The present invention relates to a battery pack and a method for producing the battery pack.
A battery pack in which a plurality of secondary battery cells is connected in series or in parallel to increase output and a capacity is used as a power source for an assisted bicycle, an electric tool, and the like. In such a battery pack, a plurality of secondary battery cells is housed in an outer case while housed in a battery holder. Furthermore, a circuit substrate on which a charging and discharging circuit, a protection circuit, and the like for the secondary battery cells are mounted is provided to the battery holder (for example, PTL 1).
In such a circuit substrate, a surface has been covered by potting from viewpoints of enhancing heat radiation, waterproofing, measures against foreign matters, and the like. In order to perform such potting, the circuit substrate is provided with substrate holder 91 for housing the circuit substrate as illustrated in an exploded perspective view of
However, this configuration has a problem in that a number of parts is increased since the battery holder and the substrate holder are required, and a structure for fixing the substrate holder on the battery holder and a fixing work such as screwing for fixing the substrate holder on the battery holder are required.
PTL 1: WO2016/006143 A
The present invention has been made in view of such a background, and an object of the present invention is to provide a battery pack capable of implementing a configuration for improving heat radiation of a circuit substrate with a potting resin, with a simpler configuration.
According to a battery pack of a first aspect of the present invention, the battery pack includes a plurality of secondary battery cells connected to each other in series and/or in parallel, a battery holder that holds the plurality of secondary battery cells, a circuit substrate connected to the plurality of secondary battery cells, and an outer case that houses the battery holder inside, in which the battery holder is divided into a plurality of divided holders, each of the divided holders forms a fitting structure for fitting the divided holders to each other at an interface for joining the divided holders together, the battery holder forms a substrate holding area that holds the circuit substrate with the circuit substrate surrounded by side walls in a state where the divided holders are coupled to each other by the fitting structure, a joint interface where the divided holders are fitted to each other by the fitting structure of the divided holders is exposed in the substrate holding area, and a surface of the circuit substrate may be covered with a potting resin in the substrate holding area. With the above configuration, providing the fitting structure at the joint interface between the divided holders so that the substrate holding area can be filled with the potting resin makes it possible to hold the circuit substrate in the substrate holding area without separately preparing a substrate holder that is a separate member different from the battery holder, unlike a conventional case.
Furthermore, according to a battery pack of a second aspect of the present invention, in addition to the above configuration, the battery holder may be made of a hard resin.
Furthermore, according to a battery pack of a third aspect of the present invention, in addition to any of the above configurations, the fitting structure may be a spigot structure. With the above configuration, it is possible to reduce a gap at the joint interface that joins the divided holders together and to fill the substrate holding area with the potting resin having a certain degree of viscosity.
Furthermore, according to a battery pack of a fourth aspect of the present invention, in addition to any of the above configurations, the fitting structure may include groove portions that are formed at a joint interface of one of the divided holders and separated from each other, and insertion portions that are formed on a joint interface of the other divided holder and press-fitted into the groove portions. With the above configuration, it is possible to reduce the gap at the joint interface and to prevent the potting resin from leaking with a relatively simple structure.
Furthermore, according to a battery pack of a fifth aspect of the present invention, in addition to any of the above configurations, a pair of sandwiching portions that are separated to form the groove portion may be formed to each have substantially same thickness.
Furthermore, according to a battery pack of a sixth aspect of the present invention, in addition to any of the above configurations, the substrate holding area is formed in a rectangular shape in a plan view, and the joint interface between the divided holders may be located along a longitudinal direction of the rectangular shape.
Furthermore, according to a battery pack of a seventh aspect of the present invention, in addition to any of the above configurations, the battery holder may be divided into two parts at substantially a center. With the above configuration, dividing the battery holder into two halves having substantially the same volume makes it possible to obtain an advantage that the divided holders can be made substantially equal in thickness, and composite molding with one mold is facilitated.
Furthermore, according to a method for producing a battery pack of an eighth aspect of the present invention, the battery pack includes a plurality of secondary battery cells connected to each other in series or in parallel, a battery holder that holds the plurality of secondary battery cells, a circuit substrate connected to the plurality of secondary battery cells, and an outer case that houses the battery holder inside. The method may include sandwiching the plurality of secondary battery cells to hold the plurality of secondary battery cells in a state where the battery holder is divided into a plurality of divided holders, coupling the divided holders by a fitting structure for fitting the divided holders to each other to form the battery holder, the fitting structure being formed at an interface for joining the divided holders together, and forming a substrate holding area that holds the circuit substrate on an upper surface of the battery holder and in which a joint interface where the divided holders are fitted to each other by the fitting structure of the divided holders is exposed, holding the circuit substrate in the substrate holding area with the circuit substrate surrounded by side walls, covering a surface of the circuit substrate with a potting resin to cure the potting resin in the substrate holding area, and housing the battery holder in the outer case. With this configuration, providing the fitting structure at the joint interface between the divided holders so that the substrate holding area can be filled with the potting resin makes it possible to hold the circuit substrate in the substrate holding area even if a substrate holder that is a separate member different from the battery holder is not separately prepared, unlike a conventional case.
Hereinafter, an exemplary embodiment of the present invention will be described with reference to the drawings. However, the exemplary embodiment described below is an example for embodying the technical idea of the present invention, and the present invention is not limited to the following. Furthermore, in the present specification, members shown in the claims are not limited to members in the exemplary embodiment. Especially, sizes, materials, and shapes of components and relative arrangement between the components, which are described in the exemplary embodiment, do not limit the scope of the present invention but are simply description examples as long as there is no specific description in particular. Note that the sizes and positional relationships of members illustrated in the drawings are sometimes exaggerated for clarity of description. Furthermore, in the following description, the same names and reference numerals indicate the same or similar members, and detailed description thereof will be appropriately omitted. Furthermore, regarding each element constituting the present invention, a plurality of elements may be formed of the same member, and one member may serve as the plurality of elements. Conversely, a function of one member may be shared by a plurality of members to be implemented.
A battery pack according to a first exemplary embodiment of the present invention is illustrated in
Battery pack 100 is formed in a box shape with its appearance extending in one direction as illustrated in
Battery holder 20 has a box-like outer shape as illustrated in the perspective view of
Furthermore, as illustrated in the sectional views of
Battery holder 20 is divided into left and right parts in order to hold secondary battery cells 1. Battery holder 20 includes first divided holder 21 and second divided holder 22, and holds secondary battery cells 1 by sandwiching secondary battery cells 1 between first divided holder 21 and second divided holder 22.
First divided holder 21 and second divided holder 22 hold the plurality of secondary battery cells 1, lead plates 35, and the like. In this example, as secondary battery cells 1, cylindrical secondary battery cells each having a cylindrical exterior can are used. Here, 14 secondary battery cells are used, and two sets of battery rows are connected in parallel, in which seven out of the 14 secondary battery cells are connected in series. A number and a connection form of secondary battery cells can be freely changed.
Each of first divided holder 21 and second divided holder 22 is formed with a plurality of battery holding cylinders 29 for holding secondary battery cells 1, as illustrated in the exploded perspective view of
Furthermore, first divided holder 21 and second divided holder 22 are preferably made of hard resins having excellent insulation and heat resistance. For example, first divided holder 21 and second divided holder 22 can be made of polycarbonate or the like. With this configuration, it is possible to insulate and thermally insulate adjacent secondary battery cells 1 from each other.
Cylindrical secondary battery cells 1 are lithium ion secondary batteries. However, as the cylindrical secondary battery cells, chargeable and dischargeable secondary batteries such as nickel metal hydride batteries or nickel cadmium batteries can be used. Furthermore, secondary battery cells 1 are electrically connected in series or in parallel by lead plates 35. Metal sheets having excellent conductivity are bended to form lead plates 35. Lead plates 35 are welded to electrodes on the end surfaces of secondary battery cells 1. Furthermore, total+ and total− of a battery assembly in which secondary battery cells are connected to each other are connected to circuit substrate 30.
Circuit substrate 30 is connected to the plurality of secondary battery cells 1. Circuit substrate 30 has a charging and discharging circuit and a protection circuit mounted thereon. Furthermore, to circuit substrate 30, an intermediate potential lead wire for measuring an intermediate potential may be connected in order to grasp a voltage of each secondary battery cell 1, and a potential of a temperature detector for detecting a temperature of each secondary battery cell 1 may be connected. A thermistor or the like is used for the temperature detector.
Furthermore, in order to hold circuit substrate 30, battery holder 20 has substrate holding area 23 formed on the upper surface thereof. Substrate holding area 23 holds circuit substrate 30 with circuit substrate 30 surrounded by side walls 24. Circuit substrate 30 is fixed to substrate holding area 23 by screwing or the like. Furthermore, in this state, circuit substrate 30 including a mounted semiconductor element and the like is covered with potting resin 40 so as to be embedded. As a result, even if the semiconductor element such as a field effect transistor (FET) used as a charging and discharging circuit generates heat, the heat is thermally conducted and radiated by potting resin 40.
Substrate holding area 23 is integrally formed with battery holder 20, and thus it is possible to eliminate need to prepare, as a separate member, a substrate holder for holding the substrate, which has been conventionally required.
Each of the divided holders has a fitting structure for fitting the divided holders to each other at an interface where the divided holders are joined together. The divided holders are coupled to each other by this fitting structure to form substrate holding area 23. Furthermore, substrate holding area 23 is formed in a rectangular shape in a plan view, and the joint interface between the divided holders is located along a longitudinal direction of the rectangular shape.
In substrate holding area 23, the joint interface where the divided holders are fitted to each other by the fitting structure of the divided holders is exposed. Furthermore, with circuit substrate 30 arranged in substrate holding area 23, a surface of circuit substrate 30 is covered with potting resin 40. With this arrangement, providing the fitting structure at the joint interface between the divided holders so that substrate holding area 23 can be filled with potting resin 40 makes it possible to hold circuit substrate 30 in substrate holding area 23 even if a substrate holder that is a separate member different from battery holder 20 is not separately prepared, unlike a conventional case.
The fitting structure for fitting first divided holder 21 and second divided holder 22 at the joint interface is preferably a fitting type spigot (inlay) structure as illustrated in
As the fitting structure of the spigot (inlay) structure as described above, in the example illustrated in
Furthermore, it is preferable that battery holder 20 is divided into two parts at substantially a center. With this configuration, first divided holder 21 and second divided holder 22 have substantially the same size except for a protruding amount of insertion portion 26, so that molds for first divided holder 21 and second divided holder 22 can be made small as compared with a case where battery holder 20 is integrally formed. In addition, it is possible to obtain an advantage of facilitating composite molding with one mold, and handling small lots and reducing a production cost, for example, reducing a number of molds are expected.
Next, a method for producing battery pack 100 will be described with reference to
Next, as illustrated in
When circuit substrate 30 is fixed to substrate holding area 23 in this manner, substrate holding area 23 is filled with potting resin 40 as illustrated in
Battery holder 20 thus obtained is housed in outer case 10 that is divided into upper case 11 and lower case 12 as illustrated in
As described above, it is possible to simplify a configuration of covering circuit substrate 30 with potting resin 40. In particular, by efficiently radiating the heat generated by the semiconductor element mounted on circuit substrate 30, it is possible to achieve operational stability of the circuit. Furthermore, conventionally, in order to reduce a heat generation amount of the semiconductor element such as the FET, a plurality of semiconductor elements has been connected in parallel to reduce an amount of current per element. However, when sufficient heat radiation is achieved, such a configuration is unnecessary, and it is possible to obtain an effect of reducing an amount of semiconductor elements used. In addition, performing potting on only necessary parts without performing potting on the entire battery including the secondary battery cells makes it possible to reduce a required amount of resin used for potting and to reduce a weight of the battery pack.
The battery pack according to the present invention can be suitably used as a battery pack capable of charging and discharging for a battery-driven device such as a laptop computer, a cellular phone, a portable DVD player, a portable car navigation system, a portable music player, an electric tool, and an assisted bicycle.
100 battery pack
1 secondary battery cell
10 outer case
11 upper case
12 lower case
13 connection mechanism
14 connector
20 battery holder
21 first divided holder
22 second divided holder
23 substrate holding area
24 side wall
25 groove portion
26 insertion portion
27 connecting claw
28 radiation fin
29 battery holding cylinder
30 circuit substrate
32 screw
35 lead plate
40 potting resin
90 circuit substrate
91 substrate holder
93 liquid resin
94 battery holder
Number | Date | Country | Kind |
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2018-029803 | Feb 2018 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2019/004526 | 2/8/2019 | WO | 00 |