The present application claims priority based on Japanese Patent Application Publication No. 2020-177686 filed on Oct. 23, 2020, the entire contents whereof are incorporated in the present specification by reference.
The present disclosure relates to a secondary battery. Specifically, the present disclosure relates to a secondary battery provided with a wound electrode body and with a collector terminal connected to the wound electrode body.
Secondary batteries such as lithium ion secondary batteries and nickel-metal hydride batteries are widely used nowadays in various fields such as vehicles and portable terminals. Each of such secondary batteries is provided with, for instance, a wound electrode body, a case that accommodates the wound electrode body, and an external terminal connected to an external device such as a vehicle motor. In a secondary battery having such a structure, a conductive member referred to as a collector terminals is used in order to electrically connect the external terminal exposed outside the case and the wound electrode body accommodated in the case (for instance Japanese Patent Application Publication No. 2017-79139).
When adopting the connection structure illustrated in
It is a main object of the present disclosure, with a view to solving the above problem, to provide a technology for preventing detachment of a collector bundle or a collector terminal derived from collector breakage, and contribute thus to improve the manufacturing yield of a secondary battery.
To attain the above object, the technology disclosed herein provides a secondary battery having the configuration below.
The secondary battery disclosed herein includes a wound electrode body resulting from winding a pair of electrode sheets each made up of a positive electrode sheet and a negative electrode sheet, and a collector terminal connected to the wound electrode body. Each electrode sheet includes an elongated foil-shaped collector, an electrode mix layer applied on a surface of the collector, and an uncoated portion which is formed on one side edge portion in a width direction, and at which the electrode mix layer is not applied and the collector is exposed. The wound electrode body of the secondary battery includes a core portion formed at a central portion in the width direction, and wound so that the electrode mix layers of the pair of electrode sheets face each other, a collector wound portion which is formed on both side edge portions in the width direction, and at which the uncoated portion is wound in a state of protruding beyond the other of the electrode sheets, and a collector bundle which is formed in at least a partial region of the collector wound portion, and at which multiple layers of the uncoated portion are bundled and brought into close contact with each other, and to which the collector terminal is connected. In the secondary battery disclosed herein, an elongated slit is formed running through the collector wound portion and extending continuously so as to conform to the collector bundle, between the collector bundle and the core portion in the width direction.
In secondary battery having the above configuration, the elongated slit is formed between the collector bundle and the core portion. The collector bundle and the core portion are separated thus by the elongated slit. At the time of forming the collector bundle it becomes therefore possible to prevent tension from acting on the collector that is present between the collector bundle and the core portion. Therefore, the technology disclosed herein allows preventing large breaks in the collector such that the collector bundle or the collector terminal comes off, and allows contributing to increasing the manufacturing yield of the secondary battery.
In a preferred implementation of the secondary battery disclosed herein, the slit is formed at least in a region including an upper end of the collector wound portion. As a result, tension can be suitably prevented from acting on the collector that is present between the collector bundle and the core portion.
In a preferred implementation of the secondary battery disclosed herein, a ratio (L2/L1) of a length L2 of the slit relative to a length L1 of the collector bundle in a height direction is ¼ or more and 1 or less. As a result, tension can be more suitably prevented from acting on the collector that is present between the collector bundle and the core portion, and increases in battery resistance, derived from the formation of an unnecessarily long slit, can likewise be curtailed.
In a preferred implementation of the secondary battery disclosed herein, a termination hole, which is a circular opening having a diameter larger than a width of the slit, is formed in at least one of the end portions of the slit. This allows suitably preventing breakage, in the collector, such that the slit extends from the end portion of the slit.
In a preferred implementation of the secondary battery disclosed herein, a ratio (W2/W1) of a width W2 of the collector wound portion relative to an overall width W1 of the wound electrode body is 0.04 or less. In general, reducing the width W2 of the collector wound portion (uncoated portion) results in increased space efficiency and thus in better battery performance, but on the other hand strong tension is likelier to act on the collector that is present between the collector bundle and the core portion. The secondary battery disclosed herein, by contrast, allows preventing the action itself of tension on the collector that is present between the collector bundle and the core portion. As a result, it becomes possible to suitably prevent detachment of the collector terminal or of the collector bundle, even if the width W2 of the collector wound portion is reduced for the purpose of increasing space efficiency.
Embodiments of the present disclosure will be explained below. Any features other than the matter specifically set forth in the present specification and that may be necessary for carrying out the present disclosure can be regarded as design matter for a person skilled in the art based on conventional techniques in the relevant technical field. That is, the present disclosure can be realized on the basis of the disclosure of the present specification and common technical knowledge in the relevant technical field. In the drawings that accompany the explanation below, members and portions that elicit identical effects are explained while denoted by identical reference numerals. The dimensional relationships (length, width, thickness and so forth) in the figures do not necessarily reflect actual dimensional relationships. The reference symbol X in the figures denotes a “width direction”, the reference symbol Y denotes a “depth direction”, and the reference symbol Z denotes a “height direction”. These directions are defined however for convenience of explanation, and are not intended to limit the manner in which a secondary battery is arranged, during use or manufacture.
The term “secondary battery” in the present specification signifies a power storage device in general in which charge and discharge reactions occur as a result of movement of charge carriers across a pair of electrodes (positive electrode and negative electrode) via an electrolyte. Such secondary batteries include so-called storage batteries such as lithium ion secondary batteries, nickel-metal hydride batteries and nickel cadmium batteries, as well as capacitors such as electric double layer capacitors. The technology disclosed herein is not limited to a specific type of secondary battery, and can be widely used in secondary batteries in general that are provided with a wound electrode body and with a collector terminal.
The structure of a secondary battery according to the present embodiment will be explained hereafter with reference to
As illustrated in
(1) Case
The structure of the case 10 is not particularly limited as long as the case 10 can accommodate the wound electrode body 20 and an electrolyte (not shown). For instance a flat square case 10 is used in the secondary battery 1 having the structure illustrated in
(2) Terminal Structure
As described above, the external terminals 40 which are connection members for connecting the secondary battery 1 and an external device are attached to the outer surface of the case 10 (lid body 14). The external terminals 40 are electrically connected to the wound electrode body 20 inside the case 10 via the collector terminals 30. Specifically, each collector terminal 30 is an elongated plate-like member extending in a height direction Z. A lower end portion 30a of the collector terminal 30 is connected to the wound electrode body 20. Meanwhile, an upper end portion 30b of each collector terminal 30 runs through the case 10 (lid body 14) and is exposed outside the case 10. The upper end portion 30b of the collector terminal 30 is connected to the external terminal 40 via an external connection member 42. A width dimension (length in a width direction X) of the collector terminals 30 is preferably about 5 mm to 10 mm A sufficient connection surface area with the wound electrode body 20 can be ensured as a result.
(3) Wound Electrode Body
As illustrated in
The wound electrode body 20 in the present embodiment is produced by forming a stack in which the pair of electrode sheets 50 is laid up across a separator 70 which is an insulating sheet, followed by winding of the resulting stack. A core portion 22 resulting from winding so that the electrode mix layers 54 of the pair of electrode sheets 50 face each other becomes thus formed, as a result, at the central portion of the wound electrode body 20 in the width direction X. In the wound electrode body 20, moreover, each electrode sheet 50 is laid up so that the uncoated portion 56 of one electrode sheet 50 protrudes beyond the other electrode sheet 50, at each side edge portion in the width direction X. As a result, a respective collector wound portion 24 becomes formed in that the uncoated portion 56 of one electrode sheet 50 is wound in a state of protruding from the other electrode sheet 50, at both side edge portions of the wound electrode body 20. In the secondary battery 1 provided with the wound electrode body 20 having such a configuration, the core portion 22 at which the electrode mix layers 54 face each other constitutes a main site for charge and discharge reactions, and the collector wound portion 24 resulting from winding of the uncoated portions 56 (collectors 52) constitutes sites for connection to the respective collector terminal 30 (see
(4) Connection Structure of the Wound Electrode Body and the Collector Terminals
As illustrated in
As illustrated in
A length L2 (see
As illustrated in
A circular opening (termination hole 28a) having a diameter larger than the width of the slits 28 is formed at an end of each slit 28 in the present embodiment. For instance the collectors 52 may break, so that the slit 28 accordingly extends, in a case where stress concentrates at the end of the slit 28 when an external force such as vibration acts on the collector wound portion 24. When by contrast the termination hole 28a such as that described above is formed, stress acting on the end portion of the slit 28 can be dispersed, and accordingly the collectors 52 can be prevented from breaking so that the slit 28 extends. In a case specifically where the width of the slit 28 is from 1 mm to 2.5 mm, the diameter of the termination hole 28a is preferably from about 2 mm to 5 mm, and more preferably from about 3 mm to 5 mm
(5) Volume of a Charge/Discharge Region
The secondary battery 1 according to the present embodiment is also advantageous in that the volume of the electrode mix layers 54 can be easily increased. Specifically, increasing the volume of the electrode mix layers included in the wound electrode body allows increasing the space efficiency of the secondary battery (i.e. the volume ratio of the charge/discharge region relative to the space in the case), and in consequence allows improving battery performance for instance in terms of battery capacity. When a wound electrode body having an increased volume of the electrode mix layers is used, however, a problem arises in that detachment of the collector bundle or the collector terminal is likely to occur due to the collector breakage. In the secondary battery 1 according to the present embodiment, by contrast, detachment of the collector bundles 26 or of the collector terminals 30 can be suitably prevented even when using a wound electrode body 20 having large-volume electrode mix layers 54. The above will be explained specifically below.
Means for increasing the space efficiency of the secondary battery include means that involve increasing the width of the core portion (coated region of the electrode mix layer), which is the charge/discharge region, and reducing the width of the collector wound portions (uncoated portions). When using however such a wound electrode body having narrow collector wound portions, it is necessary to gather the collectors under very strong tension in order to form collector bundles of sufficient width so as to allow for connection of the collector terminals. As a result, the collectors break readily, and hence the collector bundles and the collector terminals may detach frequently, giving rise to a significant drop in yield. In the secondary battery 1 according to the present embodiment, by contrast, the core portion 22 and the collector bundles 26 are separated by the slits 28, and hence collector bundles 26 of sufficient width can be formed, without strong tension acting on the collectors 52 between the core portion 22 and the collector bundle 26, even if the width W2 of the collector wound portions 24 is reduced. As an example, it is deemed that the collector bundles or the collector terminals detach frequently when the ratio of the width of the collector wound portions relative to the overall width of the wound electrode body is lower than 0.1. In the secondary battery 1 according to the present embodiment, by contrast, the collector bundles 26 and the collector terminals 30 can be suitably prevented from coming off even when a ratio (W2/W1) of the width W2 of the collector wound portions 24 relative to the overall width W1 of the wound electrode body 20 is 0.04 or lower. That is, the present embodiment allows producing a secondary battery 1 of high space efficiency and superior battery performance, without incurring drops in yield. A concrete dimension of the of the width W2 of the collector wound portions 24 in the present embodiment is appropriately from about 5 mm to 10 mm.
Other means for increasing the space efficiency of the secondary battery include means that involve increasing the thickness of the electrode mix layers and means that involve increasing the number of times that the electrode sheets are wound. Also in cases where the thickness of the core portion is increased by relying on these means, however, strong tension acts readily on the collectors between the core portion and the collector bundles, and accordingly a drop in yield is likely to occur on account of detachment of the collector bundle or the collector terminal. In the secondary battery 1 according to the present embodiment, by contrast, the core portion 22 and the collector bundles 26 are separated by the slits 28. As a result, it is possible to prevent strong tension from acting on the collectors 52 between the core portion 22 and each collector bundle 26, even when the thickness T1 of the core portion 22 is large. As an example, it is deemed that when in conventional secondary batteries a ratio of the thickness of the collector bundles relative to the thickness of the core portion is lower than ⅕, the collector bundles and the collector terminal start to detach, and that the frequency of detachment of the collector bundle or of the collector terminal increases significantly when the above ratio is below 1/10. In the secondary battery 1 according to the present embodiment, by contrast, the collector bundles 26 or the collector terminals 30 can be suitably prevented from detaching even when a ratio (T2/T1) of the thickness T2 of the collector bundles 26 relative to the thickness T1 of the core portion 22 is ⅕ or less (preferably 1/10 or less).
The structure of the secondary battery 1 according to the present embodiment has been explained above. An example of a method for producing the secondary battery 1 having such a structure will be described next with reference to accompanying drawings.
As illustrated in
In the production method according to the present embodiment, a pair of electrode sheets 50 is next laid up and wound, as illustrated in
In the production method according to the present embodiment each collector wound portion 24A separated from the core portion 22 is then squashed to thereby form a respective collector bundle 26, as illustrated in
As described above, in the production method according to the present embodiment the collector wound portions 24A separated from the core portion 22 are squashed to thereby form the collector bundles 26. As a result, it becomes possible to prevent strong tension from acting on the collectors 52 (uncoated portions 56) that are present between the core portion 22 and the collector bundles 26. Therefore, the production method according to the present embodiment allows preventing detachment of the collector bundles 26 or the collector terminals 30 derived from large breakage in the collectors 52, and allows contributing to increasing the production yield of the secondary battery 1.
One embodiment of the technology disclosed herein has been explained above. However, the above embodiment is not meant to limit the technology disclosed herein in any way. That is, the secondary battery disclosed herein can encompass various modifications to the secondary battery 1 according to the embodiment described above.
For instance, the slits 28 of the secondary battery 1 according to the embodiment described above extend in the height direction Z so as to be substantially parallel to the collector bundles 26 (see
Further, each slit 28 in the embodiment described above is formed in a region that includes the upper end 24a of the respective collector wound portion 24. As a result, tension can be suitably prevented from acting on the collectors 52 that are present between each collector bundle 26 and the core portion 22, and breakage of the collectors 52 can be reliably prevented. However, the slit 28 need not be formed at the upper end 24a of the collector wound portion 24. In other words, the collector bundle 26 and the core portion 22 may be linked via the collectors 52, at the upper end 24a of the collector wound portion 24. The collectors 52 that are present at the upper end 24a of the collector wound portion 24 may break when such a configuration is adopted. Even if the collectors 52 at the upper end 24a break, however, that break does not grow into a large enough break such that the collector terminal 30 or the collector bundle 26 comes off, and hence the manufacturing yield of the secondary battery 1 is unaffected.
In the embodiment described above, moreover slits 28 are formed in respective collector wound portions 24 at both side edges of the wound electrode body 20, as illustrated in
In the production method according to the embodiment described above there are used electrode sheets 50 in which a plurality of elongated openings 59 are formed in the uncoated portion 56, such that each slit 28 is formed through stacking of the plurality of openings 59 at a same respective position (see
Concrete examples of the present disclosure have been explained in detail above, but the examples are merely illustrative in nature, and are not meant to limit the scope of the claims in any way. The art set forth in the claims encompasses various alterations and modifications of the concrete examples illustrated above.
Number | Date | Country | Kind |
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2020-177686 | Oct 2020 | JP | national |