Energy storage devices
By integrating a resin member with roughened surfaces and stress reduction portions in the insert molding process, the design addresses thermal stress-induced cracks, ensuring airtightness and reliability in electricity storage devices.
Patent Information
- Application Number
- JP2023191761
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-11-09
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2043-11-09
AI Technical Summary
Stress due to thermal expansion differences between case, terminal, and resin members during insert molding leads to cracks in the resin member, compromising the airtightness of the case and reducing reliability in electricity storage devices.
The integration of a resin member with a case member and terminal members through insert molding, featuring roughened surfaces and stress reduction portions to mitigate thermal stress, ensuring airtightness by fixing the terminal seal portion to a first roughened portion and the stress reduction portion to a second roughened portion.
This design reduces stress in the resin member, preventing cracks and maintaining airtightness, thereby enhancing the reliability of the electricity storage device.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to an electricity storage device. [Background technology]
[0002] A known method involves providing a terminal insertion hole in the lid of a case member of an electricity storage device, inserting a terminal member into the terminal insertion hole, and then integrally and airtightly fixing the lid and the terminal member to each other using an insulating resin member by insert molding (see Patent Document 1). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2016-44303 Summary of the Invention [Problem to be solved by the invention]
[0004] However, due to differences in the thermal expansion coefficients of the case member (lid), terminal member, and resin member, stress occurs due to the difference in thermal expansion when the temperature is lowered during the insert molding process. After molding or during cooling in a thermal cycle test, the stress can cause cracks in the resin member along the terminal member, compromising the airtightness of the case and reducing reliability in terms of airtightness.
[0005] The present invention has been made in consideration of the current situation, and provides an electricity storage device that has an insulating resin member formed integrally with a case member and terminal members by insert molding, while still achieving improved reliability in terms of airtightness. [Means for solving the problem]
[0006] (1) One aspect of the present invention to solve the above problem is: The battery is a rectangular box-shaped container whose surfaces are perpendicular to each other and face in the battery height direction, battery width direction, and battery thickness direction. The container is a rectangular box-shaped container that extends in the battery width direction and battery thickness direction. a case member having a terminal insertion hole, a terminal inserted into the terminal insertion hole, Plate-shaped metal platea terminal member; and a resin member made of an insulating resin material, the resin member being airtightly welded to the case member and the terminal member, respectively, to fix the terminal member to the case member while insulating it from the case member, wherein the terminal member is Located within the terminal insertion hole, A roughened surface surrounds the terminal member. The rectangle is long in the battery width direction and short in the battery thickness direction Annular and band-like and includes a roughened end surface facing the battery width direction. a first roughened portion and a second roughened portion spaced apart from the first roughened portion; an end surface or corner extending in the battery height direction and facing the battery width direction is provided as a rounded end surface; The resin member is formed by insert molding integrally with the case member and the terminal member inserted into the terminal insertion hole, and includes an annular, band-shaped terminal seal portion that is airtightly fixed to the first roughened portion of the terminal member, and a terminal seal portion that is airtightly fixed to the second roughened portion of the terminal member. , causing stress on itself The terminal seal portion Near the roughened end surface and a stress reducing portion that reduces stress occurring in the storage battery.
[0007] Even in this electricity storage device, stress remains in the resin member due to the temperature drop after insert molding. However, in this electricity storage device, the terminal seal portion of the resin member is fixed to the first roughened portion of the terminal member, maintaining airtightness between the first roughened portion and the terminal seal portion, and the stress reduction portion of the resin member is fixed to the second roughened portion of the terminal member, thereby reducing stress generated in the terminal seal portion of the resin member. Therefore, in this electricity storage device, stress generated in the terminal seal portion can be reduced compared to when the terminal member does not have the second roughened portion or when the resin member does not have the stress reduction portion. This can prevent cracks from occurring in the terminal seal portion, reducing the airtightness of the terminal seal portion, resulting in an electricity storage device with improved reliability in terms of airtightness.
[0008] An example of a case in which the resin member does not have a stress reducing portion is when the resin member does not have a portion corresponding to the stress reducing portion, regardless of whether the terminal member has a second roughened portion.An example of a case in which the terminal member does not have a second roughened portion is when the resin member has a portion corresponding to the stress reducing portion, but the terminal member does not have a roughened surface corresponding to the second roughened portion, so the portion of the resin member corresponding to the stress reducing portion cannot be fixed to the portion of the terminal member corresponding to the second phase portion.
[0009] Examples of the power storage device include secondary batteries such as lithium ion secondary batteries and sodium ion secondary batteries, and capacitors such as lithium ion capacitors. Furthermore, the second metal forming the terminal member may be the same as the first metal forming the case member (for example, both are aluminum), or may be different (for example, aluminum and copper).
[0010] The stress reduction portion of the resin member is fixed to the second roughened portion of the terminal member, and may include cracks due to cohesive failure along the second roughened portion while maintaining its adhesion to the second roughened portion, or may have no cracks. The second roughened portion of the terminal member may be formed in a range that can reduce stress generated in the terminal seal portion of the resin member by fixing the stress reducing portion of the resin member, and may or may not be annular and strip-shaped surrounding the terminal member. The stress reducing portion may also be annular and strip-shaped and fixed to the second roughened portion, but it does not have to be annular and strip-shaped.
[0011] (2) In the energy storage device described in (1) above, the stress reduction portion may be fixed to the second roughened portion of the terminal member and may be a crack-containing portion that includes a crack due to cohesive failure along the second roughened portion.
[0012] In this energy storage device, the stress reduction portion is a crack-containing portion that contains a crack. That is, it is believed that the stress generated in the stress reduction portion exceeded the strength of the resin material, causing a crack due to cohesive failure in the stress reduction portion. However, the occurrence of this crack releases the stress generated in the stress reduction portion, which in turn reduces the stress generated in the terminal seal portion, resulting in a more stable state.
[0013] (3) In the energy storage device described in (1) or (2) above, the first roughened portion of the terminal member may be a forest of nanopillars with a height of 50 nm or more, each of which is formed by particles originating from the terminal member being linked together in a string-like pattern, and the terminal seal portion of the resin member may be an energy storage device in which the resin material is filled between the forest of nanopillars and the terminal seal portion is airtightly fixed to the first roughened portion.
[0014] In this electricity storage device, the first roughened portion of the terminal member is a roughened surface with a forest of nanopillars, while the resin material forming the terminal seal portion of the resin member is filled between the nanopillars, which allows for strong adhesion between the first roughened portion and the terminal seal portion and maintains good airtightness between them.
[0015] (4) In the energy storage device described in any one of (1) to (3) above, the second roughened portion of the terminal member may be a forest of nanopillars with a height of 50 nm or more, each of which is formed by particles originating from the terminal member being linked together in a string-like pattern, and the stress reduction portion of the resin member may be an energy storage device in which the resin material is filled between the forest of nanopillars and fixed to the second roughened portion.
[0016] In this electricity storage device, the second roughened portion of the terminal member is a roughened surface with a forest of nanopillars, while the resin material forming the stress reducing portion of the resin member is filled between the nanopillars, thereby firmly bonding the second roughened portion and the stress reducing portion. [Brief explanation of the drawings]
[0017] [Figure 1] 1 is a perspective view of a battery according to an embodiment, a comparative embodiment, and a modified embodiment. [Figure 2] 1A and 1B are longitudinal cross-sectional views of batteries according to an embodiment, a comparative embodiment, and a modified embodiment, taken along the battery height direction and the battery width direction. [Figure 3] 3 is a partially enlarged cross-sectional view showing the vicinity of a terminal insertion hole of a lid member of the battery according to the embodiment. FIG. [Figure 4]10A and 10B are partially enlarged cross-sectional views showing nano-pillars standing in rows in the roughened portions of the terminal member and the cover member and the filled resin member according to the embodiment, comparative embodiment, and modified embodiment. [Figure 5] 3 is a flowchart of a method for manufacturing a battery according to an embodiment. [Figure 6] 1 is an exploded view of a battery according to an embodiment, a comparative embodiment, and a modified embodiment; [Figure 7] 10A and 10B are explanatory views showing how a plurality of bowl-shaped recesses and nano-pillars standing in the bowl-shaped recesses are formed by scanning with pulsed laser light in a sealing portion forming step in the manufacturing method of the battery according to the embodiment. [Figure 8] 10 is a partially enlarged cross-sectional view showing the vicinity of the terminal insertion hole of the lid member, the terminal member, and the resin member in a modified embodiment of the battery. FIG. [Figure 9] 9 is a cross-sectional view taken along the line DD in FIG. 8 of a modified battery. [Figure 10] FIG. 10 is a partially enlarged cross-sectional view showing the vicinity of a terminal insertion hole of a lid member, a terminal member, and a resin member in a battery according to a comparative example. DETAILED DESCRIPTION OF THE INVENTION
[0018] (Embodiment) An embodiment of the present invention will be described below with reference to the drawings. Fig. 1 shows a perspective view of a battery (energy storage device) 1 according to this embodiment, and Fig. 2 shows a longitudinal cross-sectional view of the battery 1. Fig. 3 shows an enlarged partial cross-sectional view of the vicinity of the terminal insertion hole 30h of the lid member 30 of the lid assembly 15 of the battery 1. In the following description, the battery height direction AH, battery width direction BH, and battery thickness direction CH of the battery 1 will be defined as the directions shown in Figs. 1 and 2.
[0019] This battery 1 is a rectangular (rectangular) sealed lithium ion secondary battery that can be installed in vehicles such as hybrid cars, plug-in hybrid cars, and electric cars. The battery 1 is composed of a case 10, an electrode assembly 40 housed in the case 10, and positive and negative terminal members 50 fixed to the case 10 via resin members 70. The electrode assembly 40 is covered within the case 10 by a bag-shaped insulating holder 7 made of insulating film. The case 10 also contains an electrolyte 5, a portion of which is impregnated within the electrode assembly 40 and the remainder of which is collected at the bottom inside the case 10.
[0020] The case 10 is a rectangular box made of metal (aluminum in this embodiment), and is configured from a case body member 20 in the shape of a bottomed square cylinder with a rectangular opening 20c and accommodating an electrode assembly 40 therein, and a rectangular plate-shaped lid member 30 that closes the opening 20c of the case body member 20. The opening 20c of the case body member 20 and a peripheral edge 30f of the lid member 30 are hermetically welded all around. The lid member 30 is provided with a safety valve 11 that ruptures and opens when the internal pressure of the case 10 exceeds a valve opening pressure. The lid member 30 is also provided with a liquid inlet 30k, which is hermetically sealed with a disc-shaped liquid inlet plug 12 made of aluminum.
[0021] The electrode assembly 40 is a flat, cylindrical, wound type. Long, strip-shaped positive electrode plates 41 and negative electrode plates 42 are alternately stacked and wound with two long, strip-shaped separators 43 made of porous resin, and then compressed in the battery thickness direction CH to form a flattened shape. A positive electrode current collector 40p is formed on one side BH1 (left side in FIG. 2 ) of the electrode assembly 40 in the battery width direction BH along the winding axis 40X, where the current collector foil of the positive electrode plate 41 is spirally overlapped. This positive electrode current collector 40p is welded to a positive electrode terminal member 50 for electrical continuity. Furthermore, a negative electrode current collector 40n is formed on the other side BH2 (right side in FIG. 2 ) of the electrode assembly 40 in the battery width direction BH, where the current collector foil of the negative electrode plate 42 is spirally overlapped. This negative electrode current collector 40n is welded to a negative electrode terminal member 50 for electrical continuity.
[0022] Rectangular terminal insertion holes 30h penetrating the lid member 30 are provided near both ends of one side BH1 and the other side BH2 in the battery width direction BH. A positive electrode terminal member 50 made of aluminum is inserted into the terminal insertion hole 30h on the one side BH1, and the terminal member 50 is airtightly fixed to the lid member 30 via a resin member 70 welded thereto while being insulated from the lid member 30. Meanwhile, a negative electrode terminal member 50 made of copper is inserted into the terminal insertion hole 30h on the other side BH2, and the terminal member 50 is airtightly fixed to the lid member 30 via a resin member 70 welded thereto while being insulated from the lid member 30.
[0023] As can be easily understood from Figures 1 and 2, the positive and negative terminal members 50 have roughly mirror-image shapes, and are made by cutting and bending metal plates (aluminum plate for the positive electrode and copper plate for the negative electrode) using a press.
[0024] The terminal member 50 is located above the cover member 30 on the upper side AH1 in the battery height direction AH, and has a rectangular, flat top plate portion 50a extending in the battery width direction BH and the battery thickness direction CH, and a bent extension portion 50b that bends at a right angle from the edge of the top plate portion 50a on one side CH1 in the battery thickness direction CH (the rear side in Figures 2 and 3) and extends to the lower side AH2 in the battery height direction AH. Furthermore, the terminal member 50 has a stepped extension portion 50c that is shifted from the bent extension portion 50b to the outer side BHO in the battery width direction BH (one side BH1 in the positive terminal member 50, the other side BH2 in the negative terminal member 50; see Figure 2) in a stepped manner by approximately half the width dimension of the bent extension portion 50b and extends to the lower side AH2 in the battery height direction AH, and a connecting portion 50d that extends from the stepped extension portion 50c to the lower side AH2 in the battery height direction AH, bends midway to the other side CH2 in the battery thickness direction CH (the front side in Figure 2), and further extends to the lower side AH2 in the battery height direction AH. The bent extension portion 50b, the stepped extension portion 50c, and the connecting portion 50d all have a rectangular cross section that is elongated in the battery width direction BH.
[0025] Of the terminal member 50, the bent extension portion 50b is inserted into the terminal insertion hole 30h of the cover member 30. In addition, the connection portion 50d of the positive electrode terminal member 50 is welded to the positive electrode current collector 40p of the electrode body 40, thereby extending the positive electrode potential of the positive electrode current collector 40p to the top plate portion 50a of the positive electrode terminal member 50. Similarly, the connection portion 50d of the negative electrode terminal member 50 is welded to the negative electrode current collector 40n of the electrode body 40, thereby extending the negative electrode potential of the negative electrode current collector 40n to the top plate portion 50a of the negative electrode terminal member 50.
[0026] The positive and negative terminal members 50 are each integrally fixed to the lid member 30 by a resin member 70 molded by insert molding. The resin member 70 of this embodiment is made of a resin material 70R containing a thermoplastic main resin (specifically, polyphenylene sulfide (PPS)), a thermoplastic elastomer, and a filler (specifically, a fibrous glass filler). The resin member 70 is roughly divided into a top plate peripheral portion 71, an outer peripheral portion 72, an inner peripheral portion 73, an insertion hole filling portion 74 serving as a terminal seal portion, and a step surrounding portion 75 serving as a stress reduction portion. Of these, the top plate peripheral portion 71 is a rectangular annular portion located outside the top plate portion 50a of the terminal member 50 in the planar direction, i.e., around the battery width direction BH and the battery thickness direction CH. The outer peripheral portion 72 is an annular portion located on the underside AH2 of the top plate peripheral portion 71 and on the upper side AH1 of the annular peripheral portion 31 of the cover member 30 that surrounds the terminal insertion hole 30h. The inner peripheral portion 73 is an annular portion located on the underside AH2 of the peripheral portion 31 of the cover member 30. The insertion hole filling portion 74 is an annular portion located on the underside AH2 of the top plate peripheral portion 71 and sandwiched between the inner circumferential surface 30hs of the terminal insertion hole 30h of the cover member 30 and the bent extension portion 50b of the terminal member 50. The stepped surrounding portion 75 is an annular portion that surrounds the stepped extension portion 50c of the terminal member 50 with the underside AH2 of the insertion hole filling portion 74 and the underside AH2 of the cover member 30.
[0027] First, the bonding and airtightness between the lid member 30 and the resin member 70 in the battery 1 will be described. The outer surface 30s1 of the annular peripheral edge 31 surrounding the terminal insertion hole 30h of the lid member 30, facing the upper side AH1, is formed with an annular, band-shaped outer roughened lid seal portion 31s1 surrounding the terminal insertion hole 30h, as shown by the bold line in FIG. 3 . The inner surface 30s2 of the peripheral edge 31 facing the lower side AH2 is formed with an annular, band-shaped inner roughened lid seal portion 31s2 surrounding the terminal insertion hole 30h, as shown by the bold line in FIG. 3 . The outer roughened lid seal portion 31s1 and the inner roughened lid seal portion 31s2 are roughened surfaces that have been roughened by a roughening treatment using pulsed laser light LC, which will be described later. That is, as shown in FIG. 4, the outer roughened portion 31s1 of the lid seal and the inner roughened portion 31s2 of the lid seal are composed of a large number of nanopillars 36, each of which is columnar in shape and has a height ha of 50 nm or more (in this embodiment, the height ha is approximately 150 nm), and which are made up of particles 36p derived from the metal (aluminum in this embodiment) that makes up the lid member 30, linked together in a string-like pattern.
[0028] In addition, the outer roughened portion 31s1 of the lid seal and the inner roughened portion 31s2 of the lid seal are filled with a resin material 70R that forms the outer peripheral portion 72 and the inner peripheral portion 73 of the resin member 70. Therefore, the outer roughened portion 31s1 of the lid seal and the outer peripheral portion 72, and the inner roughened portion 31s2 of the lid seal and the inner peripheral portion 73 are firmly fixed with a long creeping distance in the width direction (radial direction of the terminal insertion hole 30h) of the outer roughened portion 31s1 of the lid seal or the inner roughened portion 31s2 of the lid seal, respectively. Therefore, the resin member 70 is firmly fixed to the peripheral portion 31 of the lid member 30, and the interface between the peripheral portion 31 of the lid member 30 and the resin member 70 is sealed with high airtightness by the annular outer roughened portion 31s1 of the lid seal and the inner roughened portion 31s2 of the lid seal. In addition, in the battery 1 of this embodiment, two roughened portions, namely, the outer roughened portion 31s1 of the lid seal and the inner roughened portion 31s2 of the lid seal, are provided on the peripheral portion 31 of the lid member 30, so that particularly high reliability can be achieved in terms of airtightness between the lid member 30 and the resin member 70.
[0029] Next, the bonding and airtightness between the positive and negative terminal members 50 and the resin member 70 in the battery 1 will be described. In the positive and negative terminal members 50, as shown by the dotted pattern and thick lines in FIG. 3 , the bent extension portion 50b is located near the terminal insertion hole 30h and is a band-like, annular portion that surrounds the terminal member 50, forming a first roughened portion 51. The first roughened portion 51 is a rectangular, annular, band-like roughened surface consisting of four surfaces: an inner roughened end surface 51a facing the inner side BHI in the battery width direction BH; an outer roughened end surface 51b facing the outer side BHO in the battery width direction BH; and flat roughened portions 51c and 51d facing one side CH1 (the far side in FIG. 3 ) and the other side CH2 (the near side in FIG. 3 ) in the battery thickness direction CH. The first roughened portion 51 is also a roughened surface obtained by a roughening process using pulsed laser light LC, which will be described later. That is, as shown in FIG. 4, the first roughened portion 51 also has a forest of nanopillars 56, each of which is made up of particles 56p derived from the metal that forms the terminal member 50 (in this embodiment, the positive electrode terminal member is aluminum and the negative electrode terminal member is copper) that are linked together in a string-like manner to form columns, each with a height ha of 50 nm or more (in this embodiment, the height ha is approximately 150 nm).
[0030] Furthermore, as described below, the first roughened portion 51 is also filled with resin material 70R that forms the insertion hole filling portion 74 of the resin member 70, and the insertion hole filling portion 74 of the resin member 70 is firmly fixed to the first roughened portion 51 at the bent extension portion 50b of the terminal member 50 with a long creepage distance in the width direction of the first roughened portion 51 (battery height direction AH in Figure 3).
[0031] Therefore, the interface between the bent extension portion 50b of the terminal member 50 and the insertion hole filling portion 74 of the resin member 70, and ultimately the interface between the terminal member 50 and the resin member 70, can maintain particularly good airtightness between the band-shaped, annular first roughened portion 51 and the insertion hole filling portion 74.
[0032] Furthermore, in this embodiment, roughened end surfaces 52a and 52b, which are second roughened portions, are formed in portions of the stepped extensions 50c of the positive and negative terminal members 50. Specifically, as shown by the bold lines in FIG. 3 , the roughened end surface 52a facing the inner side BHI in the battery width direction BH and the roughened end surface 52b facing the outer side BHO in the battery width direction BH on the upper side AH1 of the stepped extensions 50c in the battery height direction AH are also roughened by a roughening process using pulsed laser light LC (described later). That is, as shown in FIG. 4 , the roughened end surfaces 52a and 52b also have a forest of columnar nanopillars 56, each of which is composed of particles 56p derived from the metal constituting the terminal member 50 (aluminum or copper in this embodiment) linked together in a string-like pattern. The nanopillars 56 have a height ha of 50 nm or more (approximately 150 nm in this embodiment).
[0033] As will be described later, the roughened end surfaces 52a, 52b of the stepped extension 50c are also filled with the resin material 70R that forms the resin member 70. Therefore, the stepped surrounding portion 75 of the resin member 70 surrounds the stepped extension 50c of the terminal member 50 and is firmly fixed to at least two of the roughened end surfaces 52a, 52b of the stepped extension 50c.
[0034] As will be described later, the lid assembly 15 is formed by injection molding the resin material 70R to integrally fix the lid member 30 and the pair of terminal members 50 inserted into the terminal insertion holes 30h with the resin material 70. However, since there is a difference in the thermal expansion coefficient between the metals (aluminum and copper in this embodiment) constituting the lid member 30 and the terminal members 50 and the resin material 70R, thermal stress occurs in each member when the temperature is lowered after molding due to the difference in thermal expansion.
[0035] Here, as shown in Figure 10, a comparative battery C1 is the same as the battery 1 of this embodiment, but differs only in that the stepped extension portion 50c of the terminal member 50 does not have the roughened end surface portions 52a, 52b, and the battery 1 of this embodiment is compared to explain the stresses that occur in each part of the resin member 70.
[0036] When the battery C1 of this comparative embodiment is exposed to a temperature environment at about room temperature, or when the battery C1 is exposed to an environment lower than room temperature (for example, −40° C.) in a thermal cycle test or the like, a relatively high stress is generated in the resin member 70 near the first roughened portion 51 of the insertion hole filling portion 74. In particular, a high stress is generated in the insertion hole filling portion 74 near the outer end surface roughened portion 51 b of the first roughened portion 51. In addition, a higher stress is generated in the insertion hole filling portion 74 near the inner end surface roughened portion 51 a than near the outer end surface roughened portion 51 b, and therefore the highest stress is generated in the resin member 70.
[0037] Therefore, when battery C1 is exposed to an environment at room temperature or lower, as shown in FIG. 10, cracks CL1 due to cohesive failure may occur along the roughened inner end surface 51a of the insertion hole filling portion 74 of the resin member 70 near the roughened inner end surface 51a. In addition, cracks (not shown) due to cohesive failure may also occur near the roughened outer end surface 51b. This is thought to be because the stress generated in these areas exceeds the strength of the resin material 70R. In battery C1, where cracks CL1 have occurred in the insertion hole filling portion 74 of the resin member 70, the airtightness of the interface between the terminal member 50 and the resin member 70 is significantly reduced. Thus, it can be seen that battery C1 of the comparative embodiment has low reliability in terms of airtightness, regardless of whether or not cracks CL1 have occurred.
[0038] In contrast, when the battery 1 of this embodiment is exposed to an environment at room temperature or even lower, the stress generated in the insertion hole filling portion 74 of the resin member 70 near the outer end surface roughened portion 51b and the inner end surface roughened portion 51a of the first roughened portion 51 is significantly lower than that of battery C1 (for example, in this embodiment, approximately half or less).
[0039] However, instead, in the resin member 70, a stress higher than the stress near the outer roughened end surface 51b of the first roughened portion 51 is generated near the roughened end surface 52b of the outer BHI of the step surrounding portion 75. In addition, a stress higher than the stress near the inner roughened end surface 51a of the first roughened portion 51 is generated near the roughened end surface 52a of the inner BHI, and the highest stress in the resin member 70 is generated.
[0040] As described above, in the battery 1 of this embodiment, the terminal member 50 is provided with not only the first roughened portion 51 fixed to the insertion hole filling portion 74, but also the roughened end surfaces 52a and 52b fixed to the step surrounding portion 75, which is located outside (on the lower side AH2 in this embodiment) as viewed from the insertion hole filling portion 74 and has a relatively large volume. Therefore, much of the stress generated in the resin member 70 due to the difference in thermal expansion caused by cooling of the battery 1 is applied to the portions of the step surrounding portion 75 near the roughened end surfaces 52a and 52b. Accordingly, it is believed that the stress generated near the outer roughened end surface 51b and the inner roughened end surface 51a of the first roughened portion 51 in the insertion hole filling portion 74 is reduced compared to battery C1.
[0041] That is, in this embodiment, a portion of the step surrounding portion 75 of the resin member 70 is fixed to the end surface roughened portions 52a, 52b of the terminal member 50, thereby reducing the stress generated in the insertion hole filling portion 74, particularly the stress generated near the outer end surface roughened portion 51b and the inner end surface roughened portion 51a. As a result, in the battery 1 of this embodiment, unlike the battery C1, cracks CL1 (see Figure 10) are prevented from occurring in the insertion hole filling portion 74 of the resin member 70 near the inner end surface roughened portion 51a or near the inner end surface roughened portion 51a and the outer end surface roughened portion 51b.
[0042] In this way, in battery 1, the maximum stress generated in insertion hole filling portion 74 can be reduced compared to when resin member 70 is not provided with step surrounding portion 75, which is a stress reducing portion, or when terminal member 50 is not provided with roughened end surface portions 52a, 52b. This makes it possible to suppress the occurrence of a defect such as that seen in comparative battery C1, in which cracks occur in insertion hole filling portion 74 and the airtightness at the interface between terminal member 50 and resin member 70 decreases, resulting in battery 1 with improved reliability in terms of airtightness.
[0043] As shown in FIG. 3, cracks CL2 due to cohesive failure may occur along the roughened end surface 52a in the step surrounding portion 75 near the roughened end surface 52a, where the generated stress is highest within the resin member 70. In addition, cracks (not shown) due to cohesive failure may also occur along the roughened end surface 52b near the outer roughened end surface 52b. This is thought to be because the stress generated in these areas exceeds the strength of the resin material 70R. However, unlike the cracks CL1 described above, these cracks CL2 do not affect the sealing provided by the insertion hole filling portion 74 and do not reduce the airtightness at the interface between the terminal member 50 and the resin member 70.
[0044] Furthermore, in the step surrounding portion 75, which is the crack containing portion that contains the crack CL2, the stress that had been generated in the step surrounding portion 75 before the crack occurred is released by the occurrence of the crack CL2, and thus the stress generated in the insertion hole filling portion 74 is also reduced, resulting in an even more stable state.
[0045] Next, a method for manufacturing the battery 1 of this embodiment will be described (see FIGS. 5 to 8). First, a pre-roughening lid member 30 is prepared. The pre-roughening lid member 30 is obtained by pressing an aluminum plate. Also, a pre-roughening terminal member 50 is prepared. The pre-roughening terminal member 50 is obtained by pressing a metal plate (an aluminum plate for the positive electrode and a copper plate for the negative electrode).
[0046] Then, in the terminal roughening process S1, pulsed laser light LC is intermittently irradiated onto the bent extension portion 50b of the above-mentioned terminal member 50 while shifting the irradiation position, thereby forming a band-like, annular first roughened portion 51 in which multiple bowl-shaped recesses 55 are arranged while partially overlapping each other (see FIGS. 3 and 7). Similarly, pulsed laser light LC is intermittently irradiated onto upper sides AH1 of the inner end face 50ca and the outer end face 50cb of the stepped extension portion 50c of the terminal member 50 while shifting the irradiation position, thereby forming end face roughened portions 52a, 52b in which multiple bowl-shaped recesses 55 are arranged while partially overlapping each other (see FIGS. 3 and 7).
[0047] Separately, in a lid roughening process S2, pulsed laser light LC is intermittently irradiated onto the outer surface 30s1 and the inner surface 30s2 of the peripheral edge 31 of the terminal insertion hole 30h of the lid member 30 while shifting the irradiation position, to form a band-like, annular lid seal outer roughened portion 31s1 and a band-like, annular lid seal inner roughened portion 31s2, in which a large number of cup-shaped recesses 35 are arranged while partially overlapping each other (see FIGS. 3 and 7). The irradiation conditions for the pulsed laser light LC were the same as those for irradiating the positive electrode terminal member 50 with a laser in the terminal roughening process S1.
[0048] Next, in the insert molding process S3, the lid assembly 15 is formed by insert molding, in which the lid member 30 and the pair of terminal members 50 are fixed together with the resin member 70 (see the upper part of FIG. 6). Specifically, in a mold (not shown), the positive and negative terminal members 50 are inserted into the pair of terminal insertion holes 30h of the lid member 30, respectively, and molten resin material 70R is injected and welded to the peripheral edge portion 31 of the lid member 30 and parts of the top plate portion 50a, bent extension portion 50b and stepped extension portion 50c of the terminal members 50, and then cooled, thereby insert-molding the pair of resin members 70. At this time, the molten resin material 70R is filled between the nanopillars 36 standing in the roughened outer lid seal portion 31s1 and the roughened inner lid seal portion 31s2 of the lid member 30, and between the nanopillars 56 standing in the first roughened portion 51 and the roughened end surface portions 52a, 52b of the terminal member 50, and is firmly fixed.
[0049] Next, in the electrode body connecting process S4, the connection portion 50d of the positive electrode terminal member 50 of the lid assembly 15 is welded to the positive electrode current collecting portion 40p of the electrode body 40 prepared in advance (see FIGS. 1, 2, and 6). Also, the connection portion 50d of the negative electrode terminal member 50 of the lid assembly 15 is welded to the negative electrode current collecting portion 40n of the electrode body 40. Thereafter, the electrode body 40 is wrapped in a bag-shaped insulating holder 7.
[0050] Next, in the electrode assembly containing / case forming process S5, the electrode assembly 40 covered with the insulating holder 7 described above is inserted into the case body member 20, and the opening 20c of the case body member 20 is closed with the lid member 30. Furthermore, the opening 20c of the case body member 20 and the peripheral edge portion 30f of the lid member 30 are laser-welded airtightly around the entire periphery to form the case 10 containing the electrode assembly 40 inside.
[0051] Next, in a liquid filling and sealing step S6, electrolyte 5 is poured into case 10 through liquid filling hole 30k, and electrolyte 5 is impregnated into electrode body 40. Thereafter, liquid filling hole 30k is covered from the outside with liquid filling plug 12, and liquid filling plug 12 is laser-welded to case 10 airtightly. Next, in the initial charging and aging step S7, a charging device (not shown) is connected to the battery 1 to perform an initial charge on the battery 1. After that, the initially charged battery 1 is left standing at a high temperature (e.g., 60°C) for a predetermined time to age the battery 1. In this way, the battery 1 is completed.
[0052] The comparative battery C1 is manufactured using the same process as that for the battery 1. However, in the terminal roughening step S1, the end surface roughened portions 52a, 52b are not formed on the inner end surface 50ca and the outer end surface 50cb of the stepped extending portion 50c of the terminal member 50, and only the band-shaped, annular first roughened portion 51 is formed on the bent extending portion 50b (see FIG. 10 ).
[0053] (Variations) Next, a battery 101 according to a modified embodiment will be described with reference to the drawings. The battery 101 according to this modified embodiment differs from the battery 1 according to the above-described embodiment in the cross-sectional shape of the stepped extension 150c of the terminal member 150 and the shape of the roughened portion provided on this stepped extension 150c (see FIGS. 8 and 9), but is otherwise similar. Therefore, the following description will focus on the differences, and similar parts will be given the same reference numerals and will not be described again or will be simplified.
[0054] The terminal member 150 used in the battery 101 has substantially the same shape as the terminal member 50 of the battery 1. However, as described above, the stepped extension portion 50c of the terminal member 50 has a rectangular cross section, and roughened end surface portions 52a, 52b are formed on the upper side AH1 of the inner end surface 50ca facing the inner side BHI and the outer end surface 50cb facing the outer side BHO, respectively.
[0055] 8(b), the stepped extension 150c of the terminal member 150 has a rectangular cross section with rounded corners. In other words, in addition to flat surfaces 150cc and 150cd extending in the battery width direction BH, the corners are rounded and integrated with the end surfaces, forming an inner end R surface 151car facing the inner side BHI and an outer end R surface 151cbr facing the outer side BHO. Furthermore, end R surface roughened portions 125a and 152b, which are second roughened portions, are formed on the upper side AH1 of the inner end R surface 151car and the outer end R surface 151cbr of the stepped extension 50c. As in the roughened end surface portions 52a, 52b of the battery 1, the roughened end R surface portions 152a, 152b of the battery 101 are also composed of a forest of nanopillars 56, each of which is made up of particles 56p derived from the metal (aluminum or copper in this embodiment) that forms the terminal member 150, linked together in a string of beads to form columns, with the height ha being 50 nm or more (approximately the height ha = 150 nm in this embodiment), as shown in Figure 4.
[0056] The roughened end R surfaces 152a, 152b of the stepped extension 150c are also filled with the resin material 70R that constitutes the resin member 70. Therefore, the stepped surrounding portion 75 of the resin member 70 surrounds the stepped extension 150c of the terminal member 150, and is firmly fixed to at least two of the roughened end R surfaces 152a, 152b of this stepped extension 150c.
[0057] Therefore, as with the battery 1 of the embodiment, when the modified battery 101 is exposed to an environment at room temperature or even lower, the stress generated in the insertion hole filling portion 74 of the resin member 70 near the outer end surface roughened portion 51b and the inner end surface roughened portion 51a of the first roughened portion 51 is significantly lower than that of battery C1 (for example, even in this modified form, it is approximately half or less).
[0058] On the other hand, in the resin member 70, a stress higher than the stress near the outer end surface roughened portion 51b of the first roughened portion 51 is generated near the outer end surface roughened portion 152b of the step surrounding portion 75. In addition, a stress higher than the stress near the inner end surface roughened portion 51a of the first roughened portion 51 is generated near the inner end surface roughened portion 152a, and the highest stress in the resin member 70 is generated near the inner end surface roughened portion 152a.
[0059] Therefore, even in the modified battery 101, the maximum stress generated in the insertion hole filling portion 74 can be reduced compared to when the resin member 70 is not provided with the step surrounding portion 75 or when the terminal member 150 is not provided with the end R surface roughened portions 152a, 152b. This makes it possible to suppress the occurrence of a problem in which cracks occur in the insertion hole filling portion 74 and the airtightness at the interface between the terminal member 50 and the resin member 70 decreases, resulting in battery 101 with improved reliability in terms of airtightness.
[0060] Comparing the battery 1 of the embodiment with the battery 101 of the comparative embodiment, the stress generated in the stepped surrounding portion 75 near the rounded end surfaces 152a and 152b in the battery 101 is relatively lower than the stress generated in the stepped surrounding portion 75 near the roughened end surfaces 52a and 52b in the battery 1. The reason for this is believed to be as follows. As described above, the stepped extension 50c of the terminal member 50 in the battery 1 has a rectangular cross section, which tends to cause stress to concentrate near the corners, resulting in high stress. In contrast, the stepped extension 150c of the terminal member 150 in the battery 101 of the present modified embodiment has a rounded rectangular cross section as described above. Therefore, stress does not concentrate near the corners, and it is believed that the stress generated in the stepped surrounding portion 75 near the rounded end surfaces 152a and 152b is relatively lower.
[0061] As described above, in battery 1, as shown in Fig. 3, cracks CL2 due to cohesive failure sometimes occurred along roughened end surface 52a in step surrounding portion 75. In addition, cracks sometimes occurred along outer roughened end surface 52b.
[0062] In contrast, as can be seen from the fact that crack CL2 is not shown in Figure 8, cracks are less likely to occur in the stepped surrounding portion 75 of battery 101 than in battery 1. As described above, this is thought to be because the stress generated in the stepped surrounding portion 75 is relatively low and is less likely to exceed the strength of the resin material 70R. For this reason, batteries 101 that have undergone stress release due to the occurrence of crack CL2 are less likely to be mixed with batteries that have not been stress released, making it possible to obtain batteries 101 with stable quality.
[0063] The present invention has been described above in accordance with embodiments and modified forms, but it goes without saying that the present invention is not limited to the embodiments, etc., and can be modified and applied as appropriate within the scope of the gist of the present invention. For example, in the embodiment, roughened end surfaces 52a and 52b are provided on the inner end surface 50ca and the outer end surface 50cb of the stepped extension portion 50c of the terminal member 50, respectively, but an example is shown in which no roughened portions are provided on the flat surfaces 50cc and 50cd facing the battery thickness direction CH. However, similar to first roughened portion 51, stepped extension portion 50c may also include end face roughened portions 52a and 52b, and a band-shaped, annular second roughened portion may be provided surrounding stepped extension portion 50c.
[0064] Furthermore, the roughened surfaces of the lid seal outer roughened portion 31s1, the first roughened portion 51, the roughened end surface portions 52a, 52b, etc., were formed by irradiation with pulsed laser light LC, with nanopillars 36, 56 standing tall. However, other roughening methods can also be used. For example, the roughened surface can be formed by physical roughening treatments such as shot blasting, polishing, and thermal spraying, or chemical roughening treatments such as anodizing. [Explanation of symbols]
[0065] 1,101,C1 Battery (energy storage device) 10 cases 20 Case body member (case member) 30 Lid member (case member) 30h Terminal insertion hole 30hs (terminal insertion hole) inner surface 31 Periphery 31s1 (of the lid member) outer roughened portion of the lid seal 31s2 Roughened inner surface of lid seal (of lid member) 40 Electrode body 50,150 Terminal material 50a Top plate 50b Bend extension part 50c,150c step extension 50ca inner end surface 50cb outer edge 150car Inner end R surface 150cbr Outer end R surface 50d connection 51 1st roughening section 51a Roughened inner end surface 51b Roughened outer end surface 51c,51d Roughened flat plate surface 52a, 52b End surface roughening part (second roughening part) 152a, 152b Edge R surface roughening part (second roughening part) 70,170 Resin parts 70R resin material 71 Top board periphery 72 Outer periphery 73 Inner periphery 74 Insertion hole filling part (terminal seal part) 75 Step surrounding area (stress reduction area, crack containing area) 175 Step surrounding section (stress reduction section) CL1, CL2 cracks LC pulsed laser light
Claims
1. A case member having a rectangular box shape with each face facing in the battery height direction, battery width direction, and battery thickness direction, which are orthogonal to each other, and having rectangular terminal insertion holes extending in the battery width direction and the battery thickness direction; a plate-shaped terminal member made of a metal plate inserted into the terminal insertion hole; a resin member made of an insulating resin material and airtightly welded to the case member and the terminal member, respectively, to fix the terminal member to the case member while insulating it from the case member; An electricity storage device, The terminal member is a first roughened portion located within the terminal insertion hole, the first roughened portion having a roughened surface, surrounding the terminal member, and having a rectangular annular band shape that is long in the battery width direction and short in the battery thickness direction, the first roughened portion including a roughened end surface portion facing the battery width direction; and a second roughened portion that is spaced from the first roughened portion, extends in the battery height direction, and is provided on an end R surface that has an R-chamfered end surface or corner that faces the battery width direction; and The resin member is The case member and the terminal members inserted into the terminal insertion holes are integrally insert-molded, a ring-shaped, strip-shaped terminal seal portion that is airtightly fixed to the first roughened portion of the terminal member; a stress reducing portion that is fixed to the second roughened portion of the terminal member and generates stress therein to reduce stress generated in the vicinity of the end surface roughened portion of the terminal seal portion. Energy storage device.
2. The electricity storage device according to claim 1 , The stress reduction portion is a crack-containing portion that is fixed to the second roughened portion of the terminal member and that includes a crack caused by cohesive failure along the second roughened portion; Energy storage device.
3. The electricity storage device according to claim 1 or 2, The first roughened portion of the terminal member is The particles originating from the terminal member are linked together in a string to form columnar nanopillars with a height of 50 nm or more, The terminal seal portion of the resin member is The resin material is filled between the standing nano-pillars and fixed to the first roughened portion in an airtight manner. Energy storage device.
4. The electricity storage device according to claim 1 or 2, The second roughened portion of the terminal member is The particles originating from the terminal member are linked together in a string to form columnar nanopillars with a height of 50 nm or more, The stress reducing portion of the resin member is The resin material is filled between the standing nano-pillars and fixed to the second roughened portion. Energy storage device.
Citation Information
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