Rolling device control device, rolling equipment, and rolling device control method

The control device for reverse rolling mills addresses yield and time efficiency by precisely stopping the rolling rolls based on strip separation detection, enabling seamless transitions and reduced overall rolling time.

JP7727001B2Active Publication Date: 2025-08-20PRIMETALS TECHNOLOGIES JAPAN LTD
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Patent Information

Application Number
JP2023549240
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-09-24
Publication Date
2025-08-20
Estimated Expiration
2041-09-24

AI Technical Summary

Technical Problem

Existing reverse rolling mills face challenges in improving yield while minimizing the time required for rolling, particularly due to difficulties in accurately stopping the tail end of the strip at a suitable position for the next pass and smoothly transitioning through deflector rolls.

Method used

A control device and method that includes a rotation control unit to stop the rolling rolls based on the detection of the strip's separation from the unwinder, using speed acquisition and separation detection units to ensure precise positioning of the strip's tail end, allowing seamless transition for the next pass.

Benefits of technology

Improves yield by ensuring smooth continuation of rolling after the tail end leaves the unwinder, while reducing the overall time required for the process.

✦ Generated by Eureka AI based on patent content.

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Abstract

A control device for controlling a rolling device that includes a pair of rolling rolls for rolling a metal strip, an unwinding machine for unwinding the metal strip toward the pair of rolling rolls, and a winding machine for winding the metal strip that has been rolled by the pair of rolling rolls, said control device comprising a rotation control unit for controlling the rotation of the rolling rolls, a speed acquisition unit configured so as to acquire the speed of the metal strip between the unwinding machine and the rolling rolls, and a separation detection unit configured so as to detect separation of the tail end of the metal strip from the unwinding machine, wherein the rotation control unit is configured so as to stop the rotation of the pair of rolling rolls on the basis of the separation timing, which is the timing at which separation of the tail end from the unwinding machine is detected by the separation detection unit, and the speed of the metal strip as acquired by the speed acquisition unit.
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Description

[Technical Field]

[0001] The present disclosure relates to a control device for a rolling mill, a rolling facility, and a control method for a rolling mill. [Background technology]

[0002] 2. Description of the Related Art Reverse rolling mills are known in which a metal plate passed between a pair of rolling rolls is rolled by reciprocating the rolls.

[0003] Patent Document 1 discloses a reverse rolling mill equipped with a rolling stand including a rolling roll and two reels (an unwinder and a winder) arranged before and after the rolling stand. In this rolling mill, in a process (rolling pass) in which a rolled material unwound from a first reel is rolled in the rolling stand and wound up on a second reel, the rolling mill is stopped when the tail end of the rolled material that has left the first reel reaches the delivery side of the rolling stand, and rolling of the next pass (a process in which the rolled material unwound from the second reel is rolled in the rolling stand and wound up on the first reel) is started. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2000-202503 Summary of the Invention [Problem to be solved by the invention]

[0005] As in the reverse rolling mill described in Patent Document 1, by continuing rolling even after the tail end of the strip (rolled material) has left the unwinder, it is possible to improve the yield compared to rolling while the tail end of the strip is kept gripped by the unwinder. On the other hand, it takes time to accurately stop the tail end of the strip unwound from the unwinder at a position suitable for the start of rolling in the next pass. Furthermore, after the tail end of the strip has stopped, it is difficult to smoothly pass the leading end of the strip (the tail end of the previous pass) through deflector rolls and the like provided between the unwinder and the rolling rolls at the start of rolling in the next pass, which can result in a loss of time.

[0006] In view of the above circumstances, at least one embodiment of the present invention aims to provide a control device for a rolling device, rolling equipment, and a control method for a rolling device that can improve yield while suppressing an increase in the time required for rolling. [Means for solving the problem]

[0007] A control device for a rolling mill according to at least one embodiment of the present invention includes: A control device for controlling a rolling mill including a pair of rolling rolls for rolling a metal strip, an unwinder for unwinding the strip toward the pair of rolling rolls, and a winder for winding up the strip rolled by the pair of rolling rolls, a rotation control unit for controlling the rotation of the rolling roll; a speed acquisition unit configured to acquire a speed of the strip between the unwinder and the rolling roll; a separation detection unit configured to detect when the tail end of the strip is separated from the unwinder; Equipped with The rotation control unit is configured to stop the rotation of the pair of rolling rolls based on the separation timing, which is the timing when the separation of the tail end from the unwinder is detected by the separation detection unit, and the speed of the strip acquired by the speed acquisition unit.

[0008] The rolling equipment according to at least one embodiment of the present invention includes: a rolling device including a pair of rolling rolls for rolling a metal strip, an unwinder for unwinding the strip toward the pair of rolling rolls, and a winder for winding up the strip rolled by the pair of rolling rolls; the control device described above for controlling the rolling mill; Equipped with.

[0009] A method for controlling a rolling apparatus according to at least one embodiment of the present invention includes: A control method for controlling a rolling apparatus including a pair of rolling rolls for rolling a metal strip, an unwinder for unwinding the strip toward the pair of rolling rolls, and a winder for winding up the strip rolled by the pair of rolling rolls, comprising: a rotation control step of controlling the rotation of the rolling rolls; a speed acquisition step of acquiring a speed of the strip between the unwinder and the rolling roll; a separation detection step of detecting that the tail end of the strip has separated from the unwinder; Equipped with In the rotation control step, the rotation of the pair of rolling rolls is stopped based on the separation timing, which is the timing at which the separation of the tail end from the unwinder is detected in the separation detection step, and the speed of the strip plate acquired in the speed acquisition step. [Effects of the Invention]

[0010] According to at least one embodiment of the present invention, there are provided a control device for a rolling device, rolling equipment, and a control method for a rolling device that are capable of improving yield while suppressing an increase in the time required for rolling. [Brief explanation of the drawings]

[0011] [Figure 1] 1 is a schematic configuration diagram of a rolling facility to which a control device according to an embodiment is applied; [Figure 2] FIG. 1 is a partial cross-sectional view of an unwinder (winder) according to one embodiment. [Figure 3]FIG. 2 is a schematic configuration diagram of a control device according to an embodiment. [Figure 4] 3 is a flowchart of a control method for a rolling mill according to one embodiment. [Figure 5A] FIG. 2 is a diagram for explaining a control flow of a rolling mill according to an embodiment. [Figure 5B] FIG. 2 is a diagram for explaining a control flow of a rolling mill according to an embodiment. [Figure 5C] FIG. 2 is a diagram for explaining a control flow of a rolling mill according to an embodiment. [Figure 5D] FIG. 2 is a diagram for explaining a control flow of a rolling mill according to an embodiment. [Figure 6] 10 is a graph showing an example of time-dependent changes in the detected values of the sensors, the speed of the strip, and the open / closed state of the grippers. [Figure 7] 10 is a graph showing an example of time-dependent changes in the detected values of the sensors, the speed of the strip, and the open / closed state of the grippers. [Figure 8] FIG. 10 is a diagram for explaining the number of turns of the band plate in the unwinder. [Figure 9] FIG. 10 is a diagram for explaining the number of turns of the band plate in the unwinder. [Figure 10] FIG. 2 is a schematic diagram of a pressing unit according to an embodiment. [Figure 11] FIG. 2 is a schematic diagram of a pressing unit according to an embodiment. [Figure 12] FIG. 2 is a schematic diagram of a pressing unit according to an embodiment. [Figure 13A] 10A and 10B are diagrams illustrating an example of a procedure for correcting the shape of the tail end portion of the strip. [Figure 13B] 10A and 10B are diagrams illustrating an example of a procedure for correcting the shape of the tail end portion of the strip. [Figure 13C] 10A and 10B are diagrams illustrating an example of a procedure for correcting the shape of the tail end portion of the strip. [Figure 13D] 10A and 10B are diagrams illustrating an example of a procedure for correcting the shape of the tail end portion of the strip. DETAILED DESCRIPTION OF THE INVENTION

[0012] Hereinafter, several embodiments of the present invention will be described with reference to the accompanying drawings. However, the dimensions, materials, shapes, relative arrangements, etc. of components described as embodiments or shown in the drawings are merely illustrative examples and are not intended to limit the scope of the present invention.

[0013] (Rolling equipment configuration) Fig. 1 is a schematic configuration diagram of a rolling facility to which a control device according to one embodiment is applied. As shown in Fig. 1, the rolling facility 100 includes a rolling mill 1 for rolling a metal strip S (e.g., a strip-shaped steel plate) and a control device 50 for controlling the rolling mill 1.

[0014] The rolling apparatus 1 includes a rolling mill 10 for rolling a strip S, an unwinder 2 provided on the entry side of the rolling mill 10 (i.e., upstream of the rolling mill 10 in the traveling direction of the strip S being rolled), and a winder 3 provided on the exit side of the rolling mill 10 (i.e., downstream of the rolling mill 10 in the traveling direction of the strip S being rolled). The rolling apparatus 1 may include, for example, one rolling mill 10 as shown in FIG. 1, or may include two or more rolling mills 10.

[0015] The rolling mill 10 includes a pair of rolls (work rolls) 15, 16 that are provided on both sides of the strip S, sandwiching the strip S. As shown in FIG. 1 , the rolling mill 10 may also include a pair of intermediate rolls 17, 18 and a pair of backup rolls 19, 20 that are provided on opposite sides of the strip S, sandwiching the pair of rolls 15, 16. The intermediate rolls 17, 18 and the backup rolls 19, 20 are configured to support the rolls 15, 16. The rolling mill 10 also includes a reduction device (hydraulic cylinder or the like; not shown) that applies a load to the pair of rolls 15, 16 to reduce the strip S between the pair of rolls 15, 16.

[0016] A motor 11 is connected to the rolling rolls 15, 16 via a spindle (not shown) or the like, and the rolling rolls 15, 16 are rotated by the motor. When rolling the strip S, the rolling rolls 15, 16 are rotated by the motor 11 while the strip S is being pressed down by a pressing device, thereby generating a frictional force between the rolling rolls 15, 16 and the strip S, and this frictional force causes the strip S to be sent to the exit side of the rolling rolls 15, 16.

[0017] The unwinder 2 is configured to unwind a coil of the strip S toward the rolling mill 10. The unwinder 2 includes a mandrel 4, and the mandrel 4 is rotated and driven by a motor (not shown) to unwind the strip S toward the rolling mill 10. The mandrel 4 of the unwinder 2 is driven by a motor (not shown) to apply entry tension to the strip S when rolling the strip S.

[0018] The winding machine 3 is configured to wind up the strip S from the rolling mill 10. The winding machine 3 includes a mandrel 5, and the mandrel 5 is rotated by a motor (not shown) to wind up the strip S. When the strip S is rolled while being wound around the mandrel 5 of the winding machine 3, an outlet tension is applied to the strip S by the mandrel 5 of the winding machine 3.

[0019] As shown in Fig. 1, a guide unit 12 may be provided between the mandrel 4 of the unwinder 2 and the rolling mill 10 to guide the strip S introduced from the mandrel 4 of the unwinder 2 into the rolling mill 10. A guide unit 13 may be provided between the rolling mill 10 and the mandrel 5 of the winder 3 to guide the strip S fed from the rolling mill 10 to the mandrel 5 of the winder 3. The guide units 12, 13 may include deflector rolls 6, 7 and / or guide tables 8, 9.

[0020] In some embodiments, the rolling mill 1 is a reverse-type rolling mill (reverse mill) that rolls the strip S passing between a pair of roll rolls 15, 16 by reciprocating the roll rolls. In the reverse-type rolling mill 1, rolling is stopped just before the tail end St of the strip S unwound from the mandrel 4 of the unwinder 2, and the odd-numbered rolling (first pass, etc.) is completed with the strip S pressed down by the roll rolls 15, 16. Next, the strip S is unwound from the mandrel 5 of the winder 3 toward the rolling mill 10, and while the strip S is being wound around the mandrel 4 of the unwinder 2, the strip S is advanced in the opposite direction to the previous rolling, to perform the even-numbered rolling (second pass, etc.). In other words, the roles of the unwinder 2 and the winder 3 are interchanged depending on the direction of travel of the strip S.

[0021] 2 is a partial cross-sectional view of the unwinder 2 (winder 3) according to one embodiment, and is a diagram for explaining the operation of the unwinder 2 (winder 3). As shown in FIGS. 1 and 2, the unwinder 2 includes a gripper 22 for gripping a tail end portion Sa including the tail end St of the strip S. Furthermore, the winder 3 includes a gripper 23 for gripping a leading end portion including the leading end of the strip S.

[0022] 2, the grippers 22, 23 are provided radially inward of the mandrels 4, 5 relative to the outer circumferential surfaces of the mandrels 4, 5 and are movable along the radial direction. The mandrels 4, 5 are provided with slots 24 that open to the surfaces of the mandrels 4, 5 and are capable of receiving the trailing or leading end of the strip S.

[0023] The grippers 22, 23 are moved radially outward by an actuator (not shown) or the like, and a force from the grippers 22, 23 toward the mandrels 4, 5 is applied to the strip S, thereby gripping the tail end or the front end of the strip. The grippers 22, 23 are moved radially inward by an actuator or the like, and the force acting on the strip S from the grippers 22, 23 is released, thereby releasing the grip of the tail end or the front end of the strip S by the grippers 22, 23.

[0024] When rolling the strip S with the rolling mill 1, basically, the tail end and front end of the strip S are gripped by the grippers 22, 23, and tension is applied to the strip S while the rolling rolls 15, 16 and the mandrels 4, 5 of the unwinder 2 and winder 3 are rotated.

[0025] 1, the rolling equipment 100 may include a pressing unit 30 for correcting the shape of the tail end portion Sa of the strip S. A more specific configuration of the pressing unit 30 will be described later.

[0026] 1, the rolling equipment 100 may include a speed sensor 40 for detecting the speed of the strip S between the unwinder 2 and the rolling rolls 15, 16. The speed sensor 40 and the control device 50 are electrically connected, and a signal indicating the speed of the strip S detected by the speed sensor 40 is sent to the control device 50.

[0027] 1, the rolling equipment 100 may include a sensor 42 for detecting the separation of the tail end St of the strip S from the unwinder 2. The sensor 42 may be a sensor capable of detecting the presence or absence of the strip S at a position above, below, or to the side of the unwinder 2. The sensor 42 may be a range finder (such as a laser range finder) capable of detecting the distance from the sensor 42 to the strip S. The sensor 42 and the control device 50 are electrically connected, and a signal indicating the detection result by the sensor 42 is sent to the control device 50.

[0028] 1 is a sensor capable of detecting the presence or absence of the strip S at a position below the unwinder 2. The sensor 42 shown in FIG. 1 is a distance sensor that is provided at a position below the unwinder 2 and is capable of detecting the distance between the sensor 42 and the strip S in the horizontal direction.

[0029] 3 is a schematic configuration diagram of a control device 50 according to one embodiment. As shown in FIG. 3, the control device 50 includes a rotation control unit 52, a speed acquisition unit 54, and a separation detection unit 56. The control device 50 may further include a grip control unit 58 and / or a pressure control unit 60.

[0030] The rotation control unit 52 is configured to control the rotation of the rolling rolls 15, 16. More specifically, the rotation control unit 52 is configured to stop the rolling rolls 15, 16 based on a separation timing, which is the timing at which separation of the tail end St of the strip S from the unwinder 2 is detected by a separation detection unit 56 (described later), and the speed of the strip S acquired by a speed acquisition unit 54 (described later). The rotation control unit 52 may be configured to stop the rotation of the rolling rolls 15, 16 based on the length of the strip S from the position of the tail end St at the separation timing to the planned stopping position of the tail end St, in addition to the above-mentioned separation timing and the speed of the strip S.

[0031] The speed acquisition unit 54 is configured to acquire the speed of the strip S between the unwinder 2 and the rolling rolls 15, 16. The speed acquisition unit 54 may acquire the speed of the strip S based on a signal indicating the speed of the strip S received from the speed sensor 40. Alternatively, the speed acquisition unit 54 may acquire the rotational speed of the rolling rolls 15, 16 or the motor 11 that drives the rolling rolls 15, 16 from a rotational speed sensor or the like, and estimate the speed of the strip S from the rotational speed using a reverse rate or the like, thereby acquiring the speed of the strip S.

[0032] The separation detection unit 56 is configured to detect that the tail end St of the strip S has separated from the unwinder 2. The separation detection unit 56 may be configured to detect separation of the tail end St from the unwinder 2 based on a signal from a sensor 42 that can detect the presence or absence of the strip S at a position at the same position as the guide unit 12 (deflector roll 6 or guide table 8, etc.) or closer to the unwinder 2 than the guide unit 12 in the traveling direction of the strip S (direction from the unwinder 2 to the winder 3), and at a position above, below, or to the side of the unwinder 2.

[0033] The sensor 42 may be configured to detect the presence or absence of the strip S at a position below the unwinder 2 (see sensor 42 in FIG. 1 and sensor 42A in FIGS. 5A to 5D). In this case, the detachment detection unit 56 may be configured to determine that the tail end St has detached from the unwinder 2 when the presence of the strip S at a position below the unwinder 2 is detected based on a signal from the sensor 42.

[0034] 1 and the sensor 42A in FIGS. 5A to 5D are distance sensors that are provided below the unwinder 2 and can detect the distance between the sensor 42, 42A and the strip S in the horizontal direction.

[0035] Alternatively, the sensor 42 may be configured to detect the presence or absence of the strip S at a position above the unwinder (see sensors 42B or 42C in FIGS. 5A to 5D). In this case, the detachment detection unit 56 may be configured to determine that the tail end St has detached from the unwinder 2 when it is detected, based on a signal from the sensor 42, that the strip S is no longer present at a position above the unwinder 2.

[0036] 5A to 5D is a distance sensor that is provided at a position above the unwinder 2 and can detect the distance in the horizontal direction between the sensor 42B and the strip S. Sensor 42C in Figs. 5A to 5D is a distance sensor that is provided at a position above the unwinder 2 and can detect the distance in the vertical direction between the sensor 42C and the strip S.

[0037] 5A to 5D are diagrams illustrating the control flow of the rolling mill according to one embodiment. Although three sensors 42A, 42B, and 42C are shown in Fig. 5A to 5D as the sensor 42, it is possible to detect the separation of the tail end St of the strip S from the unwinder 2 by providing only one sensor 42 (for example, any one of the sensors 42A to 42C in Fig. 5A to 5D).

[0038] The gripping control unit 58 is configured to control the operation of the grippers 22 (i.e., gripping and / or releasing of the tail end or the front end of the strip S by the grippers 22). The gripping control unit 58 may be configured to release the gripping of the tail end Sa of the strip S by the grippers based on the number of windings (number of turns) of the strip S in the unwinder 2. The number of windings of the strip S in the unwinder 2 may be calculated from the number of windings or length of the strip S at the start of the rolling pass and / or the angular position of the grippers 22 around the rotation axis of the mandrel 4, etc.

[0039] The pressing control unit 60 is configured to control the operation of the pressing unit 30. A more specific configuration of the pressing control unit 60 will be described later.

[0040] The control device 50 includes a computer equipped with a processor (e.g., CPU), a main memory (memory device; e.g., RAM), an auxiliary memory, an interface, etc. The control device 50 receives signals from the speed sensor 40 and / or the sensor 42 via the interface. The processor is configured to process the signals received in this manner. The processor is also configured to process a program loaded in the main memory. This realizes the functions of the above-mentioned functional units (e.g., the rotation control unit 52, the speed acquisition unit 54, and the separation detection unit 56).

[0041] The processing contents of the control device 50 are implemented as programs executed by the processor. The programs may be stored in, for example, an auxiliary storage device. When the programs are executed, they are loaded into the main storage device. The processor reads the programs from the main storage device and executes the instructions contained in the programs.

[0042] (Rolling mill control flow) Next, a control method for the rolling mill 1 according to several embodiments will be described with reference to Figures 4 to 9. Note that, although the following describes a case where the above-mentioned control device 50 is used to control the above-mentioned rolling mill 1, in several embodiments, the control method for the rolling mill may be executed using another device, or some of the procedures described below may be performed manually.

[0043] Fig. 4 is a flowchart of a control method for a rolling mill according to one embodiment. Figs. 5A to 5D are diagrams for explaining the control flow of a rolling mill according to one embodiment, and are diagrams showing changes in the position of the strip S over time in the control of the rolling mill.

[0044] 4, in a control method according to one embodiment, while the strip S is being rolled in the rolling mill 1, the gripping control unit 58 releases the gripping of the tail end portion Sa of the strip S by the grippers 22 of the unwinder 2 (S2). The speed acquiring unit 54 acquires the speed of the strip S between the unwinder 2 and the rolling rolls 15, 16 (S4). The separation detecting unit 56 detects that the tail end St of the strip S has separated from the unwinder 2 (S6). The rotation control unit 52 controls and stops the rotation of the rolling rolls 15, 16 based on the speed of the strip S acquired in step S4 and the timing (separation timing) at which the separation of the tail end St from the unwinder 2 is detected in step S6.

[0045] In step S2, when the number of turns of the strip S in the unwinder 2 decreases while the strip S is being rolled in the rolling device 1, an actuator for moving the gripper 22 of the unwinder 2 is appropriately operated to release the grip of the tail end Sa of the strip S by the gripper 22 (S2). In step S2, typically, the grip of the tail end Sa by the gripper 22 is released when the strip S has been wound around the mandrel 4 of the unwinder 2 one or more times.

[0046] Before the grip of the tail end Sa of the strip S by the gripper 22 is released in step S2, the tail end and tail end of the strip S have not yet been released from the mandrel 4, as shown in Figure 5A. When the grip of the tail end Sa of the strip S by the gripper 22 is released in step S2, the tail end St and tail end Sa of the strip S are released from the mandrel 4 (unwinder 2), as shown in Figure 5B. Then, with the passage of time, the positions of the strip S and tail end St change as shown in Figure 5C and further as shown in Figure 5D.

[0047] In step S4, the speed of the strip S between the unwinder 2 and the rolling rolls 15, 16 is acquired. In step S4, the speed of the strip S may be acquired from before the gripper 22 releases the grip of the tail end portion Sa in step S2, or the speed of the strip S after that point may be acquired. In addition, the speed of the strip S may be acquired until the rolling rolls 15, 16 are stopped in the subsequent step S8. In step S4, the speed of the strip S may be acquired continuously or at predetermined intervals.

[0048] In step S6, based on a signal from a sensor 42 capable of detecting the presence or absence of a strip above or below the mandrel 4 of the unwinder 2, separation of the tail end St from the unwinder 2 is detected.

[0049] In one embodiment, a detection signal from a sensor 42A (see Figures 5A to 5D) configured to detect the presence or absence of a strip at a position below the mandrel 4 of the unwinder 2 is used to determine whether the tail end St of the strip S has detached from the unwinder 2.

[0050] 6 is a graph showing an example of the time variation of the detection value of the sensor 42A during the period when the rolling device is controlled, the speed of the strip S between the unwinder 2 and the rolling rolls 15, 16 (hereinafter also simply referred to as the speed of the strip S), and the open / closed state of the gripper 22. Note that when the detection value of the sensor 42A is D A The detected value in the above case indicates the horizontal distance between the sensor 42A and the strip S, and the detected value is D Aless than indicates that the presence of the strip S has not been detected.

[0051] In the example shown in Fig. 6, the rolling mill 1 rolls the strip S at a steady speed until time t11. Then, at time t12, which is after time t11, the gripping of the tail end Sa by the gripper 22 is released (step S2). Until time t12, as shown in Fig. 5A, the tail end and tail end of the strip S have not been released from the mandrel 4. Also, at time t12, as shown in the graph of Fig. 6, the detection value of the sensor 42A is D A The presence of the strip S was not detected.

[0052] For a period of time from time t14 after time t12, the detection value of the sensor 42A becomes D A That is, during this period, the presence of the strip S below the unwinder 2 is detected by the sensor 42A.

[0053] 5B shows a state after time t12 and before time t14, in which the tail end St has separated from the unwinder 2 but has not yet reached the detection position of the sensor 42A, and the presence of the strip plate S is not detected by the sensor 42A. FIG. 5C shows a state immediately after time t14, in which the tail end St has reached a position below the detection position of the sensor 42A, and the presence of the strip plate S is detected by the sensor 42A. Thereafter, when the tail end St moves above the detection position of the sensor 42A, the presence of the strip plate S is no longer detected by the sensor 42A.

[0054] The detachment detection unit 56 determines that the tail end St has detached from the unwinding machine 2 at time t14 when the sensor 42A detects the presence of the strip S at a position below the unwinding machine 2. In this case, the detachment timing (detachment timing) when the tail end St of the strip S detaches from the unwinding machine 2 is time t14.

[0055] In one embodiment, a detection signal from a sensor 42B or 42C (see Figures 5A to 5D) configured to detect the presence or absence of a strip at a position above the mandrel 4 of the unwinder 2 is used to determine whether the tail end St of the strip S has detached from the unwinder 2.

[0056] 7 is a graph showing an example of the time variation of the detection value of the sensor 42B during the period when the rolling device is controlled, the speed of the strip S between the unwinder 2 and the rolling rolls 15, 16, and the open / close state of the gripper 22. Note that when the detection value of the sensor 42B is D B The detected value in the above case indicates the horizontal distance between the sensor 42B and the strip S, and the detected value is D B less than indicates that the presence of the strip S has not been detected.

[0057] In the example shown in Fig. 7, the rolling mill 1 rolls the strip S at a steady speed until time t21. Then, at time t22, which is after time t21, the gripping of the tail end Sa by the gripper 22 is released (step S2). Until time t22, as shown in Fig. 5A, the tail end and tail end of the strip S have not been released from the mandrel 4. Also, at time t22, as shown in the graph of Fig. 6, the detection value of the sensor 42A is D B This is the end of the process, and the presence of the strip S is detected.

[0058] During the period from time t22 onwards, the detection value of the sensor 42B is D B That is, during this period, the presence of the strip S above the unwinder 2 is not detected by the sensor 42B.

[0059] 5C shows a state after time t22 and before time t24, in which the tail end St has separated from the unwinder 2, but the strip plate S is present at the detection position of the sensor 42B, so the sensor 42B detects the presence of the strip plate S. FIG. 5D shows a state immediately after time t24, in which the tail end St has reached a position above the detection position of the sensor 42B, so the sensor 42A no longer detects the presence of the strip plate S.

[0060] The detachment detection unit 56 determines that the tail end St has detached from the unwinding machine 2 at time t24 when the sensor 42B no longer detects the presence of the strip S above the unwinding machine 2. In this case, the detachment timing (detachment timing) when the tail end St of the strip S detaches from the unwinding machine 2 is time t24.

[0061] In step S8, based on the speed of the strip S obtained in step S4 and the timing (detachment timing) at which the tail end St is detected to be detached from the unwinder 2 in step S6, the rotation of the motor 11 is controlled to stop the rotation of the rolling rolls 15, 16 (S8).

[0062] In this way, by stopping the rotation of the rolling rolls 15, 16 based on the speed of the strip S and the timing of the separation of the tail end St, the strip S can be stopped so that the tail end St is located at a desired position (for example, a position where rolling of the next pass can be started smoothly; for example, just before the deflector roll 6 or at the position of the guide table 8). Therefore, in the reverse-type rolling device 1, even after the tail end St leaves the unwinder 2, rolling can be continued until the rolling rolls 15, 16 stop, and rolling of the next pass can be started smoothly. Therefore, the yield can be improved while suppressing an increase in the time required for rolling.

[0063] In step S8, the rotation of the rolling rolls 15, 16 may be stopped based on the speed of the strip S and the separation timing of the tail end St, as well as the length of the strip S from the position of the tail end St at the separation timing to the planned stopping position of the tail end St. Since the moving length of the strip S (i.e., the moving length of the tail end St) can be expressed as the time integral of the speed of the strip S, by controlling the rotation and stopping of the rolling rolls 15, 16 (motor 11) by the rotation control unit so that the time integral of the speed of the strip S acquired by the speed acquisition unit 54 becomes the above-mentioned length of the strip S, it becomes easier to stop the strip S so that the tail end St is located at the desired planned stopping position. This makes it easier to start rolling in the next pass smoothly.

[0064] In addition, the length of the strip S from the position of the tail end St at the time of separation of the tail end St from the unwinding machine 2 to the planned stopping position of the tail end St may be geometrically calculated based on the sensor 42 (sensors 42A to 42C, etc.) for detecting the separation of the tail end St and the planned stopping position of the tail end St, etc.

[0065] In step S8, the speed of the strip S may be increased or decreased from the timing at which the tail end St is released from the unwinder 2 until the rolling rolls 15, 16 are stopped, as shown in Figures 6 and 7, for example. In the examples shown in Figures 6 and 7, the speed of the strip S is increased from time t15 or t25 after the release timing (time t14 or t24) to time t16 or t26, and the speed of the strip S is decreased from time t16 or t26 to time t17 or t27 (when the rolling rolls 15, 16 are stopped). In this way, by making the speed of the strip S as high as possible until just before the strip S is stopped, the time required to roll the strip S can be shortened, and by slowing down the speed of the strip S just before the strip S is stopped, the tail end St can be more easily and stably positioned at the desired planned stop position.

[0066] 8 and 9 are diagrams for explaining the number of turns of the strip S in the unwinder 2. The number of turns of the strip S is counted based on the angular position of the gripper 22 around the rotation axis of the mandrel 4 of the unwinder 2. In FIG. 8, the angular position of the gripper 22 is the same as the angular position T (the position where the shape of the strip S changes from an arc shape to a linear shape) at which the strip S wound on the unwinder 2 is unwound toward the rolling rolls 15, 16. That is, FIG. 8 shows a state in which the strip S has been wound one turn around the mandrel 4 of the unwinder 2. In FIG. 9, the angular position of the gripper 22 is a position rotated 180 degrees from the above-mentioned angular position T. That is, FIG. 9 shows a state in which the strip S has been wound 1.5 turns around the mandrel 4 of the unwinder 2.

[0067] In the above-described method, in step S2, immediately before the tail end St of the strip S is released from the unwinder 2, the grip of the tail end portion Sa by the gripper 22 may be released.

[0068] Since tension acts on the strip S while the grippers 22 of the unwinder 2 grip the tail end Sa of the strip S, the portion of the strip S that is rolled during this period can become a product. In this regard, as described above, by releasing the grip of the tail end Sa by the grippers 22 immediately before the tail end St separates from the unwinder 2, it is possible to maintain the tension acting on the strip S until immediately before the tail end St separates from the unwinder 2. This makes it possible to more effectively improve the yield.

[0069] More specifically, in step S2, the grip of the tail end portion Sa by the gripper 22 may be released while the strip S is wound around the unwinder 2 by 2 turns or less, or 1.7 turns or less.

[0070] In this way, by releasing the grip of the tail end portion Sa by the gripper 22 while the strip is wound around the unwinder 2 by 2 turns or less or 1.7 turns or less, the tension acting on the strip S can be maintained until just before the tail end St is released from the unwinder 2.

[0071] In step S2, the grip of the tail end portion Sa by the gripper 22 may be released while the strip S is wound around the unwinder 2 by more than 1 turn or 1.5 turns.

[0072] The tail end St of the strip S can be detached from the unwinder 2 when one or less turns of the strip S are wound around the unwinder 2. In this regard, as described above, the gripper is configured to release the grip of the tail end portion while more than one turn or 1.5 turns of the strip S are wound around the unwinder 2, that is, before the tail end of the strip S can be detached from the unwinder, so that the tail end of the strip can be smoothly detached from the unwinder.

[0073] In some embodiments, the grip of the tail end portion Sa by the gripper 22 may be released while 1 to 2 turns of the strip S are wound around the unwinder 2. In some embodiments, the grip of the tail end portion Sa by the gripper 22 may be released while 1.5 to 1.7 turns of the strip S are wound around the unwinder 2.

[0074] In the above-described method, in step S2, the rotational speed of the rolling rolls 15, 16 may be reduced during a period including the timing at which the gripping of the tail end portion Sa by the grippers 22 is released. For example, in the example shown in Fig. 6 or 7, the rotational speed of the rolling rolls 15, 16 is reduced during a period including time t12 or t22 at which the gripping of the tail end portion Sa by the grippers 22 is released (the period from t11 to t13 or the period from t21 to t23).

[0075] In this way, by slowing down the rotational speed of the rolling rolls 15, 16 when the gripping of the tail end portion Sa by the gripper 22 is released, the rotational speed of the rolling rolls 15, 16 is maintained relatively high until just before the timing when the gripping of the tail end portion Sa is released, thereby effectively suppressing an increase in the time required for rolling.

[0076] (Regarding shape correction of the tail end using the pressure part) Next, the specific configuration of the pressing unit 30 and the pressing control unit 60 for correcting the shape of the tail end portion Sa of the strip S will be described.

[0077] 1, the pressing unit 30 is provided so as to be at least partially located closer to the rolling rolls 15, 16 in the traveling direction of the strip S than the rotation axis O of the deflector roll 6 provided between the unwinder 2 and the rolling rolls 15, 16. The pressing unit 30 is configured to apply a pressing force to the strip S in the thickness direction of the strip S.

[0078] The pressing control unit 60 (see FIG. 3) is configured to control the operation of the pressing unit 30. The pressing control unit 60 may be configured to operate the pressing unit 30 so that the pressing unit 30 applies a pressing force to the strip S after the tail end St of the strip S has been released from the unwinder 2. The pressing control unit 60 may be configured to apply a pressing force to the strip S by the pressing unit 30 while the rolling rolls 15, 16 are rotating (i.e., while the strip S is being transported).

[0079] The tail end portion Sa of the strip S released from the unwinder 2 usually has a relatively large curvature (strong winding tendency). According to the above-described configuration, after the tail end portion St has released from the unwinder 2, the rolling rolls 15, 16 are rotated while a pressing force is applied to the strip S by the pressing unit 30 provided near the deflector roll 6. This reduces the degree of curvature of the tail end portion Sa. By correcting the shape of the tail end portion Sa of the strip S in this way, rolling in the next pass can be started more smoothly. For example, the leading end portion of the strip S in the next pass (the tail end portion Sa in the previous pass) can be more easily passed through the guide unit 12, or the leading end portion of the strip S in the next pass can be more easily gripped by the gripper of the winder (the unwinder 2 in the previous pass). This effectively prevents an increase in the time required for rolling.

[0080] 10 to 12 are each a schematic view of the pressing unit 30 according to one embodiment.

[0081] The pressing unit 30 shown in FIG. 10 includes a pinch roll 32 that is partially provided on the side of the deflector roll 6 closer to the rolling rolls 15 and 16 and configured to sandwich the strip S together with the deflector roll 6, and a push roll 34 that is provided on the opposite side of the pinch roll 32 across the strip S, on the side of the rolling rolls 15 and 16 closer to the deflector roll 6 in the traveling direction of the strip S. The push roll 34 is configured to be able to apply an upward pressing force to the strip S. As shown in FIG. 10, the center of the pinch roll 32 in the traveling direction of the strip S (hereinafter simply referred to as the traveling direction) is shifted by a distance L1 toward the rolling rolls 15 and 16 from the rotation axis of the deflector roll 6 in the traveling direction. The center of the push roll 34 in the traveling direction is shifted by a distance L2 toward the rolling rolls 15 and 16 from the center of the pinch roll 32 in the traveling direction.

[0082] In this embodiment, the strip S is sandwiched between the deflector roll 6 and the pinch roll 32, and the rolling rolls 15 and 16 are rotated while a pressing force from the push roll 34 is applied to the strip S, thereby correcting the shape of the tail end portion Sa of the strip S.

[0083] The pressing unit 30 shown in Fig. 11 includes a pinch roll 33 that is partially provided closer to the rolling rolls 15 and 16 than the deflector roll 6 and configured to sandwich the strip S together with the deflector roll 6. The pinch roll 33 is configured to be able to apply a pressing force to the strip S in a direction from the center of the pinch roll 33 toward the center of the deflector roll 6. As shown in Fig. 11, the center of the pinch roll 33 in the traveling direction of the strip S is shifted by a distance L3 toward the rolling rolls 15 and 16 from the rotation axis of the deflector roll 6 in the traveling direction.

[0084] In this embodiment, the strip S is sandwiched between the deflector roll 6 and the pinch roll 33, and the rolling rolls 15, 16 are rotated while the deflector roll 6 and the pinch roll 33 are rotated in a state in which a pressing force from the pinch roll 33 is applied to the strip S. In this way, tension is applied to the strip S, so that the shape of the tail end portion Sa of the strip S can be corrected.

[0085] The pressing unit 30 shown in Fig. 12 includes a forming unit 36 provided closer to the rolling rolls 15 and 16 than the deflector roll 6, and a receiving unit 38 provided on the opposite side of the forming unit 36 with the strip S sandwiched therebetween. The forming unit 36 is provided so as to be movable up and down. The receiving unit 38 has a contact surface 38a that can come into contact with the surface of the strip S while sandwiching the strip S together with the forming unit 36. The receiving unit 38 is also configured so that its position changes in response to the up and down movement of the forming unit 36. In the embodiment shown in Fig. 12, a pinch roll 35 configured to sandwich the strip S together with the deflector roll 6 is provided above the deflector roll 6.

[0086] 12, the cross section of the forming section 36 has a circular shape, but the shape of the forming section 36 is not limited to this. For example, the cross section of the forming section 36 may be rectangular, polygonal, home plate-shaped, elliptical, or the like.

[0087] In this embodiment, the strip S is sandwiched between the deflector roll 6 and the pinch roll 33, and also between the forming section 36 and the receiving section 38, and the forming section 36 is moved downward to apply a pressing force from the forming section 36 to the strip S, while the rolling rolls 15 and 16 are rotated. This allows the shape of the tail end Sa of the strip S to be corrected.

[0088] In some embodiments, the rotation control unit 52 may be configured to repeatedly rotate and stop the rolls 15, 16 while the pressing force is being applied to the strip S by the pressing unit 30.

[0089] According to the above-described embodiment, the pair of rolling rolls 15, 16 are repeatedly rotated and stopped while a pressing force is applied to the strip S by the pressing unit 30, so that the shape of the tail end portion can be corrected by gradually shifting the position of the strip S. This allows for more precise adjustment of the shape of the tail end portion.

[0090] 13A to 13D are diagrams illustrating an example of a procedure for straightening the tail end portion Sa while repeatedly rotating and stopping the rolling rolls 15, 16 (i.e., while inching the strip S). In this example, the tail end portion Sa of the strip S is straightened using the pressing unit 30 shown in FIG.

[0091] First, as shown in Fig. 13A, the position of the forming section 36 is adjusted so that the vertical position (height) of the strip S at the position of the forming section 36 in the traveling direction is approximately the same as that of the strip S between the rolling rolls 15, 16. In this state, the strip S is sandwiched between the forming section 36 and the receiving section 38, and while a pressing force from the forming section 36 is applied to the strip S, the rolling rolls 15, 16 are rotated slightly and then stopped.

[0092] Next, as shown in Fig. 13B, the position of the forming unit 36 is adjusted to a lower position than in Fig. 13A. In this state, the strip S is sandwiched between the forming unit 36 and the receiving unit 38, and while a pressing force from the forming unit 36 is applied to the strip S, the rolling rolls 15 and 16 are rotated slightly and then stopped.

[0093] Furthermore, as shown in Figure 13C, the position of the forming unit 36 is adjusted to a lower position than in the case of Figure 13B. In this state, the strip S is sandwiched between the forming unit 36 and the receiving unit 38, and the rolling rolls 15, 16 are rotated slightly and then stopped while the pressing force from the forming unit 36 is applied to the strip S. In this way, by increasing the pressing amount (pressing down amount) of the forming unit 36, the portion of the strip S near the tail end St, which has a stronger curling tendency, can be effectively straightened.

[0094] In addition, once the tail end St of the strip S passes over the deflector roll 6 and the forming section 36, as shown in Figure 14D, the forming section 36 may be moved upward and separated from the receiving section 38, thereby releasing the pressing force exerted by the forming section 36 on the strip S.

[0095] In this way, by appropriately moving the forming section 36 in response to changes in the shape of the tail end section Sa, and repeating the procedure of slightly rotating and stopping the rolling rolls 15, 16 while applying a pressing force from the forming section 36 to the strip S, the shape of the tail end section Sa can be effectively corrected while gradually shifting the position of the strip S.

[0096] Hereinafter, an overview will be given of a control device for a rolling mill, a rolling facility, and a control method for a rolling mill according to some embodiments.

[0097] (1) A control device (50) for a rolling mill (1) according to at least one embodiment of the present invention includes: A control device for controlling a rolling mill including a pair of rolling rolls (15, 16) for rolling a metal strip (S), an unwinder (2) for unwinding the strip toward the pair of rolling rolls, and a winder (3) for winding up the strip rolled by the pair of rolling rolls, a rotation control unit (52) for controlling the rotation of the rolling roll; a speed acquisition unit (54) configured to acquire the speed of the strip between the unwinder and the rolling roll; a separation detection unit (56) configured to detect when the tail end (St) of the strip is separated from the unwinder; Equipped with The rotation control unit is configured to stop the rotation of the pair of rolling rolls based on the separation timing, which is the timing when the separation of the tail end from the unwinder is detected by the separation detection unit, and the speed of the strip acquired by the speed acquisition unit.

[0098] According to the above configuration (1), the rotation of the rolling mill is controlled and stopped based on the timing when the separation of the tail end of the strip from the unwinder is detected and the speed of the strip between the unwinder and the rolling rolls, so that the strip can be stopped at an appropriate position (for example, a position where rolling of the next pass can be started smoothly). Therefore, in a reverse-type rolling mill, even after the tail end has separated from the unwinder, rolling can be continued until the rolling mill is stopped, and rolling of the next pass can be started smoothly. Therefore, the yield can be improved while suppressing an increase in the time required for rolling.

[0099] (2) In some embodiments, in the configuration of (1), The separation detection unit is configured to detect the separation of the tail end from the unwinder based on a signal from a sensor (42) capable of detecting the presence or absence of the band plate at a position above or below the unwinder.

[0100] According to the above-mentioned configuration (2), the separation of the tail end from the unwinder can be properly detected by a sensor capable of detecting the presence or absence of the strip above or below the unwinder, which makes it possible to improve the yield while suppressing an increase in the time required for rolling, as described in (1).

[0101] (3) In some embodiments, in the configuration of (2), the rolling device includes a guide unit (12) for guiding the strip between the unwinder and the pair of rolling rolls, The separation detection unit is configured to detect the separation of the tail end from the unwinder based on a signal from a sensor (42) that can detect the presence or absence of the strip at a position at the same position as the guide unit or closer to the unwinder than the guide unit in the traveling direction of the strip, and at a position above or below the unwinder.

[0102] The passage of the strip in the guide section usually has a narrow gap in the thickness direction, making it relatively difficult to pass the leading end of the strip. In this regard, according to the configuration (3) above, a sensor capable of detecting the presence or absence of the strip at a position at the same position as the guide section or closer to the unwinder than the guide section in the traveling direction of the strip is used to detect the separation of the tail end from the unwinder, so that the tail end of the strip (i.e., the leading end of the next pass) can be easily stopped at a position at the same position as the guide section or closer to the unwinder than the guide section. This makes it easier to start rolling the next pass smoothly.

[0103] (4) In some embodiments, in the configuration of (2) or (3), The detachment detection unit is configured to determine that the tail end has detached from the unwinder when the presence of the strip plate is detected at a position below the unwinder based on the signal from the sensor.

[0104] According to the configuration (4) above, the separation of the tail end from the unwinder is detected based on the presence of the band plate at a position below the unwinder, so that it is possible to quickly determine that the band plate has separated from the unwinder.

[0105] (5) In some embodiments, in the configuration of (2) or (3), The detachment detection unit is configured to determine that the tail end has detached from the unwinder when it detects, based on the signal from the sensor, that the strip plate is no longer present at a position above the unwinder.

[0106] According to the configuration (5) above, the separation of the tail end from the unwinder is detected based on the absence of the strip at a position above the unwinder, so that it is possible to determine relatively quickly that the strip has separated from the unwinder.

[0107] (6) In some embodiments, in any of the configurations (1) to (5) above, The rotation control unit is configured to stop the rotation of the pair of rolling rolls based on the separation timing, the speed of the strip, and the length of the strip from the position of the tail end at the separation timing to the planned stopping position of the tail end.

[0108] According to the above configuration (6), the rotation of the rolling rolls is stopped based on the timing of the tail end being released from the unwinder, the speed of the strip, and the length of the strip from the position of the tail end at the release timing to the planned tail end stop position (predetermined position), so the strip can be stopped so that the tail end is positioned at the desired position (planned stop position).This makes it easier to start rolling the next pass smoothly.

[0109] (7) In some embodiments, in any of the configurations (1) to (6) above, The control device a gripping control unit (58) provided in the unwinder for controlling a gripper (22) for gripping a tail end portion (Sa) including the tail end of the strip; The gripping control section is configured to release the gripping of the tail end portion by the gripper immediately before the tail end is released from the unwinder.

[0110] Since tension acts on the strip while the grippers of the unwinder grip the tail end of the strip, the portion of the strip that is rolled during this period can become a product. In this regard, according to the configuration of (7) above, the gripping of the tail end by the grippers is released just before the tail end separates from the unwinder, so that tension acting on the strip can be maintained until just before the tail end separates from the unwinder. This makes it possible to more effectively improve the yield.

[0111] (8) In some embodiments, in the configuration of (7), The gripping control section is configured to release the gripping of the tail end portion by the gripper while the strip is wound around the unwinder by more than one turn.

[0112] The tail end of the strip can be released from the unwinder when one or less rolls of strip are wound around the unwinder. In this regard, according to the configuration (8) above, the gripper releases the grip on the tail end before the tail end of the strip can be released from the unwinder and immediately before the tail end is released from the unwinder. This makes it possible to smoothly release the tail end of the strip from the unwinder and to maintain the tension acting on the strip until immediately before the tail end is released from the unwinder, thereby improving yield.

[0113] (9) In some embodiments, in the configuration of (7) or (8), The gripping control section is configured to release the gripping of the tail end section by the gripper while the strip is wound around the unwinder by two or fewer turns.

[0114] According to the above configuration (9), the gripping of the tail end by the gripper is released while the strip is wound around the unwinder by two or fewer turns, so that the tension acting on the strip can be maintained until just before the tail end is released from the unwinder, thereby more effectively improving the yield.

[0115] (10) In some embodiments, in any of the configurations (7) to (9) above, The rotation control unit is configured to reduce the rotation speed of the pair of rolls during a period that includes the timing at which the grip control unit releases the grip on the tail end portion.

[0116] According to the above configuration (10), the rotational speed of the rolling rolls is reduced when the gripping of the tail end portion is released, so that the rotational speed of the rolling rolls is maintained relatively high until just before the gripping of the tail end portion is released, thereby effectively suppressing an increase in the time required for rolling.

[0117] (11) In some embodiments, in any of the configurations (1) to (10) above, the rolling device includes a deflector roll (6) provided between the unwinder and the pair of rolling rolls, and a pressing unit (30) at least partially positioned closer to the pair of rolling rolls than the deflector roll in the traveling direction of the strip, and configured to apply a pressing force to the strip along the thickness direction of the strip, The control device a pressing control section (60) configured to operate the pressing section so that the pressing section applies a pressing force to the band plate after the tail end is separated from the unwinder, The rotation control section is configured to rotate the pair of rolls while the pressing section applies a pressing force to the strip.

[0118] The tail end of the strip released from the unwinder usually has a relatively large curvature (strong curling tendency). According to the configuration (11) above, after the tail end has released from the unwinder, the rolling rolls are rotated while a pressing force is applied to the strip by a pressing section provided near the deflector roll, thereby reducing the degree of curvature of the tail end. By correcting the shape of the tail end of the strip in this way, for example, the leading end of the strip in the next pass (the tail end in the previous pass) can be more easily gripped by the gripper of the winder (the unwinder in the previous pass), and rolling in the next pass can be started more smoothly. Therefore, an increase in the time required for rolling can be effectively suppressed.

[0119] (12) In some embodiments, in the configuration of (11), The rotation control section is configured to repeatedly rotate and stop the pair of rolls while the pressing section applies a pressing force to the strip.

[0120] According to the above configuration (12), the pair of rolls are repeatedly rotated and stopped while the pressing force is applied to the strip by the pressing unit, so that the shape of the tail end can be corrected by gradually shifting the position of the strip, thereby enabling more precise adjustment of the shape of the tail end.

[0121] (13) At least one embodiment of the rolling equipment (100) of the present invention comprises: a rolling device (1) including a pair of rolling rolls (15, 16) for rolling a metal strip (S), an unwinder (2) for unwinding the strip toward the pair of rolling rolls, and a winder (3) for winding up the strip rolled by the pair of rolling rolls; a control device (50) according to any one of (1) to (12) above for controlling the rolling mill; Equipped with.

[0122] According to the configuration of (13) above, the rotation of the rolling mill is controlled and stopped based on the timing when the separation of the tail end of the strip from the unwinder is detected and the speed of the strip between the unwinder and the rolling rolls, so that the strip can be stopped at an appropriate position (for example, a position where rolling of the next pass can be started smoothly). Therefore, in a reverse-type rolling mill, even after the tail end has separated from the unwinder, rolling can be continued until the rolling mill is stopped, and rolling of the next pass can be started smoothly. Therefore, the yield can be improved while suppressing an increase in the time required for rolling.

[0123] (14) A method for controlling a rolling mill according to at least one embodiment of the present invention includes: A control method for controlling a rolling mill (1) including a pair of rolling rolls (15, 16) for rolling a metal strip (S), an unwinder (2) for unwinding the strip toward the pair of rolling rolls, and a winder (3) for winding up the strip rolled by the pair of rolling rolls, comprising: a rotation control step (S8) of controlling the rotation of the rolling roll; a speed acquisition step (S4) of acquiring the speed of the strip between the unwinder and the rolling roll; a separation detection step (S6) of detecting that the tail end of the strip has separated from the unwinder; Equipped with In the rotation control step, the rotation of the pair of rolling rolls is stopped based on the separation timing, which is the timing at which the separation of the tail end from the unwinder is detected in the separation detection step, and the speed of the strip plate acquired in the speed acquisition step.

[0124] According to the method of (14) above, the rotation of the rolling mill is controlled and stopped based on the timing when the separation of the tail end of the strip from the unwinder is detected and the speed of the strip between the unwinder and the rolling rolls, so that the strip can be stopped at an appropriate position (for example, a position where rolling of the next pass can be started smoothly). Therefore, in a reverse-type rolling mill, even after the tail end has separated from the unwinder, rolling can be continued until the rolling mill is stopped, and rolling of the next pass can be started smoothly. Therefore, the yield can be improved while suppressing an increase in the time required for rolling.

[0125] The above describes an embodiment of the present invention, but the present invention is not limited to the above-described embodiment, and also includes forms in which the above-described embodiment is modified, or forms in which these forms are appropriately combined.

[0126] In this specification, expressions expressing relative or absolute arrangement such as "in a certain direction," "along a certain direction," "parallel," "orthogonal," "center," "concentric," or "coaxial" not only express such an arrangement strictly, but also express a state in which there is a relative displacement with a tolerance or an angle or distance to the extent that the same function is obtained. For example, expressions such as "identical," "equal," and "homogeneous" that indicate that something is in an equal state not only indicate a state of strict equality, but also indicate a state in which there is a tolerance or a difference to the extent that the same function is obtained. Furthermore, in this specification, expressions representing shapes such as a rectangular shape or a cylindrical shape not only represent rectangular shapes or cylindrical shapes in the strict geometric sense, but also represent shapes including uneven portions, chamfered portions, etc., to the extent that the same effect can be obtained. Furthermore, in this specification, the expressions "comprise," "include," or "have" a component are not exclusive expressions that exclude the presence of other components. [Explanation of symbols]

[0127] 1. Rolling equipment 2 Unwinder 3 Winder 4,5 Mandrel 6,7 Deflector roll 8,9 Guide table 10. Rolling Mill 11 Motor 12,13 Guide section 15,16 Rolling mill 17,18 Middle roll 19,20 Backup Roll 22,23 Gripper 24 slots 30 Pressing section 32 Pinch Roll 33 Pinch Roll 34 Push Roll 35 Pinch Roll 36 Forming section 38 Receiving part 38a Contact surface 40 Speed Sensor 42, 42A~42C Sensor 50 Control device 52 Rotation control section 54 Speed acquisition section 56 Separation detection unit 58 Grip control unit 60 Pressing control section 100 Rolling Equipment S strip Sa caudal end St tail end

Claims

1. A control device for controlling a rolling mill including a pair of rolling rolls for rolling a metal strip, an unwinder for unwinding the strip toward the pair of rolling rolls, and a winder for winding up the strip rolled by the pair of rolling rolls, a rotation control unit for controlling the rotation of the rolling roll; a speed acquisition unit configured to acquire a speed of the strip between the unwinder and the rolling roll; a separation detection unit configured to detect when the tail end of the strip is separated from the unwinder; Equipped with The rotation control unit is configured to stop the rotation of the pair of rolling rolls so that the tail end is positioned at a planned stop position between the unwinder and the rolling rolls, based on a separation timing, which is a timing when the separation of the tail end from the unwinder is detected by the separation detection unit, and the speed of the strip acquired by the speed acquisition unit. Control device for rolling equipment.

2. The separation detection unit is configured to detect separation of the tail end from the unwinder based on a signal from a sensor capable of detecting the presence or absence of the band plate above or below the unwinder. The control device for a rolling mill according to claim 1 .

3. the rolling device includes a guide unit for guiding the strip between the unwinder and the pair of rolling rolls, The separation detection unit is configured to detect separation of the tail end from the unwinder based on a signal from a sensor that can detect the presence or absence of the band plate at a position at the same position as the guide unit or closer to the unwinder than the guide unit in the traveling direction of the band plate, and at a position above or below the unwinder. The control device for a rolling mill according to claim 2.

4. The separation detection unit is configured to determine that the tail end has separated from the unwinder when the presence of the strip plate is detected below the unwinder based on the signal from the sensor. The control device for a rolling mill according to claim 2 or 3.

5. The separation detection unit is configured to determine that the tail end has separated from the unwinder when it is detected, based on the signal from the sensor, that the strip plate is no longer present at a position above the unwinder. The control device for a rolling mill according to claim 2 or 3.

6. The rotation control unit is configured to stop the rotation of the pair of rolling rolls based on the length of the strip from the position of the tail end at the time of separation to the planned stop position of the tail end in addition to the separation timing and the speed of the strip. The control device for a rolling mill according to any one of claims 1 to 5.

7. a gripping control unit provided in the unwinder for controlling a gripper for gripping a tail end portion including the tail end of the strip; The gripping control section is configured to release the gripping of the tail end section by the gripper immediately before the tail end section is released from the unwinder. The control device for a rolling mill according to any one of claims 1 to 6.

8. The gripping control section is configured to release the gripping of the tail end section by the gripper while the strip is wound around the unwinder by more than one turn. The control device for a rolling mill according to claim 7.

9. The gripping control section is configured to release the gripping of the tail end section by the gripper while the strip is wound around the unwinder by two or less turns. The control device for a rolling mill according to claim 7 or 8.

10. The rotation control unit is configured to reduce the rotation speed of the pair of rolls during a period including a timing when the grip control unit releases the grip of the tail end portion. The control device for a rolling mill according to any one of claims 7 to 9.

11. the rolling device includes a deflector roll provided between the unwinder and the pair of rolling rolls, and a pressing unit at least partially positioned closer to the pair of rolling rolls than the deflector roll in the traveling direction of the strip, and configured to apply a pressing force to the strip along a thickness direction of the strip, a pressing control unit configured to operate the pressing unit so that the pressing unit applies a pressing force to the band plate after the tail end is separated from the unwinder, The rotation control unit is configured to rotate the pair of rolls while the pressing unit applies a pressing force to the strip. The control device for a rolling mill according to any one of claims 1 to 10.

12. The rotation control unit is configured to repeatedly rotate and stop the pair of rolls while the pressing unit applies a pressing force to the strip. The control device for a rolling mill according to claim 11.

13. The rotation control section is configured to stop the rotation of the pair of rolling rolls based on the separation timing and the speed of the strip so that the tail end stops at a position just before a deflector roll provided between the unwinder and the pair of rolling rolls, or at a position on a guide section provided between the unwinder and the pair of rolling rolls for guiding the strip. A control device for a rolling mill according to any one of claims 1 to 12.

14. a rolling device including a pair of rolling rolls for rolling a metal strip, an unwinder for unwinding the strip toward the pair of rolling rolls, and a winder for winding up the strip rolled by the pair of rolling rolls; a control device according to any one of claims 1 to 13 for controlling the rolling mill; Rolling equipment equipped with:

15. A control method for controlling a rolling apparatus including a pair of rolling rolls for rolling a metal strip, an unwinder for unwinding the strip toward the pair of rolling rolls, and a winder for winding up the strip rolled by the pair of rolling rolls, comprising: a rotation control step of controlling the rotation of the rolling rolls; a speed acquisition step of acquiring a speed of the strip between the unwinder and the rolling roll; a separation detection step of detecting that the tail end of the strip has separated from the unwinder; Equipped with In the rotation control step, the rotation of the pair of rolls is stopped so that the tail end is positioned at a planned stop position between the unwinder and the rolls, based on a separation timing, which is a timing when separation of the tail end from the unwinder is detected in the separation detection step, and the speed of the strip acquired in the speed acquisition step. A method for controlling a rolling mill.

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