Cutting device and cutting method

The cutting device and method address burr and shedding issues in electrode plate manufacturing by using a dual-blade approach, resulting in improved electrode plate quality and battery performance.

JP7742539B2Active Publication Date: 2025-09-22PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO LTD
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Patent Information

Application Number
JP2023510504
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-03-29
Filing Date
2022-01-18
Publication Date
2025-09-22
Estimated Expiration
2042-01-18

AI Technical Summary

Technical Problem

Conventional methods for manufacturing electrode plates using die roll cutters result in burrs and electrode active material layer shedding, leading to decreased battery quality.

Method used

A cutting device and method that cuts electrode plates by advancing a first cutting blade from the first active material layer side to form a notch just before the current collector plate, followed by a second cutting blade from the second active material layer side to complete the cut, minimizing friction and burr generation.

Benefits of technology

Improves the quality of electrode plates by reducing burrs and shedding of the active material layer, ensuring planarity and linearity of the cut surfaces, thereby enhancing battery performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

A cutting device 1 cuts a connection body 4 of an electrode plate 2 having: a current collector plate 12 that has a first surface 12a and a second surface 12b facing away from each other; a first active material layer 14 that is laminated on the first surface 12a; and a second active material layer 16 that is laminated on the second surface 12b. The cutting device 1 comprises: a first processing part 8 that forms a cut 28 in the first active material layer 14 by advancing a first cutting blade 26 from the first active material layer 14 side to a position before the current collector plate 12; and a second processing part 10 that cuts the connection body 4 by advancing a second cutting blade 32 from a position on the second active material layer 16 side facing the cut 28 to past the current collector plate 12.
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Description

[Technical Field]

[0001] The present disclosure relates to a cutting device and a cutting method. [Background technology]

[0002] In recent years, with the spread of electric vehicles (EVs), hybrid vehicles (HVs), plug-in hybrid vehicles (PHVs), and other vehicles, shipments of in-vehicle secondary batteries have been increasing. In particular, shipments of lithium-ion secondary batteries have been increasing. In addition to in-vehicle use, secondary batteries are also becoming increasingly popular as power sources for portable devices such as laptop computers.

[0003] An example of a secondary battery includes a laminated electrode assembly in which multiple electrode plates are stacked, and a battery case that houses the laminated electrode assembly and an electrolyte. The electrode plate has a structure in which an electrode active material layer is stacked on the surface of a current collector plate made of metal foil or the like. Regarding such electrode plates, for example, Patent Document 1 discloses an electrode manufacturing facility that transports an electrode material in which an electrode active material is applied to a strip-shaped current collector plate, and continuously forms electrode plates by punching the electrode material with a die roll cutter. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2017-196669 Summary of the Invention [Problem to be solved by the invention]

[0005] As a result of extensive research into the manufacturing method of electrode plates, the inventors have found that there is room for improvement in the conventional manufacturing method in which electrode material is punched out with a die roll cutter in order to improve the quality of electrode plates.

[0006] The present disclosure has been made in light of these circumstances, and one of its objectives is to provide a technique for improving the quality of electrode plates. [Means for solving the problem]

[0007] One aspect of the present disclosure is a cutting device that cuts a continuum of electrode plates having a current collector plate with a first surface and a second surface facing each other, a first active material layer laminated on the first surface, and a second active material layer laminated on the second surface. This cutting device includes a first processing unit that advances a first cutting blade from the first active material layer side to just before the current collector plate to form a cut in the first active material layer, and a second processing unit that advances a second cutting blade from a position opposite the cut in the second active material layer side to beyond the current collector plate to cut the continuum.

[0008] Another aspect of the present disclosure is a cutting method for cutting a continuum of electrode plates having a current collector plate with a first surface and a second surface facing each other, a first active material layer laminated on the first surface, and a second active material layer laminated on the second surface. This cutting method includes: extending a first cutting blade from the first active material layer side to just before the current collector plate to form a cut in the first active material layer, and extending a second cutting blade from a position opposite the cut in the second active material layer side to beyond the current collector plate to cut the continuum.

[0009] Any combination of the above components, and conversion of the expression of the present disclosure into a method, device, system, etc., are also valid aspects of the present disclosure. [Effects of the Invention]

[0010] According to the present disclosure, the quality of the electrode plate can be improved. [Brief explanation of the drawings]

[0011] [Figure 1] 1 is a perspective view of a cutting device according to a first embodiment. [Figure 2] FIG. 2 is a cross-sectional view schematically showing a cutting device. [Figure 3] FIG. 10 is a cross-sectional view schematically showing a cutting device according to a second embodiment. [Figure 4] FIG. 10 is a cross-sectional view schematically showing a cutting device according to a third embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0012] The present disclosure will be described below with reference to preferred embodiments and drawings. The embodiments are illustrative and do not limit the present disclosure, and all features and combinations thereof described in the embodiments are not necessarily essential to the present disclosure. The same or equivalent components, parts, and processes shown in each drawing are designated by the same reference numerals, and redundant descriptions will be omitted where appropriate. The scale and shape of each part shown in each drawing are set for convenience to facilitate explanation and should not be interpreted as limiting unless otherwise specified. Furthermore, when terms such as "first" and "second" are used in this specification or claims, unless otherwise specified, these terms do not indicate any order or importance, but are intended to distinguish one configuration from another. Furthermore, some components that are not important for explaining the embodiments are omitted from each drawing.

[0013] (Embodiment 1) FIG. 1 is a perspective view of a cutting device 1 according to a first embodiment. FIG. 2 is a cross-sectional view schematically showing the cutting device 1. In FIG. 2, the conveying unit 6 is not shown, and only the first cutting blade 26 of the first processing unit 8 and only the second cutting blade 32 of the second processing unit 10 are shown. The illustration also shows a state in which the continuum 4 is extended in a straight line. The cutting device 1 is an apparatus that cuts the continuum 4 of electrode plates 2 to separate them into a plurality of electrode plates 2, and includes the conveying unit 6, the first processing unit 8, and the second processing unit 10.

[0014] The continuous body 4 is a strip-shaped body in which a plurality of electrode plates 2 are connected in the conveying direction of the continuous body 4. The continuous body 4 is cut by a first processing unit 8 and a second processing unit 10 to be divided into a plurality of electrode plates 2. The divided electrode plates 2 are alternately stacked with separators sandwiched between them to obtain a stacked electrode body. The obtained stacked electrode body can be used in rechargeable secondary batteries such as lithium-ion batteries, nickel-metal hydride batteries, and nickel-cadmium batteries, as well as capacitors such as electric double layer capacitors.

[0015] Each electrode plate 2 has a current collector 12, a first active material layer 14, and a second active material layer 16. The current collector 12 has a first surface 12a and a second surface 12b facing each other. The first active material layer 14 is laminated on the first surface 12a. The second active material layer 16 is laminated on the second surface 12b. Thus, the electrode plate 2 has a three-layer structure in which the current collector 12 is sandwiched between the first active material layer 14 and the second active material layer 16. In a typical lithium-ion secondary battery, the current collector 12 is made of aluminum foil or the like if it is the positive electrode, and copper foil or the like if it is the negative electrode. The first active material layer 14 and the second active material layer 16 can be formed by applying an electrode mixture to the first surface 12a and the second surface 12b of the current collector 12 using a known coating device, followed by drying and rolling. The electrode mixture is obtained by mixing and uniformly dispersing materials such as an electrode active material, a binder, and a conductive material in a dispersion medium. In the case of a typical lithium-ion secondary battery, the electrode active material is lithium cobalt oxide or lithium iron phosphate for the positive electrode, and graphite for the negative electrode.

[0016] The continuum 4 is transported by a transport unit 6. As an example, the transport unit 6 transports the continuum 4 using transport rolls 18, a transport drum 20, or the like. In this embodiment, the transport rolls 18 are arranged upstream of the transport drum 20 in the transport direction of the continuum 4. The transport drum 20 has a cylindrical drum main body 22 and a plurality of holding heads 24 arranged in the circumferential direction of the drum main body 22. The plurality of holding heads 24 have holding surfaces that suction-hold the continuum 4 and the singulated electrode plates 2. The holding surfaces of each holding head 24 face outward from the drum main body 22. The continuum 4 and the singulated electrode plates 2 are transported by the rotation of the drum main body 22 while being suction-held on the holding surfaces of the plurality of holding heads 24.

[0017] A first processing unit 8 and a second processing unit 10 are arranged on the transport path of the continuous body 4. As an example, the first processing unit 8 is arranged upstream of the transport roll 18, and the second processing unit 10 is arranged to face the transport drum 20. The first processing unit 8 is arranged to face the surface of the continuous body 4 facing the first active material layer 14. The transport roll 18 is arranged so that its peripheral surface is in contact with the surface of the continuous body 4 facing the second active material layer 16. The transport roll 18 turns the transport direction of the continuous body 4 and delivers it to the transport drum 20. The transport drum 20 transports the continuous body 4 by adsorbing and holding the surface of the continuous body 4 facing the first active material layer 14 with the holding surfaces of each holding head 24. Therefore, the continuous body 4 is transported with the surface facing the second active material layer 16 facing the outside of the drum. The continuous body 4 passes between the transport drum 20 and the second processing unit 10 at a position where they face each other, and then is transported downstream of the transport drum 20.

[0018] The first processing unit 8 has a first cutting blade 26. The first cutting blade 26 extends in the width direction of the continuum 4 (a direction perpendicular to the conveying direction) so as to overlap the entire continuum 4. The first processing unit 8 advances the first cutting blade 26 from the first active material layer 14 side of the continuum 4 to just before the current collector plate 12, forming a notch 28 in the first active material layer 14. The first processing unit 8 forms the notch 28 at the boundary between two adjacent electrode plates 2. The depth of the notch 28 is, for example, approximately 30% to 80% of the thickness of the first active material layer 14. The notch 28 is provided only in a portion of the first active material layer 14 in the thickness direction of the continuum 4. Therefore, even after the notch 28 is formed, the two adjacent electrode plates 2 remain connected by the remaining portion of the first active material layer 14, the current collector plate 12, and the second active material layer 16. The cut portions 28 may be formed over the entire thickness of the first active material layer 14. Even in this case, the two adjacent electrode plates 2 maintain a state in which they are connected by the current collector plates 12 and the second active material layers 16.

[0019] The first processing unit 8 of this embodiment continuously forms incisions 28 in the continuum 4 sequentially fed by the conveying unit 6. As an example, the first processing unit 8 has a first roll 30 that rotates in synchronization with the conveyance of the continuum 4. A first cutting blade 26 is provided on the circumferential surface of the first roll 30. In other words, the first processing unit 8 has a die roll cutter. The first roll 30 rotates in synchronization with the conveyance of the continuum 4, thereby continuously forming incisions 28.

[0020] The cutting device 1 may have a support unit (not shown) for supporting the continuum 4 at a position opposite the first processing unit 8 with the continuum 4 sandwiched therebetween. The support unit may be, for example, a roll that rotates in synchronization with the transport of the continuum 4. By sandwiching the continuum 4 between the first cutting blade 26 and the support unit, the incisions 28 can be formed more reliably. Furthermore, the accuracy of the depth of the incisions 28 can be improved.

[0021] The continuous body 4 with the cut portion 28 formed therein is transported to a position where the transport drum 20 and the second processing unit 10 face each other. With the continuous body 4 held by suction on the transport drum 20, the cut portion 28 is disposed between two adjacent holding heads 24. The second processing unit 10 is provided so as to be able to advance and retreat relative to the transport drum 20 in the radial direction of the transport drum 20. The second processing unit 10 also has a second cutting blade 32 facing the transport drum 20. The second processing unit 10 advances toward the transport drum 20, and inserts the second cutting blade 32 from a position facing the cut portion 28 on the second active material layer 16 side of the continuous body 4 until it passes the current collector plate 12.

[0022] The second cutting blade 32 enters the continuum 4 from the second surface 12b at a position overlapping the incision 28 when viewed in the thickness direction of the continuum 4, and penetrates at least the current collector plate 12. As a result, incisions 34 are formed in at least the second active material layer 16 and the current collector plate 12. Preferably, the second cutting blade 32 enters until it reaches the incision 28. As a result, incisions 34 are also formed in portions of the first active material layer 14 where the incision 28 is not formed. Also preferably, the second cutting blade 32 enters so that its cutting edge does not extend beyond the incision 28 or the first active material layer 14, i.e., does not extend beyond the surface of the continuum 4 facing the first active material layer 14. More preferably, the second processing unit 10 retracts from the continuum 4 when the cutting edge of the second cutting blade 32 reaches the bottom of the incision 28. The second processing unit 10 continuously forms incisions 34 in the continuum 4 sequentially fed by the conveying unit 6.

[0023] By forming the notches 34, the continuum 4 is cut and the electrode plates 2 are separated into individual pieces. Each of the separated electrode plates 2 is transported while being sucked and held by each holding head 24, and is delivered to a transport mechanism on the downstream side.

[0024] As described above, the cutting device 1 according to the present embodiment is a device that cuts a continuum 4 made up of a plurality of continuous electrode plates 2. Each electrode plate 2 has a structure in which a first active material layer 14 is laminated on the first surface 12a side of a current collector plate 12 and a second active material layer 16 is laminated on the second surface 12b side. The cutting device 1 includes a first processing unit 8 that advances a first cutting blade 26 into the continuum 4 from the first active material layer 14 side to just before the current collector plate 12, thereby forming a cut portion 28 in the first active material layer 14, and a second processing unit 10 that advances a second cutting blade 32 into the continuum 4 from a position opposite the cut portion 28 on the second active material layer 16 side until it passes the current collector plate 12, thereby cutting the continuum 4.

[0025] One method for dividing the continuous body 4 into a plurality of electrode plates 2 is to punch the continuous body 4 from one side using a die roll cutter. However, this method increases the risk of burrs being generated on the cut surface due to friction between the cut surface of the continuous body 4 or the electrode plate 2 and the belly of the cutting blade. Burrs generated on the cut surface can cause short circuits, which can lead to a decrease in battery quality. Furthermore, friction between the cut surface and the belly of the cutting blade can cause the electrode active material layer laminated on the other side of the continuous body 4 to fall off. This fall-off of the electrode active material layer can also lead to a decrease in battery quality.

[0026] In contrast, in the cutting device 1 of the present embodiment, the first processing unit 8 advances the first cutting blade 26 from the first active material layer 14 side to form the incision 28 only in the first active material layer 14, and then the second processing unit 10 advances the second cutting blade 32 from the second active material layer 16 side to cut the continuum 4. This allows the amount of advancement of the first cutting blade 26 and the second cutting blade 32 into the continuum 4 to be smaller than the thickness of the continuum 4. As a result, friction between the cut surface of the continuum 4 or the electrode plate 2 and the belly of the cutting blade is reduced, thereby suppressing the generation of burrs. Furthermore, shedding of the electrode active material layer due to friction between the cut surface and the belly of the cutting blade is suppressed. This improves the quality of the electrode plate 2.

[0027] Furthermore, in order to reduce the penetration amount of the cutting blade into the continuum 4, it is possible to insert the cutting blade into the continuum 4 only from the second active material layer 16 side, for example, and cut only the second active material layer 16 and the current collector plate 12. In this case, the first active material layer 14 is cut by the force applied to the continuum 4 when the cutting blade pushes the second active material layer 16 apart, or by the tensile stress applied to the continuum 4 during transport. However, the electrode active material layer is a layer made by compressing powder. Therefore, if the first active material layer 14 is cut by pulling it, there is a risk that an irregular cross section will be formed or that parts will fall off.

[0028] In contrast, in the present embodiment, the first active material layer 14 is provided with a cut portion 28 in advance to guide the cutting. This ensures the planarity or linearity of the cut surface of the first active material layer 14. This improves the quality of the electrode plate 2. If the second cutting blade 32 does not enter the continuum 4 until it reaches the cut portion 28, a portion of the first active material layer 14 may remain continuous. This portion will be cut by tensile stress or the like applied to the continuum 4. In the present embodiment, the first active material layer 14 has the cut portion 28, and therefore, when tensile stress or the like is applied to the continuum 4, stress is concentrated at the cut portion 28. This causes the first active material layer 14 to be cut along the cut portion 28. This ensures the linearity of the cut surface of the first active material layer 14, thereby improving the quality of the electrode plate 2.

[0029] It should be noted that tensile stress may be applied to the continuum 4 when it is cut. In the cutting device 1 of this embodiment, tensile stress is applied to the continuum 4 as it is transported. Alternatively, a tensile stress greater than the tensile stress as it is transported may be applied to the continuum 4. By applying tensile stress to the continuum 4, the electrode active material layer can be pulled away from the belly of the blade the moment the continuum 4 is cut. This is expected to have the effect of suppressing shear force from being applied to the electrode active material layer.

[0030] The cutting device 1 of this embodiment also includes a conveying unit 6 that conveys the continuum 4. The first processing unit 8 and the second processing unit 10 are disposed on the conveying path of the continuum 4, and form incisions 28 in the successively fed continuum 4 and cut the continuum 4. This allows the throughput of the cutting device 1 to be improved.

[0031] The first processing unit 8 of the present embodiment also has a first roll 30 having a first cutting blade 26 provided on its circumferential surface and rotating in synchronization with the conveyance of the continuum 4. This allows the cut portions 28 to be continuously formed in the continuum 4 with a simpler configuration.

[0032] (Embodiment 2) Except for the inclusion of a grooved support portion, the second embodiment has a common configuration with the first embodiment. The following description of the second embodiment will focus on the configuration that differs from the first embodiment, and the common configuration will be explained briefly or omitted entirely. Figure 3 is a cross-sectional view that schematically shows a cutting device 1 according to the second embodiment. In Figure 3, the conveying unit 6 is omitted, and only the first cutting blade 26 of the first processing unit 8 and only the second cutting blade 32 of the second processing unit 10 are shown. The illustration also shows the continuum 4 in a linearly extended state.

[0033] The cutting device 1 of this embodiment is provided with a support part 36 at a position facing the first processing part 8 across the continuum 4. The support part 36 supports the continuum 4 from the back side when the first cutting blade 26 of the first processing part 8 is pressed against the continuum 4. The support part 36 of this embodiment is formed, for example, by a roll that rotates in synchronization with the transport of the continuum 4. The support part 36 has a groove 38 at a position facing the first cutting blade 26 that is recessed in a direction away from the first processing part 8. As an example, the groove 38 extends in the width direction of the continuum 4 so as to overlap the entire first cutting blade 26.

[0034] When the first cutting blade 26 enters the continuum 4 from the first active material layer 14 side and presses the continuum 4 against the support 36, the portion of the second active material layer 16 overlapping the groove 38 is fractured starting from the edge of the groove 38 due to the absence of a receiving surface. The portion is then peeled off from the current collector plate 12 and falls into the groove 38. This forms a linear peeled portion 40 corresponding to the groove 38 at a position facing the notch 28 in the second active material layer 16. Preferably, the width of the groove 38 (the size in the conveyance direction of the continuum 4) is narrower than the width of the first cutting blade 26. This facilitates fracture of the second active material layer 16 starting from the edge of the groove 38, making it easier to form the peeled portion 40. The width of the groove 38 is, for example, the width of the portion (opening) where the continuum 4 intersects with the surface of the support 36. The width of the first cutting blade 26 is, for example, the width of the cutting edge-side end of the belly (blank) of the first cutting blade 26. The active material that has fallen into the grooves 38 may be collected by a suction mechanism (not shown) or the like.

[0035] The continuous body 4 with the cut portions 28 and peeling portions 40 formed therein is transported by the transport drum 20 to the second processing unit 10. The second processing unit 10 causes the second cutting blade 32 to enter the peeling portion 40 from the second active material layer 16 side of the continuous body 4. This cuts the current collector plate 12, and the electrode plates 2 are separated into individual pieces.

[0036] The cutting device 1 according to the present embodiment can also achieve the same effects as the cutting device 1 according to the first embodiment. Furthermore, in the present embodiment, a peeling portion 40 that serves as a guide for the position of the cut portion 28 is formed in the second active material layer 16. This makes it easier to insert the second cutting blade 32 into a position opposite the cut portion 28. This can further improve the quality of the electrode plate 2.

[0037] (Embodiment 3) Except for the shape of the second processing unit 10, the third embodiment has the same configuration as the second embodiment. The following description of the third embodiment will focus on the configuration that differs from the second embodiment, and the common configuration will be briefly described or omitted altogether. FIG. 4 is a cross-sectional view that schematically shows a cutting device 1 according to the third embodiment. In FIG. 4, the conveying unit 6 is not shown, and only the first cutting blade 26 and a portion of the first roll 30 of the first processing unit 8, and only the second cutting blade 32 and a portion of the second roll 42 of the second processing unit 10 are shown. The illustration also shows the continuum 4 in a linearly extended state.

[0038] The first processing unit 8 of this embodiment has a first roll 30 having a first cutting blade 26 provided on its circumferential surface and rotating in synchronization with the conveyance of the continuum 4. In other words, the first processing unit 8 has a die roll cutter. The second processing unit 10 of this embodiment has a second roll 42 having a second cutting blade 32 provided on its circumferential surface and rotating in synchronization with the conveyance of the continuum 4. In the cutting device 1 of this embodiment, a support unit 36 ​​having a groove 38 is disposed at a position opposite the first processing unit 8 across the continuum 4.

[0039] As the first roll 30 rotates in synchronization with the transport of the continuum 4, the first cutting blade 26 is inserted into the boundary between two adjacent electrode plates 2, forming a notch 28. In addition, as the notch 28 is formed, a peeling portion 40 is formed in the second active material layer 16 at a position facing the notch 28. The support portion 36 may be omitted. As the second roll 42 rotates in synchronization with the transport of the continuum 4, the second cutting blade 32 is inserted into the peeling portion 40 from the second active material layer 16 side, and the current collector plate 12 is cut.

[0040] The cutting device 1 according to this embodiment can also achieve the same effects as the cutting device 1 according to the first embodiment. Furthermore, the second processing unit 108 according to this embodiment has a second roll 42 on the circumferential surface of which the second cutting blade 32 is provided and which rotates in synchronization with the conveyance of the continuum 4. This allows the electrode plates 2 to be continuously divided into individual pieces with a simpler configuration. The use of the second roll 42 in the second processing unit 10 and the use of the first roll 30 in the first processing unit 8 can be implemented independently. For example, the second processing unit 10 may be a die roll cutter, and the first processing unit 8 may have a structure in which the first cutting blade 26 advances and retreats relative to the continuum 4 in a direction intersecting the conveyance direction of the continuum 4.

[0041] The above describes the embodiments of the present disclosure in detail. The above-described embodiments merely illustrate specific examples of implementing the present disclosure. The content of the embodiments does not limit the technical scope of the present disclosure, and many design modifications, such as changing, adding, or deleting components, are possible within the scope of the concept of the present disclosure defined in the claims. A new embodiment with design modifications will combine the effects of the combined embodiments and modifications. In the above-described embodiments, the content in which such design modifications are possible is emphasized by using notations such as "in this embodiment" or "in this embodiment," but design modifications are also permitted even in content without such notation. Any combination of the above components is also valid as an aspect of the present disclosure. Hatching in cross sections in the drawings does not limit the material of the hatched object.

[0042] The embodiments may be specified by the following items. [Item 1] A cutting device (1) for cutting a continuum (4) of electrode plates (2) each having a current collector plate (12) having a first surface (12a) and a second surface (12b) facing each other, a first active material layer (14) laminated on the first surface (12a), and a second active material layer (16) laminated on the second surface (12b), a first processing unit (8) that advances a first cutting blade (26) from the first active material layer (14) side to just before the current collector plate (12) to form a notch (28) in the first active material layer (14); a second processing unit (10) that advances a second cutting blade (32) from a position facing the notch (28) on the second active material layer (16) side until the second cutting blade (32) extends beyond the current collector plate (12) to cut the continuum (4); Cutting device (1). [Item 2] a conveying section (6) for conveying the continuum (4), The first processing unit (8) and the second processing unit (10) are disposed on the conveying path of the continuum (4). Item 1. The cutting device (1) according to item 1. [Item 3] The first processing section (8) has a first roll (30) on the circumferential surface of which a first cutting blade (26) is provided and which rotates in synchronization with the conveyance of the continuum (4). Item 2. The cutting device (1) according to item 2. [Item 4] The second processing section (10) has a second roll (42) on the circumferential surface of which a second cutting blade (32) is provided and which rotates in synchronization with the conveyance of the continuous body (4). 4. The cutting device (1) according to item 2 or 3. [Item 5] The cutting device (1) is provided with a support part (36) that faces the first processing part (8) across the continuous body (4) and supports the continuous body (4); The support portion (36) has a groove (38) recessed in a direction away from the first processing portion (8) at a position facing the first cutting blade (26). A cutting device (1) according to any one of items 1 to 4. [Item 6] A cutting method for cutting a continuum (4) of electrode plates (2) each having a current collector plate (12) having a first surface (12a) and a second surface (12b) facing each other, a first active material layer (14) laminated on the first surface (12a), and a second active material layer (16) laminated on the second surface (12b), the method comprising: The first cutting blade (26) is advanced from the first active material layer (14) side to just before the current collector plate (12) to form a notch (28) in the first active material layer (14); and cutting the continuum (4) by inserting a second cutting blade (32) from a position facing the cut portion (28) on the second active material layer (16) side until the second cutting blade (32) extends beyond the current collector plate (12). Cutting method. [Industrial Applicability]

[0043] The present disclosure can be used for a cutting device and a cutting method. [Explanation of symbols]

[0044] 1 cutting device, 2 electrode plate, 4 continuum, 6 conveying section, 8 first processing section, 10 second processing section, 12 current collecting plate, 12a first surface, 12b second surface, 14 first active material layer, 16 second active material layer, 26 first cutting blade, 28 notch section, 30 first roll, 32 second cutting blade, 36 support section, 38 groove, 42 second roll.

Claims

1. A cutting device for cutting a continuum of electrode plates, the continuum having a current collector plate having a first surface and a second surface facing each other, a first active material layer laminated on the first surface, and a second active material layer laminated on the second surface, a first processing unit that advances a first cutting blade from the first active material layer side to just before the current collector plate to form a cut portion in the first active material layer; a second processing unit that advances a second cutting blade from a position facing the notch on the second active material layer side until the second cutting blade extends beyond the current collector plate, thereby cutting the continuum; Cutting device.

2. a conveying unit that conveys the continuum, the first processing unit and the second processing unit are disposed on a conveying path of the continuous body; 2. The cutting device of claim 1.

3. the first processing unit has a first roll having the first cutting blade provided on a peripheral surface thereof and rotating in synchronization with the conveyance of the continuous body; 3. The cutting device of claim 2.

4. the second processing unit has a second roll having the second cutting blade provided on a peripheral surface thereof and rotating in synchronization with the conveyance of the continuous body; 4. A cutting device according to claim 2 or 3.

5. the cutting device includes a support part that faces the first processing part across the continuous body and supports the continuous body, The support portion has a groove recessed in a direction away from the first processing portion at a position facing the first cutting blade.

5. A cutting device according to any one of claims 1 to 4.

6. A cutting method for cutting a continuum of electrode plates, the continuum having a current collector plate having a first surface and a second surface facing each other, a first active material layer laminated on the first surface, and a second active material layer laminated on the second surface, the method comprising: a first cutting blade is inserted from the first active material layer side to just before the current collector plate, to form a notch in the first active material layer; and cutting the continuum by inserting a second cutting blade from a position facing the cut portion on the second active material layer side until the second cutting blade extends beyond the current collector plate. Cutting method.

Citation Information

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