Claims
- 1. In a side-supported six-high rolling mill of the type having a pair of housings, a pair of small vertically in-line free-floating work rolls and vertically in-line chock-mounted back-up rolls with chock mounted intermediate rolls located in-line and between said work rolls and said back-up rolls, lateral support roll assemblies mounted on each side of each work roll and support means for each of said lateral support roll assemblies, said lateral support roll assemblies being chosen from the class consisting of a single side support roll, and a single side support roll together with a pair of backing roll assemblies, the improvement wherein each of said support means for each of said lateral support roll assemblies comprises a support arm mounted upon said chocks of the adjacent one of said intermediate rolls, said mounting allowing horizontal adjustment of said lateral support roll assembly, a spacer to adjust the horizontal position of said lateral support roll assembly; and a stationary side support beam assembly, which provides rigid support for said spacer and said support arm.
- 2. An improved rolling mill according to claim 1 wherein said lateral support roll assemblies and support arms are dimensioned to fit within the width of the intermediate roll chocks, enabling intermediate roll assemblies, which each comprise an intermediate roll, a pair of intermediate roll chocks, a left and a right lateral support roll assembly and support arms therefor to be inserted into and removed from the mill as a unit by moving them in a direction parallel with the roll axis.
- 3. A mill according to claims 1 or 2 wherein a pair of chock-mounted work rolls are provided whose chocks have the same width as those of said intermediate roll chocks, enabling said mill to be quickly converted from six-high operation to four-high operation by sliding out the six-high work rolls and intermediate roll assemblies and sliding in the chock mounted work rolls.
- 4. An improved rolling mill according to claim 1 wherein said stationary side support beam assembly comprises a movable beam guidably mounted on a rigid stationary spacer beam mounted between said two housings of said mill, overload prevention means mounted on said spacer beam for setting the horizontal working position of said movable beam, and for limiting the horizontal rolling force component that said overload prevention means will support when said force component acts towards said overload prevention means, spring return means to pull said movable beam towards said overload prevention means, and cylinder means to push the adjacent lateral support roll assembly towards the work roll, in order to take out the clearance between said lateral support roll assembly and work roll when said force component acts away from said overload prevention means.
- 5. An improved rolling mill according to claim 1 wherein one of said stationary side support beam assemblies to one side of one of said work rolls and one of said stationary side support beam assemblies to the other side of the other of said work rolls each comprise a movable beam guideably mounted on a rigid stationary spacer beam mounted between said two housings of said mill, overload prevention means mounted on said spacer beam for setting the horizontal working position of said movable beam, and for limiting the horizontal rolling force component that said overload prevention means will support, when said force components act towards said overload prevention means, spring return means to pull said movable beam towards said overload prevention means, and cylinder means to push the adjacent lateral support roll assembly towards the work roll, in order to take out the clearance between said lateral support roll assembly and work roll when said force component acts away from said overload prevention means, the remaining ones of said stationary side support beam assemblies each comprising a movable beam guidably mounted on a rigid stationary spacer beam mounted between said two housings of said mill, spring return means to pull said last mentioned movable beam towards said last mentioned spacer beam and cylinder means to push the adjacent lateral support roll assembly towards the work roll, in order to take out the clearance between said lateral support roll assembly and the work roll when the horizontal rolling force component acts away from said last mentioned spacer beam.
- 6. An improved rolling mill according to claim 1 wherein said stationary side support beam assemblies to one side of said work rolls each comprise a movable beam guidably mounted on a rigid stationary spacer beam mounted between said two housings of said mill, overload prevention means mounted on said spacer beam for setting the horizontal working position of said movable beam, and for limiting the horizontal rolling force component that said overload prevention means will support when said force component acts towards said overload prevention means, and spring return means to pull said movable beam towards said overload prevention means, said stationary side support beam assemblies on the other side of said work rolls each comprising a movable beam guidably mounted on a rigid stationary spacer beam mounted between said two housings of said mill, spring return means to pull said last mentioned movable beam towards said last mentioned spacer beam and cylinder means to push the adjacent lateral support roll assembly towards the work roll, in order to take out the clearance between said lateral support roll assembly and the work roll when the horizontal rolling force component acts away from said last mentioned spacer beam.
- 7. An improved rolling mill according to claim 1 wherein said stationary side support beam assembly comprises a movable beam guidably mounted on a rigid stationary spacer beam mounted between said two housings of said mill, spring return means to pull said movable beam towards said spacer beam and cylinder means to push the adjacent lateral support roll assembly towards the work roll, in order to take out the clearance between said lateral support roll assembly and the work roll when the horizontal rolling force component acts away from said spacer beam.
- 8. The mill according to claim 4 wherein said overload prevention means comprises hydraulic cylinder means.
- 9. The mill according to claim 5 wherein said overload prevention means comprises hydraulic cylinder means.
- 10. The mill according to claim 6 wherein said overload prevention means comprises hydraulic cylinder means.
- 11. A mill according to claims 1 or 2 including a pair of chock-mounted large work rolls, said work roll chocks having the same width as said intermediate roll chocks, enabling said mill to be quickly converted from side-supported six-high operation to conventional six-high operation by sliding out said small free-floating work rolls and said intermediate roll assemblies, removing said support arm assemblies from said intermediate roll assemblies, re-inserting said intermediate roll assemblies in said mill, and sliding in said chock-mounted work rolls.
- 12. A mill according to claim 1 wherein each of said lateral support roll assemblies comprises a single side support roll fully supported throughout its length in both vertical and horizontal planes by two backing roll assemblies, each of said backing roll assemblies comprising a number of rollers rotatably mounted upon a stationary shaft and support means to mount said shafts and support said shafts at intervals throughout their length, one of said two backing roll assemblies being axially offset with respect to the other to even out the wear produced on said side support roll by said backing roll assemblies.
- 13. A mill according to claim 1 wherein each of said lateral support roll assemblies comprises a single side support roll fully supported throughout its length in both vertical and horizontal planes by two backing roll assemblies, each of said backing roll assemblies comprising a number of rollers rotatably mounted upon a stationary shaft and support means to mount said shafts and support said shafts at intervals throughout their length, the diameter of the rollers of the more heavily loaded of said backing roll assemblies being greater than the diameter of the rollers of the less heavily loaded of said backing roll assemblies, so that the roller diameters of the respective backing roll assemblies are substantially proportional to the load on each of said back roll assemblies.
CROSS REFERENCE TO RELATED PATENTS
This application is related to the teachings of U.S. Pat. No. 4,270,377 of June 2, 1981 and U.S. Pat. No. 4,197,731 of Apr. 15, 1980, and is a continuation-in-part of application Ser. No. 06/362,460, filed Mar. 26, 1982, abandoned, in the name of the same inventors and entitled Improvements-To-Six-High-Rolling-Mills.
US Referenced Citations (3)
Number |
Name |
Date |
Kind |
3429166 |
Baker et al. |
Feb 1969 |
|
4270377 |
Verbickas et al. |
Jun 1981 |
|
4462236 |
Turley et al. |
Jul 1984 |
|
Foreign Referenced Citations (1)
Number |
Date |
Country |
0130310 |
Oct 1980 |
JPX |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
362460 |
Mar 1982 |
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