The present invention relates to an apparatus and method for processing a separator in electrode plate stacking equipment for a secondary battery, and more particularly, to an apparatus and method for improving foldability of a separator.
In general, a chemical cell is composed of a pair of electrodes, i.e., a positive electrode plate and a negative electrode plate, and electrolyte. The amount of energy that can be stored in a chemical cell varies depending on the material contained in the electrode and the electrolyte. The chemical cells are classified into primary batteries used only for one-time discharge due to a very slow charging reaction and secondary batteries that can be reused through repetitive charging and discharging. Recently, the use of secondary batteries is increasing due to the advantage of charging and discharging.
Due to its advantages, secondary batteries have been applied to various technical fields throughout the industry, and are widely used as energy sources of mobile communication devices such as smart phones, and are attracting attention as energy sources of electric vehicles.
The secondary battery is manufactured in a form in which a positive electrode plate, a separator, and a negative electrode plate are sequentially stacked to be immersed in electrolyte. There are two main methods of manufacturing an inner cell stack of the secondary battery.
In the case of a small secondary battery, a method of arranging a negative electrode plate and a positive electrode plate on a separator and winding them in a jelly-roll form is widely used, whereas in the case of a medium and large secondary battery having more electric capacity, a method of arranging a negative electrode plate and a positive electrode plate by stacking them in a proper order with a separator is widely used.
In a zigzag-type (also referred to as a ‘z-folding’ type) stacking method widely used among the methods of manufacturing a secondary battery cell stack in a stacking manner, the separator forms a zigzag folded shape, and the negative electrode plates and the positive electrode plates are alternately stacked on it in an inserted form.
These stacking methods are configured to repeatedly fold the separator to conform to the shape of electrode plates. During the stacking process, both corner parts of the separator are folded in a state of being fixed by the grippers, whereas the middle part of the separator is folded without being fixed by the grippers so that the middle part can easily be damaged by contact with the side of the electrode plate due to the tension of the separator.
Conventionally, since most secondary batteries were small, the foldability of the separator was not a big problem. However, in recent years, as interest and demand for large-sized electric devices such as electric vehicles increase, the need for medium-to-large batteries having large size and capacity is increasing. As the size of the battery itself increases, the foldability of the separator becomes worse. Thus, the possibility of damage to the electrode plate increases as the size of the battery increases.
Korean Registered Patent No. 10-1627061 (published on Jun. 3, 2016) discloses a perforating process for forming a gas discharge hole between a power generation element and a sealing part of a secondary battery and a subsequent sealing process to prevent leakage of electrolyte while discharging internally generated gas.
An object of the present invention is to provide an apparatus and method for improving the foldability of a separator.
The present invention for achieving the above object includes the following aspects and any combination thereof.
One aspect of the present invention is an assembly for improving foldability of a separator to be interposed between electrode plates in a prismatic secondary battery cell manufacturing equipment, comprising a wheel knife configured to be movable transversely to a feeding direction of the separator on the battery cell manufacturing equipment, the wheel knife being rotatable about a center of thereof, wherein a depressed line is formed on the separator along a moving path of the wheel knife when the wheel knife moves on the separator.
Another aspect of the present invention is an assembly for improving foldability of a separator further comprising a backing plate arranged opposite to the wheel knife with the separator positioned therebetween, wherein the backing plate is configured to support a surface of the separator when the wheel knife moves on the separator.
Another aspect of the present invention is an assembly for improving foldability of a separator in which at least one of the wheel knife and the backing plate is configured to be moved to or away from each other.
Another aspect of the present invention is an assembly for improving foldability of a separator in which the backing plate further includes a clamp, and the separator is fixed or released by moving the clamp back and forth.
Another aspect of the present invention is an assembly for improving foldability of a separator in which the backing plate further includes a groove corresponding to the moving path of the wheel knife.
Another aspect of the present invention is an assembly for improving foldability of a separator in which the wheel knife includes a plurality of protrusions arranged at a regular interval around its circumference, and depressions are formed on the separator at a regular interval by the protrusions as the wheel knife moves on the separator.
Another aspect of the present invention is an assembly for improving foldability of a separator in which the wheel knife includes a plurality of sharp protrusions arranged at a regular interval around its circumference, and punctures are formed on the separator at a regular interval by the sharp protrusions as the wheel knife moves on the separator.
Another aspect of the present invention is an assembly for improving foldability of a separator in which the punctures are not formed near both edges of the separator.
Another aspect of the present invention is an assembly for improving foldability of a separator in which processing is performed on the separator periodically.
Another aspect of the present invention is an assembly for improving foldability of a separator in which processing is performed on the separator at the moment the separator stops running during a prismatic secondary battery cell manufacturing process.
Another aspect of the present invention is a prismatic secondary battery cell manufacturing equipment having an assembly for improving foldability of a separator according to any one of the above aspects.
Another aspect of the present invention is a method for improving foldability of a separator to be interposed between electrode plates in a prismatic secondary battery cell manufacturing equipment, comprising continuously feeding the separator, the separator being folded along one side of an electrode plate on a stack base of the prismatic secondary battery cell manufacturing equipment to be interposed between electrode plates, in which the separator is subject to processing before the separator reaches the stack base, wherein the processing is forming a depressed line on the separator along a moving path of a wheel knife by moving the wheel knife on the separator, the wheel knife being movable transversely to a feeding direction of the separator and rotatable about a center of thereof.
Another aspect of the present invention is a method for improving foldability of a separator further comprising a backing plate arranged opposite to the wheel knife with the separator positioned therebetween, wherein the backing plate is configured to support a surface of the separator when the wheel knife moves on the separator.
Another aspect of the present invention is a method for improving foldability of a separator in which at least one of the wheel knife and the backing plate is configured to be moved to or away from each other.
Another aspect of the present invention is a method for improving foldability of a separator in which the backing plate includes one or more clamps, and the separator can be fixed or released by moving the clamps back and forth.
Another aspect of the present invention is a method for improving foldability of a separator in which the backing plate includes a groove corresponding to the moving path of the wheel knife.
Another aspect of the present invention is a method for improving foldability of a separator in which the wheel knife includes a plurality of protrusions arranged at a regular interval around its circumference, and depressions are formed on the separator at a regular interval by the protrusions as the wheel knife moves on the separator.
Another aspect of the present invention is a method for improving foldability of a separator in which the wheel knife includes a plurality of sharp protrusions arranged at a regular interval around its circumference, and punctures are formed on the separator at a regular interval by the sharp protrusions as the wheel knife moves on the separator.
Another aspect of the present invention is a method of improving foldability of a separator in which the punctures are not formed near both edges of the separator.
Another aspect of the present invention is a method of improving foldability of a separator in which processing is performed on the separator periodically.
Another aspect of the present invention is a method for improving foldability of a separator in which processing is performed on the separator at the moment the separator stops running during a prismatic secondary battery cell manufacturing process.
Another aspect of the present invention is a prismatic secondary battery cell manufactured by the method according to any one of the above aspects.
Another aspect of the present invention is a method for improving foldability of a separator to be interposed between electrode plates of a prismatic secondary battery cell in a zigzag-type stacking equipment in which the separator is continuously provided between the electrode plates by being folded along a side of the electrode plate, comprising processing the separator along a line to be folded in the separator immediately before the separator passes an end roller of the stacking equipment, wherein the processing of the separator includes forming a series of cuts on the separator by advancing an actuator with a plurality of fine blades arranged in a row toward the separator.
Another aspect of the present invention is a method for improving foldability of a separator in which the processing of the separator is performed for each portion where the separator is folded.
Another aspect of the present invention is a method for manufacturing a prismatic secondary battery cell using a zigzag-type stacking equipment in which a separator is continuously provided between electrode plates by being folded along a side of the electrode plate, comprising processing the separator along a line to be folded in the separator immediately before the separator passes an end roller of the stacking equipment, wherein the processing of the separator includes forming a series of cuts on the separator by advancing an actuator with a plurality of fine blades arranged in a row toward the separator.
Another aspect of the present invention is a method for manufacturing a prismatic secondary battery cell in which the processing of the separator is performed for each portion where the separator is folded.
Another aspect of the present invention is a prismatic secondary battery cell manufactured by a method according to any one of the above aspects.
According to the present invention, it is possible to provide a separator having excellent foldability when stacking electrode plates of a secondary battery cell.
In addition, according to the present invention, the sides of electrode plates are prevented from being damaged by a separator when electrode plates of a secondary battery cell are stacked.
Effects of the present invention are not limited to the effects mentioned above, and other effects not mentioned will be clearly understood by those skilled in the art from the following description.
The embodiments shown in the accompanying drawings are presented for a clear understanding of the present invention, but the present invention is not limited thereto. In the following description, components having the same reference numerals in different drawings have similar functions, and therefore will not be repeatedly described unless necessary for the understanding of the invention. Also, well-known components will be briefly described or omitted, but should not be construed as being excluded from the embodiments of the present invention.
Hereinafter, the present invention will be described in detail with reference to the accompanying drawings.
A separator S wound in a roll-type arranged in the upper side of the equipment 100 reaches a stack base 30 through a plurality of rollers. The separator is interposed between a positive electrode plate (not shown) and a negative electrode plate (not shown) on the stack base 30. The separator may be continuously provided between the electrode plates by being folded along one side of each electrode plate.
Referring to
The backing plate 20 may have a groove 21 corresponding to the lateral movement path of the wheel knife 11. When protrusions are formed on the circumference of the wheel knife 11 (see
Since processing is not necessary at both edges of the separator where it is gripped by the grippers 31, processing may not be performed near the edges. In addition, depending on the type of processing, the edge area may not be processed to prevent the complete cutting of the separator (S).
The separator provided in the direction of the arrow ‘A’ may be processed by the wheel knife module 10′ after passing the roller 40. The wheel knife module 10′ may include a wheel knife forward/backward actuation cylinder 18 and a wheel knife left/right actuation robot 17. The backing plate 20 oppositely disposed may be connected to clamps 22 and clamp forward/backward actuation cylinders 23.
Referring to
The wheel knife 11 is connected to the wheel knife shaft 15′ rotatably about a rotation axis 13, and the wheel knife shaft 15′ is coupled to the wheel knife forward/backward actuation cylinder 18. By the actuation of the wheel knife forward/backward actuation cylinder 18 indicated by a double-headed arrow B, the wheel knife 11 may advance toward the separator S or retract away from it. In addition, the wheel knife 11 is coupled to the wheel knife left/right actuation robot 17 through several components including the wheel knife shaft 15′, so that it can be moved in the transverse direction with respect to the running or traveling direction of the separator S. The left/right, i.e., lateral movement of the wheel knife left/right actuation robot 17 is indicated by a double-headed arrow C.
The clamps 22 may be provided on upper and lower parts of the backing plate 20, and they may be connected to a clamp forward/backward actuation cylinder 23, respectively. When the clamp forward/backward actuation cylinder 23 is operated (refer to a double-headed arrows D and D′), the separator S may be fixed to or released from the backing plate 20 by the clamp 22. Accordingly, the separator S can be fixed without wobbling when the wheel knife 11 continues to form processing marks such as cuts on the separator S.
Such a processing operation on the separator S may be performed at the moment the feeding of the separator is stopped, that is, while the separator S is not progressed, for example, while the electrode plate is placed on the stack base 30. Therefore, it is possible to perform the processing operation on the separator for improving the foldability of the separator during the secondary battery cell manufacturing process without causing a delay in the overall process time. In addition, by adding the above-described separator processing tools to an existing secondary battery cell manufacturing equipment, it may be possible to process the separator without the need to modify or change the existing equipment or processes.
In
The separator S is processed near the side of the electrode plate E1 or E2, that is, on the folded portion surrounding one side of the electrode plate. The separator travels via several rollers such as guide rollers after it is released from a roll until it reaches the electrode plate. As described above, the processing of the separator S is performed before the separator S is folded. The separator S may be processed, for example, just before passing the last end roller.
Such processing may be performed by repeatedly moving an actuator having a plurality of fine blades arranged in a row back and forth toward or away from the separator S at a specific position in the travel path of the separator S.
On both sides of
In this way, it is possible to form a line that can facilitate the separator to be folded without being rounded in the folding area.
As mentioned above, although embodiments of the present invention have been described with reference to the accompanying drawings, it will be appreciated that those of ordinary skill in the art to which the present invention pertains can practice the present invention in other specific forms without changing its technical spirit or essential features. Therefore, it should be understood that the embodiments described above are illustrative and not restrictive.
Number | Date | Country | Kind |
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10-2019-0133321 | Oct 2019 | KR | national |
10-2020-0050417 | Apr 2020 | KR | national |
Filing Document | Filing Date | Country | Kind |
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PCT/KR2020/005520 | 4/27/2020 | WO |