The deformation of the drilling can then be measured in the form of a change in the preload around the above-mentioned working point. Depending on the respective configuration of the measuring device, a change in preload compared to the operating point can be detected in the form of a change in the force acting on the measuring device in the borehole or in the form of a change in the mechanical load acting on the measuring device in the borehole. Optionally, a change in preload can be detected in the form of a change in compression displacement by which the measuring device within the borehole is compressed compared to its relaxed state or compared to the compression of the measuring device at the operating point. Suitable measuring devices for installation in the borehole under preload are, for example, piezoelectric sensors or resistance wire strain gauges.

[0015] Alternatively or additionally, the other measuring device may be inserted into the borehole without preloading. For this purpose, for example, an inductive displacement detector is suitable, which detects the deformation of the drill hole due to the rolling force by a change in the voltage induced in the inductive displacement detector, or A laser-based displacement detector is suitable, which is configured in such a way that the deformation of the drilled hole under the load of the rolling force can be detected, for example, by evaluating the time difference in the optical signal output by the laser-based displacement detector.

[0016] For comparison of the frame forces acting on the drive and operating sides of the rolling stand, In each of the two roll stand frames, advantageously in each of the four columns of each of the two roll stand frames, It is advantageous if at least one perforation is formed in each of which at least one measuring device is provided. Except in the case of special requirements, it is generally advantageous if the frame forces on the operating side and on the drive side are of the same magnitude in value.

[0017] The term "drive side" means the side of a rolling stand on which the drive for the rolls of this rolling stand is located. The operating side is located opposite the drive side in the axial direction of the rolls and is freely accessible to operating personnel, for example for roll changing.

[0018] The arrangement of multiple measuring devices in the drill hole offers the advantage that redundant measurements can be performed, which improves the accuracy of the calculated rolling force. It is possible for multiple measuring devices inserted into the borehole to be based on the same or different physical principles. The incorporation of measuring devices based on different physical principles is a further step towards improving measurement accuracy.

[0019] Basically, measurement of the deformation of the drill holes in the frame supports of the roll stand frame on the operating side and drive side of the roll stand and / or on the entry side and exit side of the roll stand frame is possible at each height of the support of this roll stand frame. The installation of a drilling at the level of the horizontal rolling line and a measuring instrument located in this drilling, however, offers the advantage that the force to be measured there is not influenced by the friction forces between the chock and the frame support. The perforations should advantageously be placed perpendicular to the rolling line, within a range of 200 mm above and 200 mm below said rolling line.

[0020] The incorporation of measuring devices at the same height in all columns of the participating roll stand frames of a roll stand improves the comparability of the deformations measured within the individual frames, since these deformations at the same height of the frame columns should be the same or at least similar.

[0021] If the perforations for the measuring devices are each formed in a plane perpendicular to the rolling force exerted by the screw-down devices, i.e. in a horizontal plane in the support columns of the roll stand frame, this offers the advantage that the deformation of the perforations to be detected also acts at least essentially perpendicularly on the measuring devices, this being the case advantageously regardless of whether the perforations are formed in the frame support columns of the roll stand frame in the rolling direction, transverse to this direction or at a suitable acute angle to this direction. In the case of vertically acting rolling forces, the horizontal alignment of the perforations provides the advantage that deformations of these perforations do not act on the measuring device under an inclined angle, thereby advantageously making coordinate transformation of the resulting measurement signals unnecessary.

[0022] Each of them has a frame support on the entry side. By your side The arrangement of the drill holes for the measuring devices in each of the rolling stand frames at the exit side in the frame support of the exit side is This provides the advantage that the frame force of each roll stand frame can be calculated by simple addition of both support forces measured by the measuring device.

[0023] The column forces detected according to the invention can be used for strip thickness control. For this purpose, the column forces detected in the frame columns of the roll stand frame on the entry side and exit side are firstly integrated into the frame force of the roll stand frame. This is done separately for the roll stand frame on the exit side and on the operating side. The frame forces on the drive side and the operating side thus calculated are added to the rolling force of the rolling stand, which is then converted into the actual thickness for the rolled material at the exit side of the rolling stand. The actual thickness so calculated is then adjusted within the strip thickness control to a predetermined target thickness for the rolled material. By outputting an appropriately changed position adjustment signal to the screw down device, This is likewise outputted and advantageously controlled on the drive and operating side, in particular to the respective compression adjusting cylinder. In order to more precisely determine the results of the strip thickness control, additional frame force measuring devices are provided in each of the two roll stand frames for direct measurement of the frame forces in both roll stand frames of the roll stand, for example below the chocks of the lower backup rolls of the roll stand. The evaluation device described above is then designed to calculate the rolling force also with additional consideration of the additionally measured frame force.

[0024] Additionally, a position control device may be provided for controlling the position control signal output from the strip thickness control device to a target position represented by the position control signal output from the strip thickness control device.

[0025] The above-mentioned advantages of the rolling stand according to the invention are likewise of value for the solution according to the method of the inventive problem according to claim 14.

[0026] Further advantageous embodiments of the rolling stand according to the invention and the method according to the invention for operating this rolling stand are the subject of the dependent claims.

[0027] Four figures are attached to the specification. [Brief explanation of the drawings]

[0028] [Figure 1] 1 shows a roll stand according to the invention and the associated roll stand frame in a separate illustration for a first embodiment of the alignment of drill holes for measuring devices; FIG. [Figure 2] 2 is a view similar to FIG. 1, but of a roll stand and individual roll stand frames for a second embodiment for directing perforations according to the invention; FIG. [Figure 3] FIG. 1 is a diagram of an individual rolling stand frame for a first embodiment for strip thickness control. [Figure 4] FIG. 4 is a diagram of an individual rolling stand frame according to FIG. 3 for selective strip thickness control. DETAILED DESCRIPTION OF THE INVENTION

[0029] The invention will now be described in detail by way of example with reference to the figures mentioned above, in which the same technical elements are designated with the same reference numerals.

[0030] 1 shows a rolling stand 20 according to the invention for rolling stock in a view on the right side of the rolling stand. The rolling stand 20 consists of a rolling stand frame 3 on the drive side AS and a rolling stand frame 3 on the operating side BS, with both rolling stand frames being connected to each other via a transverse head. In both rolling stand frames, the roll necks of the backup rolls 2 and the work rolls 1 are rotatably supported in chocks, which can be seen in the left-hand view of Figure 1 and are designated there with the reference number 13.

[0031] A screw down device 4 is shown for applying a frame force to the work rolls 1 via chocks 13 and backup rolls 2. The sum of the frame force of the drive-side rolling stand frame and the frame force of the operating-side rolling stand is the so-called rolling force of the rolling stand.

[0032] In the right-hand view of Figure 1, drill holes 7 according to the invention can be seen, into each of which a measuring device 6 has been inserted. The measuring devices 6 are designed to generate a measuring signal which represents the deformation of the drill holes in the frame supports 3a, 3b of the respective rolling stand frame 3 as a function of the frame or rolling force respectively exerted by the screw down device 4.

[0033] As can be seen from the left-hand view in FIG. 1, the screw down device 4 acts in a vertical direction. In order to be able to detect the maximum effect of the changes in length of the rolling stand frame caused by the rolling force and the resulting deformation of the perforations 7 by the measuring device 6, it is advantageous if the perforations are formed in a plane perpendicular to the acting rolling force, i.e. in a horizontal plane as in the example shown in the drawing.

[0034] In the first embodiment shown in FIG. 1, the perforations 7 are arranged lying in this horizontal plane and are aligned in the direction of the longitudinal axes of the rolls 1, 2, i.e. transverse to the rolling direction (see right-hand image). In each of the two roll stand frames 3 and also in each of the frame supports 3a, 3b of one of the two roll stand frames, a measuring device 6 is arranged in a borehole 7; and In general, it can be seen accordingly that in the rolling stand shown in FIG. 1 four measuring devices 6 are located for measuring the deformation of the perforations, into which they are respectively inserted.

[0035] The measuring devices 6 shown in FIG. 1 are arranged in the boreholes 7, which are respectively mounted at the same height and at the height of the roll gap defined by the work rolls 1. This also applies to the special case shown in FIG. 1, according to which the work rolls exceptionally do not define any roll gap; and the perforation 7 and measuring device 6 are now, however, arranged inside the roll stand frame at the height at which both work rolls 1 contact each other.

[0036] The left-hand diagram shows an individual one of these rolling stand frames 3; and this rolling stand frame is similarly configured for the drive side AS and the operating side BS.

[0037] FIG. 2 differs from FIG. 1 only in that the drill holes 7 for the measuring devices 6 are now oriented extending in the rolling direction. It can also be seen that in the case of the second embodiment shown in FIG. 2 for the alignment of the perforations 7, these are located in a horizontal plane, which is arranged perpendicular to the acting rolling force, and that the measuring device 6 is arranged inside the roll stand frame 3 at the height where both work rolls 1 come into contact.

[0038] FIG. 3 shows a predetermined target thickness (h REF the actual thickness of the rolled material (shown by h ACT 1 shows a first embodiment for strip thickness control according to the invention for controlling The strip thickness control according to the present invention is performed by adjusting the support force F Pf are intended to be measured by preferably four measuring devices 6 according to the invention in the drill holes 7 belonging to them on the entry side E and exit side A of the rolling stand frame 3 on the drive side AS and on the operating side BS (the latter not shown). Next, the actual rolling force F WACT are the measured four support forces F Pf : That is, F PfAS , F PfBS is calculated by the evaluation device 8 as the sum of The support force F is applied only within two of the four supports. Pf can be measured, these two support forces F can be used to calculate, at least approximately, the actual rolling force. Pf are added and the sum is multiplied by two. Actual rolling force F WACT from, then, the actual cylinder positions s in the screw down devices 4 in both rolling stand frames 3 on the drive side AS and on the operating side BS ACTAS , s ACTBS Taking into account the above, the actual thickness h of the rolled material at the exit of the rolling stand is calculated using the conversion device 9. ACT is calculated as follows:

[0039] Current actual strip thickness h in the rolling nip ACT teeth, Calibration position s 0AS , s 0BS From the sum of Cylinder positions s of the screw down device 4 on the drive side AS and on the operating side BS respectively ACTAS , s ACTBS and the rolling stand elongation g ATC (F WACT) is calculated by subtracting

[0040] h ACT =(s 0AS +s 0BS ) / 2-(s ACTAS +s ACTBS ) / 2-g ATC (F WACT ) where: h ACT Actual thickness of rolled material s ACTAS , s ACTBS Actual position of the screw down device on the drive side and on the operating side s 0AS , s 0BS (Calibration) position of the screw reduction device when calibrating with a calibrated rolling force on the drive side and on the operating side F WACT Actual rolling force g ATC Actual rolling stand extension

[0041] The intrinsic strip thickness control device 10 then calculates the difference between the target thickness of the rolled material and the actual thickness as the control deviation for the thickness of the rolled material. REF is the actual thickness h of the rolled material calculated by the above method. ACT It is intended that the comparisons be made sequentially. Based on this control deviation, the strip thickness control device 10 then generates appropriate position adjustment signals s for the screw down devices 4 of the rolling stand frame 3 on the drive side AS and on the operating side BS. REFAS , s REFBS Calculate.

[0042] In order to accurately ensure the proper positional adjustment predetermined by the strip thickness control device 10 for the screw down device 4, it is advantageous to monitor and ensure this positional adjustment by means of a position control device.

[0043] Finally, FIG. 4 shows a second embodiment of the strip thickness control shown in FIG. The only difference to the strip thickness control shown in FIG. 3 is that in at least one of the roll stand frames, preferably in the drive-side as well as in the operator-side roll stand frame, an additional frame force measuring device 5 is provided, for example below the chock 13 of the lower backup roll 2. The evaluation device 8, which is also already required according to FIG. 3, then furthermore determines the actual rolling force F WACT , preferably on the drive side and on the operating side, measured by the force measuring device 5, StaenderAS , F StaenderBS It is designed for more accurate calculations under additional consideration of This means that, for example, the frame forces calculated from the measured column forces are calculated based on the directly measured frame forces F StaenderAS , F StaenderBS and then averaged for further calculation of the rolling force. The thickness control to be achieved for the rolled material at the exit of the rolling stand is thereby made even finer or more precisely defined.

[0044] The method for operation of the rolling stand 20 comprises the following steps: Applying a rolling force to the work rolls of the rolling stand via chocks for rolling the material; generating a measurement signal; and Actual rolling force F acting on the work roll WACT evaluation of this measurement signal taking into account The steps are as follows: For this purpose, at least one perforation 7 is formed in at least one frame support of at least one roll stand frame 3, and the deformation of this perforation 7 under the action of a rolling force is detected by means of a measuring device. A measurement signal represents the detected deformation of the perforation 7.

[0045] The measuring device 6 can be a piezoelectric sensor or a resistance wire strain gauge, which is advantageously inserted with a preload into the borehole 7. The deformation of the borehole 7 is then detected in the form of a change in the preload with which the measuring device 6 was inserted into the borehole 7. The change in preload can be in the form of a change in the force or stress acting on the measuring device in the borehole 7 or a change in the compressive displacement. of The displacement is detected in the form of a compressive displacement by which the measuring device 6 in the borehole 7 is compressed relative to the relaxed state of the measuring device or relative to the compression at the operating point of the measuring device 6 .

[0046] Alternatively, the measuring device 6 can be configured as a laser-based displacement detector and can be inserted without preload into the borehole 7. The deformation of the borehole is then detected in the form of a measured displacement difference / time difference of optical signals, which are emitted from the laser-based displacement detector in the borehole.

[0047] As a further alternative, the measuring device 6 can be configured as an inductive displacement detector and can be inserted into the borehole 7 without preload. The deformation of the borehole is then detected in the form of a voltage induced in the inductive displacement detector, which is associated with the deformation.

[0048] A given target thickness h REF to the actual thickness h of the rolled material ACT The control of the actual thickness h of the rolled material is carried out by outputting a position control signal to the screw down device, in particular to the screw down adjustment cylinder, which is appropriately changed. ACT is the actual rolling force F detected by the evaluation device 8 WACT It is calculated from

[0049] The position of the screw-down device 4, in particular the screw-down adjusting cylinder, is advantageously determined by a position adjusting signal s REF The target position is controlled by

[0050] Finally, the strip thickness control is due to the rolling stand frame 3 on the operating side and Operation This can be done separately for the roll stand frame 3 at the side. In that case, it is recommended that both strip thickness control devices 10 are synchronized to the same target thickness for the rolled stock. [Explanation of symbols]

[0051] 1 Work roll 2 Backup Role 3 Rolling stand frame 3a Frame support 3b Frame support 4. Screw-down device 5 Force measuring device 6 Measuring instruments 7 perforation 8 Evaluation equipment 9 Conversion device 10 Strip thickness control device 12 Position control device 13 Chock 20 rolling stands AS Rolling stand frame drive side BS Rolling Stand Frame Operation Side E Entry side A Running side h REF Target Thickness h ACT Actual Thickness F WACT Actual rolling force s ACTAS The actual position of the screw-down device, especially the screw-down adjusting cylinder of this device, on the drive or operating side s ACTBS The actual position of the screw-down device, especially the screw-down adjusting cylinder of this device, on the drive or operating side s REFAS The target position of the screw-down device, in particular the screw-down adjusting cylinder of this screw-down device, on the drive side or operating side s REFBS The target position of the screw-down device, in particular the screw-down adjusting cylinder of this screw-down device, on the drive side or operating side FPf Support force F PfAS Support force on the drive side F PfBS Support force on the operating side F StaenderAS Frame forces measured directly on the drive side F StaenderBS Frame forces measured directly at the operator

Claims

1. A rolling stand (20) for rolling a material, said rolling stand comprising: A rolling stand frame (3) at the drive side (AS); and a rolling stand frame (3) at the operating side (BS), in both of which the roll necks of the work rolls (1) are rotatably supported in chocks (13); a reduction device (4) in both of the rolling stand frames (3) for applying a rolling force to the work rolls of the rolling stand (20) via the chocks (13); at least one measuring device (6) for generating a measuring signal, which is assigned to one of the two rolling stand frames (3); and an evaluation device (8) for evaluating the measurement signals taking into account the rolling force exerted by the screw down device (4) on the work roll; In the rolling stand, at least one frame strut (3a, 3b) of at least one of said rolling stand frames (3) has at least one perforation (7); and The measuring device (6) is inserted into the borehole (7), and - designed for detecting deformation of the perforations (7) when the rolling force is applied and for generating the measurement signal representative of the detected deformation of the perforations (7), A rolling stand (20) characterized by:

2. said measuring device (6) being inserted into said borehole (7) under preload; the measuring device (6) is configured to detect the deformation of the perforation (7) in the form of a change in the preload of the measuring device; and the measuring device (6) is designed to detect a change in the preload of the measuring device in the form of a change in the force or mechanical stress acting on the measuring device in the borehole (7) or in the form of a change in the compressive displacement, the measuring device (6) in the borehole (7) is compressed by this compression displacement compared to the relaxed state of the measuring device; 2. The rolling stand (20) of claim 1, wherein:

3. 3. The rolling stand (20) according to claim 2, characterized in that the measuring device (6) is formed in the form of a piezoelectric sensor or in the form of a resistance wire strain gauge.

4. The measuring device (6) is inserted into the borehole (7) without preload; and the measuring device (6) is formed in the form of an inductive or laser-based displacement detector for detecting the deformation of the perforation, 2. The rolling stand (20) of claim 1, wherein:

5. at least one perforation (7) is formed in each of the four frame struts (3a, 3b) of both rolling stand frames (3); and at least one measuring device (6) is inserted into the bore (7) in each of the roll stand frames (3); 2. The rolling stand (20) of claim 1, wherein:

6. 2. The rolling stand (20) according to claim 1, characterized in that a plurality of measuring devices (6) are inserted into at least one of the drill holes (7) in at least one of the frame struts (3a, 3b).

7. The perforation (7) and the measuring device (6) are in the frame struts (3a, 3b) of both the rolling stand frames (3) at the operating and / or drive sides (BS, AS) of the rolling stand frames, and At the entry side and / or exit side (E, A) of one of the rolling stand frames (3), 2. The rolling stand (20) according to claim 1, characterized in that it is fitted with:

8. the drill holes (7) for the measuring devices (6) are mounted in the frame supports (3a, 3b) at the same height, preferably at the height of the roll gap defined by the work rolls (1); 8. A rolling stand (20) according to claim 7.

9. The perforations (7) for the measuring devices (6) are respectively in a plane perpendicular to the advantageously vertical direction of the rolling force exerted by the screw down device (4): Advantageously in the rolling direction or transversely to this rolling direction and / or at an appropriate acute angle to said rolling direction, 2. The rolling stand (20) according to claim 1, characterized in that it is formed in the rolling stand frame (3).

10. Advantageously on the drive side and on the operating side, A suitably varied position adjustment signal (s) is sent to the screw-down device (4), in particular to the screw-down adjustment cylinder of said screw-down device. REF ) output to obtain a predetermined target thickness (h REF at least one strip thickness control device (10) for controlling the actual thickness of the rolled material to the The actual rolling force (F WACT ) from the actual thickness (h ACT a conversion device (9) for calculating 8. The rolling stand (20) according to claim 7, characterized in that:

11. Advantageously on the drive side and on the operating side, an additional frame force measuring device (5) for direct measurement of the frame force in the rolling stand (20); and the evaluation device (8) is configured to calculate the actual rolling force on the rolled material, also taking into account the additionally measured frame force; 11. The rolling stand (20) according to claim 10, characterized in that:

12. Advantageously on the drive side and on the operating side, a position control device (12) for controlling the position of the screw down device (4), in particular the position of the screw down adjustment cylinder, to a target position represented by a position adjustment signal output from the strip thickness control device (10); 11. The rolling stand (20) according to claim 10.

13. a strip thickness control device (10) for the rolling stand frame (3) at the operating side (BS) and a further strip thickness control device for the rolling stand frame (3) at the drive side (AS); and both strip thickness control devices (10) are synchronized to the same target thickness for the rolled material; 11. The rolling stand (20) according to claim 10, characterized in that:

14. A method for operating a rolling stand (20) according to any one of claims 1 to 13, comprising the following steps: Applying a rolling force to the work rolls (1) of the rolling stand (20) via the chocks (13) for rolling the rolled material; generating a measurement signal; and The actual rolling force acting on the work roll (F WACT evaluation of the measurement signal taking into account The method having the steps of: forming at least one bore (7) in the frame struts (3a, 3b) of the rolling stand frame (3); Deformation of the perforation (7) during the application of the rolling force is detected; and said measurement signal being representative of said detected deformation of said perforation (7); A method characterized by:

15. The measuring device (6) is a piezoelectric sensor or a resistance wire strain gauge, the measuring device is inserted into the borehole, advantageously with a preload; the deformation of the borehole (7) is detected in the form of a change in preload with which the measuring device (6) is inserted into the borehole; and the change in preload is detected in the form of a change in force or stress acting on the measuring device in the borehole (7) or in the form of a change in compression displacement, by this compressive displacement, the measuring device (6) in the borehole (7) is compressed in comparison with its relaxed state or with comparison with the compression at the operating point of the measuring device (6) due to the force, the stress or the compressive displacement; 15. The method of claim 14, wherein:

16. The measuring device (6) is formed in the form of a laser-based displacement detector, and being inserted into said borehole (7) without preload; and the deformation of the borehole is detected in the form of a measured displacement / time difference of optical signals emitted from the laser-based displacement detector within the borehole; 15. The method of claim 14, wherein:

17. the measuring device (6) is formed as an inductive displacement detector and is inserted into the borehole (7) without preload; and the deformation of the perforation is detected in the form of a voltage induced in an inductive displacement detector associated with the deformation.

15. The method of claim 14.

18. The position adjustment signal (s) for the screw-down device, in particular for the screw-down adjustment cylinder, is appropriately changed. REF ) output, A predetermined target thickness (h REF ) to the actual thickness (h ACT ) control; and The actual rolling force (F WACT ) from the actual thickness (h ACT ) calculation, 15. The method of claim 14, wherein:

19. The actual rolling force (F WACT )but, The support forces (F) detected by the measuring devices (6) in the frame supports (3a, 3b) of both the rolling stand frames (3) at the operating side and / or the drive side (BS, AS) of the rolling stand and at the entry side and / or exit side (E, A) of one of the rolling stand frames (3) Pf )from, If four support forces are detected, these support forces are multiplied to the actual rolling force, or if only two support forces are detected, these support forces are multiplied and this sum is multiplied by two, 15. The method of claim 14, wherein the detection is performed.

20. the frame forces in the roll stand frame are additionally measured directly; and The actual rolling force (F WACT ) and the actual thickness (h ACT ) and, the calculation also takes into account additionally measured frame forces; 20. The method of claim 18, wherein:

21. The position adjustment signal (s REF ) controlling the position of the screw-down device (4), in particular the position of the screw-down adjusting cylinder, to a target position represented by 20. The method of claim 18, wherein:

22. the strip thickness control is performed for the rolling stand frame (3) on the operating side and for the rolling stand frame (3) on the drive side; and both strip thickness control devices (10) are synchronized to the same target thickness for the rolled material; 20. The method of claim 18, wherein:

Citation Information

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