Claims
- 1. A strip rolling method applied to a multi-roll strip rolling mill of not less than four rolls including at least a top and a bottom backup roll and a top and a bottom work roll, comprising the steps of:prior to rolling operation tightening the top and the bottom backup roll and the top and the bottom work roll by roll positioning devices under the condition that the backup rolls and the work rolls come into contact with each other; measuring thrust counterforces in the axial direction of the roll which acts on all the rolls except for the backup rolls; measuring roll forces acting in the vertical direction of on all of the backup roll chock of the top and the bottom backup rolls; setting an absolute value of the force of roll balance devices or roll bending devices, which give forces to the chocks for which thrust counterforces are to be measured, at a value not more than ½ of the force of the roll balanced condition, preferably at zero; finding one of or both of the zero point of the roll positioning devices and the deformation characteristic of the strip rolling mill according to the measured values of the thrust counterforces and the roll forces of the backup rolls; and conducting roll forces setting and/or roll forces control according to the thus found values when rolling is actually carried out.
- 2. A strip rolling method applied to a multi-roll strip rolling mill composed of not less than four rolls including at least a top and a bottom backup roll and a top and a bottom work roll, comprising the steps of:measuring thrust counterforces in the axial direction of the rolls acting on all the rolls except for the backup rolls in one of the top and the bottom roll assembly or preferably in both the top and the bottom roll assembly; measuring roll forces acting in the vertical direction on the backup roll choce of the top and the bottom backup roll; calculating a target increments of roll positioning devices of the strip rolling mill according to the measured values of the thrust counterforces and the roll forces of the backup rolls; setting an absolute value of the force of roll balance devices or roll bending devices, which give forces to roll chocks, for which counterforce are to be measured, at a value not more than ½ of the force of the roll balanced condition, preferably at zero; and controlling roll-gap on the work side and that on the drive side target increments of roll positioning devices of the strip rolling mill.
- 3. A method of calibration of a strip rolling mill for finding a deformation characteristic of the strip rolling mill with respect to a thrust force acting between the rolls of the multi-roll strip rolling mill composed of not less than four rolls including at least a top and a bottom backup roll and a top and a bottom work roll, comprising the steps of:giving a load in the vertical direction corresponding to a rolling load to a housing of the strip rolling mill; measuring at least one of the loads in the vertical direction given to an upper and a lower portion of the strip mill housing via load cells for measuring a rolling load; giving a load, which is asymmetrical with respect to the upper and lower sides, to the housing of the strip rolling mill by giving an external force in the vertical direction from the outside of the strip rolling mill under the condition that the load in the vertical direction is being given; and measuring the load cell load.
- 4. A method of calibration of a strip rolling mill for finding a deformation characteristic of the strip rolling mill with respect to a thrust force acting between the rolls of the multi-roll strip rolling mill of not less than four rolls including at least a top and a bottom backup roll and a top and a bottom work roll, comprising the steps of:giving a load in the vertical direction corresponding to a rolling load to a barrel portion of the backup roll under the condition that at least the top and the bottom backup roll are incorporated into the strip rolling mill; measuring at least one of the loads in the vertical direction given to an upper and a lower portion of the strip mill housing via load cells for measuring a rolling load; giving a load, which is asymmetrical with respect to the upper and lower sides, to the housing of the strip rolling mill via the roll chocks of the top and the bottom backup roll by giving an external force in the vertical direction from the outside of the strip rolling mill under the condition that the load in the vertical direction is being given; and measuring the load cell load.
- 5. A method of calibration of a strip rolling mill for finding a deformation characteristic of the strip rolling mill with respect to a thrust force acting between the rolls of the multi-roll strip rolling mill of not less than four rolls including at least a top and a bottom backup roll and a top and a bottom work roll, comprising the steps of:removing out at least one of the rolls other than the backup rolls; incorporating a calibration device into a position of the roll which has been removed; giving a load in the vertical direction corresponding to a rolling load to a barrel portion of the backup roll; measuring at least one of the loads in the vertical direction given to an upper and a lower portion of the strip rolling mill via a load cell for measuring the rolling load; giving a load asymmetrical with respect to the upper and lower sides to the housings of the strip rolling mill via the top and the bottom backup roll chock when an external force in the vertical direction is given to the calibration device from the outside of the rolling mill under the condition that the load in the vertical direction is being given; and measuring the load given to the load cell.
- 6. A calibration device of a strip rolling mill for finding a deformation characteristic of the strip rolling mill with respect to a thrust force acting between the rolls of the multi-roll strip rolling mill composed of not less than four rolls including at least a top and a bottom backup roll and a top and a bottom work roll, the configuration of the calibration device being formed so that the calibration device is incorporated into the strip rolling mill, from which the work roll has been removed, instead of the work roll which has been removed, the calibration device comprising:a member for receiving an external force in the vertical direction given from the outside of the strip rolling mill, wherein the member is arranged at an end portion of the calibration device protruding outside from one of the work and the drive side of the strip rolling mill or from both the work and the drive side of the strip rolling mill.
- 7. A calibration device of a strip rolling mill according to claim 6, wherein the size of the calibration device in the vertical direction is approximately the same as the total size of the top and the bottom work roll of the strip rolling mill, the calibration device is incorporated into the strip rolling mill from which the top and the bottom work roll have been removed, and the calibration device is given a load in the vertical direction corresponding to a rolling load by roll positioning devices of the strip rolling mill.
- 8. A calibration device of a strip rolling mill according to claim 6, further comprising a measurement device for measuring the external force in the vertical direction acting on an end portion of one of the work and the drive side of the calibration device or end portions of both the work and the drive side of the calibration device.
- 9. A calibration device of a strip rolling mill according to claim 6, wherein the member in contact with one of the top and the bottom roll of the strip rolling mill has a sliding mechanism capable of substantially releasing a thrust force given from the roll of the strip rolling mill.
- 10. A calibration device of a strip rolling mill for finding a deformation characteristic of the strip rolling mill with respect to a thrust force acting between the rolls of the multi-roll strip rolling mill of not less than four rolls including at least a top and a bottom backup roll and a top and a bottom work roll, wherein calibration device is attached to a roll chock of the strip rolling mill or an end portion of the roll protruding outside the roll chock, and the calibration device receives an external force in the vertical direction from the outside of the strip rolling mill.
- 11. A calibration device of a strip rolling mill according to claim 10, further comprising a measurement device for measuring the external force in the vertical direction acting on the calibration device.
- 12. A method of calibration of a strip rolling mill for finding a dynamic characteristic of the strip rolling mill with respect to a thrust force acting between the rolls of the multi-roll strip rolling mill composed of not less than four rolls including at least a top and a bottom backup roll and a top and a bottom work roll, comprising the steps of:drawing out rolls except for the backup rolls; giving a load in the vertical direction corresponding to a rolling load to a barrel portion of the backup roll under the condition that the rolls except for the backup rolls haven been removed; measuring loads in the vertical direction acting on both end portions of at least one of the top and the bottom backup roll via the load cells for measuring the rolling load; exerting a prescribed thrust force on a barrel portion of the backup roll under the condition that the load in the vertical direction is given; and measuring the load of the load cell.
- 13. A calibration device of a strip rolling mill for finding a dynamic characteristic of the strip rolling mill with respect to a thrust force acting between the rolls of the multi-roll strip rolling mill composed of not less than four rolls including at least a top and a bottom backup roll and a top and a bottom work roll, the configuration of the calibration device being formed so that the calibration device is incorporated into the strip rolling mill from which the rolls except for the backup rolls are removed, the calibration device further comprising a means for giving a prescribed thrust force in the axial direction of the roll to the backup rolls under the condition that a load in the vertical direction corresponding to the rolling load is being given between the backup rolls and the calibration device.
- 14. A calibration device of a strip rolling mill according to claim 13, wherein the calibration device is capable of measuring a distribution in the axial direction of the roll of the load given in the vertical direction acting between the backup rolls and the calibration device.
- 15. A calibration device of a strip rolling mill according to claim 13, wherein a member for supporting a resultant force of the thrust counterforces acting on the calibration device is arranged at a middle point in the vertical direction between a top and a bottom face of the calibration device in contact with the top and the bottom backup roll.
- 16. A calibration device of a strip rolling mill according to claim 15, wherein a roll is provided in a portion in which a member for supporting a resultant force of the thrust counterforces acting on the calibration device comes into contact with the housing of the strip rolling mill.
- 17. A calibration device of a strip rolling mill according to claim 15, wherein a member for supporting a resultant force of the thrust counterforces acting on the calibration device is arranged on the work side of the calibration device, and an actuator giving a thrust force in the axial direction of the roll to the backup roll is also arranged on the work side.
- 18. A calibration device of a strip rolling mill according to claim 15, wherein a member for receiving a force in the vertical direction from the outside is arranged at an end portion of the calibration device protruding from one of the work and the drive side of the rolling mill or from both the work and the drive side under the condition that the calibration device is incorporated into a strip rolling mill.
- 19. A calibration device of a strip rolling mill according to claim 18, further comprising a measurement device for measuring the external force in the vertical direction acting at an end portion of one of the work and the drive side of the calibration device or at end portions of both the work and the drive side of the calibration device.
- 20. A strip rolling method applied to a multi-roll strip rolling mill of not less than four rolls including at least a top and a bottom backup roll and a top and a bottom work roll, comprising the steps of:measuring thrust counterforces in the axial direction of the rolls acting on all the rolls except for the backup rolls in one of the top and the bottom roll assembly or preferably in both the top and the bottom roll assembly; measuring roll forces acting in the vertical direction of the backup roll on the backup roll chocks of the top and the bottom backup roll; setting an absolute value of the force of roll balance devices or roll bending devices, which gives forces to the roll chock, for which the thrust counterforces are to be measured, at a value not more than ½ of the force of the roll balance condition, preferably at zero, at least at the time of measuring the thrust counterforces in the process of rolling; calculating asymmetry of distribution of a load in the axial direction of the roll acting at least between a workpiece to be rolled and the work roll with respect to the rolling mill center; calculating target value of increments of positioning devices strip rolling mill according to the result of calculation; and conducting control of roll gap on the workside and that on the drive side according to the increments of the roll positioning devices.
- 21. A strip rolling method applied to a multi-roll strip rolling mill composed of not less than four rolls including at least a top and a bottom backup roll and a top and a bottom work roll also including a strip crown and flatness control means in addition to a roll bending device, comprising the steps of:measuring thrust counterforces in the axial direction of the rolls acting on all the rolls except for the backup rolls in one of the top and the bottom roll assembly or preferably in both the top and the bottom roll assembly; measuring roll forces of the backup roll acting in the vertical direction on the backup roll chocks of the top and the bottom backup roll; calculating a strip rolling mill setting condition so that an absolute value of the roll bending force is made to be a value not more than ½ of a value of the roll balance condition, preferably an absolute value of the roll bending force is made to be zero by the strip crown and flatness control means other than the roll bending device in the process of setting calculation for obtaining a predetermined strip crown and flatness; and carrying out rolling by changing the roll bending force from the value of the roll balance condition to the setting calculation value immediately after the start of rolling according to the result of calculation.
Priority Claims (3)
Number |
Date |
Country |
Kind |
10-47981 |
Feb 1998 |
JP |
|
10-66809 |
Mar 1998 |
JP |
|
10-68489 |
Mar 1998 |
JP |
|
Parent Case Info
This application is a divisional application under 37 C.F.R. §1.53(b) of prior application Ser. No. 09/403,791 filed Oct. 26, 1999 now U.S. Pat. No. 6,401,506 which is a 35 U.S.C. §371 National Stage of International Application No. PCT/JP98/04273 filed Sep. 22, 1998. International Application No. PCT/JP98/04273 was filed and published in the Japanese language. The disclosures of the specification, claims, drawings and abstract of application Ser. No. 09/403,791 filed Oct. 26, 1999 and of International Application No. PCT/JP98/04273 are incorporated herein by reference.
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