DEVICE FOR COOLING METAL STRIPS OR SHEETS
20200122209 · 2020-04-23
Assignee
Inventors
- Christoph Hassel (Duisburg, DE)
- Thomas Heimann (Iserlohn, DE)
- Heinz-Jürgen Oudehinken (Essen, DE)
- Henning Berg (Kreuztal, DE)
- Johannes Alken (Siegen, DE)
Cpc classification
B21B45/0218
PERFORMING OPERATIONS; TRANSPORTING
B21B37/76
PERFORMING OPERATIONS; TRANSPORTING
B21B45/0233
PERFORMING OPERATIONS; TRANSPORTING
International classification
B21B45/02
PERFORMING OPERATIONS; TRANSPORTING
C21D11/00
CHEMISTRY; METALLURGY
B21B37/76
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A device and a method for cooling metal strips or sheets conveyed on a conveyor line, in particular hot-rolled strips in the outlet of a rolling train. For these purposes, the device includes at least one cooling beam extending across the width of the conveyor line, and the cooling beam features a connection point to which a supply tube for cooling liquid can be connected, and a number of discharge openings arranged along a longitudinal axis of the cooling beam, such that cooling liquid can be discharged through the discharge openings in the direction of the metal strip or sheet that is to be cooled. Associated with each of the individual discharge openings is a respectively adjusted flow area, such that the flow areas of the respective discharge openings decrease in a direction leading away from the connecting point along the longitudinal axis of the cooling beam.
Claims
1-15. (canceled)
16. A device (10) for cooling metal strips or sheets conveyed on a conveyor line (12), in particular hot-rolled strips in the outlet of a rolling train, comprising: cooling beams (16) arranged opposite from each other on a respective upper and lower side of the metal strip or sheet (14) that is to be cooled, and extending across the width (B) of the conveyor line (12), wherein the cooling beams (16) respectively have, on a front face, a connection point (18) to which a supply tube (20) for cooling liquid (F) can be connected, and a plurality of discharge openings (22) provided along a longitudinal axis of the cooling beam (16), wherein cooling liquid (F) can be discharged through the discharge openings (22) in the direction of the metal strip or sheet (14) that is to be cooled, wherein the individual discharge openings (22) are respectively formed as tubes arranged on an enclosure of the cooling beam (16); the specific amount of cooling liquid (F) discharged through the discharge openings (22) of the cooling beam (16) arranged on the upper side of the metal strip or sheet (14) that is to be cooled onto the upper side of the metal strip or sheet (14) is between 100 and 200 m.sup.3/(m.sup.2*h); the specific amount of cooling liquid (F) discharged through the discharge openings (22) of the cooling beam (16) arranged on the lower side of the metal strip or sheet (14) that is to be cooled onto the lower side of the metal strip or the metal sheet (14) is between 100 and 200 m.sup.3/(m.sup.2*h); and the individual discharge openings (22) of a respective cooling beam (16) arranged at the upper side and at the lower side of the metal strip or sheet (14) that is to be cooled have a respective adjusted flow area associated with them, and with it a respective aperture (24), arranged in the inlet region of the associated discharge openings (22), wherein the flow area of a discharge opening (22) and the associated aperture (24) adjacent to a front face of the cooling beam (16) positioned opposite the connection point (18) is smaller than the flow area of a discharge opening (22) and the associated aperture (24) immediately adjacent to the connection point (18), wherein the flow areas of the apertures (24) are selected such that a distribution of cooling liquid (F) across the width (B) of the conveyor line (12) is parabolic.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0016] In the following, preferred embodiments of the invention are described in detail based on a schematically simplified drawing.
[0017] The figures show as follows:
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION
[0022] In the following, preferred embodiments of a device 10 according to the invention for cooling a metal strip and respective methods are explained with reference to
[0023] The device 10 serves for cooling a metal strip 14 conveyed on a conveyor line 12. The conveyor line 12 is shown in principal in a simplified manner in a side view in
[0024] It bears specifically pointing out here that the drawing features a Cartesian coordinate system. The x-axis represents the transportation direction of the metal strip 14 along the conveyor line 12. The y-axis represents a width of the conveyor line 12, or respectively, of the metal strip 14. The z-axis represents a vertical dimension and marks a construction height of the device 10.
[0025]
[0026] The device 10 comprises cooling beams 16 arranged on an upper side and on a lower side of the metal strip 14. Each of these cooling beams 16 features on a front face a connection point 18, to which a supply tube 20 for cooling liquid can be connected. The cooling beams 16 are supplied by the supply tubes 20 with cooling liquid, which is marked in
[0027] Along a longitudinal axis of the cooling beam 16, a plurality of discharge openings 22 are provided in the form of little tubes. These tubes 22 serve the purpose of discharging cooling liquid in the direction of the metal strip 14. The sprayed cooling liquid is symbolized in
[0028] Upstream from the respective discharge openings of the cooling beams 16 in the form of the individual tubes 22, apertures 24 are arranged. In
[0029] With respect to the apertures 24, it bears pointing out that they each feature different flow areas, which are formed in a successively decreasing manner along a longitudinal axis of the cooling beam 16, specifically in a direction leading away from the connection point 18. A comparison of the apertures 24 that are exemplarily shown in the three circles in
[0030] With respect to the cooling beam 16, which in
[0031] If relatively large amounts of cooling liquid are discharged from the tubes 22 of the cooling beams 16 onto the metal strip 14for instance, a specific amount between 40 and 150 m.sup.3/(m.sup.2 *h) onto an upper side of the metal strip 14, and a specific amount between 40 and 200 m.sup.3/(m.sup.2*h) onto a lower side of the metal strip 14)the characteristic decrease of the flow area of the apertures 24 along the longitudinal axis of the cooling beam 16 in a direction leading away from the connection point 18 allows for a desired linearly uniform distribution of the cooling liquid F across the width B of the conveyor line, or respectively, of the metal strip 14. This is illustrated as the spraying pattern of
[0032]
[0033] In the embodiment of
[0034] For an implementation of the present invention, it may be provided for the device according to