Device and method for applying a liquid medium to a roll and/or to a rolled material and/or for removing the liquid medium
11014133 · 2021-05-25
Assignee
Inventors
Cpc classification
B21B45/0218
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A device and a method for applying a liquid medium to a roll, and/or to a rolled material, a slab or a roughed strip and/or for removing the liquid medium, wherein the device has at least one spray nozzle, at least one row of spray nozzles or at least one cooling bar for spraying on the medium and at least one plate element, which is designed for collecting the medium. The roll is designed for rolling rolled material, wherein the rolled material, the slab or the roughed strip is conveyed in a conveying direction. In order to allow an improved cooling effect of a roll to be cooled or an improved removal of descaling water, the plate element has on one of its surfaces at least one directing element, which is designed for diverting medium into a transverse direction, which lies horizontally and transversely in relation to the conveying direction.
Claims
1. A device for applying a liquid medium to a roll, a rolled material, a slab, or a rough strip conveyed in a conveying direction, and for removing the liquid medium, the device comprising: at least one spray nozzle for spraying the medium; at least one plate element configured for collecting the medium; and at least one guide element arranged on one surface of the plate element, the at least one guide element being configured to deflect the medium in a transverse direction that lies horizontal and transverse to the conveying direction, wherein the at least one guide element is planar and is disposed on the plate element at an angle in a plane of the plate element between 5° and 80° in relation to the transverse direction or the at least one guide element is configured so as to be curved.
2. The device according to claim 1, wherein the at least one spray nozzle is arranged to deliver the medium onto the roll in a predefined central direction, wherein a tangent that points in a circumferential direction of the roll, at a location where the central direction meets the roll, is at an angle to the central direction that is larger than 90°.
3. The device according to claim 1, wherein the at least one spray nozzle includes a plurality of spray nozzles disposed vertically on top of one another, wherein the plate element is disposed between two of or below said spray nozzles.
4. The device according to claim 3, wherein the at least one guide element is curved and includes a plurality of guide elements disposed on the plate element, wherein the angle of said guide elements decreases as a spacing from the roll, from the cooling bar, or from a descaling bar increases.
5. The device according to claim 1, wherein the at least one guide element is disposed so as to be perpendicular, inclined or twisted about a longitudinal axis of the guide element in a direction of the plate element.
6. The device according to claim 1, wherein the at least one guide element includes a plurality of guide elements disposed on the plate element, wherein said guide elements are disposed on the plate element so as to be symmetrical or asymmetrical to a vertically running central plane.
7. The device according to claim 1, wherein the at least one guide element includes a plurality of guide elements disposed on the plate element, wherein said guide elements are dissimilar in terms of vertical height.
8. The device according to claim 1, further comprising means for transverse spraying disposed on the plate element.
9. The device according to claim 1, wherein the plate element is arranged so as to be laterally spaced from a roll stand by more than 50 mm.
10. The device according to claim 1, wherein the plate element is disposed at an angle between 1° and 45° to horizontal.
11. The device according to claim 1, wherein the at least one nozzle includes at least one row of nozzles.
12. The device according to claim 1, wherein the at least one nozzle includes at least one cooling bar.
13. A method for applying a liquid medium to a roll, a rolled material, a slab, or a rough strip conveyed in a conveying direction, and for removing the liquid medium, the method comprising the steps of: spraying the medium onto the roll with at least one spray nozzle; and collecting the medium with at least one plate element, wherein at least one guide element is arranged on a surface of the plate element, the at least one guide element being configured to deflect the medium in a transverse direction that lies horizontal and transverse to the conveying direction, wherein the flow movement of the applied liquid medium diverts the liquid medium to the transverse direction by way of the at least one guide element, wherein the at least one guide element is planar and is disposed on the plate element at an angle in the plane of the plate element between 5° and 80° relative to the transverse direction, or the at least one guide element is configured to be curved.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) Exemplary embodiments of the invention are illustrated in the drawing in which:
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DETAILED DESCRIPTION OF THE INVENTION
(11) The side view, or plan view, respectively, of a device 1 for applying water W to the work roll 2 of a roll stand as well as for removing the water W is schematically drawn in
(12) The device 1 comprises a plurality of spray nozzles 4 which are disposed in a water cooling bar 11. Water W is sprayed onto the surface of the work roll 2 by way of the spray nozzles 4. A plate element 5 (wiper plate) which in relation to the horizontal H is inclined at an angle γ is provided for discharging the sprayed water and for the purpose of avoiding that water flows in an unimpeded manner onto the strip. Guide elements 7 and 8 which enable that the water W is discharged from the plate element 5 toward the side in a transverse direction Q which is horizontal and perpendicular in relation to the conveying direction F are disposed (in particular welded) on the upper surface 6 of the plate element 5.
(13) As can be derived from
(14) As can be seen from
(15) Means 9 for transverse spraying are furthermore disposed on the plate element 5.
(16) It can also be seen from
(17) The guide element 7, 8 can be composed of at least one long metal sheet which at the narrow side thereof is fastened to the plate element 5.
(18) In order for a rapid discharge of the water W or another cooling medium to be enabled in the case of the upper work roll cooling, it is thus provided that the speed of the cooling water W flowing onto the work roll 2 is used per se, and the water flush to be deflected in a targeted manner to the rear and to the side. The illustrations as per
(19) To this extent,
(20) A targeted water flow initially along the roll 2 and by way of minor deflection losses toward the rear is established on account of this advantageous alignment. The water flowing toward the rear (in the rolling direction) has now to be deflected toward the side in an ideally continuous manner. As has been described, this takes place by way of deflection plates (guide elements 7, 8) on the plate element 5 (wiper plate), said deflection plates being disposed at the angle of attack β of more than 5° (cf.
(21) In the case of conventional roll cooling, the water flows only toward the rear against a rear wall, is backed-up there, wherein a lateral water drainage takes place on account of the backed-up water level. In the case of some solutions (cf. JP 06339712 A mentioned at the outset, for example) the water flush toward the rear is decelerated by a drainage. In the case of the solution proposed according to the invention, the water W runs along the guide elements 7, 8 (deflection plates) set at an angle, and is largely deflected toward the side, thus in the transverse direction Q.
(22) Ideally, no interfering edges (excluding unavoidable fastenings, bearings, screw-fittings, etc.) which disturb, impede, or decelerate the water flow away from the roll, or from the impingement location, respectively, toward the rear or toward the side are disposed above the plate element.
(23) Four deflection plates 7, 8 are in each case disposed in a staggered manner behind one another in the exemplary embodiment according to
(24) The spacing d between the plate element 5 (wiper plate) and the laterally delimiting environment, such as the roll stand 14, installation pieces, bending blocks, or entry or exit guide frames, should be dimensioned so as to be as large as possible (preferably larger than 50 mm). Impediments by way of delimiting lateral faces can be avoided by providing drainage bores, preferably in the region of the water flows. A dripping edge, or a breakoff edge, respectively, (in a manner similar to a window ledge) is advantageously provided on the lateral faces below the wiper (that is to say of the plate element 5), or a channel in the lower side at the edge of the plate element 5 is provided such that water does not run inwards onto the edge of a wide strip or onto the plate. Optionally, a transverse spray 13 which pushes the roll cooling water toward the outside, as is indicated in
(25) The plate element 5, or regions thereof, on the upper side can also be embodied so to have an inclination toward the side, so as to additionally improve drainage of the water.
(26) The guide elements 7, 8 (deflection plates) can be of dissimilar heights (cf. height h which is preferably greater than 20 mm). The guide elements 7, 8 (deflection plates) herein can be disposed in a staggered manner behind one another, as is shown in
(27) An advantageously curved or bent, respectively, configuration of the guide elements 7 (water deflection plates) is also possible, as can be seen from the illustration according to
(28) A variation of the inclination of the guide element 7 across the extent of the latter, precisely in the manner of a turbine blade, is also possible and considered for optimizing the flow conditions. The guide elements 7, 8 (deflection plates) can thus be embodied so as to be aligned perpendicularly in the direction of the plate element 5 (wiper plate) or so as to be somewhat inclined or twisted about the longitudinal axis.
(29) While a symmetrical deflection of the water jet in the transverse direction Q toward both sides of the plate element 5 is typically advantageous, another design embodiment can also be provided. In certain cases it can be advantageous for the guide elements 7, 8 to be aligned only in one direction.
(30) In the case of one further embodiment of the invention, guide elements 7, 8 (deflection plates) are not only provided on the plate element 5 which functions, for example, as a wiper or as a water/strip separation plate, as has been the case in the exemplary embodiments described so far. Guide elements 7, 8 without plate elements or on plate elements 5, which are assembled between and/or above and/or under the cooling bars 11 so as to deflect the returning water flow toward the side already at an early stage, can also be provided. The exemplary embodiment as per
(31) In order for the various water flows to be separated, plate elements 5 which are disposed so as to be horizontal (with or without an inclination toward the rear) can also be disposed above the wiper or the water/strip separation plate (that is to say the lowermost plate element 5 in
(32) In order for the flow conditions toward the sides to be facilitated, the nozzle feed pipes or the nozzles 4, 4′, 4′, 4′″ can furthermore be aligned so as to be somewhat oblique in relation to the central plane MF The water in this instance at a small angle sprays out toward the side as can be seen in the plan view in
(33) The guide elements 7, 8 can be embodied as deflection plates but can however also be designed in another manner (for example as plates which may be composed of different materials), as long as said guide elements 7, 8 fulfill the desired task, specifically effect the deflection of the water jet, thus fulfill the cooling-medium deflection principle.
(34) In the case of the concept proposed, a specific water flow rate of more than 40 m.sup.3 per hour and per meter of width is preferably used as the typical water flow rate for the upper roll cooling.
(35) The angle of attack γ in relation to the horizontal for the upper plate element 5 (wiper plate) of the work roller cooling should be smaller than 45° so that the water does not have to excessively run upward.
(36) Not only can the drainage conditions of the work-roll cooling water be improved by way of the proposed concept, but an improved discharge of descaling water (including scale particles) toward the side, thus in the transverse direction Q, in the case of a descaling or another strip or plate cooling installation for the upper side is also possible, as is shown by the exemplary embodiment as per
(37) It can be seen from
(38) In the case of the descaling, the descaling water W for the descaling is initially sprayed onto the slab 3 by means of the descaling bar 15, the water W running, counter to the movement direction (conveying direction F) of the slab 3, up the plate element 5. The guide elements 7, as can be seen in the side view in
(39) The proposed device is advantageously used in particular in the case of wide rolling mills such as heavy plate mill stands, Steckel stands, or other wide hot strip mills.
(40) It is to be explicitly stated that the design embodiment features described above can also be used in arbitrary combinations. This applies in particular to the design and arrangement of the guide elements 7, 8.
LIST OF REFERENCE SIGNS
(41) 1 Device for applying and removing water 2 Roll (work roll) 3 Rolled material/slab, plate, rough strip 4 Spray nozzle 4′ Spray nozzle 4″ Spray nozzle 4′″ Spray nozzle 5 Plate element 6 Surface of the plate element 7 Guide element 8 Guide element 9 Means for transverse spraying 10 Support roll 11 Cooling bar (water cooling bar) 12 Rear wall 13 Transverse spraying 14 Roll stand 15 Resealing bar 16 Water catchment channel 17 Gradient in the channel W Liquid medium (water) F Conveying direction Q Transverse direction H Horizontal V Vertical M Central direction ME Vertically running central direction T Tangent h Height d Spacing α Angle between the central direction and the tangent β Angle in relation to the transverse direction γ Angle of the plate element in relation to the horizontal