The present disclosure relates to a battery module.
In the related art, there is known a battery module in which a plurality of rectangular secondary batteries are connected to each other and layered. Because there is a possibility of deposition of lithium on a negative electrode when a distance between a positive electrode and the negative electrode of an electrode assembly included within each battery becomes large, in the battery module, a battery integrated assembly in which a plurality of batteries are layered is constrained by sandwiching the battery integrated assembly with a pair of end plates from a direction of layering of the battery, so as to prevent the distance between the positive electrode and the negative electrode from becoming large. In a battery module disclosed in Patent Literature 1, a battery integrated assembly is sandwiched by a pair of end plates bridged by a fixation member placed on a side surface, a constraining load is applied, and the applied constraining load at a lower part of a rectangular secondary battery is adjusted, so as to suppress deposition of a metal contained in the positive electrode, on the negative electrode, due to gas generated by repetition of charging and discharging.
From the viewpoint of increased capacity, in some cases, the battery module is formed using a large-size rectangular secondary battery. In this case, because a size of the end plate also becomes large, rigidity thereof is reduced in comparison to the related art, and the end plate tends to be more easily deflected to an outer side during charging of the secondary battery. The present inventors have found that, when the end plate is deflected to the outer side, the end plate and a secondary battery adjacent to the end plate are spaced apart at a region near a center part in a lateral direction, resulting in a larger distance between a winding completion end of the negative electrode and the positive electrode, and possible deposition of lithium near the winding completion end of the negative electrode, depending on a direction and a position of the winding completion end of the negative electrode. Because the deposition of lithium may become a cause of internal short-circuiting, such deposition of lithium must be suppressed. Patent Literature 1 does not review the deflection of the end plate, and there still remains a room of improvement.
According to one aspect of the present disclosure, there is provided a battery module including: a battery integrated assembly in which a plurality of rectangular secondary batteries are layered; a pair of end plates that sandwich the battery integrated assembly from respective sides in a direction of layering of the secondary batteries; and a side surface fixation member provided on a side surface of the secondary battery, and an upper surface fixation member provided on an upper surface of the secondary battery, that bridge the end plates to each other, wherein the secondary battery includes a wound-type electrode assembly having a flat shape in which a positive electrode and a negative electrode are wound with a separator therebetween, in such a manner that a winding axis thereof is disposed in a lateral direction, and, in at least the secondary battery adjacent to the end plate, a winding completion end of the negative electrode faces upward, and is positioned between a half of a height of the electrode assembly and a top part of a curved part of the electrode assembly in a cross section orthogonal to the winding axis.
According to the battery module of an aspect of the present disclosure, deposition of lithium at the winding completion end of the negative electrode can be suppressed.
A battery module according to an embodiment of the present disclosure will now be described in detail with reference to the drawings. The battery module of the present disclosure is not limited to the embodiment described below. The drawings referred to in the description of the embodiment are schematically shown, and sizes of constituting elements drawn in the figure or the like should be determined in consideration of the following description. In the present disclosure, the description of “approximately” is intended to include, for example, with reference to “approximately constant”, a structure of complete constant and also a structure of substantially constant.
A battery module 10 according to an embodiment of the present disclosure will now be described with reference to
As shown in
The battery integrated assembly 14 may include an elastic plate 24 between the secondary batteries 12. As will be described later, when the secondary batteries 12 are bound together along the vertical direction, the elastic plate 24 deforms, so that deformation of the secondary battery 12 can be suppressed. A material of the elastic plate 24 may be, for example, a resin such as polypropylene.
For the secondary batteries 12 of the battery integrated assembly 14, batteries with different capacities, different sizes, different types, or the like, may be used, but desirably, batteries of identical structure are used. In
The battery integrated assembly 14 may include a bus bar 26 which electrically connects adjacent secondary batteries 12. In the example structure shown in
In the battery module 10, the side surface fixation member 18 and the upper surface fixation member 22 are bridged to a pair of end plates provided at respective ends in the vertical direction, and the end plates are pushed against the battery integrated assembly 14, so as to bind the secondary batteries 12 together. The end plate 16 may be a plate-shape member which is slightly larger than the secondary battery 12. On the end plate 16, a bolt hole for fastening the side surface fixation member 18 and the upper surface fixation member 22 may be formed. The end plate 16 is a member for holding the secondary batteries 12 which are expanded due to charging, and desirably, the end plate 16 is made of a metal such as aluminum, iron, or the like, from the viewpoint of improvement of rigidity.
As described above, the side surface fixation member 18 and the upper surface fixation member 22, along with the end plate 16, have functions to maintain the bound state of the secondary batteries 12 and to hold the battery integrated assembly 14. In other words, a constraining load in the vertical direction is applied from the end plates 16 at respective ends to the battery integrated assembly 14 by bridging the side surface fixation member 18 and the upper surface fixation member 22 between the pair of end plates 16. With this configuration, a compressive stress is applied also to an electrode assembly 30 in the secondary battery 12, so as to suppress enlargement of the distance between the positive electrode and the negative electrode.
The side surface fixation members 18 are provided on respective side surfaces of the battery integrated assembly 14 along the vertical direction. The pair of side surface fixation members 18 are placed to sandwich the secondary batteries 12 from respective ends in the lateral direction, and are desirably placed opposing each other. In the example configuration of
The side surface fixation member 18 may be, for example, a plate-shape member made of a metal, and having an approximately constant width (length in the height direction). Alternatively, the side surface fixation member 18 may be made of a resin. In the example configuration of
The upper surface fixation member 22 is provided on an upper surface of the battery integrated assembly 14 along the vertical direction. In the example configuration shown in
Next, with reference to
The outer housing 32 has a bottom, and a sidewall part which extends in an upright manner on a periphery of the bottom. The side wall part is formed to be approximately perpendicular to the bottom. No particular limitation is imposed on the shape of the outer housing 32. As shown in
The electrode assembly 30 has a flat shape, in which a positive electrode 36 and a negative electrode 38 are wound with a separator 40 therebetween. The secondary battery 12 includes the electrode assembly 30 of the wound type in an orientation in which the winding axis is in the lateral direction.
In the electrode assembly 30, the positive electrode 36 protrudes on one end side in the winding axis direction, and the negative electrode 38 protrudes on the other end side in the winding axis direction. A positive electrode current collector 42 is connected to the positive electrode 36, and a negative electrode current collector 46 is connected to the negative electrode 38. Further, a positive electrode terminal 44 is provided on one end in the lateral direction of the sealing plate 34, and a negative electrode terminal 48 is provided on the other end in the lateral direction. The positive electrode terminal 44 is connected to the positive electrode current collector 42, and the negative electrode terminal 48 is connected to the negative electrode current collector 46. The sealing plate 34 has a fluid injection hole 50 for injecting an electrolyte into the outer housing 32, and a discharge vent 52 for discharging gas when a pressure in the battery becomes greater than or equal to a predetermined value. The fluid injection hole 50 is sealed by a sealing plug after the injection.
Next, a function of the upper surface fixation member 22 will be described with reference to
During charging, each of the secondary batteries 12 of the battery integrated assembly 14 expands in the vertical direction. Therefore, in a charging state, in the secondary battery 12 sandwiched by other secondary batteries 12 on respective sides, a constraining load applied in the vertical direction is increased, and the compressive stress to the electrode assembly 30 in the secondary battery 12 is also increased. Thus, a risk of spacing apart of the negative electrode 38 and the positive electrode 36, and consequent deposition of lithium is low. On the other hand, in the charging state, because each of the end plates 16 tends to easily deflect to the outer side due to the pressure from an adjacent secondary battery 12a, there is a risk of spacing apart of the secondary battery 12a from the end plate 16, reduction of the compressive stress with respect to the electrode assembly 30 in the secondary battery 12a, and consequent enlargement of the distance between the positive electrode 36 and the negative electrode 38.
As shown in
The upper surface fixation member 22 is desirably provided at an approximate center in the lateral direction of the battery integrated assembly 14. Because the end plate 16 having respective ends in the lateral direction fixed by the side surface fixation member 18 tend to be more easily spaced apart from the secondary battery 12a at the center than at respective ends in the lateral direction, by providing the upper surface fixation member 22 at the approximate center in the lateral direction, the deflection in the vertical direction at the upper end of the end plate 16 can be suppressed, and the compressive stress can be applied to the upper side of the electrode assembly 30.
With reference to
In
An outermost element of the electrode assembly 30 may be the negative electrode 38. The outermost element of the electrode assembly 30 refers to an electrode positioned at a winding outermost side, of the positive electrode 36 or the negative electrode 38. The separator 40 may be present at a winding outer side of the outermost negative electrode 38. The electrode assembly 30 expands and contracts by repetition of charging and discharging. At a winding inner side, a frictional force applied to the positive electrode 36 and the negative electrode 38 is large, and positional deviation between the positive electrode 36 and the negative electrode 38 tends to not occur. On the other hand, because the applied frictional force is small for the outermost negative electrode 38, the positional deviation tends to occur, and the distance to the positive electrode 36 adjacent on the inner circumferential side tends to become larger. In particular, the positional deviation tends to occur for a winding completion end 38a of the negative electrode 38. Thus, a constraining load is applied by the end plate 16, so as to prevent the distance to the positive electrode 36 from becoming larger.
Because the end plate 16 has respective ends in the lateral direction fixed by the side surface fixation member 18 and the upper end fixed by the upper surface fixation member 22, when a pressure to an outer side is applied from the secondary battery 12a expanded by charging, as shown in
In at least the secondary battery 12a adjacent to the end plate 16, the winding completion end 38a of the negative electrode 38 faces upward, and is positioned between a half of the height of the electrode assembly 30 and a top part 30a of the curved part of the electrode assembly 30 in a cross section orthogonal to the winding axis. With this configuration, the compressive stress can be applied also to the winding completion end 38a of the negative electrode 38 to which the winding fastening tends to be not applied, and the deposition of lithium near the winding completion end 38a can be suppressed.
In
Next, with reference to
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Number | Date | Country | Kind |
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2020-050939 | Mar 2020 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2021/001689 | 1/19/2021 | WO |