Shearing method, metal product manufacturing method and shearing device

The shearing method and device address the limitations of conventional scrap shears by dividing ear scraps into sections and shearing multiple times, eliminating the need for gas cutting and reducing costs and lead times.

JP7772018B2Active Publication Date: 2025-11-18JFE STEEL CORP
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Patent Information

Application Number
JP2023069635
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-04-20
Publication Date
2025-11-18
Estimated Expiration
2043-04-20

AI Technical Summary

Technical Problem

Conventional scrap shears have limitations on the width of ear waste they can shear, necessitating additional methods like gas cutting when the width exceeds the shearable limit, leading to increased costs and lead times.

Method used

A shearing method and device that determines if the scrap width exceeds the shearable limit, divides it into sections, and shears each section multiple times using a scrap shear, allowing shearing regardless of size.

Benefits of technology

Enables efficient shearing of ear scraps using a shearing blade without gas cutting, reducing manufacturing costs and lead times.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a shearing method, a method for manufacturing metal products, and a shearing device that can perform shearing with a shearing blade regardless of the size of a shearing target such as edge chip.SOLUTION: A shearing method is the shearing method of shearing a shearing target with a shearing blade (scrap shear 7), comprising: a determination step for determining whether or not the shearing target is larger than the shearable width of the shearing blade; a shearing width decision step for dividing the shearing target into multiple sections such that the width of the shearing target to be sheared at one time is equal to or less than the shearable width when it is determined that the shearing target is larger than the shearable width; and a shearing step for shearing the shearing target in multiple times for each section.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present disclosure relates to a shearing method, a method for manufacturing a metal product, and a shearing device. The shearing method and shearing device of the present disclosure particularly relate to shearing of metal scraps cut from a metal plate as a shearing target, and are used in the manufacture of metal products. [Background technology]

[0002] Typically, in the rolling process of a steel mill, the widthwise ends of a rolled steel plate are sheared by a side shear to cut the plate into product dimensions. At this time, the edge scraps cut from the steel plate are sheared to a predetermined length by a scrap shear and collected (see, for example, Patent Document 1). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Utility Model Application Publication No. 61-154623 Summary of the Invention [Problem to be solved by the invention]

[0004] In the conventional equipment described in Patent Document 1, the width of the ear waste that can be sheared by a shearing blade such as a scrap shear is limited. If the width of the ear waste is larger than the shearable width of the scrap shear, the scrap shear cannot shear the ear waste. If the ear waste cannot be sheared by the scrap shear, it is necessary to cut the ear waste separately using another method, such as gas cutting. This has resulted in problems such as increased manufacturing costs and lead times.

[0005] The purpose of the present disclosure, made in consideration of the above circumstances, is to provide a shearing method, a manufacturing method for metal products, and a shearing device that can shear ear scraps and other items using a shearing blade regardless of their size. [Means for solving the problem]

[0006] (1) A shearing method according to an embodiment of the present disclosure includes: A shearing method for shearing an object to be sheared by a shearing blade, comprising: a determination step of determining whether the shearing object is larger than the shearable width of the shearing blade; a shear width determination step of dividing the shear object into a plurality of parts so that the width of the shear object to be sheared at one time is equal to or less than the shear width when it is determined that the shear object is larger than the shearable width; and a shearing step of shearing the object to be sheared in sections multiple times.

[0007] (2) As one embodiment of the present disclosure, in (1), The object to be sheared is edge scraps generated when a metal plate is sheared to a product size, The shearing blade is a scrap shear that shears the edge scraps in the width direction, In the shearing step, the metal plate is sheared by a side shear so that the width of the scraps becomes equal to or smaller than the shearable width, and the scrap shear shears the scraps in the width direction.

[0008] (3) As one embodiment of the present disclosure, in (2), When the trimming material is sheared in multiple batches in the shearing process, the metal plate is conveyed and one section is sheared by the side shear, and then the metal plate is conveyed in the reverse direction and the other section is sheared by the side shear again.

[0009] (4) As an embodiment of the present disclosure, in any one of (1) to (3), In the shear width determination step, the shearing object is divided into a plurality of sections so that the shearing object to be sheared at one time is 50 mm or more.

[0010] (5) A method for manufacturing a metal product according to an embodiment of the present disclosure includes: The metal plate is sheared to product dimensions by the shearing method (2) or (3).

[0011] (6) A shearing device according to an embodiment of the present disclosure, a shape measuring device for measuring the shape of the metal plate; a side shear that shears the width direction end portion of the metal plate and cuts it into scraps; a scrap shear that shears the edge scraps cut by the side shear in a width direction; a control device that calculates the width of the scraps from the shape of the metal plate measured by the shape measuring device and the dimensions of the product cut out from the metal plate, and determines whether the calculated width of the scraps is larger than the shearable width of the scrap shear; When the control device determines that the width of the ear scraps is greater than the shearable width, the control device divides the ear scraps into a plurality of sections so that the width of the ear scraps sheared at one time is equal to or less than the shearable width, and causes the scrap shear to shear the ear scraps in a plurality of times for each section. [Effects of the Invention]

[0012] According to the present disclosure, it is possible to provide a shearing method, a manufacturing method for metal products, and a shearing device that can shear items such as earwax using a shearing blade regardless of their size. [Brief explanation of the drawings]

[0013] [Figure 1] FIG. 1 is a diagram illustrating an example of the configuration of a shearing device according to an embodiment of the present disclosure. [Figure 2] FIG. 2 is an enlarged view of the portion of the shearing device of FIG. 1 that is related to shearing of ear waste. [Figure 3] FIG. 3 is an explanatory diagram of the non-shearable parts of the scrap shear. [Figure 4A] FIG. 4A is a diagram illustrating the shearing procedure. [Figure 4B] FIG. 4B is a diagram illustrating the shearing procedure. [Figure 4C] FIG. 4C is a diagram illustrating the shearing procedure. [Figure 4D] FIG. 4D is a diagram illustrating the shearing procedure. [Figure 5A] FIG. 5A is a diagram showing the shear number and shear amplitude for Example 1. [Figure 5B]FIG. 5B is a diagram showing the shear number and shear amplitude for Example 2. DETAILED DESCRIPTION OF THE INVENTION

[0014] Hereinafter, a shearing method, a method for manufacturing a metal product, and a shearing device 10 (see FIG. 1) according to one embodiment of the present disclosure will be described with reference to the drawings. In each drawing, identical or corresponding parts are designated by the same reference numerals. In the description of this embodiment, the description of identical or corresponding parts will be omitted or simplified as appropriate.

[0015] In this embodiment, a case will be described in which trim as an object to be sheared, cut from a steel plate, which is an example of a metal plate 20 (see FIG. 2 ), is sheared by a scrap shear 17 as a shearing blade, but the object to be sheared is not limited to the metal plate 20. Here, trim is shavings generated on both widthwise ends of the metal plate 20 by shearing the widthwise ends. The width direction is a direction perpendicular to the conveying direction of the metal plate 20 when the conveyed metal plate 20 is viewed from above. Furthermore, in this embodiment, metal products are manufactured by cutting the metal plate 20 to a desired size, but metal products may also be manufactured by further processing such as forming.

[0016] <Shearing device> FIG. 1 is a diagram illustrating an example of the configuration of a shearing device 10 according to this embodiment. FIG. 2 is an enlarged view of a portion of the shearing device 10 in FIG. 1 that is involved in shearing edge scraps. The shearing device 10 includes a shape measuring device 12, a crop shear 13, a double-side shear 14, a slitter shear 15, a control device 16, and a scrap shear 17. A rolled metal sheet 20 is transported along the transport path shown in FIG. 1 at a location where the shearing device 10 is installed. The metal sheet 20 is cooled in a cooling bed 11 and then transported to the shearing device 10. After being sheared by the shearing device 10, the metal sheet 20 is transported to an inspection process. That is, in this embodiment, shearing of the metal sheet 20 by the shearing device 10 is performed after the rolling process, which is an upstream process, and before the inspection process, which is a downstream process.

[0017] The shape measuring device 12 measures the shape of the metal sheet 20 before shearing. The shape measuring device 12 is provided on the upstream side of the conveyance path of the metal sheet 20. The shape measuring device 12 is, for example, a planar shape measuring device, and measures the width, length, degree of curvature, and shape of the leading and trailing ends of the metal sheet 20 after rolling.

[0018] The crop shear 13 shears the leading and trailing ends (crop portions) of the metal plate 20. The metal plate 20 may have a rectangular shape that is long in the conveying direction. The crop shear 13 can divide the metal plate 20 by roughly cutting, for example, the center portion of the metal plate 20 in the longitudinal direction (conveying direction).

[0019] The double side shear 14 shears both ends of the metal sheet 20 in the width direction (the direction perpendicular to the conveying direction) to cut it into product dimensions. In this embodiment, a side shear is provided at each end of the width direction of the metal sheet 20, and is installed as a pair of side shears. The double side shear 14 is composed of such a pair of side shears.

[0020] The slitter shear 15 shears and divides the metal plate 20 at the center in the width direction to cut it into product dimensions.

[0021] The scrap shear 17 shears the scrap scraps cut by the double-side shear 14 in the width direction. The scrap shear 17 is located behind the double-side shear 14 (downstream in the conveying direction). The shearable width of the scrap shear 17, i.e., the width of the scrap scraps that can be sheared by the scrap shear 17, is fixed. As shown in FIG. 3, if the width (W2) of the scrap scraps is larger than the shearable width (W0) of the scrap shear 17, there will be portions of the scrap scraps that cannot be sheared by the scrap shear 17. Such portions that cannot be sheared are indicated as "unshearable" in FIG. 3. In this embodiment, the shearable width (W0) of one scrap shear 17 is, for example, 125 mm. Here, W1 in FIGS. 2 and 3 indicates the remaining width of the metal plate 20 excluding the scrap scraps.

[0022] The control device 16 controls the operations of the crop shear 13, double side shear 14, slitter shear 15, and scrap shear 17. The control device 16 also calculates the width of the scrap shears from the shape of the metal sheet 20 measured by the shape measuring device 12 and the dimensions of the product to be cut out from the metal sheet 20. The control device 16 also determines whether the calculated width of the scrap shears is greater than the shearable width of the scrap shears 17. If the control device 16 determines that the width of the scrap shears is greater than the shearable width, the control device 16 divides the scrap shears into multiple sections so that the width of the scrap shears to be sheared at one time is equal to or less than the shearable width. The control device 16 causes the scrap shears 17 to shear the scraps in multiple sections.

[0023] The control device 16 includes a processor that executes control and a memory unit that stores data used in the control (e.g., information about the shape of the metal plate 20). The control device 16 may be, for example, a computer. The processor may be, for example, a general-purpose processor or a dedicated processor specialized for a specific process, but is not limited to these and may be any processor. The memory unit is one or more memories. The memory may be, for example, a semiconductor memory, a magnetic memory, an optical memory, etc., but is not limited to these and may be any memory.

[0024] <Shearing method> Next, a shearing method for shearing an object to be sheared using a shearing blade will be described. The shearing method according to this embodiment is performed by the shearing device 10, where the scrap shear 17 corresponds to the shearing blade, and the object to be sheared is scraps generated when the metal plate 20 is sheared to the product dimensions. The shearing method according to this embodiment includes a shape measurement step, a determination step, a shear width determination step, and a shearing step.

[0025] (Shape measurement process) First, in the shape measurement step, the shape of the metal plate 20 before shearing is measured by the shape measurement device 12. Here, for example, if information on the shape of the metal plate 20 has already been acquired, the shape measurement step may be omitted.

[0026] (Judgment process) Next, in the determination step, the control device 16 calculates the width of the scraps that will be generated when the metal plate 20 is sheared, based on the shape of the metal plate 20 and the pre-stored dimensions of the product to be cut out. Then, in the determination step, the control device 16 determines whether the width of the scraps is larger than the shearable width of the scrap shear 17.

[0027] (Shear width determination process) Next, in the shear width determination process, the control device 16 determines the shear width of the ear scraps. Specifically, if the control device 16 determines that the width of the ear scraps is smaller than the shearable width, the shear width is determined. On the other hand, if the control device 16 determines that the width of the ear scraps is larger than the shearable width, the ear scraps are divided into multiple sections so that the width of the ear scraps to be sheared at one time is equal to or smaller than the shearable width. As a specific example, if the shearable width of the scrap shear 17 is 125 mm and the width of the ear scraps is 200 mm, the control device 16 divides the ear scraps widthwise into two sections, each with a width of 100 mm. In this case, if the width of the ear scraps to be sheared is smaller than 50 mm, there is a risk that the ear scraps will twist, resulting in cross-sectional defects, or that the twisted ear scraps will hit other equipment and cause damage. For this reason, it is desirable to divide the ear scraps so that the width of each section is 50 mm or more. In the above example, the width of the scraps sheared at one time (shear width) was set to 100 mm for a shearable width of 125 mm, but the shear width may be determined arbitrarily between 50 mm and 125 mm.

[0028] (shearing process) In the shearing process, the ear waste is sheared at a shear width determined by the control device 16. That is, if the width of the ear waste is smaller than the shearable width, the ear waste is sheared all at once. On the other hand, if the width of the ear waste is larger than the shearable width, the ear waste is sheared in multiple batches, one for each section. Specifically, as shown in FIG. 4A, the metal sheet 20 is first conveyed in the forward direction of the conveyance (from upstream to downstream). As shown in FIG. 4B, the metal sheet 20 is received at the front of the double-side shears 14, where the first shearing is performed. At this time, the position of the metal sheet 20 in the width direction of the double-side shears 14 is adjusted so that the width of the ear waste is equal to or smaller than the shearable width (100 mm in the above example). Both widthwise ends of the metal plate 20 (both sides of the widthwise end) are sheared by the double side shear 14, and scrap scraps that have a width less than the shearable width (100 mm in the above example) are sheared in the widthwise direction by the scrap shear 17 located downstream of the double side shear 14.

[0029] After the first shearing, the metal sheet 20 is conveyed (reversely fed) in the opposite direction (from downstream to upstream) as shown in FIG. 4C. As shown in FIG. 4D, a second shearing is performed. At this time, the width of the metal sheet 20 on the double-side shears 14 is adjusted again so that the width of the scrap is equal to or smaller than the shear width defined above, i.e., the shearable width (100 mm in the above example). The metal sheet 20 is then conveyed again toward the double-side shears 14, whereby both widthwise ends of the metal sheet 20 located inside the first sheared portion are sheared by the double-side shears 14. The scrap shears 17, located downstream of the double-side shears 14, shear the scrap that has now become smaller than the shearable width (100 mm in the above example).

[0030] In this way, by repeating the shearing of both widthwise ends of the metal sheet 20 by the double-side shear 14 and the shearing of the scrap by the scrap shear 17 for each section divided by the control device 16, the metal sheet 20 can be cut out to the product dimensions. In addition to cutting the metal sheet 20 to the product dimensions, the scrap can also be sheared to a predetermined length.

[0031] The above shearing method can be used as part of a manufacturing method for a metal product produced by cutting the metal plate 20 to a desired size. The metal product may be a steel plate having a certain size, or may be produced by further processing such as forming.

[0032] <Effects> As described above, the shearing method, metal product manufacturing method, and shearing device 10 according to the present embodiment, when the shearing target, such as end waste, is larger than the shearable width, divides the shearing target into multiple sections and shears each section in multiple steps. Therefore, the shearing target can be sheared using a shearing blade regardless of its size. The shearing method, metal product manufacturing method, and shearing device 10 according to the present embodiment eliminate the need to cut end waste using gas cutting, as in the past. Since shearing is generally cheaper than gas cutting, it is possible to reduce manufacturing costs. Furthermore, reducing gas cutting can reduce lead time.

[0033] <Shearing target> In the above embodiment, the object to be sheared is described as earwax cut from the metal plate 20, but the object to be sheared is not limited to earwax. The method of the present disclosure can be applied when shearing various objects with a shearing blade (shear).

[0034] Furthermore, in the above embodiment, the metal plate 20 is sheared by transporting the metal plate 20 toward the shearing blade (sear), but the configuration may also be such that the metal plate 20 is sheared by moving the position of the shearing blade relative to the metal plate 20.

[0035] (Example) The effects of the present disclosure will be specifically described below based on examples, but the present disclosure is not limited to these examples.

[0036] The shearing of ear waste was carried out using the shearing device 10. The shearable width of the scrap shear 17 was 125 mm, and the shear width of the ear waste was determined using shear width determination logic. The shear width determination logic determines the number of times to shear the ear waste and the shear width of the scrap shear 17 using the quotient obtained by dividing the width of the ear waste (one side) by the first shear width (a shear width less than the shearable width) and the remainder. In Examples 1 and 2, the first shear width was set to 100 mm. Furthermore, here, the difference (25 mm) between the shearable width (125 mm) and the first shear width (100 mm) was set as a threshold value. If the remainder is less than the threshold value, the shear width determination logic shears the ear waste a number of times equal to the quotient, and uses the second shear width in the final shearing. Furthermore, if the remainder is equal to or greater than the threshold, the shear width determination logic performs shearing a number of times equal to the quotient plus one, and uses the second shear width for the final two shears. Figure 5A shows the shear width determination logic when the remainder is less than the threshold, and Figure 5B shows the shear width determination logic when the remainder is equal to or greater than the threshold. In Figures 5A and 5B, the quotient is indicated by A. Also, in Figures 5A and 5B, the remainder is indicated by X. If the remainder is less than the threshold, the shear width determination logic sets the second shear width to (X+100) mm. If the remainder is equal to or greater than the threshold, the shear width determination logic sets the second shear width to ((X+100) / 2) mm. Here, the first shear width is appropriately changed depending on the shearable width of the scrap shear 17. The first shear width may be determined, for example, by subtracting the maximum variation in the width (one side) of the metal sheet 20 (e.g., 25 mm) from the shearable width (e.g., 125 mm) of the scrap shear 17. However, from the viewpoint of shearing efficiency, it is preferable to set the threshold value to one-fourth or less of the shearable width so that the first shear width does not become too small. Furthermore, in the shear width determination logic, if the quotient is 1, the first shear width is not used, and shearing is performed using the second shear width from the beginning.

[0037] Example 1 A 2000mm wide x 6000mm long product was cut from a 2430mm wide x 6000mm long steel plate. The resulting edge scraps were attached to one side, resulting in a width of 215mm. Therefore, the shear width was determined so that the width of the edge scraps to be sheared at one time satisfied the condition 50mm ≦ shear width ≦ 125mm. Specifically, when the edge scrap width of 215mm is divided by 100mm, the quotient (A) is 2 and the remainder (X) is 15mm. Therefore, as shown in Figure 5A, the steel plate was divided so that the first shear width was 100mm and the second shear width was 115mm. As a result, the edge scraps were successfully sheared.

[0038] Example 2 A 2000mm wide x 6000mm long product was cut from a 2300mm wide x 6000mm long steel plate. The resulting 150mm wide end waste was attached to one side. Therefore, the shear width was determined so that the width of the end waste to be sheared at one time satisfied the condition 50mm ≦ shear width ≦ 125mm. Specifically, when the 150mm width of the end waste was divided by 100mm, the quotient (A) was 1, and the remainder (X) was 50mm. Therefore, as shown in Figure 5B, the steel plate was divided so that the first shear width was 75mm and the second shear width was 75mm. In Example 2, the quotient (A) was 1, which corresponds to the case in Figure 5B where the first shear width (100mm) was not used, and the second shear width (75mm) was used from the beginning. As a result, the end waste was successfully sheared.

[0039] Although the embodiments of the present disclosure have been described based on the drawings and examples, it should be noted that those skilled in the art would easily be able to make various modifications or alterations based on the present disclosure. Therefore, it should be noted that these modifications and alterations are included within the scope of the present disclosure. For example, functions included in each component or step (process) can be rearranged so as not to cause logical inconsistencies, and multiple components or steps can be combined or divided into one. The embodiments of the present disclosure can also be realized as a program executed by a processor included in an apparatus or a storage medium on which a program is recorded. It should be understood that these are also included within the scope of the present disclosure. [Explanation of symbols]

[0040] 10 Shearing device 11 Cooling bed 12 Shape measuring device 13 Cropshire 14 Double Side Shear 15 Slittershar 16 Control device 17 Scrap Shear 20 metal plate

Claims

1. A shearing method for shearing an object to be sheared by a shearing blade, comprising: a determination step of determining whether the shearing object is larger than the shearable width of the shearing blade; a shear width determination step of dividing the shear object into a plurality of parts so that the width of the shear object to be sheared at one time is equal to or less than the shear width when it is determined that the shear object is larger than the shearable width; a shearing step of shearing the object to be sheared in sections multiple times, The object to be sheared is edge scraps generated when a metal plate is sheared to a product size, The shearing blade is a scrap shear that shears the edge scraps in the width direction, In the shearing step, the metal plate is sheared by a side shear so that the width of the scraps is equal to or less than the shearable width, and the scrap shear shears the scraps in the width direction.

2. 2. The shearing method according to claim 1, wherein, when the shearing step is performed to shear the edge scraps in multiple batches, the metal plate is transported and one section is sheared by the side shear, and then the metal plate is reversed and transported again and another section is sheared by the side shear.

3. The shearing method according to claim 1 or 2, wherein in the shear width determining step, the shearing object is divided into a plurality of sections so that the shearing object to be sheared at one time has a length of 50 mm or more.

4. A method for manufacturing a metal product, comprising shearing the metal plate to product dimensions by the shearing method according to claim 1 or 2.

5. a shape measuring device for measuring the shape of the metal plate; a side shear that shears the width direction end portion of the metal plate and cuts it into scraps; a scrap shear that shears the edge scraps cut by the side shear in a width direction; a control device that calculates the width of the scraps from the shape of the metal plate measured by the shape measuring device and the dimensions of the product cut out from the metal plate, and determines whether the calculated width of the scraps is larger than the shearable width of the scrap shear; When the control device determines that the width of the ear scraps is greater than the shearable width, the shearing device divides the ear scraps into multiple sections so that the width of the ear scraps sheared at one time is equal to or less than the shearable width, and causes the scrap shear to shear the ear scraps in multiple sections.

Citation Information

Patent Citations

  • JP1986154623U

  • Carrying device for steel plate shearing line

    JP1996206915A

  • Cutting device for amorphous magnetic alloy strip

    JP1997192919A

  • Cutting device and cut data generating program

    JP2012192493A

  • Chute liner for scrap chute

    JP2015047645A