battery device

The battery device addresses water accumulation issues by using a tray with drainage holes to enhance safety and stability, effectively managing condensation and reducing the risk of short circuits.

JP7736036B2Active Publication Date: 2025-09-09TOYOTA JIDOSHA KK
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Patent Information

Application Number
JP2023094314
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-06-07
Publication Date
2025-09-09
Estimated Expiration
2043-06-07

AI Technical Summary

Technical Problem

Existing power storage devices face safety issues due to water accumulation from condensation, which is not addressed in prior art.

Method used

A battery device with a tray having drainage holes in the bottom plate to drain water from the battery pack, improving safety by preventing water accumulation and reducing the risk of short circuits.

Benefits of technology

The drainage holes effectively manage water accumulation, enhancing the safety and stability of the battery device by preventing water from reaching critical components.

✦ Generated by Eureka AI based on patent content.

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Abstract

To drain water generated in a battery device to improve safety.SOLUTION: A battery device comprises battery pack assemblies mounted on a support member. The battery pack assemblies each include a battery pack and a tray located below the battery pack. The tray includes a frame and a bottom plate connected with the frame. The frame has a top face supporting the battery pack and a bottom face supported by the support member. The bottom plate has a drainage hole.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present disclosure relates to a battery device. [Background technology]

[0002] Patent Document 1 discloses a power storage device. The power storage device includes a plurality of battery packs and a battery panel. The battery packs are housed in the battery panel. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] International Publication No. 2016 / 129385 [Patent Document 2] Japanese Patent Application Laid-Open No. 2001-015090 [Patent Document 3] Japanese Patent Application Laid-Open No. 2015-002139 [Patent Document 4] Japanese Patent Application Laid-Open No. 2017-098374 Summary of the Invention [Problem to be solved by the invention]

[0004] In the power storage device described in Patent Document 1, water may be generated due to factors such as condensation on the surface of the battery pack. If the generated water accumulates inside the power storage device, it may affect the safety of the power storage device. However, Patent Document 1 does not take measures to deal with such water that may be generated.

[0005] The present disclosure has been made in consideration of the above-mentioned problems, and aims to provide a battery device that can discharge water generated within the battery device, thereby improving safety. [Means for solving the problem]

[0006] The battery device according to the present disclosure includes a battery pack assembly mounted on a support member. The battery pack assembly includes a battery pack and a tray positioned below the battery pack. The tray includes a frame and a bottom plate connected to the frame. The frame has an upper surface that supports the battery pack and a lower surface that is supported by the support member. The bottom plate has drainage holes. [Effects of the Invention]

[0007] According to the battery device of the present disclosure, the tray can receive water that adheres to the surface of the battery pack due to factors such as condensation. The drainage holes formed in the tray allow the water on the tray to be drained from a desired location. This leads to improved safety of the battery device. [Brief explanation of the drawings]

[0008] [Figure 1] 1 is a diagram illustrating an example of a configuration of a main part of a battery device according to an embodiment. [Figure 2] FIG. 2 is a perspective view of the battery assembly (battery pack assembly) shown in FIG. [Figure 3] 1 is a top view of the tray supported by a pair of rails. [Figure 4] FIG. 10 is a diagram for explaining the location of drainage holes according to the first modified example of the embodiment. [Figure 5] FIG. 10 is a diagram for explaining the location of drainage holes according to a second modified example of the embodiment. [Figure 6] FIG. 10 is a diagram illustrating the configuration of a tray according to a third modified example of the embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0009] Embodiments of the present disclosure will be described with reference to the accompanying drawings. Elements common to the drawings will be designated by the same reference numerals, and redundant explanations will be omitted or simplified.

[0010] 1. Battery device configuration FIG. 1 is a diagram showing an example of the configuration of the main parts of a battery device 1 according to an embodiment. The battery device 1 is installed in a stationary location. The battery device 1 is also called a stationary power source. The battery device 1 is configured to store power supplied from an external source and supply the power to a predetermined power supply target. The battery device 1 can be used, for example, as a backup power source (emergency power source) during a power outage (including emergencies such as natural disasters).

[0011] The battery device 1 includes a battery pack assembly (or simply battery assembly) 10 and a support body 30. The battery assembly 10 is an assembly of a battery pack 11 and a tray 20. The number of battery assemblies 10 mounted on the battery device 1 may be one, but generally multiple. In the example shown in FIG. 1, six battery assemblies 10 are housed inside the support body 30 and stacked in the up-down direction D1 (vertical direction) of the battery device 1.

[0012] In this embodiment, the battery pack 11 is an in-vehicle battery pack. That is, an in-vehicle battery pack is repurposed as the battery pack 11 of the battery device 1. This reduces the cost of the battery device 1 and makes effective use of resources. More specifically, the in-vehicle battery pack may be a second-hand product that has been used in a vehicle, or may be a new product.

[0013] Each battery assembly 10 is inserted into or removed from the support body 30 from a predetermined direction (insertion direction D3 shown in FIG. 3). FIG. 1 is a view of the support body 30 housing the battery assembly 10, viewed from the direction of the insertion / removal opening 2 (see FIG. 3).

[0014] The support body 30 has a skeleton structure in the shape of, for example, a rectangular parallelepiped. Of the multiple skeleton members included in the support body 30, Fig. 1 shows skeleton members 31 to 34 located on the side of the loading / unloading opening 2. The skeleton members 31 and 32 extend in the left-right direction D2 (horizontal direction) at the upper and lower ends of the support body 30, respectively. The skeleton members 33 and 34 extend in the up-down direction D1 at each end of the support body 30 in the left-right direction D2, respectively.

[0015] The support body 30 further includes a pair of rails 35 and 36 for each battery assembly 10, which support the battery assembly 10. The pair of rails 35 and 36 extend in the depth direction of the paper in FIG. 1. The pair of rails 35 and 36 are fixed to, for example, skeletal members 33 and 34, as well as other skeletal members 37 and 38 and reinforcing members 39 and 40 (see FIG. 3). The rails 35 and 36 correspond to an example of a "support member" according to the present disclosure.

[0016] In addition, the battery device 1 includes, in addition to the battery assembly 10 and the support 30, "other components" (not shown). The other components include, for example, a power conversion unit (including a boost converter) 50 (see FIG. 4), an electronic control unit (ECU), a high-voltage relay, and other electrical equipment. The other components also include, for example, a wire harness (including high-voltage cables and connectors) and various components of a cooling system (e.g., cooling water piping, a pump, a radiator, a radiator fan, and a reservoir tank). As an example, in the battery device 1, these "other components" are also repurposed from parts that are used in a vehicle together with the on-board battery pack. This allows for more effective cost reduction and efficient resource utilization.

[0017] Next, a specific configuration of the battery assembly 10 will be described with additional reference to Figure 2 in addition to Figure 1. Figure 2 is a perspective view of the battery assembly 10 shown in Figure 1.

[0018] The battery pack 11 includes a pack body 12 and a pair of fixing portions 13 and 14. The pack body 12 houses a plurality of secondary battery cells (not shown) and a cooler 15. The cooler 15 constitutes part of the cooling device described above. The cooler 15 exchanges heat between the cooling water flowing inside and the plurality of secondary battery cells in the pack body 12. This cools the plurality of secondary battery cells.

[0019] The tray 20 is located below the battery pack 11. The tray 20 includes a frame 21 and a bottom plate 22. The frame 21 is formed, for example, in the shape of a rectangular frame. The bottom plate 22 is connected to the frame 21. The frame 21 has a pair of frame portions 23 and 24 located on both sides in the left-right direction D2. The pair of frame portions 23 and 24 have upper surfaces 23a and 24a, respectively, that support the battery pack 11. The pair of frame portions 23 and 24 also have lower surfaces 23b and 24b that are supported by rails 35 and 36, respectively.

[0020] More specifically, brackets 25 for fixing the battery pack 11 to the tray 20 are attached at multiple locations on each of the top surfaces 23a and 24a. The pair of fixing portions 13 and 14 of the battery pack 11 are fixed to the pair of frame portions 23 and 24 via the multiple brackets 25. This fixing can be performed by fastening using fasteners such as bolts 16, for example.

[0021] Additionally, each of the multiple brackets 25 may be directly attached to the frame portion 23 or 24. Alternatively, as in the example shown in FIG. 2 , each of the multiple brackets 25 may be attached to the frame portion 23 or 24 via an insulator 26. The use of such an insulator 26 is supplemented as follows: As described above, the battery pack 11 is an in-vehicle battery pack. A battery pack used in the battery device 1 may be required to have a higher withstand voltage than an in-vehicle battery pack. Therefore, by interposing the insulator 26 between the battery pack 11 and the tray 20, when an in-vehicle battery pack that does not meet the withstand voltage required for the battery device 1 is converted into the battery pack 11, it is possible to ensure the appropriate insulation of the battery pack 11 without having to increase the withstand voltage of the battery pack 11 itself.

[0022] 2.Drain hole 2, the bottom plate 22 of the tray 20 has a drain hole 27. The drain hole 27 is formed so as to penetrate the bottom plate 22.

[0023] Generally speaking, the bottom plate 22 does not need to be inclined relative to the horizontal plane as long as it has the drainage holes 27. In this embodiment, the bottom plate 22 is inclined so as to be lower toward the drainage holes 27 as shown in FIG.

[0024] Also, broadly speaking, the position of the drain hole 27 on the bottom plate 22 is not particularly limited, and may be, for example, the center of the bottom plate 22. Furthermore, in this embodiment, the drain hole 27 is formed in a corner of the bottom plate 22 (more specifically, one of the four corners) as shown in FIG. 2. In addition, when the drain hole 27 is formed in a corner of the bottom plate 22, the drain hole 27 may be formed in any one of three corners other than the corner shown in FIG. 2. Alternatively, the drain hole 27 may be formed in each of two or more corners. The bottom plate 22 may be inclined so as to be lower toward each of the multiple corners in which the drain holes 27 are formed.

[0025] Furthermore, in this embodiment, the position of the drainage hole 27 on the bottom plate 22 is determined taking the following viewpoint into consideration. FIG. 3 is a top view of the tray 20 supported by a pair of rails 35 and 36. As shown in FIG. 3, the drainage hole 27 is formed in the edge of the bottom plate 22 that is closer to the loading / unloading opening 2 of the battery assembly 10. More specifically, the drainage hole 27 is formed in one of the corners on that edge. Note that, when the drainage hole 27 is formed in the edge of the bottom plate 22 that is closer to the loading / unloading opening 2, unlike the example shown in FIG. 3, the drainage hole 27 may be formed in a location other than a corner of that edge. Furthermore, when the drainage hole 27 is formed in a location other than a corner of that edge, the bottom plate 22 may be inclined so as to decrease in height from the edge farther from the loading / unloading opening 2 toward the edge closer to the loading / unloading opening 2.

[0026] Additionally, although drainage hole 27 is circular in one example, it is not limited to a circular shape and may have any shape such as an elongated hole shape (including a slit shape). The number of drainage holes 27 may be two or more. This also applies to each of the modified examples described below.

[0027] <Effects> As described above, in the battery device 1 according to this embodiment, the battery pack 11 is combined with the tray 20 as the battery assembly 10. The tray 20 includes a bottom plate 22. Water may adhere to the surface of the battery pack 11 due to, for example, condensation. Furthermore, cooling water leaking from the cooling water pipe or the cooler 15 may adhere to the surface of the battery pack 11. The bottom plate 22 prevents water adhering to the surface of the battery pack 11 from dripping onto the battery pack 11 below. The bottom plate 22 also includes a drain hole 27. This prevents water from overflowing from the tray 20. Specifically, by selecting the position of the drain hole 27, water can be drained from a desired location, such as a location that does not overlap the battery pack 11 in a top view. This reduces the risk of short circuits in the battery pack 11 or electrical devices connected to it, thereby improving the safety of the battery device 1.

[0028] Furthermore, the bottom plate 22 according to this embodiment is inclined so as to become lower toward the drainage holes 27. This allows the drainage performance of the tray 20 to be improved.

[0029] Furthermore, the drainage holes 27 according to this embodiment are formed in the corners of the bottom plate 22. This allows the position of the drainage holes 27 to be determined so that water dropping from the drainage holes 27 is less likely to splash onto the battery packs 11 below.

[0030] Furthermore, the drainage holes 27 according to this embodiment are formed at the edge of the bottom plate 22 located closer to the opening 2 for loading and unloading the battery assembly 10. This edge is a location where components of the battery device 1, such as the electrical equipment described above, are not placed nearby so as not to interfere with loading and unloading the battery assembly 10 into and from the support 30. By forming the drainage holes 27 in such a location, it becomes possible to drain water from the tray 20 while making it easier to prevent water from splashing on the components.

[0031] 3. Variations The position of the drainage holes 27 on the bottom plate 22 may be determined taking the following into consideration. FIG. 4 is a diagram for explaining the arrangement of the drainage holes 27 according to a first modified example of the embodiment. FIG. 4 is a top view similar to FIG. 3. As a premise, in the first modified example, the above-mentioned power conversion unit 50, which is one of the electrical devices connected to the battery pack 11, is provided for each battery pack 11, for example. Each power conversion unit 50 is arranged at the same height as the battery pack 11 to which it is connected, at the rear side in the insertion direction D3 as shown in FIG. 4.

[0032] Furthermore, drainage hole 27 is formed in the end (for example, the corner of that end) of bottom plate 22 located on the opposite side from where power conversion unit 50 is disposed when viewed from above (i.e., FIG. 4 ) of bottom plate 22. By forming drainage hole 27 in this way at the end away from power conversion unit 50, it becomes possible to drain water from tray 20 while making it easier to prevent water from getting on power conversion unit 50. In addition, it is also easier to prevent water from getting on the wire harness connecting power conversion unit 50 and battery pack 11.

[0033] 5(A) and 5(B) are diagrams illustrating the location of drainage holes 62 according to a second modified example of the embodiment. Tray 60 according to the second modified example differs from tray 20 shown in FIG. 2 in that it includes bottom plate 61 instead of bottom plate 22.

[0034] As a premise, in the second modified example, four cam followers 70 are used to position the battery assembly 10 in the left-right direction D2 when inserting the battery assembly 10 into the support body 30. Two mounting holes 62 are formed in the bottom plate 61 for mounting two of the four cam followers 70. Two mounting holes 63 are formed in front of the two mounting holes 62 in the insertion direction D3 for mounting the remaining two cam followers 70. The four cam followers 70 are mounted in the corresponding mounting holes 62 or 63 when inserting the battery assembly 10. When inserting the battery assembly 10, two cam followers 70 move along the inner side surface 35a of one rail 35, and the remaining two cam followers 70 move along the inner side surface 36a of the other rail 36. The battery assembly 10 is inserted into the support body 30 while being guided by the four cam followers 70. This positions the battery assembly 10 in the left-right direction D2.

[0035] When the insertion of the battery assembly 10 is complete, at least the two cam followers 70 of the four cam followers that are closest to the loading / unloading opening 2 are removed from the tray 60. In the second modified example, the two mounting holes 62 that remain after the two cam followers 70 have been removed are shared as two "drainage holes" 62.

[0036] More specifically, for example, two drainage holes 62 are provided at two corners of the bottom plate 61 located closer to the loading / unloading opening 2, as shown in FIG. 5(B). The bottom plate 61 does not necessarily have to be inclined with respect to the horizontal plane, but may have an inclined portion 61a and a horizontal portion 62b, as shown in FIG. 5(B), for example. The two drainage holes 62 are formed in the horizontal portion 62b. The inclined portion 61a is inclined so as to become lower from the front to the rear in the insertion direction D3 (i.e., toward the drainage holes 62). In addition to the two drainage holes 62, another drainage hole 64, represented by a dashed line, may be formed in the horizontal portion 62b.

[0037] Next, Fig. 6 is a diagram illustrating the configuration of a tray 80 according to a third modified example of the embodiment. The tray 80 according to the third modified example differs from the tray 20 shown in Fig. 2 in that it includes a bottom plate 81 instead of the bottom plate 22. Fig. 6 shows the pack body 12A and tray 80 included in a battery assembly 10A, which is one of the multiple battery assemblies 10, and the pack body 12B of a battery assembly 10B, which is one level below the battery assembly 10A.

[0038] For comparison, Figure 6 also shows bottom plates 22 and 100 in addition to bottom plate 81. The line between bottom plates 81 and 22 shown in Figure 6 is obtained at the ends of bottom plates 81 and 22 closest to loading / unloading opening 2. Bottom plate 100 is horizontal without any inclination and is located at the same height as the lower surfaces 23b and 24b of frame 21. Gap G in Figure 6 corresponds to the minimum gap required between the bottom plate of the upper battery assembly 10A and the lower pack body 12B from the perspective of performance of the battery device 1. Therefore, in the example of bottom plate 100, due to the constraints of gap G, the pack body 12B cannot be positioned closer to the battery assembly 10A than the position indicated by the dashed line. Also, as shown in Figure 6, the height of the lowest point on bottom plate 22 is the same as that of bottom plate 100. Therefore, in the example of bottom plate 22, in order to ensure gap G, the pack body 12B cannot be positioned closer to the battery assembly 10A than the position indicated by the dashed line.

[0039] 6, even at its lowest point, the bottom plate 81 is positioned above the lower surfaces 23b and 24b of the frame 21 by an offset O. This allows the pack body 12B to be brought closer to the battery assembly 10A to the position indicated by the solid line while maintaining the gap G. In other words, the distance between the battery assembly 10A and the battery assembly 10B in the vertical direction D1 can be reduced by the offset O. This raised-bottom structure can suppress the rise in the center of gravity of the battery device 1 caused by stacking the battery packs 11, thereby improving the stability (earthquake resistance) of the battery device 1. [Explanation of symbols]

[0040] 1 battery device, 2 loading / unloading port, 10 battery pack assembly, 11 battery pack, 12 pack body, 15 cooler, 20, 60, 80 tray, 21 frame, 22, 61, 81, 100 bottom plate, 23b, 24b underside of frame, 27, 64 drainage hole, 30 support, 35, 36 rail (support member), 50 power conversion unit, 62 drainage hole (cam follower mounting hole), 70 cam follower

Claims

1. A battery device comprising a battery pack assembly mounted on a support member, The battery pack assembly includes: A battery pack and a tray located below the battery pack and including a frame and a bottom plate connected to the frame; Including, the frame has an upper surface that supports the battery pack and a lower surface that is supported by the support member; The bottom plate has drainage holes A battery device characterized by:

2. The bottom plate is inclined downward toward the drain hole.

2. The battery device according to claim 1.

3. When viewed from above, the drain hole is formed at an end of the bottom plate that is located on the opposite side to an arrangement location of an electrical device connected to the battery pack.

3. The battery device according to claim 1 or 2.

4. the battery device includes an opening for inserting and removing the battery pack assembly into and from a support body including the support member; The drain hole is formed at the end of the bottom plate located closer to the access opening.

3. The battery device according to claim 1 or 2.

5. The drain holes are formed in the corners of the bottom plate.

3. The battery device according to claim 1 or 2.

6. The drainage hole is also used as an attachment hole for a cam follower that guides the battery pack assembly by moving along a wall surface of the support member when the battery pack assembly is inserted into a support body including the support member.

3. The battery device according to claim 1 or 2.

7. The battery device is installed in a stationary location; The battery pack is a repurposed automotive battery pack.

3. The battery device according to claim 1 or 2.

Citation Information

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