Roll stand having a hybrid cooling device
11559830 · 2023-01-24
Assignee
Inventors
- Markus Fischer (St. Pantaleon-Erla, AT)
- Erich Opitz (Linz, AT)
- Lukas Pichler (Linz, AT)
- Christoph Proell (Feldkirchen, AT)
- Alois Seilinger (Linz, AT)
Cpc classification
International classification
Abstract
A roll stand (1) for rolling flat rolling stock (2) includes an upper working roller (3) and a lower working roller (4) that form a roll gap (5) between each other. The flat rolling stock (2) runs through the roll gap (5) in a transport direction (x) during rolling of the flat rolling stock (2). An upper cooling device (8), cools the upper working roller (3) and is arranged on the outlet side of the roll stand (1). The upper cooling device (8) has an upper spray boom (17), which extends parallel to the upper working roller (3) and has a plurality of upper spray nozzles (22), which spray a liquid coolant (12) onto the upper working roller (3). The upper cooling device (8) also has a lower spray boom (18), which extends parallel to the upper working roller (3) and has a plurality of lower spray nozzles (23), which spray the liquid coolant (12) onto the upper working roller (3). The lower spray boom (18) is arranged between the flat rolling stock (2) and the upper spray boom (17). At least some of the upper spray nozzles (22) are flat jet nozzles, and at least some of the lower spray nozzles (23) are full jet nozzles.
Claims
1. A roll stand for rolling flat metal rolling stock, comprising: an upper working roller and a lower working roller which between them form a rolling gap configured so that the flat rolling stock is run through the rolling gap in a transport direction (x) during the rolling of the flat rolling stock; an upper cooling device configured for cooling the upper working roller; an outlet side, the upper cooling device is arranged on the outlet side; the upper cooling device has an upper spray boom which extends parallel to the upper working roller and has a plurality of upper spray nozzles configured for spraying a liquid coolant onto the upper working roller; the upper cooling device has a lower spray boom which extends parallel to the upper working roller, the lower spray boom has a plurality of lower spray nozzles configured for spraying the liquid coolant onto the upper working roller, and the lower spray boom is arranged between the flat rolling stock and the upper spray boom; at least some of the upper spray nozzles are configured as flat-jet nozzles; at least some of the lower spray nozzles are configured as full-jet nozzles; a first pump that supplies the coolant to the lower spray nozzles at a first working pressure (p1); a second pump that supplies the coolant to the upper spray nozzles at a second working pressure (p2); a control device that sets the first working pressure (p1) lower than the second working pressure (p2), and an upper scraping element positioned lower than the lower spray nozzles that, in operation, collects coolant thereon to form a pool of coolant, wherein, in operation, the full-jet nozzles of the lower spray nozzles spray the liquid coolant to completely penetrate a pool of coolant formed on the upper scraping element, wherein the full jet nozzles are capable of discharging a coolant jet with an opening angle of at most 5°.
2. The roll stand as claimed in claim 1, further comprising: at least one central spray boom arranged between the upper and the lower spray booms, the central spray boom extends parallel to the upper working roller; the central spray boom has a plurality of central spray nozzles configured for spraying the liquid coolant onto the upper working roller; and the central spray nozzles of each central spray boom are configured, at least in a central region of the respective central spray boom, either uniformly as flat-jet nozzles or uniformly as full-jet nozzles.
3. The roll stand as claimed in claim 2, wherein the upper spray boom, the central spray boom and the lower spray boom form a sequence of spray booms as viewed from a top of the roll stand down; and a change from flat-jet nozzles to full-jet nozzles occurs a single time within the sequence of spray booms for regions of the spray booms, wherein the regions of the spray booms correspond to one another in a width direction of the flat rolling stock.
4. The roll stand as claimed in claim 1, wherein the first working pressure (p1) is at most 5 bar, and the second working pressure (p2) is at least 6 bar.
5. A roll stand for rolling flat metal rolling stock, comprising: an upper working roller and a lower working roller which between them form a rolling gap configured so that the flat rolling stock is run through the rolling gap in a transport direction (x) during the rolling of the flat rolling stock; an upper cooling device configured for cooling the upper working roller; an outlet side, the upper cooling device is arranged on the outlet side; the upper cooling device has an upper spray boom which extends parallel to the upper working roller and has a plurality of upper spray nozzles configured for spraying a liquid coolant onto the upper working roller; the upper cooling device has a lower spray boom which extends parallel to the upper working roller, the lower spray boom has a plurality of lower spray nozzles configured for spraying the liquid coolant onto the upper working roller, and the lower spray boom is arranged between the flat rolling stock and the upper spray boom; at least some of the upper spray nozzles comprising are configured as flat-jet nozzles; at least some of the lower spray nozzles comprising are configured as full jet nozzles; a first pump that supplies the coolant to the lower spray nozzles at a first working pressure (p1); a second pump that supplies the coolant to the upper spray nozzles at a second working pressure (p2); a control device that sets the first working pressure (p1) lower than the second working pressure (p2); and an upper scraping element positioned lower than the lower spray nozzles that, in operation, collects coolant thereon to form a pool of coolant; at least one central spray boom arranged between the upper and the lower spray booms, the central spray boom extends parallel to the upper working roller; the central spray boom has a plurality of central spray nozzles configured for spraying the liquid coolant onto the upper working roller; and the central spray nozzles of the at least one spray boom are configured, at least in a central region thereof, either uniformly as flat-jet nozzles or uniformly as full-jet nozzles, wherein the upper spray boom, the at least one central spray boom, and the lower spray boom form a sequence of spray booms as viewed from a top of the roll stand down, wherein, in the sequence, the nozzles change from flat-jet nozzles in the upper spray boom to full jet nozzles in the lower spray boom, wherein the change from the flat-jet nozzles to the full-jet nozzles occurs only one time within the sequence of spray booms for each region of regions of the spray booms, wherein the regions of the spray booms correspond to one another in a width direction of the flat rolling stock, wherein, in operation, the full-jet nozzles of the lower spray nozzles spray the liquid coolant to completely penetrate a pool of coolant formed on the upper scraping element.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above-described properties, features and advantages of this invention and also the manner in which they are achieved will become clearer and more readily understandable in connection with the following description of the exemplary embodiments which will be explained in more detail in conjunction with the drawings, in which, in schematic illustration:
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DESCRIPTION OF THE EMBODIMENTS
(9) According to
(10) The roll stand 1 can be a constituent part of a multi-stand rolling train, for example of a finishing train. In this case, the transport direction x is as a rule fixedly prescribed and the same in each rolling operation. This configuration is particularly the rule for a metal strip. Alternatively, the roll stand 1 can be designed as a reversing roll stand. In this case, the transport direction x reverses from rolling pass to rolling pass. Reversing stands are used in particular for rolling plate. However, they are sometimes also used for rolling metal strip, for example during rough rolling or in a Steckel mill.
(11) In addition to the working rollers 3, 4, the flat rolling stock 2 as a rule has at least one upper and one lower backup roller 6, 7. It is also sometimes possible for further rollers to be present, for example an upper and a lower intermediate roller in the case of a six-high stand. The backup rollers 6, 7 and where appropriate also the intermediate rollers are of minor importance within the context of the present invention. It is also of minor importance within the context of the present invention whether the working rollers 3, 4 and/or any present intermediate rollers are axially displaceable. Therefore, no more detailed discussion will be given below in relation to the backup rollers 6, 7, the intermediate rollers and the axial displaceability of working rollers 3, 4 and/or intermediate rollers.
(12) According to
(13) Furthermore, each present cooling device 8 to 11 is assigned a wiping element 13 to 16. The respective wiping element 13 to 16 allows the liquid coolant 12 applied to the respective working roller 3, 4 to be scraped off the respective working roller 3, 4 in order that it does not get onto the flat rolling stock 2. Of decisive importance within the context of the present invention is the configuration of the upper cooling device 8 arranged on the outlet side of the roll stand 1. Although it is possible for the upper cooling device 10 arranged on the inlet side of the roll stand 1 to be designed in the same way, it can equally also be designed in some other way. It is only if the roll stand 1 is operated as a reversing stand that this cooling device 10 also has to be designed in the same way since the inlet side and outlet side are alternated in each rolling pass with respect to the preceding rolling pass. It is equally possible for the lower cooling devices 9, 11 to be designed in a similar manner to the upper cooling devices 8, 10. In this case, the statements below pertaining to the configuration of the upper cooling device 8 would apply in mirror-image fashion. However, they can also be designed in some other ways. Since the configuration of the lower cooling devices 9, 11 and of the cooling devices 10, 11 arranged on the inlet side of the roll stand 1 is of minor importance within the context of the present invention, only the upper cooling device 8 arranged on the outlet side of the roll stand 1 will be explained in more detail below.
(14) According to
(15) The spray booms 17 to 20 extend parallel to the upper working roller 3. Directions of extent of the spray booms 17 to 20 thus run parallel to the axis of rotation 21 of the upper working roller 3. Each spray boom 17 to 20 has a plurality of spray nozzles 22 to 25. The spray nozzles 22 to 25 are arranged next to one another as viewed in the direction of extent of the respective spray boom 17 to 20. The liquid coolant 12 is sprayed onto the upper working roller 3 by means of the spray nozzles 22 to 25. The spray nozzles 22 of the upper spray boom 17 are referred to below as upper spray nozzles 22, and the spray nozzles 23 of the lower spray boom 18 as lower spray nozzles. Likewise, the spray nozzles 24, 25 of the central spray booms 19, 20 are referred to as central spray nozzles. Distinguishing them as upper, lower and central spray nozzles 22 to 25 serves only for assigning them to the respective spray boom 17 to 20. No further significance is ascribed to the referencing.
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(19) In the embodiment according to
(20) The central spray nozzles 24, 25 can be designed as flat-jet nozzles or as full-jet nozzles as required. However, each central spray boom 19, 20 preferably has only a single type of spray nozzles, that is to say either flat-jet nozzles or full-jet nozzles, but not mixed flat-jet nozzles and full-jet nozzles. At least, this statement applies as viewed in the width direction of the flat rolling stock 2 in a central region of the respective central spray boom 19, 20. With respect to in each case one of the central spray booms 19, 20, the spray nozzles 24, 25 of the respective central spray boom 19, 20 are thus designed uniformly.
(21) The spray booms 17 to 20 form as viewed from the top down a sequence of spray booms 17, 19, 20, 18. A change from flat-jet nozzles to full-jet nozzles preferably occurs only a single time within the sequence of spray booms 17, 19, 20, 18. It is thus possible for the spray nozzles 24, 25 of both central spray booms 19, 20 to be designed as full-jet nozzles. In this case, the change from flat-jet nozzles to full-jet nozzles occurs at the transition from the upper spray boom 17 to the upper central spray boom 19. It is equally possible for the spray nozzles 24, 25 of both central spray booms 19, 20 to be designed as flat-jet nozzles. In this case, the change from flat-jet nozzles to full-jet nozzles occurs at the transition from the lower central spray boom 20 to the lower spray boom 18. It is equally possible for the spray nozzles 24, 25 of in each case one of the two central spray booms 19, 20 to be designed as flat-jet nozzles and as full-jet nozzles. In this case, the change from flat-jet nozzles to full-jet nozzles occurs in accordance with the illustration in
(22) It is furthermore evident from
(23) With respect to the operation of the cooling device 8, in accordance with the illustration in
(24) The two working pressures p1, p2 can be set independently of one another by the control device 28. However, in the embodiment according to
(25) Alternatively, it is possible, in accordance with the illustration in
(26) The present invention has many advantages. In particular, the lower region of the upper working roller 3 can be effectively cooled even when a liquid pool has formed on the associated wiping element 13. Furthermore, it is also possible in a simple manner for a conventional cooling arrangement (not according to the invention) of an existing roll stand 1 to be correspondingly retrofitted. All that is required is for the already present lowermost spray boom to be removed and replaced by a lower spray boom 17 according to the invention. Furthermore, the angular range over which the cooling occurs can be maximized as viewed in the circumferential direction of the upper working roller 3. In particular, the cooling can be begun already directly above the upper wiping element 13 arranged on the outlet side of the roll stand 1.
(27) Although the invention has been more fully illustrated and described in detail by way of the preferred exemplary embodiment, the invention is thus not limited by the disclosed examples and other variants can be derived therefrom by a person skilled in the art without departing from the scope of protection of the invention.
LIST OF REFERENCE SIGNS
(28) 1 roll stand 2 flat rolling stock 3, 4 working rollers 5 rolling gap 6, 7 backup rollers 8 to 11 cooling devices 12 liquid coolant 13 to 16 wiping elements 17 to 20 spray booms 21 axis of rotation 22 to 25 spray nozzles 26, 27, 29 pumps 28 control device p, p1, p2 working pressures x transport direction α, β, γ opening angles