DEVICE AND METHOD BY WHICH THE PROCESS CONTROL, IN PARTICULAR TEMPERATURE CONTROL, OF A METAL PRODUCT PASSED THROUGH ALONG A SINGLE RUNNING-THROUGH LINE IS FLEXIBLY INFLUENCED BY MEANS OF AT LEAST TWO ADJACENT SEGMENTS
20220412653 · 2022-12-29
Assignee
Inventors
Cpc classification
F27B19/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D2003/0042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B9/029
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D3/0024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F27B9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B19/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A device and a method are described by which the process control, in particular temperature control, of a metal product passed through along a single running-through line is flexibly influenced by means of at least two adjacent segments. By exchanging segments, the process control can be adapted quickly and flexibly to a wide variety of metal products.
Claims
1.-23. (canceled)
24. A device by which a process control, in particular a temperature control, of a metal product, in particular a slab, thin slab or pre-rolled hot strip, which is passed through along a single running-through line (L) is flexibly influenced, comprising: at least two segments (S) arranged one behind the other in the running-through direction (L), wherein at least one segment (S) is designed as a furnace (S2, S3), an enclosed transport section (S4), an open transport section (S1) and/or a cooling section (S8), wherein a further furnace segment (S2, S3) can be positioned next to a first furnace segment (S2, S3), wherein at least one segment (S) can be exchanged by a transport device (T) comprising at least one drive unit, wherein one segment (S) can be exchanged for another segment (S) by the transport device (T) by means of a transport operation in one continuous operation, and wherein the segments (S) exchangeable with one another are arranged on a common support structure (7, 8).
25. The device according to claim 24, wherein one segment (S) can be simultaneously exchanged for another by the transport device (T) by a transport operation.
26. The device according to claim 24, wherein the segments (S) are attached to the support structure (7, 8) in a movable and/or detachable manner.
27. The device according to claim 24, wherein a segment (S) can be attached to the support structure (7, 8) from an external position (9).
28. The device according to claim 24, wherein ≥3 segments (S) can be attached to the support structure (7, 8).
29. The device according to claim 24, wherein the support structure (7, 8) has at least one coupling (K) and/or at least one support plate (P) for connecting a plurality of segments (S) to one another.
30. The device according to claim 24, wherein at least one segment (S) has rollers for conveying the metal product along the running-through line (L).
31. The device according to claim 24, wherein a furnace segment (S3) has an inductive heater.
32. The device according to claim 24, wherein a furnace segment (S2, S3) has at least one furnace door for sealing a furnace chamber from the atmosphere.
33. The device according to claim 24, wherein a segment (S) has a measuring device for recording a surface quality.
34. The device according to claim 24, wherein a segment (S) has a device for treating a surface (S6, S7) by scorching, descaling, blowing off and/or grinding.
35. The device according to claim 24, wherein at least one segment (S) has a positioning means for aligning the segment (S) in the running-through line.
36. The device according to claim 24, wherein adjacent segments (S) have complementary coupling components (K) for detachably connecting the segments (S) to one another.
37. The device according to claim 24, wherein all of the segments (S) of the device are exchangeable by the transport device (T).
38. The device according to claim 24, wherein at least one roll stand of a hot-rolling train is arranged at a beginning of the running-through line (L).
39. The device according to claim 24, wherein at least one roll stand of a hot-rolling train is arranged at an end of the running-through line (L).
40. The device according to claim 24, wherein a control or regulation system (ST) for the segments (S) along with the transport device (T) is present.
41. A method for influencing a process control, in particular a temperature control, of a metal product (A, B), in particular a slab, thin slab or a pre-rolled hot strip, which is passed through along a running-through line, by at least two segments (S) arranged one behind the other in the running-through line (L), wherein the process control, in particular temperature control, is changed along the running-through direction (L) of the metal product (A, B) by exchanging one segment (S), and wherein the exchange of a segment (S) for another segment (S) by a transport operation is carried out in one continuous operation by a transport device (T), and wherein the segments (S) arranged on a common support structure (7, 8) are moved.
42. The method according to claim 41, wherein the segments (S) are exchanged within 5 min.
43. Method according to claim 41, wherein a higher-level control or regulation system (ST) influences the process control, and on based on predetermined data automatically causes a segment (S) to be exchanged and/or acts on an individual segment (S) in order to change the temperature control.
44. The method according to claim 41, wherein the control or regulation system (ST) determines suitable materials of the metal products (A, B) for the segments (S) present in the running-through line.
45. The method according to claim 41, wherein the control or regulation system determines segments (S) to be arranged for a material of the metal product (A, B) in the running-through line.
46. The method according to claim 41, wherein the metal product (A, B) is transported along the running-through line (L) by rollers.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
DETAILED DESCRIPTION
[0035] The invention is described in detail below with reference to the above figures in the form of exemplary embodiments. In all figures, the same technical elements are designated with the same reference signs.
[0036]
[0037]
[0038] To exchange segment S4, all couplings to the associated media supply must be detached; any couplings to segments in the running-through direction D must also be detached. A segment is exchanged through the collision-free, preferably synchronous, transport of all three exchange segments S1, S4 and S3 perpendicular to the running-through line in one of the two directions of the double arrow R2. The exchangeable segments can be transported synchronously for two or three segments. Alternatively, a sequential transport can also be performed. The individual drive of the segments enables such flexibility. If the roll table S1 is to be transported into the running-through line L, it must be transported to the left as seen from the running-through direction L, If the induction furnace segment S3 is to be transported to the running-through line L, it must be transported to the right as viewed from the running-through direction L.
[0039] In the exemplary embodiment in accordance with
[0040] The exchange segments of position 2 are detachably connected to one another. In this exemplary embodiment, all three segments S1, S3 and S5 are arranged on a common platform P, which takes over the connection of the segments S1, S3 and S5. The connection could also be taken over by a rod or comparable forms. Due to the illustrated connection or common arrangement on a support plate P, all three segments can be transported by a common drive D assigned to the support plate. A drive assigned to the individual segment is not required. The drive can be designed as a motor or via a cylinder.
[0041] To exchange segment S3, all couplings K of the associated media supply must be detached; any couplings K to segments in the running-through direction L must also be detached. A segment is exchanged by transporting all three exchange segments S1, S3 and S5 on the common platform P perpendicular to the running-through line L in one of the two directions of the double arrow R2. If the roll table S1 is to be transported to the running-through line L, it must be transported to the left as seen from the running-through line L. If the roll table segment with a surface inspection device S5 is to be transported to the running-through line L, it must be transported to the right as seen from the running-through direction L. In both transport cases, the segments are transported simultaneously.
[0042]
[0043] The number of segments arranged one behind the other in the running-through line L can be increased as desired in all of the exemplary embodiments of
[0044]
[0045] A support structure 8 is arranged parallel to the running-through direction L. The support structures 7 and 8 intersect. Further segments are arranged on the support structure 8, specifically an induction furnace segment S3, another gas-fired furnace segment S2 and a roll table with scorching device S6. All segments have individual drive devices D.
[0046] If the segment S1 of position 2 is to be changed, the associated installation space on the support structure 8 must initially be unoccupied, such that the segment S1 can be transported out of the running-through line L in the direction of the double arrow R2 onto the parallel support structure 8. The segment to be transported into the running-through line L is now positioned in front of the running-through line L at position 2. For this purpose, all segments located on the parallel support structure 8 are moved in a manner collision-free, preferably synchronously, in the direction of the double arrow R3, such that the segment to be exchanged is now located in front of the empty position 2. In the subsequent step, the segment to be exchanged can be transported in the direction of the double arrow R2 into the running-through line L and is thus in the operating position. Such successive work steps form a coherent operation and can be easily combined to form a partially or fully automated sequence of operations, which require only a small amount of time.
[0047] In the exemplary embodiment in accordance with
[0048] A support structure 8 is arranged parallel to the running-through direction L. The support structures 7 and 8 intersect. Further segments are arranged on the support structure 8, specifically a roll table S1 and a further gas-fired furnace segment S2. The segments are arranged in a manner connected to one another on the common support plate P. None of the segments has an individual drive. A roll table segment with a water descaling device S7 is positioned at a parking position 9 in close proximity to the segments.
[0049] If the segment S2 is to be changed to position 1, the associated installation space on the support plate P must initially be unoccupied, such that the segment S2 can be transported out of the running-through line L in the direction of the double arrow R2 to the parallel support plate P. The segment that is to be transported into the running-through line L is now positioned in front of position 1. For this purpose, the support plate P is moved on the parallel support structure 8 in the direction of the double arrow R3, such that the segment to be exchanged is now in front of the empty position 1. Since the segments are transported together on the support plate P, a drive D is assigned only to the transport plate P and not to each segment. In the subsequent step, the segment to be exchanged can be transported in the direction of the double arrow R2 into the running-through line L and is thus in the operating position. Such successive work steps form a coherent operation and can be easily combined to form a partially or fully automated sequence of operations, which require only a small amount of time.
[0050] In this exemplary embodiment, the segments are transported in the direction of the double arrow R2 by means of a respective central drive D. The central drive D can be designed in the form of a cylinder or a motorized drive, which couples to the respective segment. This means that segments can also be moved individually without their own drive device.
[0051] The number of segments arranged one behind the other in the running-through line L can be increased as desired in both exemplary embodiments of
[0052] The transport operations for exchanging segments S described in
[0053]
[0054] On the basis of these different process controls, it becomes clear that flexible process control can be adjusted. Similarly, the importance of calculating the necessary combination of the six segments by the higher-level control system ST becomes clear.
[0055] The higher-level control system ST receives a data set on a target product to be manufactured, which comprises essential geometric data, in particular data regarding material properties, such as metallurgical and/or surface-related properties. Depending on the design variant of the control system ST, the data for the necessary process control, such as the temperature sequences for the metal product A, are already contained in the data set for the target product, and the control system ST only initiates the exchange of the segments. In another design variant, the data set supplied to the control system ST does not contain any finished information regarding the required process control. In such a case, the control system ST makes the necessary calculations for process control itself and subsequently initiates the necessary composition of the segments. Such calculation can be carried out in isolation in the control system; preferably and with regard to the overall outfitting of a system with calculation units and models, the link to further calculation systems, models, databases etc. shown in dashed lines in
[0056] The calculation by the control system ST can be done online for running production and/or offline. The offline calculation is expediently linked with production planning, such that products with which process control does not involve segment exchange can be manufactured in a closed sequence, limiting the total number of exchange operations for increased productivity.
REFERENCE SIGNS
[0057] 1 Position for different segments [0058] 2 Position for different segments [0059] 3 Position for different segments [0060] 4 Position for different segments [0061] 5 Position for different segments [0062] 6 Position for different segments [0063] 7 Support structure perpendicular to the running-through line [0064] 8 Support structure parallel to the running-through line [0065] 9 Parking position [0066] A Metal product [0067] B Metal product [0068] L Running-through line [0069] S Segment [0070] S1 Roll table [0071] S2 Furnace segment, gas-fired [0072] S3 Furnace segment, inductive [0073] S4 Roll table, enclosed [0074] S5 Roll table with a surface inspection device [0075] S6 Roll table with a scorching device [0076] S7 Roll table with a water descaling device [0077] S8 Rapid cooling device [0078] T Transport device [0079] ST Control system [0080] D Drive device [0081] P Platform [0082] R1 Arrow—transport direction [0083] R2 Double arrow—transport direction [0084] R3 Double arrow—transport direction [0085] K Coupling