Claims
- 1. A load-transfer block adapted for bodily insertion between and direct delivery of separating force to opposed surfaces of opposed back-up roll chocks of a rolling mill, said block comprising first and second rigid generally rectangular prismatic bodies and means including at least one pivot interconnecting said bodies for limited articulation along an array alignment, each of said bodies having a first load-sustaining surface on one side and a cylinder bore open to the opposite side, said bore having a diameter greater than its axial depth, a piston having sealed fit to each bore and having a second load-sustaining surface exposed outside its associated bore and facing in the direction away from said first load-sustaining surface, conduit means including a flexible element interconnecting cylinder bores of said bodies, and hydraulic supply means carried by one of said bodies generally on said array alignment and on the side remote from the other of said bodies, said hydraulic supply means including an electrically operable servo valve with a passage connection to the adjacent cylinder of said one block for control of pressurized fluid-flow into and out of said cylinder bores via said one body, and pressure-transducer means connected for electrical response to pressure in said passage connection, whereby transducer output may be remotely evaluated and valve actuation may be remotely controlled via electrical connections to said hydraulic supply means and the volume of hydraulic fluid subject to valve control may be substantially localized within said load-transfer block.
- 2. The load-transfer block of claim 1, in which said cylinder bore is one of two in each of said bodies, the axes of bores in each body being parallel and spaced generally along said array alignment, each body having a passage establishing fluid communication between cylinder bores thereof, and said conduit means interconnecting adjacent cylinder bores of adjacent ends of said bodies.
- 3. The load-transfer block of claim 1, in which said cylinder bore is one of a plurality in each of said bodies, the axes of bores in each body being parallel and spaced generally along said array alignment, passage means establishing fluid communication between cylinder bores thereof, and said conduit means interconnecting adjacent cylinder bores of adjacent ends of said bodies.
- 4. The load-transfer block of claim 1, in which said pivot is part of at least one link connection between said bodies.
- 5. The load-transfer block of claim 1, in which said pivot is part of at least one four-bar linkage wherein said bodies constitute two opposed bars of the linkage and two spaced parallel links interconnect said bodies to constitute the other two bars of the linkage.
- 6. The load-transfer block of claim 1, in which said hydraulic supply means includes a rigid frame mounting said servo valve and said pressure-transducer means, said rigid frame being rigidly secured to said one body, and a position-sensitive electric transducer including relatively movable body and core elements the body element of which is mounted to said frame with an externally projecting core-associated part exposed for position-tracking connection to the back-up roll chock with which said pistons are in direct-abutting relation, whereby the remote evaluation via electrical connections may additionally include instantaneous position-sensed data.
- 7. The load-transfer block of claim 1, in which said block includes an electrical control circuit having a control output to said servo valve, said control circuit including a comparator with first input-connection means adapted for receiving a remotely developed control signal and with other input-connection means adapted for receiving a locally developed control signal, a restrictive flow-metering orifice in said hydraulic-supply means, said pressure-transducer means including a separate transducer on each of the respective sides of said orifice, and flow-rate responsive electrical connections from said separate transducers to said other input-connection means.
- 8. 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 actuators in elongate 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 actuators of each load-transfer block assembly, said hydraulic supply and control system including an electrically operable servo valve mounted to and at one end of said array with hydraulic-passage connection to said actuators for control of pressurized fluid flow into and out of said actuators, and pressure-responsive transducer means forming part of said hydraulic supply and control system being mounted to said one end of said array and connected for electrical response to passage-connection pressure, whereby transducer output may be remotely evaluated and valve actuation may be remotely controlled via electrical connections to said hydraulic supply means and the volume of hydraulic fluid subject to valve control may be localized substantially within said load-transfer block.
- 9. The rolling mill of claim 8, in which said hydraulic supply and control system includes rigid frame means rigidly connected to at least one of said actuators, and a position-sensitive electric transducer including relatively movable body and core elements the body element of which is mounted to said frame with an externally projecting core-associated part exposed for position-tracking connection to the back-up roll chock with which said pistons are in direct-abutting relation, whereby the remote evaluation via electrical connections may additionally include instantaneous position-sensed data.
- 10. A load-transfer block adapted for bodily insertion between and direct delivery of separating force to opposed surfaces of opposed back-up roll chocks of a rolling mill, said block comprising first and second rigid generally rectangular prismatic bodies and flexible means interconnecting said bodies for limited articulation along an array alignment, each of said bodies having a first load-sustaining surface on one side and a cylinder bore open to the opposite side, a piston having sealed fit to each bore and having a second load-sustaining surface exposed outside its associated bore and facing in the direction away from said first load-sustaining surface, said flexible means including a conduit element interconnecting cylinder bores of said bodies, and hydraulic supply means carried by one of said bodies generally on said array alignment and on the side remote from the other of said bodies, said hydraulic supply means including an electrically operable servo valve with a passage connection to the adjacent cylinder of said one block for control of pressurized fluid-flow into and out of said cylidner bores via said one body, and pressure-transducer means connected for electrical response to pressure in said passage connection, whereby transducer output may be evaluated and valve actuation may be controlled via electrical connections to said hydraulic supply means and the volume of hydraulic fluid subject to valve control may be substantially localized within said load-transfer block.
- 11. A load-transfer block adapted for bodily insertion between and direct delivery of separating force to opposed surfaces of opposed back-up roll chocks of a rolling mill, said block comprising first and second rigid generally rectangular prismatic bodies and flexible means interconnecting said bodies for limited articulation along an array alignment, each of said bodies having a first load-sustaining surface on one side and a cylinder bore open to the opposite side, a piston having sealed fit to each bore and having a second load-sustaining surface exposed outside its associated bore and facing in the direction away from said first load-sustaining surface, said flexible means including a conduit element interconnecting cylinder bores of said bodies, and hydraulic supply means carried by one of said bodies generally on said array alignment and on the side remote from the other of said bodies, said hydraulic supply means including an electrically operable servo valve with a passage connection to the adjacent cylinder of said one block for control of pressurized fluid-flow into and out of said cylinder bores via said one body, and said servo valve having an electrical input connection adapted to receive an electrical feedback-control signal, whereby transducer output may be evaluated and valve actuation may be controlled via electrical connections to said hydraulic supply means and the volume of hydraulic fluid subject to valve control may be substantially localized within said load-transfer block.
- 12. The load-transfer block of claim 10, and including an electrical control circuit having a control output to said servo valve, said control circuit including a comparator with first input-connection means adapted for receiving a remotely developed control signal and with other input-connection means adapted for receiving a locally developed control signal, a restrictive flow-metering orifice in said hydraulic-supply means, said pressure-transducer means including a separate transducer on each of the respective sides of said orifice, and flow-rate responsive electrical connections from said separate transducers to said other input-connection means.
- 13. The load-transfer block of claim 11, and including an electrical control circuit having a control output to the electrical input connection of said servo valve, said control circuit including a comparator with first input-connection means adapted for receiving a remotely developed control signal and with other input-connection means adapted for receiving a locally developed control signal, a restrictive flow-metering orifice in said hydraulic-supply means, pressure-transducer means including a separate transducer on each of the respective sides of said orifice, and flow-rate responsive electrical connections from said separate transducers to said other input-connection means.
- 14. 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 load-transfer means reacting between associated chocks on both the entry side and the exit side of said pass, each said load-transfer means comprising plural vertical-action hydraulic piston-cylinder actuators in elongate 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 connected for exclusive service of the piston-cylinder actuators of each load-transfer means, said hydraulic supply and control system including an electrically operable servo valve at one end of said array with hydraulic-passage connection to said actuators for control of pressurized fluid flow into and out of said actuators, and pressure-responsive transducer means forming part of said hydraulic supply and control system and connected for electrical response to passage-connection pressure, whereby transducer output may be evaluated and a valve actuation may be controlled via electrical connections to said hydraulic supply means.
- 15. 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 load-transfer means reacting between associated chocks on both the entry side and the exit side of said pass, each said load-transfer means comprising plural vertical-action hydraulic piston-cylinder actuators in elongate 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 connected for exclusive service of the piston-cylinder actuators of each load-transfer means, said hydraulic supply and control system including an electrically operable servo valve at one end of said array with hydraulic-passage connection to said actuators for control of pressurized fluid flow into and out of said actuators, and said servo valve having an electrical input connection adapted to receive an electrical feedback-control signal, whereby valve actuation may be controlled via electrical connections to said hydraulic supply means and the volume of hydraulic fluid subject to valve control may be localized substantially within said load-transfer means.
- 16. 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 load-transfer means reacting between associated chocks on both the entry side and the exit side of said pass, each said load-transfer means comprising plural hydraulic piston-cylinder actuators in elongate array and acting in said direction, the length of the array providing plural horizontally spaced regions of said load-opposing spreading-force application to the associated back-up roll chocks, a separate hydraulic fluid supply and control system connected for exclusive service of the piston-cylinder actuators of each load-transfer means, said hydraulic supply and control system including an electrically operable servo valve at one end of said array with hydraulic-passage connection to said actuators for control of pressurized fluid flow into and out of said actuators, and said servo valve having an electrical input connection adapted to receive an electrical feedback-control signal, whereby valve actuation may be controlled via electrical connections to said hydraulic supply means and the volume of hydraulic fluid subject to valve control may be localized substantially within said load-transfer means.
Parent Case Info
This is a continuation of copending application Ser. No. 347,687, filed Feb. 11, 1982, and now abandoned.
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
4102171 |
Petry et al. |
Jul 1978 |
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Continuations (1)
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Number |
Date |
Country |
Parent |
347687 |
Feb 1982 |
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