This application relates to the field of battery technologies, and in particular, to a battery module and a manufacturing method thereof.
A battery module includes a plurality of battery cells. To monitor parameters such as a voltage and a temperature of each battery cell, a cell management unit is usually disposed in the battery module. In the prior art, the cell management unit is usually disposed on an end plate of the battery module, or is disposed together with a busbar on a harness separator above the battery cells.
The battery cells press against the end plate when swelling. Therefore, if the cell management unit is disposed on the end plate, there is a risk of the cell management unit being deformed and failing under pressure. In addition, the battery cells and the busbar produce much heat during operating. Therefore, if the cell management unit is disposed on the harness separator, there is a technical problem that the cell management unit is heated, resulting in a high temperature.
Therefore, a novel battery module and a manufacturing method thereof need to be provided to resolve the foregoing prior-art technical problem that a cell management unit is vulnerable to a failure under pressure.
To achieve the foregoing objective, an aspect of this application provides a battery module, including:
Further, the accommodating groove is recessed from the top to the bottom of the middle plate.
Further, positioning structures are provided on both sides of the accommodating groove, both sides of the cell management unit are in contact with the positioning structures, and gaps are left between first and second surfaces of the cell management unit and inner walls of the accommodating groove.
Further, the cell management unit includes a cell management circuit board and a housing, and the cell management circuit board is disposed in the housing.
Further, the housing is provided with fixing lugs, and the fixing lugs are fixed to the top of the middle plate by using fasteners.
Further, elastic pads are disposed at the bottom of the middle plate.
Further, grooves are provided on both sides at the bottom of the middle plate, and the top of the elastic pads is fixed in the grooves.
Further, the sampling line of the battery cells is connected to the top of the cell management unit.
Further, the bottom of the side plates is provided with L-shaped flanges, and the bottom of the battery cells is located on the L-shaped flanges.
Further, output electrodes of the battery module are disposed on an upper surface of the middle plate.
Another aspect of this application provides a battery module manufacturing method, where the manufacturing method includes:
Further, the manufacturing method further includes:
Further, the manufacturing method further includes:
Further, the disposing a cell management unit in the accommodating groove of the middle plate includes:
Further, the housing is provided with fixing lugs, and the manufacturing method further includes:
Unlike the prior art, the foregoing technical solutions include two or more battery groups, with a middle plate disposed between two of the battery groups, and a cell management unit is disposed in the accommodating groove inside the middle plate, preventing the cell management unit from failing under swelling pressure of the battery cells. In addition, disposing the cell management unit in the middle plate can also prevent over-temperature caused by heating of the battery cells and the busbar, thereby greatly improving reliability of the cell management unit.
Reference numerals in the accompanying drawings are described as follows:
The accompanying drawings herein are incorporated into and constitute a part of the specification. They show embodiments that conform to this application, and are used in combination with the specification to explain rationale of this application.
To describe in detail the technical content, structural features, and intended objectives and effects of the technical solutions, the following provides detailed descriptions with reference to specific embodiments and accompanying drawings.
Referring to
As shown in
The battery group 4 includes two or more battery cells 41 arranged in order, and two adjacent battery cells 41 are disposed with large faces of their housings facing each other. The battery cells 41 are energy storage units of the battery module, and are configured to store electrical energy and provide electrical energy to the outside. The battery cells 41 in the battery group 4 may be connected in series or parallel, and each battery group 4 may be provided with a positive output electrode and a negative output electrode. When the battery group 4 includes a plurality of battery cells 41, the battery group 4 may form a cuboid structure in which large faces of the housings of the battery cells 41 face both ends. In a coordinate system in
The module frame 1 includes two oppositely disposed end plates 11 and two oppositely disposed side plates 12. The end plates 11 and the side plates 12 are connected to each other end to end to form an accommodating cavity for accommodating the battery groups 4 (that is, a position at which the battery groups 4 are placed). The module frame 1 can serve a purpose of fixing and protecting the battery groups 4 to prevent the battery groups 4 and the battery cells 41 from being displaced or being hit or scratched by an external object. The module frame 1 may be formed by connecting metal sheets such as aluminum alloy or steel sheets. As shown in
As shown in
The middle plate 2 is disposed between the two end plates 11 and in parallel to the end plates 11, and the middle plate 2 is provided with an accommodating groove 21 inside. The middle plate 2 may be disposed at a middle position between the two end plates 11, or at a non-middle position between the two end plates 11, that is, distances between the middle plate 2 and the two end plates 11 may be unequal. The middle plate 2 may be made of a metal material or another hard material. The cell management unit 3 is disposed in the accommodating groove 21 of the middle plate 2, and the cell management unit 3 is connected to a sampling line 5 of the battery cells 41 to collect data such as temperature and voltage of the battery cells 41.
The cell management unit 3 is configured to collect the data such as voltage and temperature of the battery cells 41, and send the collected data to a cell management system outside the battery module. The cell management unit 3 is disposed in the accommodating groove 21 of the middle plate 2, and the cell management unit 3 is connected to the sampling line 5 of the battery cells 41. The sampling line 5 may be electrically connected to poles of the battery cells 41 to collect the voltage data of the battery cells. Further, the sampling line 5 may be connected to a temperature sensor, and the temperature sensor may be in contact with the housings or the poles of the battery cells 41 to collect the temperature data of the battery cells 41.
The accommodating groove 21 inside the middle plate 2 is a slot or a cavity that is able to accommodate the cell management unit 3 and that is formed by partially hollowing out the middle plate 2. The accommodating groove 21 only needs to be able to accommodate the cell management unit 3 and make surfaces of the cell management unit 3 not exceed front and rear large faces of the middle plate 2.
The accommodating groove 21 is provided inside the middle plate 2, and the surfaces of the cell management unit 3 do not exceed the front and rear large faces of the middle plate 2, so that the cell management unit 3 is not in contact with end faces of the battery groups 4. Therefore, pressure produced when the battery cells 41 swell directly acts on the middle plate 2 without acting on the cell management unit 3, thereby preventing the cell management unit 3 from being deformed and failing under the swelling pressure of the battery cells 41. Because the middle plate 2 is located between two battery groups 4, its temperature is lower than that above the battery cells 41, avoiding over-temperature of the cell management unit 3.
As shown in
As shown in
As shown in
As shown in
In different embodiments, the positioning structures 211 have different structural forms. As shown in
The positioning structures 211 are provided in the accommodating groove 21, so that gaps are left between the first and second surfaces of the cell management unit 3 and the inner walls of the accommodating groove 21. This reserves space for deformation of the middle plate 2 caused by swelling of the battery cells 41, so that the middle plate 2 does not press against the cell management unit 3. In addition, the positioning structures 211 also serve a guiding purpose. During installation of the cell management unit 3, the cell management unit 3 may be inserted into the accommodating groove 21 along the positioning structures 211, and a position of the cell management unit 3 does not need to be adjusted after the insertion.
In another embodiment, the positioning structures 211 may be structures such as positioning posts or positioning blocks. The positioning posts or positioning blocks may be provided in pairs on the left and right sides of the accommodating groove 21, and a spacing between the positioning posts or positioning blocks provided in pairs is equivalent to the thickness of the cell management unit 3, so that ends of the positioning posts or the positioning blocks exactly press against two large faces of the cell management unit 3, fixing the cell management unit 3 in the accommodating groove 21.
As shown in
The housing 32 is further provided with fixing lugs 321, and the fixing lugs 321 are fixed to the top of the middle plate 2 by using fasteners such as bolts 7. The fixing lugs 321 can fix the cell management unit 3 to the middle plate 2 to prevent the cell management unit 3 from moving up and down in the accommodating groove 21 in a vertical direction.
In an embodiment shown in
As shown in
To facilitate installation of the elastic pads 33, grooves 322 are provided on both sides at the bottom of the housing 32, and the top of the elastic pads 33 is fixed in the grooves 322, so that the elastic pads 33 are fixed to the bottom of the housing 32. The grooves 322 can ensure connection strength of the elastic pads 33 to prevent them from falling off. Certainly, in other embodiments, there may be more than three elastic pads 33, and the elastic pads 33 may be further fixed to the bottom of the housing 32 in another manner such as gluing or bolting.
As shown in
An embodiment of this application further provides a battery module manufacturing method, including:
Further, the manufacturing method further includes:
Further, the manufacturing method further includes:
The disposing a cell management unit 3 in the accommodating groove 21 of the middle plate 2 includes:
Further, the housing 32 is provided with fixing lugs 321, and the manufacturing method further includes:
It should be noted that, in the descriptions of this application, unless otherwise specified and defined explicitly, the terms “first” and “second” are merely intended for a purpose of description, and should not be understood as an indication or implication of relative importance, and the terms “connection” and “fixing” should be understood in their general senses. For example, the “connection” may be a fixed connection, a detachable connection, an integrated connection, or an electrical connection; or may be a direct connection, or an indirect connection through an intermediate medium. A person of ordinary skill in the art can understand specific meanings of the foregoing terms in this application according to a specific situation.
In the descriptions of the specification, it should be understood that the directional terms such as “up”, “down”, “left”, and “right” described in the embodiments of this application are described as seen from the angles shown in the accompanying drawings, and should not be understood as a limitation to the embodiments of this application In addition, in the context, it should be further understood that when an element is referred to as being “above” or “under” another element, the element can not only be directly connected “above” or “under” the another element, but also be indirectly connected “above” or “under” the another element through an intermediate element.
Number | Date | Country | Kind |
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201821773716.5 | Oct 2018 | CN | national |
This application is a continuation application of PCT Patent Application No. PCT/CN2019/113221, entitled “BATTERY MODULE AND MANUFACTURING METHOD” filed on Oct. 25, 2019, which claims priority to Chinese Patent Application No. 201821773716.5, filed with the State Intellectual Property Office of the People's Republic of China on Oct. 30, 2018, and entitled “BATTERY MODULE”, all of which are incorporated herein by reference in their entirety.
Number | Name | Date | Kind |
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20170125753 | Kim | May 2017 | A1 |
Number | Date | Country |
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202231073 | May 2012 | CN |
204966568 | Jan 2016 | CN |
108520928 | Sep 2018 | CN |
209016218 | Jun 2019 | CN |
102017011717 | May 2018 | DE |
Entry |
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Machine translation of German Patent Publication No. DE102017011717 (Year: 2017). |
Contemporary Amperex Technology Co., Limited, Extended European Search Report, EP19880246.4, dated Nov. 29, 2021, 12 pgs. |
Contemporary Amperex Technology Co., Limited, International Search Report and Written Opinion, PCT/CN2019/113221, dated Jan. 2, 2020, 14 pgs. |
Number | Date | Country | |
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20210151828 A1 | May 2021 | US |
Number | Date | Country | |
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Parent | PCT/CN2019/113221 | Oct 2019 | US |
Child | 17125941 | US |