Formation device for pouch-type battery cells

JP7838854B2Active Publication Date: 2026-04-01LG ENERGY SOLUTION LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-09-05
Publication Date
2026-04-01

AI Technical Summary

Technical Problem

Existing pouch-type battery cell formation processes face issues with gas expansion causing interference and electrolyte discharge, leading to potential contamination and safety hazards, and the process of forming exhaust holes is complex and time-consuming.

Method used

A formation device with a charging unit, loading and unloading buffers, a hole processing unit, and a sealing unit that allows for partial charging to expand gas pockets, forming discharge holes, and then discharging gas without electrolyte, using a hole processing unit that can form holes simultaneously or sequentially in multiple cells.

Benefits of technology

The device stabilizes the charging process by preventing electrolyte discharge and reducing contamination risks while efficiently forming and sealing discharge holes in battery cells, ensuring safe and efficient gas release.

✦ Generated by Eureka AI based on patent content.

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Abstract

The disclosed invention includes a charging unit that charges battery cells, a loading buffer unit where battery cells wait before being inserted into the charging unit, an unloading buffer unit where battery cells that have been fully charged and removed from the charging unit wait, a hole processing unit that forms a discharge hole in a gas pocket portion of the battery cell, and a sealing unit that seals the discharge hole of the battery cell.
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Description

Technical Field

[0001] The present invention relates to a formation device for a pouch-type battery cell.

[0002] More specifically, the present invention relates to a formation device for a pouch-type battery cell that can prevent electrolyte from being discharged together when discharging gas generated during the formation process of the battery cell.

[0003] This application claims the benefit of priority based on Korean Patent Application No. 10-2022-0113045 filed on September 6, 2022, and all the contents disclosed in the literature of the Korean patent application are included as part of this specification. <0​​​​​​​​​​​​​During this formation process, both sides of the battery cell can be pressurized using a pressurizing means such as a jig (Zig) containing a flat pressure plate during activation charging; this is also called jig formation.

[0007] The jig formation described above can prevent the negative electrode from expanding during the activation process, promote the chemical reaction of the battery to induce gas generation, and move the generated internal gas to the gas pocket.

[0008] Here, when the electrode assembly is placed inside the pouch, the electrolyte is injected, and the formation process is performed while it is sealed, a gas is generated by the chemical reaction between the electrolyte and the electrodes, causing the gas pocket of the pouch-type secondary battery to expand.

[0009] When the gas pocket expands excessively in this way, interference and collision with the transport means may occur when the battery cells are unloaded from the jig formation equipment. Furthermore, interference between battery cells during the transport process can cause defects in the appearance of the battery cells, and an excessive amount of pouching is required to create sufficient internal space in the gas pocket.

[0010] To solve the problems mentioned above, during the battery cell formation process, exhaust holes are formed in the gas pockets of the battery cells to release gas generated inside the battery cells. However, the process of forming exhaust holes in the battery cells to release gas is complex, and the process time is long because exhaust holes are formed sequentially in each battery cell.

[0011] Furthermore, when forming exhaust holes in the gas pocket of a battery cell, there was a problem in that the internal pressure of the battery cell would increase during gas release, causing the electrolyte to be released along with the gas, potentially contaminating the outside and leading to a safety accident. [Prior art documents] [Patent Documents]

[0012] [Patent Document 1] Korean Published Patent Publication No. 10-2013-0024807 [Overview of the project] [Problems that the invention aims to solve]

[0013] The present invention was created to solve the above-mentioned problems, and aims to provide a pouch-type battery cell formation device in which a hole processing unit that forms discharge holes in the gas pocket portion of the battery cell is installed in close proximity to a charging unit that charges and discharges the battery cell, thereby facilitating the formation process.

[0014] The objective is to provide a pouch-type battery cell formation device that enables stable charging and discharging by partially charging the pouch-type battery cell to partially expand the gas pocket to a predetermined size, forming an exhaust hole in the gas pocket of the battery cell to discharge only the internal gas to the outside without discharging the electrolyte, and then naturally discharging the internal gas generated during the process while the battery cell with the exhaust hole formed is again charged.

[0015] Furthermore, the objective is to provide a pouch-type battery cell formation device that prevents contamination of the surrounding area by preventing the discharge of electrolyte along with gas discharge, by discharging only the internal gas generated in the battery cell during the formation process. [Means for solving the problem]

[0016] To address the above-mentioned challenges, the present invention is characterized by including a charging unit for charging battery cells, a loading buffer unit where battery cells await before being loaded into the charging unit, an unloading buffer unit where battery cells that have been discharged from the charging unit after charging are complete wait, a hole processing unit for forming discharge holes in the gas pockets of the battery cells, and a sealing unit for sealing the discharge holes of the battery cells.

[0017] In one embodiment, the charging unit can partially charge the battery cell to partially expand the gas pocket.

[0018] As a specific embodiment, a battery cell can be partially charged to partially expand the gas pocket, and then a discharge hole can be formed in the gas pocket of the battery cell via a hole processing section.

[0019] In another specific embodiment, the charging unit may perform residual charging after discharging gas through the discharge hole in the gas pocket.

[0020] In another embodiment, the hole processing section is provided on one side of the charging section and can form discharge holes in the gas pockets of the battery cells housed in the charging section.

[0021] In one embodiment, the hole processing section is formed in multiple units corresponding to the battery cells arranged in the charging section and includes a hole processing unit that forms a discharge hole in the gas pocket of each battery cell, a hole processing unit moving member connected to each hole processing unit that moves the hole processing unit forward and backward in the direction of the battery cell, and a drive unit that drives the hole processing unit moving member, so that discharge holes can be formed in the gas pocket of the battery cell simultaneously by multiple hole processing units.

[0022] As a specific embodiment, the hole processing unit may include a pair of gas pocket pressing members that press the gas pocket portion of a battery cell, hole processing members installed inside the gas pocket pressing members and forming discharge holes on the pressing surface of the gas pocket portion when the gas pocket portion is pressed, and a hole processing unit body coupled to one side of the gas pocket pressing members that moves the gas pocket pressing members toward or toward each other.

[0023] As another embodiment, the hole processing unit includes one hole processing unit that forms discharge holes in the gas pocket portions of the battery cells arranged in the charging unit, a hole processing unit moving member that is coupled to the hole processing unit and moves the hole processing unit forward and backward in the direction of the battery cells, and a driving unit that drives the hole processing unit moving member, and the hole processing unit can sequentially form discharge holes in the gas pocket portions of each battery cell.

[0024] As a specific embodiment, the hole processing unit may include a pair of gas pocket portion pressing members that press the gas pocket portions of the battery cells, hole processing members that are respectively installed inside the gas pocket portion pressing members and form discharge holes on the pressing surfaces of the gas pocket portions when the gas pocket portions are pressed, and a hole processing unit main body that is coupled to one side of the gas pocket portion pressing members, moves the gas pocket portion pressing members in a direction approaching or separating from each other, and is slidably coupled to the hole processing unit moving member.

[0025] As one embodiment, the charging unit may further include a hole processing buffer unit where the charged battery cells wait to form discharge holes.

[0026] As a specific embodiment, the hole processing buffer unit may include a processing plate and a plurality of hole processing alignment guide members that are installed at a certain interval from the processing plate so that the battery cells are arranged on the upper part of the processing plate.

[0027] As another embodiment, the hole processing unit is provided on one side of the hole processing buffer unit and can form discharge holes in the gas pocket portions of the battery cells accommodated in the hole processing buffer unit.

Effects of the Invention

[0028] According to the present invention, the hole processing unit that forms discharge holes in the gas pocket portions of the battery cells is installed close to the charging unit that charges and discharges the battery cells, and the formation process is easy.

[0029] Furthermore, by partially charging the pouch-type battery cell and partially expanding the vacuum-sealed parts of the gas pocket so that they separate from each other, the gas pocket does not expand excessively, thereby preventing the electrolyte from being discharged when forming discharge holes in the gas pocket, and allowing only the internal gas to be stably discharged.

[0030] Furthermore, by partially charging the battery cell and then performing residual charging to discharge the internal gas through the discharge hole, it is possible to stably discharge only the internal gas without discharging the electrolyte, thereby preventing external contamination. [Brief explanation of the drawing]

[0031] [Figure 1] This is a schematic plan view showing a formation device for pouch-type battery cells according to one embodiment of the present invention. [Figure 2] Figure 1 is a schematic diagram. [Figure 3] This is a schematic perspective view showing the charging section and hole processing section of a pouch-type battery cell formation device according to one embodiment of the present invention. [Figure 4] This is a schematic perspective view showing a hole processing section according to one embodiment of the present invention. [Figure 5] This is a schematic perspective view showing a hole processing unit of a hole processing section according to one embodiment of the present invention. [Figure 6] This diagram schematically shows the operation process of a hole processing unit according to one embodiment of the present invention. [Figure 7] This is a schematic perspective view showing one modified example of a hole processing section according to one embodiment of the present invention. [Figure 8] This is a schematic perspective view showing the loading buffer / unloading buffer section according to one embodiment of the present invention. [Figure 9] This is a schematic perspective view showing a sealing portion according to one embodiment of the present invention. [Figure 10] This is a schematic plan view showing a pouch-type battery cell formation device according to another embodiment of the present invention. [Figure 11]This is a schematic perspective view showing the hole processing buffer section of a pouch-type battery cell formation device according to another embodiment of the present invention. [Figure 12] This is a schematic perspective view showing the hole processing buffer section and hole processing section of a pouch-type battery cell formation device according to another embodiment of the present invention. [Modes for carrying out the invention]

[0032] The present invention will now be described in detail. Before that, however, the terms and words used herein and in the claims shall not be interpreted to be limited to their ordinary or dictionary meanings, but rather to be interpreted as meanings and concepts consistent with the technical idea of ​​the present invention, based on the principle that an inventor may appropriately define the concepts of terms in order to best describe his own invention.

[0033] As used throughout this specification, terms such as “includes” and “have” are intended to specify the existence of features, figures, stages, operations, components, parts, or combinations thereof as described in the specification, and are understood not to preemptively exclude the existence or possibility of adding one or more other features, figures, stages, operations, components, parts, or combinations thereof.

[0034] Furthermore, when a part such as a layer, film, region, or plate is said to be "on top" of another part, this includes not only the case where it is "directly above" the other part, but also the case where there is another part in between. Conversely, when a part such as a layer, film, region, or plate is said to be "below" another part, this includes not only the case where it is "directly below" the other part, but also the case where there is another part in between. Moreover, in the specification of this invention, being "placed on top" may include being placed not only at the top but also at the bottom.

[0035] Furthermore, when a part such as a layer, film, region, or plate is said to be "on top" of another part, this includes not only the case where it is "directly above" the other part, but also the case where there is another part in between. Conversely, when a part such as a layer, film, region, or plate is said to be "below" another part, this includes not only the case where it is "directly below" the other part, but also the case where there is another part in between. Also, in this application, being "placed on top" may include being placed not only at the top but also at the bottom.

[0036] (First Embodiment) Figure 1 is a schematic plan view showing a pouch-type battery cell formation device according to one embodiment of the present invention. Figure 2 is a schematic diagram of Figure 1. Figure 3 is a schematic perspective view showing the charging section and hole processing section of a pouch-type battery cell formation device according to one embodiment of the present invention. Figure 4 is a schematic perspective view showing the hole processing section according to one embodiment of the present invention. Figure 5 is a schematic perspective view showing the hole processing unit of the hole processing section according to one embodiment of the present invention. Figure 6 is a schematic diagram showing the operation process of the hole processing section according to one embodiment of the present invention. Figure 7 is a schematic perspective view showing a modified example of the hole processing section according to one embodiment of the present invention. Figure 8 is a schematic perspective view showing the loading buffer section / unloading buffer section according to one embodiment of the present invention. Figure 9 is a schematic perspective view showing the sealing section according to one embodiment of the present invention.

[0037] As shown in the drawings, a pouch-type battery cell formation device 1 according to one embodiment of the present invention comprises a charging unit 10 for charging the battery cells 3, a loading buffer unit 20 where the battery cells 3 wait before being loaded into the charging unit 10, an unloading buffer unit 30 where the battery cells 3 wait after being discharged from the charging unit 10 after charging is complete, a hole processing unit 50 for forming discharge holes 3b in the gas pockets 3a of the battery cells 3, and a sealing unit 70 for sealing the discharge holes 3b of the battery cells 3.

[0038] The charging unit 10 described above is for activating the battery cell 3 by charging and discharging it under set charge and discharge conditions, and includes a frame 12 that houses the battery cell 3, a charge and discharge unit (not shown) for charging and discharging the battery cell 3, and a pressurizing jig 11 for pressurizing the battery cell 3.

[0039] The above-described pressurizing jig 11 may include a jig frame 13, a number of pressurizing plates 15 arranged inside the jig frame 13, and a drive unit 16 for driving the number of pressurizing plates 15.

[0040] Battery cells 3 for performing the formation process may be placed between each of the above-mentioned pressure plates 15.

[0041] Here, the drive unit 16 includes a drive motor 16a and a drive shaft 16b. When the drive shaft 16b rotates due to the rotation of the drive motor 16a, a plurality of pressure plates 15 that mesh with it move in one direction, thereby applying pressure to both sides of the battery cell 3.

[0042] The loading buffer section 20 is a space provided for the battery cells 3 to wait before being loaded into the charging section 10, and the loader / unloader 90 places the battery cells 3 into the loading buffer section 20.

[0043] Here, the loading buffer unit 20 includes a transfer unit 21 for transferring the battery cells 3, and a number of alignment guide members 23 installed at regular intervals along the transfer direction of the battery cells 3 so that a number of battery cells 3 are arranged in an upright position.

[0044] In this case, the state in which the battery cell 3 is upright means that the gas pocket portion 3a is located at the top and the electrode assembly housing portion (not shown in the drawing reference numerals) is located at the bottom.

[0045] The loading buffer section 20 described above has a structure in which a battery cell 3 is inserted into the space between one of the many alignment guide members 23 and another alignment guide member 23 adjacent to it.

[0046] For this purpose, the alignment guide member 23 may include a pair of guide bars 23a and 23b, which may be provided at a certain distance from each other so that one guide bar 23a can support the right side of the battery cell 3 and the other guide bar 23b can support the left side of the battery cell 3.

[0047] In this case, the guide bars 23a and 23b have a predetermined width and can be extended in the height direction of the battery cell 3. Furthermore, the height of the guide bars 23a and 23b may be slightly higher or lower than the height of the battery cell 3, and it is preferable that they are located in a region where interference with the hole processing unit 51 of the hole processing section 50 (described later) can be avoided when the hole processing unit 51 approaches the gas pocket section 3a of the battery cell 3 to form the discharge hole 3b.

[0048] The unloading buffer section 30 described above is a space provided for the battery cells 3 that have been unloaded from the charging section 10 after the formation process is completed to wait. The sealing process can be carried out via the sealing section 70, which will be described later, and the cells can be unloaded from the formation device 1 by the loader / unloader 90 when the sealing process is completed.

[0049] Here, since the unloading buffer unit 30 has the same configuration as the loading buffer unit 20, a detailed explanation of the unloading buffer unit 30 will be replaced by the explanation of the loading buffer unit 20 and will be omitted below.

[0050] The hole processing section 50 described above is for forming an exhaust hole 3b in the gas pocket section 3a of the battery cell 3 to discharge the internal gas of the battery cell 3.

[0051] Here, the hole processing section 50 is provided on one side of the charging section 10 and can form discharge holes 3b in the gas pocket section 3a of the battery cell 3 housed in the charging section 10.

[0052] Specifically, the hole processing section 50 is formed in multiple locations corresponding to the battery cells 3 arranged in the charging section 10 and includes a hole processing unit 51 that forms discharge holes 3b in the gas pocket portion 3a of each battery cell 3, a hole processing unit moving member 57 connected to each hole processing unit 51 that moves the hole processing unit 51 forward and backward in the direction of the battery cell 3, and a drive unit (not shown) that drives the hole processing unit moving member 57.

[0053] In this case, the hole processing unit 51 is formed in multiple locations corresponding to the battery cells 3 arranged in the charging unit 10, so that multiple hole processing units 51 can simultaneously form discharge holes 3b in the gas pocket portion 3a of the battery cells 3.

[0054] Here, the hole processing unit moving member 57 is configured to move forward in the direction of the battery cell 3 in order to perform the hole processing process in the battery cell 3 with the hole processing unit 51, or to move backward to its original position after the hole processing process is completed. For this purpose, the hole processing unit moving member 57 may consist of a sliding structure or a cylinder structure that can move forward and backward in the direction of the battery cell 3. Since the above structure is a general configuration, a detailed explanation will be omitted below.

[0055] On the other hand, the hole processing unit 51 includes a pair of gas pocket pressing members 52, 52' that press against the gas pocket portion 3a of the battery cell 3, a hole processing member installed inside the gas pocket pressing members 52, 52', which penetrates a part of the pressing surface pressed when the gas pocket portion 3a is pressed by the gas pocket pressing members 52, 52' to form a discharge hole 3b, and a hole processing unit body 55 on which the pair of gas pocket pressing members 52, 52' are installed to be movable toward the gas pocket portion 3a, and the hole processing unit body 55 is connected to a hole processing unit moving member 57 and moves forward and backward toward the battery cell 3.

[0056] Here, the gas pocket portion pressing members 52 and 52' are for pressing and fixing the gas pocket portion 3a of the battery cell 3, and when the hole processing member 53 forms the discharge hole 3b on the gas pocket portion 3a, they press the battery cell 3 to maintain a fixed state.

[0057] The hole processing unit body 55 has a sliding structure at the surface that connects to the gas pocket pressing members 52 and 52', causing the pair of gas pocket pressing members 52 and 52' to slide in a direction toward or toward each other.

[0058] As a result, the gas pocket pressing members 52 and 52' slide toward each other when pressing the gas pocket 3a, and slide toward each other when the hole machining process is completed to release the pressing state.

[0059] Here, the pair of gas pocket pressing members 52, 52' can press with the gas pocket 3a interposed between them, and in this case, when sliding to press the battery cell 3, the sliding movement can be stopped at a point where the distance between them becomes equal to the thickness of the gas pocket 3a.

[0060] On the other hand, the gas pocket portion pressing members 52 and 52' have pressing surfaces on the inside facing the battery cell 3 so as to contact and press both sides of the gas pocket portion 3a in the thickness direction, and a hole processing member 53 is installed in a part of the pressing surface.

[0061] Here, the hole processing member 53 is preferably made of a shape and material that can form a discharge hole 3b in the gas pocket portion 3a, but more preferably the hole processing member 53 may consist of a needle-shaped member 53a with a pointed end and a needle-shaped member groove 53b in which a curved portion is formed that curves inward towards the pointed part of the needle-shaped member 53a.

[0062] Furthermore, the hole processing member 53 can be a punching die, and various other modifications are possible.

[0063] On the other hand, to prevent damage to the battery cell 3 when the gas pocket pressing members 52 and 52' are pressed, an elastic pressure pad 52a may be attached to one of their extensions. Here, the one extension refers to the portion of the gas pocket pressing members 52 and 52' that extends toward the battery cell 3.

[0064] With the above-described structure, the movement of the hole processing unit moving member 57 causes the gas pocket pressing members 52 and 52' to move forward and backward toward the battery cell 3. After the pair of gas pocket pressing members 52 and 52' that have moved forward toward the battery cell 3 move toward each other toward the gas pocket portion 3a of the battery cell 3, the hole processing member 53 can form a discharge hole 3b in the gas pocket portion 3a while pressing down on the gas pocket portion 3a. This allows for the simultaneous formation of discharge holes 3b in the gas pocket portions 3a of multiple battery cells 3 arranged in the charging unit 10 via the multiple gas pocket pressing members 52 and 52' and the hole processing members 53 formed thereon.

[0065] In one embodiment of the present invention, multiple hole processing units 51 are formed in the hole processing section 50, and gas pockets 3a are formed simultaneously for a large number of battery cells 3 arranged in the charging section 10. However, as shown in Figure 7, it is also possible to have only one hole processing unit 51 in the hole processing section 50, and a hole processing unit body 55, which is coupled to a pair of gas pocket pressing members 52, 52' of the hole processing unit 51, moves the gas pocket pressing members 52, 52' toward or away from each other, and is coupled so as to be slidable with respect to the longitudinal direction of the hole processing unit moving member 57, thereby sequentially forming discharge holes 3b in the gas pockets 3a of each battery cell 3 with the hole processing unit 51.

[0066] In this case, the gas pocket pressing members 52 and 52' move forward toward the battery cell 3 via the hole processing unit moving member 57, then form a discharge hole 3b in the gas pocket portion 3a of one of the battery cells 3, and after the discharge hole 3b is formed, move backward to return to the original position, the hole processing unit body 55 moves on the hole processing unit moving member 57 and moves in the thickness direction of the battery cell 3, then move forward toward the battery cell 3 via the hole processing unit moving member 57, and form a discharge hole 3b in the gas pocket portion 3a of the other battery cell 3, and so on. In this way, the hole processing unit 51 moves back and forth toward the battery cell 3 via the hole processing unit moving member 57, and the hole processing unit body 55 slides on the hole processing unit moving member 57 to form discharge holes 3b in the gas pocket portion 3a of the battery cell 3, thereby sequentially forming discharge holes 3b in the battery cell 3.

[0067] The sealing portion 70 described above is for sealing and sealing the discharge hole 3b formed in the gas pocket portion 3a of the battery cell 3. In the present invention, the meaning of sealing the discharge hole 3b is a concept that includes sealing the discharge hole 3b or sealing the area around the discharge hole 3b to seal the discharge hole 3b.

[0068] Specifically, the sealing portion 70 includes a sealing unit 71 that seals the discharge hole 3b while pressing down on both sides of the gas pocket portion 3a, a sealing unit moving member 77 coupled to one side of the sealing unit 71 that moves the sealing unit 71 forward or backward in the direction of the battery cell 3, and a drive unit (not shown) that drives the sealing unit moving member 77.

[0069] Here, the sealing unit 71 includes a pair of discharge hole pressing members 72, 72' that press against the discharge hole 3b and its surroundings, a pair of sealing members 73 installed inside each of the pair of discharge hole pressing members 72, 72' that seal the discharge hole 3b or its surroundings when the discharge hole pressing members 72, 72' press against the discharge hole 3b and its surroundings, and a sealing unit body 75 on which the pair of discharge hole pressing members 72, 72' are installed to be movable toward the discharge hole 3b, and the sealing unit body 75 is connected to a sealing unit moving member 77 and moves forward and backward in the direction of the battery cell 3.

[0070] Here, the discharge hole pressing members 72 and 72' are for pressing and fixing the discharge hole 3b of the gas pocket portion 3a, and when the discharge hole 3b is sealed with the sealing member 73, they press the battery cell 3 to maintain a fixed state.

[0071] Furthermore, the sealing unit body 75 has a sliding structure at the surface that connects to the discharge hole pressing members 72 and 72', causing the pair of discharge hole pressing members 72 and 72' to slide in a direction toward or toward each other.

[0072] As a result, the discharge hole pressing members 72, 72' slide toward each other when pressing the discharge hole 3b or its vicinity, and slide toward each other when the sealing process is complete to release the pressing state.

[0073] With the above-described structure, the discharge hole pressing members 72 and 72' press down on the battery cell 3 to maintain a fixed state, and then the discharge hole pressing members 72 and 72' can press down on and seal the discharge hole 3b of the battery cell 3 and its surroundings.

[0074] Here, the sealing portion 70 is preferably provided on one side of the unloading buffer portion 30 and seals the discharge hole 3b formed in the gas pocket portion 3a of the battery cell 3 after charging is complete, but is not limited to this.

[0075] Furthermore, the sealing unit 71 of the sealing section 70 may be formed in multiple units to seal the discharge holes 3b of the numerous battery cells 3 arranged in the unloading buffer section 30, but is not limited to this.

[0076] On the other hand, the pair of sealing members 73 consist of a pair of sealing tools (not shown in the drawing reference numerals) for sealing the area around the discharge hole 3b, and are designed to heat-seal the pouch by heat-pressing the area around the discharge hole 3b.

[0077] In this case, the sealing tool may, but is not limited to, a hard metal material with excellent thermal conductivity.

[0078] Here, the form of the sealing tool can be formed in various ways, and the sealing tool can be "U" shaped or, if it is advantageous for sealing the discharge hole 3b and its surroundings, Whether it is "JPEG0007838854000001.jpg1230" type or "L" type, While it may be of the "JPEG0007838854000002.jpg2324" type, the invention is not limited to this form, and various methods disclosed at the time of filing the application of the present invention may be adopted.

[0079] On the other hand, the sealing member 73 may be composed of a tape that seals the area including the discharge hole 3b, and may be configured to bond the discharge hole 3b.

[0080] In this case as well, to prevent damage to the pouch during pressing, an elastic pressure pad 72a may be attached to one of the extensions of the discharge hole pressing members 72 and 72'.

[0081] Here, the process by which the sealing portion 70 approaches the battery cell 3 is the same as the process by which the hole processing portion 50 approaches the battery cell 3. Therefore, the explanation of the operation process of the sealing portion 70 will be replaced by this explanation, and a detailed explanation will be omitted below.

[0082] On the other hand, in order to discharge the internal gas generated in the battery cell 3 during the formation process of the pouch-type battery cell via the formation device according to the present invention, the upper part of the formation device may include an air supply unit (not shown) and a gas exhaust unit (not shown).

[0083] The air supply unit is configured to bring in and supply external air into the formation device, and the gas exhaust unit is configured to discharge gas generated during the formation process to the outside.

[0084] The following outlines the operation process of a pouch-type battery cell formation device according to one embodiment of the present invention, with reference to the drawings.

[0085] First, the manufactured pouch-type battery cells 3 are supplied to the loading buffer unit 20, and the battery cells 3 supplied to the loading buffer unit 20 are then supplied to the charging unit 10 for charging and discharging.

[0086] The battery cells 3 supplied to the charging unit 10 undergo predetermined charging and discharging using a charge / discharge device in order to activate the battery.

[0087] Specifically, the battery cells 3 supplied to the charging unit 10 undergo partial charging, causing the gas pocket portion 3a to partially expand.

[0088] In this case, partial charging can be performed to charge the battery cell 3 to 50% or less of its total charge capacity.

[0089] In this manner, after partially expanding the gas pocket portion 3a of the battery cell 3 to a predetermined size via the charging unit 10, a discharge hole 3b is formed in the gas pocket portion 3a via the hole processing portion 50 provided on one side of the charging unit 10.

[0090] In this case, if the hole processing unit 51 of the hole processing section 50 is formed in multiple locations corresponding to the battery cells 3 arranged in the charging section 10, all the hole processing units 51 can move forward and backward toward the battery cells 3, simultaneously forming discharge holes 3b for all the battery cells 3 arranged in the charging section 10.

[0091] In this way, the hole processing section 50 provided on one side of the charging section 10 moves forward toward the battery cells 3 housed in the charging section 10, and can then form discharge holes 3b in the gas pockets 3a of all the battery cells 3 arranged in the charging section 10. After forming the discharge holes 3b in the gas pockets 3a, it can move backward again to return to its original position.

[0092] On the other hand, when the hole processing section 50 is provided with one hole processing unit 51, the hole processing unit 51 slides on the hole processing unit moving member 57 in accordance with the direction of movement of the battery cell 3, and sequentially forms discharge holes 3b in the battery cells 3 arranged in the charging section 10 while moving forward and backward toward the battery cell 3.

[0093] As described above, by arranging the battery cells 3 in the charging section 10 via the hole processing section 50 and partially charging them so that the gas pocket section 3a is partially charged, it is possible to prevent the gas and electrolyte from being discharged together when the discharge hole 3b is formed in the battery cells 3 due to excessive expansion of the gas pocket section 3a during charging of existing battery cells 3, thereby preventing contamination of the formation device by the electrolyte.

[0094] In other words, conventionally, when the electrolyte is injected into the pouch-type battery cell 3 during the assembly stage, it is injected under vacuum conditions, and then the electrolyte is discharged along with the internal gas of the pouch battery cell 3 when the discharge hole 3b is formed, due to the vacuum-sealed portion of the gas pocket 3a and the internal pressure. However, by partially charging the battery cell 3 via the formation device according to the present invention and expanding the vacuum-sealed portion of the gas pocket 3a to a predetermined size, the internal pressure of the battery cell 3 is maintained at a constant level, and the vacuum-sealed portion of the gas pocket 3a is separated, allowing only the gas excluding the electrolyte to be stably discharged.

[0095] Then, the charging unit 10 discharges the gas through the discharge hole 3b of the gas pocket 3a and then performs residual charging.

[0096] In other words, a discharge hole 3b is formed in the gas pocket portion 3a of the partially charged battery cell 3 via the hole processing portion 50 provided on one side of the charging portion 10, and only the gas inside the battery cell 3 is discharged to the outside, after which the battery cell 3 is again fully charged via the charging portion 10.

[0097] Here, the gas generated during the residual charge of the battery cell 3 can be stably discharged again through the discharge hole 3b of the gas pocket portion 3a.

[0098] At this time, the remaining charge can be increased to 70% of the total charge capacity of battery cell 3.

[0099] In this way, after partially charging the battery cell 3, an outlet is formed in the partially charged battery cell 3 to discharge only the gas inside the battery cell 3 to the outside, and then, while performing residual charging, only the gas inside the battery cell 3 is discharged to the outside again, thereby enabling stable charging of the battery cell 3 while discharging only the gas without discharging the electrolyte.

[0100] As described above, the battery cells 3 whose remaining charge has been completed are transferred from the charging unit 10 to the unloading buffer unit 30, and the battery cells 3 transferred to the unloading buffer unit 30 are configured to seal the discharge holes 3b of each battery cell 3 via a sealing unit 70 provided on one side of the unloading buffer unit 30.

[0101] Then, the battery cell 3, with the discharge hole 3b formed in the gas pocket portion 3a sealed, is transferred to a later process for manufacturing.

[0102] (Second Embodiment) Figure 10 is a schematic plan view showing a pouch-type battery cell formation device according to another embodiment of the present invention. Figure 11 is a schematic perspective view showing the hole processing buffer section of a pouch-type battery cell formation device according to another embodiment of the present invention. Figure 12 is a schematic perspective view showing the hole processing buffer section and hole processing section of a pouch-type battery cell formation device according to another embodiment of the present invention.

[0103] As shown in the drawings, a formation apparatus 1' according to another embodiment of the present invention may further include a hole processing buffer section 80 in which charged battery cells 3 are waiting to form discharge holes 3b on the charging section 10.

[0104] Here, the hole processing buffer section 80 may include a processing plate 81 and a plurality of hole processing alignment guide members 83 that are installed at regular intervals in the longitudinal direction of the processing plate 81 so that the battery cells 3 are arranged on the upper part of the processing plate 81.

[0105] In other words, the hole processing buffer section 80 includes a processing plate 81 on which a large number of battery cells 3 are arranged, and a plurality of hole processing alignment guide members 83 that are installed at regular intervals along the thickness direction of the battery cells 3 so that the battery cells 3 are arranged on the processing plate in an upright position.

[0106] Here, the battery cell 3 is inserted and installed in the space between one of the numerous hole processing alignment guide members 83 of the hole processing buffer section 80 and another hole processing alignment guide member 83 adjacent to it.

[0107] For this purpose, the hole processing alignment guide member 83 may include a pair of hole processing guide bars 83a and 83b, which may be provided at a certain distance from each other so that one of the hole processing guide bars 83a can support the right side of the battery cell 3 and the other hole processing guide bar 83b can support the left side of the battery cell 3.

[0108] On the other hand, as in this embodiment, when a hole processing buffer section 80 is provided on the charging section 10, a hole processing section 50 is provided on one side of the hole processing buffer section 80, and discharge holes 3b can be formed in the gas pocket section 3a of the battery cell 3 housed in the hole processing buffer section 80.

[0109] With the above-described structure, after the battery cells 3 are transferred from the loading buffer section 20 to the charging section 10, partial charging is performed on the charging section 10 to partially expand the gas pocket section 3a of the battery cells 3. After the partially expanded battery cells 3 are transferred to the hole processing buffer section 80, a discharge hole 3b is formed in the gas pocket section 3a of the battery cells 3 housed in the hole processing buffer section 80 via a hole processing section 50 provided on one side of the hole processing buffer section 80. After the battery cells 3 with the discharge hole 3b formed are transferred to the charging section 10 via the hole processing buffer section 80, residual charging can be performed on the battery cells 3 again via the charging section 10.

[0110] In this case as well, if the hole processing units 51 of the hole processing section 50 are formed in multiple locations corresponding to the battery cells 3 arranged in the hole processing buffer section 80, all the hole processing units 51 of the hole processing section 50 may move forward toward the battery cells 3, then press down on all the battery cells 3 housed in the hole processing buffer section 80 to form discharge holes 3b, and after forming discharge holes 3b in the gas pocket portions 3a of all the battery cells 3, all the hole processing units 51 of the hole processing section 50 may move backward again.

[0111] Furthermore, when the hole processing unit 51 of the hole processing section 50 is formed as a single unit, the hole processing unit 51 moves forward toward the battery cell 3, then moves toward one of the battery cells 3 housed in the hole processing buffer section 80, then the hole processing unit 51 of the hole processing section 50 presses down on the battery cell 3 and forms an ejection hole 3b, moves backward after the ejection hole 3b is formed, moves toward the next battery cell 3 in the thickness direction of the battery cell 3, then moves forward again to form an ejection hole 3b in that battery cell 3, and so on. The above process can be repeated so that ejection holes 3b are formed sequentially in all the battery cells 3 arranged in the hole processing buffer section 80.

[0112] Although the present invention has been illustrated and described in relation to specific embodiments, it is readily apparent to anyone with ordinary skill in the art that various modifications and changes are possible without departing from the spirit and scope of the invention as set forth in the claims. [Explanation of symbols]

[0113] 1, 1': Formation device (formation device for pouch-type battery cells) 3: Battery cell 3a: Gas pocket area 3b: Discharge hole 10:Charging part 11: Pressurizing jig 12: Frame 13: Jig frame 15: Pressure plate 16: Drive unit 16a: Drive motor 16b: Drive shaft 20: Loading buffer section 21:Transfer section 23: Alignment guide member 23a, 23b: Guide bar 30: Unloading buffer section 50: Hole processing section 51: Hole processing unit 52, 52': Gas pocket retaining member 52a: Compression pad 53: Hole processing component 53a: Needle-shaped member 53b: Needle member groove 55: Hole processing unit body 57: Hole processing unit moving member 70: Sealing section 71: Ceiling Unit 72, 72': Discharge hole pressing member 72a: Compression pad 73: Sealing components 75: Ceiling unit body 77: Ceiling unit moving component 80: Hole processing buffer section 81: Processing Plate 83: Hole processing alignment guide member 83a, 83b: Hole machining guide bar 90: Loader / Unloader

Claims

1. A charging unit that charges the battery cells, A loading buffer section in which the battery cells wait before being inserted into the charging section, An unloading buffer unit where the battery cells that have been discharged from the charging unit after charging are ready to go, A hole processing section for forming a discharge hole in the gas pocket portion of the aforementioned battery cell, A sealing portion that seals the discharge hole of the battery cell, Includes, The charging unit is By partially charging the aforementioned battery cell, the gas pocket portion is partially expanded. A pouch-type battery cell formation device that partially charges the battery cell to partially expand the gas pocket portion, and then forms the discharge hole in the gas pocket portion of the battery cell via the hole processing portion.

2. A charging unit that charges the battery cells, A loading buffer section in which the battery cells wait before being inserted into the charging section, An unloading buffer unit where the battery cells that have been discharged from the charging unit after charging are ready to go, A hole processing section for forming a discharge hole in the gas pocket portion of the aforementioned battery cell, A sealing portion that seals the discharge hole of the battery cell, Includes, The aforementioned hole processing section is a formation device for pouch-type battery cells, provided on one side of the charging section.

3. The charging unit is A pouch-type battery cell formation device according to claim 2, wherein the battery cell is partially charged to partially expand the gas pocket portion.

4. Forming device for a pouch-type battery cell according to claim 2, wherein the battery cell is partially charged to partially expand the gas pocket portion, and then the discharge hole is formed in the gas pocket portion of the battery cell via the hole processing portion.

5. The charging unit is A pouch-type battery cell formation device according to claim 1 or 2, wherein residual charging is performed after the gas is discharged through the discharge hole in the gas pocket portion.

6. The aforementioned hole processing section is The pouch-type battery cell formation device according to claim 2, wherein the discharge hole is formed in the gas pocket portion of the battery cell housed in the charging portion.

7. The aforementioned hole processing section is The system includes a plurality of hole processing units formed in the charging section corresponding to the battery cells arranged in the charging section, which form discharge holes in the gas pockets of each battery cell; a hole processing unit moving member connected to each of the hole processing units which moves the hole processing units forward and backward in the direction of the battery cells; and a drive unit which drives the hole processing unit moving member. The pouch-type battery cell formation device according to claim 6, wherein multiple hole processing units simultaneously form the discharge holes in the gas pocket portion of the battery cell.

8. The aforementioned hole processing unit is A forming device for a pouch-type battery cell according to claim 7, comprising: a pair of gas pocket pressing members for pressing the gas pocket portion of a battery cell; hole processing members, each installed inside the gas pocket pressing members, for forming the discharge hole on the pressing surface of the gas pocket portion when the gas pocket portion is pressed; and a hole processing unit body coupled to one side of the gas pocket pressing members for moving the gas pocket pressing members toward or toward each other.

9. The aforementioned hole processing section is The system includes a hole processing unit that forms the discharge holes in the gas pockets of the battery cells arranged in the charging section, a hole processing unit moving member connected to the hole processing unit and moving the hole processing unit forward and backward in the direction of the battery cells, and a drive unit that drives the hole processing unit moving member. The pouch-type battery cell formation device according to claim 6, wherein the hole processing unit sequentially forms the discharge holes in the gas pocket portion of each battery cell.

10. The aforementioned hole processing unit is A forming device for a pouch-type battery cell according to claim 9, comprising: a pair of gas pocket pressing members for pressing the gas pocket portion of a battery cell; hole processing members, each installed inside the gas pocket pressing members, for forming the discharge hole on the pressing surface of the gas pocket portion when the gas pocket portion is pressed; and a hole processing unit body coupled to one side of the gas pocket pressing members, which moves the gas pocket pressing members toward or toward each other, and is coupled to the hole processing unit moving member so as to be slidable.

11. The pouch-type battery cell formation device according to claim 1 or 2, further comprising a hole processing buffer section on the charging section where the battery cells charged to form the discharge holes are waiting.

12. The aforementioned hole processing buffer section is A pouch-type battery cell formation device according to claim 11, comprising a processing plate and a plurality of alignment guide members installed on the processing plate at regular intervals so that the battery cells are arranged on the upper part of the processing plate.

13. The aforementioned hole processing section is A pouch-type battery cell formation device according to claim 11, which is provided on one side of the hole processing buffer portion and forms the discharge hole in the gas pocket portion of the battery cell housed in the hole processing buffer portion.

Citation Information

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