Device for cooling a steel strip
12465966 ยท 2025-11-11
Assignee
Inventors
Cpc classification
International classification
Abstract
A cooling device for a cooling operation of a flat metallic product is provided, the cooling device being located in an essentially vertical path including: a tank filled with a coolant bath defining a coolant surface, the tank including at least two openings, one on the upper surface and one on the bottom surface wherein the flat metallic product can pass through, the opening on the bottom surface being equipped with a sealing mean, two series of projecting devices, oriented essentially horizontally, on two opposite tank sides, the projecting devices being immersed in the coolant bath, each series of projecting devices having an uppermost projecting device being defined as the closest projecting device to the coolant surface, at least the uppermost projecting device on both sides being downwardly inclined of an angle of 20 to 40 compared to the horizontal.
Claims
1. A cooling device for a cooling operation of a flat metallic product, the cooling device being located in an ascending or descending vertical path, the cooling device comprising: a tank filled with a coolant bath defining a coolant surface, the tank including a top opening on an upper surface and a bottom opening on a bottom surface, the flat metallic product capable of passing through the top and the bottom openings so as to describe a path, the bottom opening having a seal; two series of coolant projectors, each of the coolant projectors of the two series of coolant projectors including an aperture immersed in the coolant bath, the two series of coolant projectors facing each other on each side of the path; any two vertically successive coolant projectors of one of the two series being separated by a gap; each of the two series of coolant projectors having an uppermost coolant projector defined as a closest of the coolant projectors to the coolant surface, at least the uppermost coolant projector on both sides of the path being downwardly inclined at an angle of 20 to 40 compared to a horizontal.
2. The cooling device as recited in claim 1 wherein each of the two series have a same number of the coolant projectors downwardly inclined at an angle of 20 to 40 compared to the horizontal.
3. The cooling device as recited in claim 1 wherein two uppermost coolant projectors of each of the two series are downwardly inclined at an angle of 20 to 40 compared to the horizontal.
4. The cooling device as recited in claim 1 wherein three uppermost coolant projectors of each of the two series are downwardly inclined at an angle of 20 to 40 compared to the horizontal.
5. The cooling device as recited in claim 1 wherein four uppermost coolant projectors of each of the two series are downwardly inclined at an angle of 20 to 40 compared to the horizontal.
6. The cooling device as recited in claim 1 wherein all coolant projectors located up to a depth of 50 cm from the coolant surface are downwardly inclined at an angle of 20 to 40 compared to the horizontal.
7. The cooling device as recited in claim 1 wherein the two series of coolant projectors include 10 to 40 coolant projectors.
8. The cooling device as recited in claim 1 wherein the coolant projectors are tubes.
9. The cooling device as recited in claim 1 wherein a location of the flat metallic product passing through the cooling device describes a product path, the coolant projector apertures being at a distance between 30 and 200 mm from the product path.
10. A cooling method comprising: moving the flat metallic product vertically in the cooling device as recited in claim 1, and ejecting a cooling flux between 250 m.sup.3 and 2 500 m.sup.3 per hour per surface of the flat metallic product via the two series of the coolant projectors.
11. The cooling method as recited in claim 10 wherein the two series of the coolant projectors eject a coolant having speed between 0.25 m.Math.s.sup.1 and 20 m.Math.s.sup.1.
12. The cooling method as recited in claim 10 wherein the two series of the coolant projectors eject a coolant at a temperature between 1 and 100 C.
13. The cooling method as recited in claim 10 wherein the cooling device cools the flat metallic product at a rate of at least 200 C..Math.s.sup.1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other characteristics and advantages of the invention will become apparent from the following detailed description of the invention.
(2) To illustrate the invention, various embodiment of non-limiting example will be described, particularly with reference to the following figures:
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DETAILED DESCRIPTION
(13)
(14) As illustrated in
(15) In the following specification, the flat metallic product S will be referred as a strip. However, said flat metallic product is not limited to a strip.
(16) As illustrated in
(17) The cooling device is positioned in an essentially vertical, ascending or descending, path of the flat metallic product. It means that when the flat metallic product passes through the cooling device, its moving direction is essentially vertical as represented by the arrow D.
(18) The cooling device comprises a tank 15 containing a coolant bath 17 which defines a coolant surface 11. The primary role of the tank is to contain a coolant creating a coolant bath. The coolant is preferably a liquid and can be water. Its secondary role is to isolate the coolant bath from the exterior which permits to control the coolant parameters, such as the temperature, and the projected coolant fluxed.
(19) Moreover, said tank comprises at least two openings, one on its upper side 16 and one on its bottom side 16, through which said flat metallic product S can go, describing a path. The role of those openings is to let the flat metallic product pass through the cooling device 10. They should also prevent the entrance of any external liquid into the coolant bath 17. Said openings wherein the strip pass through should be essentially vertically aligned so the strip can have an essentially vertical path. The path described by said flat metallic product is essentially vertical.
(20) Furthermore, the tank preferably comprises at least two lateral openings (21 and 21) allowing the coolant discharge.
(21) The opening on the bottom side is equipped with a sealing means 9 to improve the coolant bath isolation from the exterior. As illustrated in
(22) As illustrated in
(23) The coolant is projected through apertures 13E in said projecting devices 13. Said apertures 13 are among other possibilities: a slit, a hole or a series of holes. Said projecting devices apertures 13E are completely immersed in the coolant bath. Such an immersion permits to suppress or at least lower the gas bubble or vapor formation (and presence) in the coolant bath close to the strip compared to non-immersed apertures. Preferentially said projecting devices are completely immersed in said coolant.
(24) A gap 19 separates two vertically successive projecting devices (e.g. 13A and 13B) of a series (18 and 18) of projecting devices. As illustrated in
(25) The closest projecting device, of each series, to the coolant bath surface 11 comprised in the tank 15 is referred as the uppermost projecting device (20 and 20). As illustrated in
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(27) The use of such a claimed cooling device 10 is not limit to only one positioned at the strip exit from the cooling device as illustrated in
(28) wherein the fast cooling takes place in the claimed cooling device and the slow cooling is in a tank containing boiling water.
(29) In the prior art, it seems that no solution permits to avoid the formation of turmoi leading to a heterogeneous cooling along the strip width. On the contrary, with the equipment according to the present invention, the cooling homogeneity is improved along the strip width.
(30) Advantageously, both series (18 and 18) have the same number of projecting devices (13) downwardly inclined of an angle of 20 to 40 compared to the horizontal. In order to obtain a homogeneous in the strip width, the inclined projecting device of each series should be facing each other.
(31) Advantageously, the two uppermost projecting devices of both series (18 and 18) are downwardly inclined of an angle of 20 to 40 compared to the horizontal. The two uppermost projecting devices (20 and 20A or 20 and 20A) of a series correspond to the two immersed projecting devices being the closer to the surface, as illustrated in
(32) Advantageously, the three uppermost projecting devices on both series (18 and 18) are downwardly inclined of an angle of 20 to 40 compared to the horizontal.
(33) Advantageously, the four uppermost projecting devices on both series (18 and 18) are downwardly inclined of an angle of 20 to 40 compared to the horizontal.
(34) Advantageously, all projecting devices located up to a depth of 50 cm from the coolant surface are downwardly inclined of an angle of 20 to 40 compared to the horizontal. Such an arrangement permits to increase even further the cooling homogeneity in the strip width because the formation of gas bubble is reduced even more. Preferably, all projecting devices located up to a depth of 1 meter or 2 meters or 3 meters from the coolant surface are downwardly inclined of an angle of 20 to 40 compared to the horizontal.
(35) Advantageously, said series of projecting devices comprises 10 to 40 devices. Such a quantity of devices permits to ensure a sufficient cooling capacity of the cooling device. More advantageously, each projecting device can spray at least 250 m.sup.3.Math.h.sup.1 of coolant per m.sup.2 of strip.
(36) Advantageously, said projecting devices are tubes 14. Preferably, as illustrated in
(37) Advantageously, said projecting device apertures 13E (See
(38) Advantageously, the cooling device does not comprise rolls, such as restraining rolls, between said two openings.
(39) The invention also relates to a cooling method wherein a flat metallic product moving essentially vertically, ascendingly or descendingly, is cooled in a device as described previously, said series of projecting devices eject a coolant flux between 250 m.sup.3 and 2,500 m.sup.3 per hour per surface of flat product. A coolant flux in that range is sufficient to obtain a cooling speed desired to achieve the desired product properties.
(40) Preferably, said series of projecting devices eject a coolant having a speed between 0.25 m.Math.s.sup.1 and 20 m.Math.s.sup.1. Such a speed permits to the ejected coolant to reach the strip surface and being reflected horizontally in the gap between the projecting devices which improves the coolant renewal and thus the cooling homogeneity.
(41) Preferably, said series of projecting devices eject a coolant being at a temperature between 10 and 100 C.
(42) Preferably, said cooling device permits to cool said flat metallic product of at least 200 C..Math.s.sup.1. More preferably, said cooling device permits to cool said flat metallic product of at least 500 C..Math.s.sup.1. Even more preferably, said cooling device permits to cool said flat metallic product of at least 1000 C..Math.s.sup.1.
(43) The invention has been described above as to the embodiment which is supposed to be practical as well as preferable at present. However, it should be understood that the invention is not limited to the embodiment disclosed in the specification and can be appropriately modified within the range that does not depart from the gist or spirit of the invention, which can be read from the appended claims and the overall specification.