Claims
- 1. A rolling mill comprising two horizontally spaced parallel upstanding end housings, two vertically spaced working rolls extending horizontally between said housings and establishing a pass from an entry side to an exit side for through-travel of material to be rolled, a back-up roll vertically behind each of said working rolls, a back-up roll chock at each end of each of the back-up rolls and providing rotary bearing support for the respective ends of the back-up rolls, chock-support means including a vertical chock guide in each of said housings for accommodating at each end housing vertical displacement of at least one of said back-up rolls, loading means at each end housing for urging the associated chocks toward each other to force the back-up rolls against the working rolls to load the working rolls, and a load-transfer block between associated chocks on both the entry side and the exit side of said pass, each said load-transfer block comprising a unitary assembly of plural vertical-action hydraulic piston-cylinder units in elongate articulated interconnected array, the length of the array providing plural horizontally spaced regions of load-opposing vertical spreading-force application to the associated back-up roll chocks, a separate hydraulic fluid supply and control system forming part of and connected for exclusive service of the piston-cylinder units of each load-transfer block assembly, and means including a microprocessor with separate pressure-sensing and piston-position sensing and hydraulic-control connections to all said load-transfer blocks for automatically controlling the relative chock-spreading actions of said respective load-transfer blocks.
- 2. A rolling mill comprising two spaced parallel upstanding side housings, two vertically spaced horizontal working rolls establishing a pass from an entry to an exit for through-travel of material to be rolled between said side housings, a back-up roll vertically behind each of said working rolls, a back-up roll chock at each end of each of the back-up rolls and providing rotary support for the respective ends of the back-up rolls, chock-support means including a vertical chock guide in each of said side housings for accommodating at each side housing vertical displacement of at least one of the back-up rolls, prestress-loading means at each side housing for urging the associated chocks toward each other to force the back-up rolls against the working rolls to load the working rolls, and four load-transfer blocks there being one between associated chocks on both the entry side and the exit side of each of said side housings, each load-transfer block comprising hydraulic piston-cylinder means providing spreading-force application to the associated back-up roll chocks, a separate hydraulic fluid supply and control system forming part of and connected for exclusive service of the piston-cylinder means of each load-transfer block, and means including a microprocessor with separate pressure-sensing and piston-position sensing and hydraulic-control connections to all said load-transfer blocks for automatically controlling the relative chock-spreading actions of said respective load-transfer blocks.
- 3. The mill of claim 2, in which said microprocessor means includes means for averaging the respective pressure-sensing outputs of the load-transfer blocks at one side housing and for evaluating the average in respect of predetermined upper and lower limits of a predetermined operating range of average pressure, said microprocessor means producing an output control signal polarized according to whether the upper or the lower of said limits is traversed, and means responsive to said output control signal for correctively controlling the prestress-loading means at one said side housing, the directional sense of control being to retain load-transfer block hydraulic operation at said one side housing within said predetermined operating range.
- 4. The mill of claim 3, in which said microprocessor means includes first multiplexing means sequentially and periodically associating with said averaging and evaluating means the pressure-sensing outputs of the load-transfer blocks at one side housing with those at the other side housing, and second multiplexing means sequentially and periodically associating the control-signal output of said evaluating means with the prestress-loading means at the respective side housings.
- 5. The mill of claim 2, in which said microprocessor means includes means for differentially evaluating the respective position-sensing outputs of the load-transfer blocks at one side housing, the evaluation producing two output signals of equal magnitude and opposed polarity reflecting such differential evaluation, said respective output signals being operatively connected to the control system of each of the respective load-transfer blocks at said one side housing, the directional sense of control being to maintain uniform position-sensing outputs of the load-transfer blocks at said one side housing.
- 6. The mill of claim 5, in which said microprocessor includes first multiplexing means periodically associating with said differentially evaluating means the position-sensing outputs of the load-transfer blocks at one side housing with those at the other side housing, and second multiplexing means periodically associating the two output signals of said differentially evaluating means with the control system of each of the respective load-transfer blocks at the respective side housings.
- 7. The mill of claim 6, in which said microprocessor means includes in each of the input connections to said differentially evaluating means a comparator providing a predetermined "0" reference signal magnitude against which the applicable position-sensed output signal is differentially evaluated to determine a corrected position-sensed signal to said differentially evaluating means.
- 8. The mill of claim 6, in which a work-roll gap sensor is positioned between load-transfer blocks at each side housing, each gap sensor producing an electrical signal output responsive to instantaneous roll-gap magnitude, said electrical signal output being connected in parallel to the control system of each of the load-transfer blocks at the applicable side housing.
- 9. The mill of claim 8, including set-point command means producing an electrical command signal connected in parallel to the control system of each of the load-transfer blocks of the mill.
- 10. The mill of claim 2, including set-point means producing an electrical command signal connected in parallel to the control system of each of the four load-transfer blocks of the mill, and a work-roll gap sensor positioned between load-transfer blocks at each side housing, each gap sensor producing an electrical signal output responsive to its local detection of instantaneous roll-gap magnitude, said electrical signal output being connected in parallel to the control system of each of the two load-transfer blocks at the applicable side housing, each control system including means comparatively evaluating its respective command-signal and sensed-gap signals to determine control-system operation of the associated separate hydraulic fluid supply.
- 11. The mill of claim 10, and including thickness-detection means located downstream from the region of working-roll action on material exiting said pass, said thickness-detection means producing an electrical output signal responsive to detected rolled-strip thickness, said microprocessor means including signal-averaging means responsive to the electrical signal output of said thickness-detection means, and an output-signal connection from said averaging means in parallel to the control system of each of said load-transfer blocks.
- 12. The mill of claim 11, in which said thickness-detection means includes an X-ray source and detector positioned to span rolled-strip product at a central location between sides of the rolled strip.
- 13. The mill of claim 2, in which said microprocessor means includes set-point command means producing an electrical signal having first parallel connection to the control system of each of the two load-transfer blocks at one side housing and second parallel connection to the control system of each of the two load-transfer blocks at the other side housing, and balancing means interposed between said command means and said control systems, said balancing means having an input connection from said command means and a separate output to each of said first and second parallel connections, said balancing means including provision for input control of equal and opposite incremental modifications of the command signal output to said separate outputs in terms of increasing the command signal level in one of said outputs to the same extent as the decrease of command signal level in the other of said outputs.
- 14. The mill of claim 13, in which said balancing means is selectively variable by manual means.
- 15. The mill of claim 13, in which automatic shape-sensing means responsive to product slack on one side of the product as compared with other side produces an electric-signal output in controlling relation with said balancing means, the directional sense of said electric-signal output being such as to reduce to zero the difference in detected slack on both sides of the product.
- 16. The mill of claim 2, wherein hydraulic roll-bend jack means at each side housing provides spreading force between corresponding ends of said working rolls, and jack-control means including a supply of hydraulic pressure fluid to both jack means in parallel, a pressure-sensitive transducer connected to said supply and producing an electrical signal output reflecting sensed jack-fluid pressure, said microprocessor means including set-point command means producing an electrical signal having first parallel connection to the control system of each of the load-transfer blocks at one side housing and having second parallel connection to the control system of each of the load-transfer blocks at the other side housing, and precharacterized network means interposed between said command means and said control systems, said network means being characterized in accordance with predetermined mill response to roll-bend jack force, and said network means having an input connection from said command means and having output connections in parallel to all control systems at both side housings.
- 17. A rolling mill comprising two spaced parallel upstanding side housings, two vertically spaced horizontal working rolls establishing a pass from an entry to an exit for through-travel of material to be rolled between said side housings, a back-up roll vertically behind each of said working rolls, a back-up roll chock at each end of each of the back-up rolls and providing rotary support for the respective ends of the back-up rolls, chock-support means including a vertical chock guide in each of said side housings for accommodating at each side housing vertical displacement of at least one of the back-up rolls, prestress-loading means at each side housing for urging the associated chocks toward each other to force the back-up rolls against the working rolls to load the working rolls, and four load-transfer mechanisms there being one associated with and reacting between associated chocks on both the entry side and the exit side of each end of said side housings, each load-transfer mechanism comprising hydraulic piston-cylinder means providing spreading-force application to the associated back-up roll chocks, a separate hydraulic fluid supply and control system forming part of and connected for exclusive service of the piston-cylinder means of each load-transfer mechanism, and means including a microprocessor with separate pressure-sensing and piston-position sensing and hydraulic-control connections to all said load-transfer mechanisms for automatically controlling the relative chock-spreading actions of said respective load-transfer mechanisms.
- 18. A rolling mill comprising two spaced parallel upstanding side housings, two vertically spaced horizontal working rolls establishing a pass from an entry to an exit for through-travel of material to be rolled between said side housings, a back-up roll vertically behind each of said working rolls, a back-up roll chock at each end of each of the back-up rolls and providing rotary support for the respective ends of the back-up rolls, chock-support means including a vertical chock guide in each of said side housings for accommodating at each side housing vertical displacement of at least one of the back-up rolls, prestress-loading means at each side housing for urging the associated chocks toward each other to force the back-up rolls against the working rolls to load the working rolls, and four load-transfer mechanisms there being one associated with and reacting between associated chocks on both the entry side and the exit side of each of said side housings, each load-transfer mechanism comprising hydraulic piston-cylinder means providing spreading-force application to the associated back-up roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of the piston-cylinder means of each load-transfer mechanism, and means including a microprocessor with separate pressure-sensing and hydraulic-control connections to all said load-transfer mechanisms for automatically controlling the relative chock-spreading actions of said respective load-transfer mechanisms.
- 19. A rolling mill comprising two spaced parallel upstanding side housings, two vertically spaced horizontal working rolls establishing a pass from an entry to an exit for through-travel of material to be rolled between said side housings, a back-up roll vertically behind each of said working rolls, a back-up roll chock at each end of each of the back-up rolls and providing rotary support for the respective ends of the back-up rolls, chock-support means including a vertical chock guide in each of said side housings for accommodating at each side housing vertical displacement of at least one of the back-up rolls, prestress-loading means at each side housing for urging the associated chocks toward each other to force the back-up rolls against the working rolls to load the working rolls, and four load-transfer mechanisms there being one associated with and reacting between associated chocks on both the entry side and the exit side of each of said side housings, each load-transfer mechanism comprising hydraulic piston-cylinder means providing spreading-force application to the associated back-up roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of the piston-cylinder means of each load-transfer mechanism, and means including a microprocessor with separate piston-position sensing and hydraulic-control connections to all said load-transfer mechanisms for automatically controlling the relative chock-spreading actions of said respective load-transfer mechanisms.
- 20. A rolling mill comprising two spaced parallel upstanding side housings, two vertically spaced horizontal working rolls establishing a pass from an entry to an exit for through-travel of material to be rolled between said side housings, a back-up roll vertically behind each of said working rolls, a back-up roll chock at each end of each of the back-up rolls and providing rotary support for the respective ends of the back-up rolls, chock-support means including a vertical chock guide in each of said side housings for accommodating at each side housing vertical displacement of at least one of the back-up rolls, prestress-loading means at each side housing for urging the associated chocks toward each other to force the back-up rolls against the working rolls to load the working rolls, and four load-transfer mechanisms there being one associated with and reacting between associated chocks on both the entry side and the exit side of each of said side housings, each load-transfer mechanism comprising hydraulic piston-cylinder means providing spreading-force application to the associated back-up roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of the piston-cylinder means of each load-transfer mechanism, first and second gap-sensor means positioned to sense working-roll gap at the respective ends of said pass, and means including a microprocessor with separate connections to said first and second gap-sensor means and with hydraulic-control connections to all said load-transfer mechanisms for automatically controlling the relative chock-spreading actions of said respective load-transfer mechanisms.
- 21. A rolling mill comprising two spaced parallel upstanding side housings, two vertically spaced horizontal working rolls establishing a pass from an entry to an exit for through-travel of material to be rolled between said side housings, a back-up roll vertically behind each of said working rolls, a back-up roll chock at each end of each of the back-up rolls and providing rotary support for the respective ends of the back-up rolls, chock-support means including a vertical chock guide in each of said side housings for accommodating at each side housing vertical displacement of at least one of the back-up rolls, prestress-loading means at each side housing for urging the associated chocks toward each other to force the back-up rolls against the working rolls to load the working rolls, and four load-transfer mechanisms there being one associated with and reacting between associated chocks on both the entry side and the exit side of each of said side housings, each load-transfer mechanism comprising hydraulic piston-cylinder means providing spreading-force application to the associated back-up roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of the piston-cylinder means at each side housing, and means including a microprocessor with separate pressure-sensing and hydraulic-control connections to all said load-transfer mechanisms for automatically controlling the relative chock-spreading actions of said respective load-transfer mechanisms.
- 22. A rolling mill comprising two spaced parallel upstanding side housings, two vertically spaced horizontal working rolls establishing a pass from an entry to an exit for through-travel of material to be rolled between said side housings, a back-up roll vertically behind each of said working rolls, a back-up roll chock at each end of each of the back-up rolls and providing rotary support for the respective ends of the back-up rolls, chock-support means including a vertical chock guide in each of said side housings for accommodating at each side housing vertical displacement of at least one of the back-up rolls, prestress-loading means at each side housing for urging the associated chocks toward each other to force the back-up rolls against the working rolls to load the working rolls, and four load-transfer mechanisms there being one associated with and reacting between associated chocks on both the entry side and the exit side of each of said side housings, each load-transfer mechanism comprising hydraulic piston-cylinder means providing spreading-force application to the associated back-up roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of the piston-cylinder means at each side housing, and means including a microprocessor with separate piston-position sensing and hydraulic-control connections to all said load-transfer mechanisms for automatically controlling the relative chock-spreading actions of said respective load-transfer mechanisms.
- 23. A rolling mill comprising two spaced parallel upstanding side housings, two vertically spaced horizontal working rolls establishing a pass from an entry to an exit for through-travel of material to be rolled between said side housings, a back-up roll vertically behind each of said working rolls, a back-up roll chock at each end of each of the back-up rolls and providing rotary support for the respective ends of the back-up rolls, chock-support means including a vertical chock guide in each of said side housings for accommodating at each side housing vertical displacement of at least one of the back-up rolls, prestress-loading means at each side housing for urging the associated chocks toward each other to force the back-up rolls against the working rolls to load the working rolls, and four load-transfer mechanisms there being one associated with and reacting between associated chocks on both the entry side and the exit side of each of said side housings, each load-transfer mechanism comprising hydraulic piston-cylinder means providing spreading-force application to the associated back-up roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of the piston-cylinder means at each side housing, first and second gap-sensor means positioned to sense working-roll gap at the respective ends of said pass, and means including a microprocessor with separate connections to said first and second gap-sensor means and with hydraulic-control connections to all said load-transfer mechanisms for automatically controlling the relative chock-spreading actions of said respective load-transfer mechanisms.
- 24. A rolling mill comprising two spaced parallel elongate end housings, two spaced working rolls extending between said housings and establishing a pass from an entry side to an exit side for through-travel of material to be rolled, the direction of said pass being in a plane generally perpendicular to the geometric plane established by and between the longitudinal axes of the respective end housings, a back-up roll extending between said housings behind each of said working rolls, a back-up roll chock at each end of each of the back-up rolls and providing rotary bearing support for the respective ends of the back-up rolls, chock-support means including a chock guide within and in the elongate direction of each of said housings for accommodating displacement in said direction for at least one of said back-up rolls, loading means at each end housing for urging the associated chocks toward each other to force the back-up rolls against the working rolls to load the working rolls, and separate load-transfer mechanisms reacting between associated chocks at each end housing, each load-transfer mechanism comprising hydraulic piston-cylinder means providing spreading-force application to the associated back-up roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of the piston-cylinder means of each load-transfer mechanism, and means including a microprocessor with separate pressure-sensing and hydraulic-control connections to said load-transfer mechanisms for automatically controlling the relative chock-spreading actions of said respective load-transfer mechanisms.
- 25. A rolling mill comprising two spaced parallel elongate end housings, two spaced working rolls extending between said housings and establishing a pass from an entry side to an exit side for through-travel of material to be rolled, the direction of said pass being in a plane generally perpendicular to the geometric plane established by and between the longitudinal axes of the respective end housings, a back-up roll extending between said housings behind each of said working rolls, a back-up roll chock at each end of each of the back-up rolls and providing rotary bearing support for the respective ends of the back-up rolls, chock-support means including a chock guide within and in the elongate direction of each of said housings for accommodating displacement in said direction for at least one of said back-up rolls, loading means at each end housing for urging the associated chocks toward each other to force the back-up rolls against the working rolls to load the working rolls, and separate load-transfer mechanisms reacting between associated chocks at each end housing, each load-transfer mechanism comprising hydraulic piston-cylinder means providing spreading-force application to the associated back-up roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of the piston-cylinder means of each load-transfer mechanism, and means including a microprocessor with separate piston-position sensing and hydraulic-control connections to said load-transfer mechanisms for automatically controlling the relative chock-spreading actions of said respective load-transfer mechanisms.
- 26. A rolling mill comprising two spaced parallel elongate end housings, two spaced working rolls extending between said housings and establishing a pass from an entry side to an exit side for through-travel of material to be rolled, the direction of said pass being in a plane generally perpendicular to the geometric plane established by and between the longitudinal axes of the respective end housings, a back-up roll extending between said housings behind each of said working rolls, a back-up roll chock at each end of each of the back-up rolls and providing rotary bearing support for the respective ends of the back-up rolls, chock-support means including a chock guide within and in the elongate direction of each of said housings for accommodating displacement in said direction for at least one of said back-up rolls, loading means at each end housing for urging the associated chocks toward each other to force the back-up rolls against the working rolls to load the working rolls, and separate load-transfer mechanisms reacting between associated chocks at each end housing, each load-transfer mechanism comprising hydraulic piston-cylinder means providing spreading-force application to the associated back-up roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of the piston-cylinder means of each load-transfer mechanism, first and second gap-sensor means positioned to sense working-roll gap at the respective ends of said pass, and means including a microprocessor with separate connections to said first and second gap-sensor means and with hydraulic-control connections to said load-transfer mechanisms for automatically controlling the relative chock-spreading actions of said respective load-transfer mechanisms.
- 27. A rolling mill comprising two spaced parallel upstanding side housings, two vertically spaced horizontal working rolls establishing a pass from an entry to an exit for through-travel of material to be rolled between said side housings, a roll-mounting chock for rotary support of each end of each of said working rolls, chock-support means including a vertical chock guide in each of said side housings for accommodating at each side housing vertical displacement of at least one of the chocks, prestress-loading means at each side housing for urging the associated chocks toward each other to load the working rolls, and load-transfer mechanisms associated with and reacting in opposition to said prestress-loading means on both the entry side and the exit side of each of said side housings, each load-transfer mechanism comprising hydraulic piston-cylinder means providing spreading-force application to offset the prestress loading of the associated roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of the piston-cylinder means of each load-transfer mechanism, and means including a microprocessor with separate pressure-sensing and hydraulic-control connections to all said load-transfer mechanisms for automatically controlling the relative spreading-force actions of said respective load-transfer mechanisms.
- 28. A rolling mill comprising two spaced parallel upstanding side housings, two vertically spaced horizontal working rolls establishing a pass from an entry to an exit for through-travel of material to be rolled between said side housings, a roll-mounting chock for rotary support of each end of each of said working rolls, chock-support means including a vertical chock guide in each of said side housings for accommodating at each side housing vertical displacement of at least one of the chocks, prestress-loading means at each side housing for urging the associated chocks toward each other to load the working rolls, and load-transfer mechanisms associated with and reacting in opposition to said prestress-loading means on both the entry side and the exit side of each of said side housings, each load-transfer mechanism comprising hydraulic piston-cylinder means providing spreading-force application to offset the prestress loading of the associated roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of the piston-cylinder means of each load-transfer mechanism, and means including a microprocessor with separate piston-position sensing and hydraulic-control connections to all said load-transfer mechanisms for automatically controlling the relative spreading-force actions of said respective load-transfer mechanisms.
- 29. A rolling mill comprising two spaced parallel upstanding side housings, two vertically spaced horizontal working rolls establishing a pass from an entry to an exit for through-travel of material to be rolled between said side housings, a roll-mounting chock for rotary support of each end of each of said working rolls, chock-support means including a vertical chock guide in each of said side housings for accommodating at each side housing vertical displacement of at least one of the chocks, prestress-loading means at each side housing for urging the associated chocks toward each other to load the working rolls, and load-transfer mechanisms associated with and reacting in opposition to said prestress-loading means on both the entry side and the exit side of each of said side housings, each load-transfer mechanism comprising hydraulic piston-cylinder means providing spreading-force application to offset the prestress loading of the associated roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of the piston-cylinder means of each load-transfer mechanism, first and second gap-sensor means positioned to sense working-roll gap at the respective ends of said pass, and means including a microprocessor with separate connections to said first and second gap-sensor means and with hydraulic-control connections to all said load-transfer mechanisms for automatically controlling the relative spreading-force actions of said respective load-transfer mechanisms.
- 30. The rolling mill of claim 27, in which a back-up roll is vertically behind each of said working rolls, and in which a chock for rotary support of each end of each back-up roll is guided by the guide in the associated side housing, said prestress-loading means and said load-transfer mechanisms being operative on said working rolls via the respective back-up roll chocks.
- 31. The rolling mill of claim 28, in which a back-up roll is vertically behind each of said working rolls, and in which a chock for rotary support of each end of each back-up roll is guided by the guide in the associated side housing, said prestress-loading means and said load-transfer mechanisms being operative on said working rolls via the respective back-up roll chocks.
- 32. The rolling mill of claim 29, in which a back-up roll is vertically behind each of said working rolls, and in which a chock for rotary support of each end of each back-up roll is guided by the guide in the associated side housing, said prestress-loading means and said load-transfer mechanisms being operative on said working rolls via the respective back-up roll chocks.
- 33. A rolling mill comprising two spaced parallel upstanding side housings, two vertically spaced horizontal working rolls establishing a pass from an entry to an exit for through-travel of material to be rolled between said side housings, a back-up roll vertically behind each of said working rolls, a back-up roll chock at each end of each of the back-up rolls and providing rotary support for the respective ends of the back-up rolls, chock-support means including a vertical chock guide in each of said side housings for accomodating at each side housing vertical displacement of at least one of the back-up rolls, means at each side housing for urging the associated chocks toward each other to force the back-up rolls against the working rolls to load the working rolls, and four load-transfer mechanisms there being one associated with and reacting between associated chocks on both the entry side and the exit side of each of said side housings, each load-transfer mechanism comprising hydraulic means providing spreading-force application to the associated back-up roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of each load-transfer mechanism, first and second gap-sensor means positioned to sense working-roll gap at the respective ends of said pass, and means including a microprocessor with separate connections to said first and second gap-sensor means and with control connections to all said load-transfer mechanisms for automatically controlling the relative chock-spreading actions of said respective load-transfer mechanisms.
- 34. A rolling mill comprising two spaced parallel upstanding side housings, two vertically spaced horizontal working rolls establishing a pass from an entry to an exit for through-travel of material to be rolled between said side housings, a back-up roll vertically behind each of said working rolls, a back-up roll chock at each end of each of the back-up rolls and providing rotary support for the respective ends of the back-up rolls, chock-support means including a vertical chock guide in each of said side housings for accommodating at each side housing vertical displacement of at least one of the back-up rolls, means at each side housing for urging the associated chocks toward each other to force the back-up rolls against the working rolls to load the working rolls, and load-transfer means comprising four load-transfer mechanisms there being one associated with and reacting between associated chocks on both the entry side and the exit side of each of said side housings, each load-transfer mechanism comprising hydraulic means providing spreading-force application to the associated back-up roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of the load-transfer means at each side housing, first and second gap-sensor means positioned to sense working-roll gap at the respective ends of said pass, and means including a microprocessor with separate connections to said first and second gap-sensor means and with control connections to all said load-transfer mechanisms for automatically controlling the relative chock-spreading actions of said respective load-transfer mechanisms.
- 35. A rolling mill comprising two spaced parallel elongate end housings, two spaced working rolls extending between said housings and establishing a pass from an entry side to an exit side for through-travel of material to be rolled, the direction of said pass being in a plane generally perpendicular to the geometric plane established by and between the longitudinal axes of the respective end housings, a back-up roll extending between said housings behind each of said working rolls, a back-up roll chock at each end of each of the back-up rolls and providing rotary bearing support for the respective ends of the back-up rolls, chock-support means including a chock guide within and in the elongate direction of each of said housings for accommodating displacement in said direction for at least one of said back-up rolls, means at each end housing for urging the associated chocks toward each other to force the back-up rolls against the working rolls to load the working rolls and separate load-transfer mechanisms reacting between associated chocks at each end housing, each load-transfer mechanism comprising hydraulic means providing spreading-force application to the associated back-up roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of each load-transfer mechanism, first and second gap-sensor means positioned to sense working-roll gap at the respective ends of said pass, and means including a microprocessor with separate connections to said first and second gap-sensor means and with control connections to said load-transfer mechanisms for automatically controlling the relative chock-spreading actions of said respective load-transfer mechanisms.
- 36. A rolling mill comprising two spaced parallel upstanding side housings, two vertically spaced horizontal working rolls establishing a pass from an entry to an exit for through-travel of material to be rolled between said side housings, a roll-mounting chock for rotary support of each end of each of said working rolls, chock-support means including a vertical chock guide in each of said side housings for accommodating at each side housing vertical displacement of at least one of the chocks, means at each side housing for urging the associated chocks toward each other to load the working rolls, and hydraulic load-transfer mechanisms associated with and reacting in opposition to said means on both the entry side and the exit side of each of said side housings, each load-transfer mechanism comprising hydraulic means providing spreading-force application to offset the loading of the associated roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of each load-transfer mechanism, first and second gap-sensor means positioned to sense working-roll gap at the respective ends of said pass, and means including a microprocessor with separate connections to said first and second gap-sensor means and with control connections to all said load-transfer mechanisms for automatically controlling the relative spreading-force actions of said respective load-transfer mechanisms.
- 37. A rolling mill comprising two spaced parallel upstanding side housings, two vertically spaced horizontal working rolls establishing a pass from an entry to an exit for through-travel of material to be rolled between said side housings, a back-up roll vertically behind each of said working rolls, a back-up roll chock at each end of each of the back-up rolls and providing rotary support for the respective ends of the back-up rolls, chock-support means including a vertical chock guide in each of said side housings for accommodating at each side housing vertical displacement of at least one of the back-up rolls, means at each side housing for urging the associated chocks toward each other to force the back-up rolls against the working rolls to load the working rolls, and four load-transfer mechanisms there being one associated with and reacting between associated chocks on both the entry side and the exit side of each of said side housings, each load-transfer mechanism comprising hydraulic means providing spreading-force application to the associated back-up roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of each load-transfer mechanism, first and second corresponding means for sensing a predetermined working condition at the respective ends of said pass, and means including a microprocessor with separate connections to said first and second corresponding means and with control connections to all said load-transfer mechanisms for automatically controlling the relative chock-spreading actions of said respective load-transfer mechanisms.
- 38. A rolling mill comprising two spaced parallel upstanding side housings, two vertically spaced horizontal working rolls establishing a pass from an entry to an exit for through-travel of material to be rolled between said side housings, a back-up roll vertically behind each of said working rolls, a back-up roll chock at each end of each of the back-up rolls and providing rotary support for the respective ends of the back-up rolls, chock-support means including a vertical chock guide in each of said side housings for accommodating at each side housing vertical displacement of at least one of the back-up rolls, means at each side housing for urging the associated chocks toward each other to force the back-up rolls against the working rolls to load the working rolls, and load-transfer means comprising four load-transfer mechanisms there being one associated with and reacting between associated chocks on both the entry side and the exit side of each of said side housings, each load-transfer mechanism comprising hydraulic means providing spreading-force application to the associated back-up roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of the load-transfer means at each side housing, first and second corresponding means for sensing a predetermined working condition at the respective ends of said pass, and means including a microprocessor with separate connections to said first and second corresponding means and with control connections to all said load-transfer mechanisms for automatically controlling the relative chock-spreading actions of said respective load-transfer mechanisms.
- 39. A rolling mill comprising two spaced parallel elongate end housings, two spaced working rolls extending between said housings and establishing a pass from an entry side to an exit side for through-travel of material to be rolled, the direction of said pass being in a plane generally perpendicular to the geometric plane established by and between the longitudinal axes of the respective end housings, a back-up roll extending between said housings behind each of said working rolls, a back-up roll chock at each end of each of the back-up rolls and providing rotary bearing support for the respective ends of the back-up rolls, chock-support means including a chock guide within and in the elongate direction of each of said housings for accommodating displacement in said direction for at least one of said back-up rolls, means at each end housing for urging the associated chocks toward each other to force the back-up rolls against the working rolls to load the working rolls, and separate load-transfer mechanisms reacting between associated chocks at each end housing, each load-transfer mechanism comprising hydraulic means providing spreading-force application to the associated back-up roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of each load-transfer mechanism, first and second corresponding means for sensing a predetermined working condition at the respective ends of said pass, and means including a microprocessor with separate connections to said first and second corresponding means and with control connections to said load-transfer mechanisms for automatically controlling the relative chock-spreading actions of said respective load-transfer mechanisms.
- 40. A rolling mill comprising two spaced parallel upstanding side housings, two vertically spaced horizontal working rolls establishing a pass from an entry to an exit for through-travel of material to be rolled between said side housings, a roll-mounting chock for rotary support of each end of each of said working rolls, chock-support means including a vertical chock guide in each of said side housings for accommodating at each side housing vertical displacement of at least one of the chocks, means at each side housing for urging the associated chocks toward each other to load the working rolls, and hydraulic load-transfer mechanisms associated with and reacting in opposition to said means on both the entry side and the exit side of each of said side housings, each load-transfer mechanism comprising hydraulic means providing spreading-force application to offset the loading of the associated roll chocks, an independently operative hydraulic control system including a control valve connected for exclusive service of each load-transfer mechanism, first and second corresponding means for sensing a predetermined working condition at the respective ends of said pass, and means including a microprocessor with separate connections to said first and second corresponding means and with control connections to all said load-transfer mechanisms for automatically controlling the relative spreading-force actions of said respective load-transfer mechanisms.
BACKGROUND OF THE INVENTION
This application is a continuation of copending application Ser. No. 548,619, filed Nov. 4, 1983, abandoned and said copending application is a division of originally filed application Ser. No. 347,687, filed Feb. 11, 1982; said originally filed application is now abandoned but is survived by copending application Ser. No. 562,865, filed Dec. 19, 1983.
US Referenced Citations (3)
Number |
Name |
Date |
Kind |
4102171 |
Petry et al. |
Jul 1978 |
|
4335435 |
Miura |
Jun 1982 |
|
4379395 |
Konishi et al. |
Apr 1983 |
|
Divisions (1)
|
Number |
Date |
Country |
Parent |
347687 |
Feb 1982 |
|
Continuations (1)
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Number |
Date |
Country |
Parent |
548619 |
Nov 1983 |
|