Energy storage power

JP7927050B2Active Publication Date: 2026-09-30SHENZHEN HUABAO NEW ENERGY CO LTD
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Patent Information

Application Number
JP2024223628
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2024-02-04
Filing Date
2024-12-18
Publication Date
2026-09-30
Estimated Expiration
2044-06-07

AI Technical Summary

Benefits of technology

【0015】 本出願の上述及び/又は追加的な態様と利点は、以下の図面に基づいた実施形態の説明から明らかになり、容易に理解されることであろう。

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Abstract

To provide a storage energy power source, in which the number and kind of relevant components are fewer, the assembly steps are fewer, the cost is lower, the space use efficiency of the product is higher, and the product size of the whole is smaller.SOLUTION: A storage energy power source includes: a second case in which a second positioning part is provided on an inner wall of the second case; at least one second battery cell in which a first end of the at least one second battery cell is inserted to the second positioning part and a second end of the at least one second battery cell, which is opposite to the first end, includes two electrodes; a fixing tool that fixes the second end of the at least one second battery cell; and an electric connection component that is electrically connected to the second end of the at least one second battery cell.SELECTED DRAWING: Figure 1
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Description

[[Technical Field]]

[0001] The present application relates to the field of energy storage technology, and in particular to energy storage power supplies. [[Background Art]]

[0002] In the related art, a battery pack includes a case and a battery module, and the battery module is fixed to the case using screws or the like. The battery module is assembled from components such as battery cells, battery cell brackets, bus bars, collector plates, and screws. When assembling a battery pack, the battery module is first assembled from each component, and then the battery module is fixed into the case. However, such a battery pack has a large number and variety of related structural components, requires many assembly steps, and results in high cost. In addition, because installation space is reserved, the space utilization rate of the product is low, and the overall product size is increased. [[Summary of the Invention]] [[Problem to be Solved by the Invention]]

[0003] The present application provides an energy storage power supply capable of solving at least one of the technical problems described above that exist in the related art. [[Means for Solving the Problem]]

[0004] In the energy storage power supply provided according to an embodiment of the present application, a first case, and at least one first battery cell disposed in the first case, each of the first battery cells being a first battery cell including two electrodes located on the same side of the first battery cell, and a bus bar located on the same side of the first battery cells, electrically connecting the two electrodes, and connecting the plurality of first battery cells in series and / or in parallel.

[0005] In the aforementioned energy storage power supply, the two electrodes are located on the same side of the first battery cell and electrically connected by a busbar, reducing the welding space, simplifying the structure of the energy storage power supply, and increasing space utilization.

[0006] In some embodiments, the at least one battery cell includes a plurality of sheet-shaped battery cells or a plurality of cylindrical battery cells.

[0007] In some embodiments, one of the two electrodes is a positive electrode and the other is a negative electrode.

[0008] In some embodiments, the energy storage power source includes a bracket, the bracket includes a limiting groove, the bracket is provided on top of the battery cell so that the two electrodes pass through the limiting groove, and the busbar is provided on the bracket.

[0009] In some embodiments, a housing cavity is provided within the case, a positioning section is provided within the housing cavity, a positioning groove is provided within the positioning section, and at least one battery cell is housed in the positioning groove.

[0010] In some embodiments, the energy storage power source includes a fixing adhesive, wherein the fixing adhesive is located within the positioning groove and fixes and connects the battery cell to the side wall of the positioning groove.

[0011] In some embodiments, the case includes a first housing and a second housing, the first housing being removably connected to the second housing to form a surrounding cavity, and the positioning portion being provided in either the first housing or the second housing.

[0012] In the energy storage power source provided by the embodiment of this application, A second case, wherein a second positioning portion is provided on the inner wall of the second case, A second battery cell comprising at least one second battery cell, wherein the first end of the at least one second battery cell is inserted into the second positioning portion, and two electrodes are provided at the second end of the at least one second battery cell opposite to the first end, A fixing device for fixing the second end of at least one second battery cell, The system includes an electrical connection component electrically connected to the second end of the at least one second battery cell.

[0013] In the energy storage power supply described above, a second positioning section is provided on the inner wall of the second case, and the first end of the second battery cell may be directly inserted into the second positioning section, eliminating the need to fix it with a bracket and then assemble it into the second case. This reduces the number of parts, simplifies the installation procedure, lowers costs, and reduces the volume of the energy storage power supply. Furthermore, the second end of the second battery cell can be fixed with a fastener and connected to an electrical connection component, thereby achieving overall fixing and electrical connection of the second battery cell within the second case.

[0014] Additional aspects and advantages of this application are some of which are shown in the following description, some of which become apparent from the following description, and others are understood from the practice of this application.

[0015] The above-mentioned and / or additional aspects and advantages of this application will become apparent and readily apparent from the description of the embodiments based on the following drawings. [Brief explanation of the drawing]

[0016] [Figure 1] This is a schematic diagram of the structure of an energy storage power source according to an embodiment of this application. [Figure 2] This is a schematic diagram of the internal structure of an energy storage power source according to an embodiment of this application. [Figure 3] This is a schematic diagram of the structure of the first housing according to an embodiment of this application. [Figure 4]It is an exploded schematic diagram of an energy storage power supply according to an embodiment of the present application. [Figure 5] It is another exploded schematic diagram of an energy storage power supply according to an embodiment of the present application. [Figure 6] It is another exploded schematic diagram of an energy storage power supply according to an embodiment of the present application. [Figure 7] It is a structural schematic diagram of a cylindrical battery cell according to an embodiment of the present application. [Figure 8] It is a structural schematic diagram of a first housing according to an embodiment of the present application. [Figure 9] It is a structural schematic diagram of a first housing according to an embodiment of the present application. [Figure 10] It is a structural schematic diagram of a first housing according to an embodiment of the present application. [Figure 11] It is a three-dimensional exploded schematic diagram of an energy storage power supply according to an embodiment of the present application. [Figure 12] It is a three-dimensional assembly schematic diagram of an energy storage power supply according to an embodiment of the present application. [Figure 13] It is a three-dimensional assembly schematic diagram of an energy storage power supply according to an embodiment of the present application. [Figure 14] It is a top view of a positioning portion provided on an inner bottom wall of a case according to an embodiment of the present application. [Figure 15] It is a top view of a positioning portion provided on an inner bottom wall of a case according to an embodiment of the present application. [Figure 16] It is a top view of a positioning portion provided on an inner bottom wall of a case according to an embodiment of the present application. [Figure 17] It is a top view of a positioning portion provided on an inner bottom wall of a case according to an embodiment of the present application. [Figure 18] It is a top view of an integrated bracket provided on an inner side wall of a case according to an embodiment of the present application. [Figure 19] It is a top view of an integrated bracket provided on an inner side wall of a case according to an embodiment of the present application. [Figure 20] It is a top view of an integrated bracket provided on an inner side wall of a case according to an embodiment of the present application. [Figure 21] This is an overhead view of an integrated bracket provided on the inner wall of a case according to an embodiment of this application. [Figure 22] This is a schematic diagram of the structure of a battery cell according to an embodiment of this application. [Figure 23] This is another exploded schematic diagram of the energy storage power source according to the embodiment of this application. [Modes for carrying out the invention]

[0017] The embodiments of this application will be described in detail below. Examples of the embodiments described are shown in the drawings, where the same or similar numbers from beginning to end indicate the same or similar elements or elements having the same or similar function. The embodiments described below with reference to the drawings are illustrative and are used solely for the purpose of interpreting this application and should not be understood as limiting this application.

[0018] The disclosures described below provide many different embodiments or examples for realizing different configurations of this application. For the sake of brevity of the disclosures, the components and installations of specific examples are described. Of course, these are merely examples and are not intended to limit this application. Furthermore, this application uses repeated reference numerals and / or reference letters in different examples, and this repetition is for the sake of simplification and clarity of the description and does not indicate relationships between the various embodiments and / or installations discussed. Furthermore, while this application provides examples of specific processes and materials, those skilled in the art will be able to recognize the application of other processes and / or the use of other materials.

[0019] Furthermore, the terms “first” and “second” are used solely to describe the purpose and should not be understood as indicating or suggesting relative importance or implying the number of technical features. Thus, features designated as “first” or “second” may be explicitly or implicitly included in one or more features. In this description, “multiple” means two or more unless specifically limited.

[0020] In this specification, expressions such as “one embodiment,” “several embodiments,” “exemplary embodiment,” “example,” “specific example,” or “several examples” mean that the specific features, structure, material, or properties described in an embodiment or example are included in one or more embodiments or examples of this application. The symbolic expressions of the above terms in this specification do not necessarily refer to the same embodiment or example. Furthermore, specific features, structure, material, or properties may be combined in an appropriate manner in any one or more embodiments or examples.

[0021] In the description of this application, directions or positional relationships indicated by terms such as "center," "vertical," "horizontal," "length," "width," "thickness," "top," "bottom," "front," "back," "left," "right," "vertical," "horizontal," "top," "bottom," "inside," "outside," "clockwise," and "counterclockwise" are based on the directions and positional relationships shown in the figures. These are solely for the purpose of describing and simplifying the description of this application and do not indicate or imply that the pointed-to devices or elements must have a specific orientation or must be constructed and operate in a specific orientation. Therefore, they should not be understood as limitations of this application.

[0022] In this application, unless otherwise explicitly stated or limited, the expression that the first feature is "above" or "below" the second feature includes not only cases where the first and second features are in direct contact, but also cases where they are not in direct contact but are in contact through other features interposed between them. Furthermore, "above," "above," or "on the top surface" of the second feature means that the first feature is located just above or diagonally above the second feature, or simply that the horizontal altitude of the first feature is higher than that of the second feature. "Below," "below," or "on the bottom surface" of the second feature means that the first feature is located just below or diagonally below the second feature, or simply that the horizontal altitude of the first feature is lower than that of the second feature.

[0023] In the description of this application, unless otherwise explicitly stated or limited, the terms “attachment,” “joining,” and “connection” should be understood in a broad sense. For example, these may be fixed connections, removable connections, or integrated connections; mechanical connections or electrical connections; direct connections or indirect connections via an intermediary; and two elements may be internally connected or interacting with each other. Those skilled in the art will be able to understand the specific meaning of these terms in this application depending on the specific circumstances.

[0024] Please refer to Figures 1 and 2. The energy storage power supply 100 according to the embodiment of this application includes a first case 10, a fixing adhesive, and at least one first battery cell 20. A housing cavity 11 is provided inside the first case 10. A first positioning section 12 is provided inside the housing cavity 11. first A positioning groove 121 is provided. At least one first battery cell 20 is first It is housed in the positioning groove 121. Fixing adhesive first Located within the positioning groove 121, the first battery cell 20 and first The side walls of the positioning groove 121 are fixed and connected.

[0025] In the above-described energy storage power supply 100, a first positioning section 12 is provided on the inner wall surface of the housing cavity, and the first positioning section 12 first A positioning groove 121 is provided, and at least one first battery cell 20 first The first battery cell 20 is housed in the positioning groove 121 and fixed to the first positioning part 12 by fixing adhesive, so that the first battery cell 20 is directly first The battery module can be mounted within the positioning groove 121, eliminating the need to assemble the battery module before inserting it into the first case 10. This reduces the assembly process and lowers costs, as well as reducing the number of parts required to assemble the battery module. Consequently, the space utilization rate of the product can be improved and the product size can be reduced.

[0026] In one embodiment, at least a portion of the first case 10 of the energy storage power supply 100 is formed surrounding a housing cavity 11, and a first positioning unit 12 is housed within the housing cavity 11, the first positioning unit 12 is provided at the bottom of the energy storage power supply 100 and is fixedly connected to the bottom wall of the housing cavity 11. The first positioning unit 12 is, first Formed surrounding the positioning groove 121, first The positioning groove 121 is used to accommodate the first battery cell 20. The number of first battery cells 20 is not limited here, and the number of first battery cells 20 may be determined according to the battery capacity required by the energy storage power source 100. first After arranging them in order within the positioning groove 121, first A fixing adhesive can be injected into the positioning groove 121, and after the fixing adhesive has hardened, the connection between the first battery cell 20 and the first positioning part 12 will be completed. The fixing adhesive can connect the first battery cell 20 and the first positioning part 12 as a single unit by utilizing the spacing between the first battery cells 20, thus eliminating the need to set up other connecting parts, reducing the number of parts, optimizing the product structure and assembly process, increasing the volumetric energy density and mass energy density of the product, and improving portability while reducing costs. In another embodiment, the first positioning part 12 may be provided in another part of the energy storage power supply 100 and fixedly connected to the ceiling wall or side wall of the housing cavity 11. In yet another embodiment, the first battery cell 20 may be partially or completely housed within the first positioning part 12.

[0027] Refer to Figures 2 and 3. In some embodiments, the energy storage power source 100 includes reinforcing ribs 30. The reinforcing ribs 30 connect the side wall of the first positioning section 12 to the side wall of the housing cavity 11.

[0028] In this way, the structural strength of the first positioning section 12 and the first case 10 can be improved.

[0029] Please refer to Figures 2 and 3 for details. In one embodiment, the reinforcing rib 30 may be a plate-like structure, and both sides of the plate-like reinforcing rib 30 are connected to the first positioning part 12 and the first case 10, respectively, so that the first positioning part 12 and the first case 10 become one unit and reduce the shaking of the first positioning part 12. In order to reduce the weight of the reinforcing rib 30, it is understood that methods such as selecting a different shape for the reinforcing rib 30, drilling holes in the surface, or selecting a hollow structure can also be considered. The reinforcing rib 30 is made of the same material as the first positioning part 12 and the first case 10 and can be connected by welding, and the materials of the reinforcing rib 30, the first positioning part 12 and the first case 10 may be steel, copper, aluminum, etc. The reinforcing rib 30 may be provided on both opposing sides of the first positioning part 12, or it may be provided evenly around the four sides of the first positioning part 12 to enhance the fixing effect. Furthermore, the reinforcing ribs 30 may include both vertical and horizontal reinforcing ribs 30, thereby reducing shape changes of the first case 10 and the first positioning section 12 due to collisions and temperature changes.

[0030] In some embodiments, the fixing adhesive includes a structural adhesive.

[0031] In this way, the safety of the first battery cell 20 can be improved.

[0032] Specifically, in one embodiment, the structural adhesive can withstand a large load. firstBy injecting structural adhesive into the positioning groove 121, the impact resistance of the first battery cell 20 can be enhanced. If the first case 10 of the energy storage power supply 100 is damaged and the first battery cell 20 is directly subjected to impact, the structural adhesive can withstand a portion of the impact force and simultaneously transmit that impact force to the entire first battery cell 20, thereby mitigating impact damage. Furthermore, the structural adhesive has good corrosion resistance, so even if some of the first battery cells 20 leak electrolyte due to structural damage or if electrolyte is ejected from the explosion-proof valve (not shown) of the first battery cell 20 due to thermal runaway, the structural adhesive can prevent further leakage of electrolyte and avoid corrosion to other first battery cells 20 and other structural components. At the same time, the structural adhesive also has good thermal conductivity, and by transferring the heat generated from the first battery cell 20 to the first positioning part 12 and the first case 10, it contributes to lowering the operating temperature of the first battery cell 20.

[0033] Please refer to Figures 4 and 5. In some embodiments, at least one first battery cell 20 includes a plurality of sheet-like battery cells 24. The plurality of sheet-like battery cells 24 are arranged in a stacked manner.

[0034] In this way, the energy density of the first battery cell 20 can be improved.

[0035] For details, please refer to Figure 4. In one embodiment, the sheet-like battery cell 24 can be a pouch battery cell 21 employing an aluminum-plastic film or a steel-plastic film, thereby reducing the thickness of the outer housing and increasing the energy density of individual first battery cells 20. At the same time, in the event of a safety risk, the outer housing of the pouch battery cell 21 can also release internal stress in the form of expansion or cracking, thereby enhancing the safety of the pouch battery cell 21. The width of the pouch battery cell 21 may match the width of the first positioning section 12, and they may be arranged in a stacked manner along the length direction A. Of course, the width of the pouch battery cell 21 may be about half the width of the first positioning section 12, in which case, firstThe positioning groove 121 allows for the placement of two rows of pouch battery cells 21, while also reserving space for the fixing adhesive.

[0036] Furthermore, as shown in Figure 5, in another embodiment, the sheet-shaped battery cell 24 may be a prismatic battery cell 22 in which aluminum alloy, stainless steel, or the like is used as the material for the external housing. The prismatic battery cell 22 has high structural strength and good ability to withstand mechanical loads. The width of the prismatic battery cell 22 may match the width of the first positioning part 12, and they may be arranged to be stacked along the length direction A.

[0037] Please refer to Figures 4 and 5. In some embodiments, the first battery cell 20 includes two electrodes, and the two electrodes are located on the same side of the first battery cell 20.

[0038] In this way, the structure of the energy storage power source 100 can be simplified.

[0039] Please refer specifically to Figures 4 and 5. In some embodiments, the electrodes of the first battery cell 20 function as ports for power output or input. Each first battery cell 20 includes two electrodes, a positive electrode and a negative electrode, and these two electrodes are simultaneously located on the top, bottom, or other side of the first battery cell 20. If the energy storage power supply 100 includes two or more first battery cells 20, the electrodes of each first battery cell 20 are each located on the top, bottom, or other side of the first battery cell 20, so that the electrodes of all first battery cells 20 can be connected on only one side of the first positioning unit 12. This more centralized connection method reduces the required connection space and contributes to simplifying the structure of the energy storage power supply 100. As shown in Figure 4, in one embodiment, the first battery cell 20 may be a pouch battery cell 21. The two electrodes of each pouch battery cell 21 are both positioned facing upward. The energy storage power supply 100 may also include a first busbar 41. The first busbar 41 connects the electrodes of two adjacent pouch battery cells 21 with the same polarity at the top of the pouch battery cell 21, so that the two pouch battery cells 21 output power in parallel. Power can be output externally or input internally between multiple first busbars 41 in either a series or parallel configuration. The material of the first busbar 41 may be copper, aluminum, nickel, or an alloy material. After fixing the first busbar 41 in the correct position with a work jig, the electrodes of the first busbar 41 and the pouch battery cell 21 can be welded by laser welding. It is also understood that electrical connection between the first busbar 41 and the electrodes of the pouch battery cell 21 can be achieved through other connection methods such as twisting or crimping.

[0040] Furthermore, the energy storage power supply 100 can also collect status information of each pouch battery cell 21 through the first collection plate 45. The status information of the pouch battery cell 21 may include information such as the voltage, current, and temperature of each pouch battery cell 21. After welding the first busbar 41, the first collection plate 45 can be fixed to the corresponding position on the first busbar 41 through screws. Once the first collection plate 45 is fixed, the nickel straps of the first collection plate 45 and the first busbar 41 are connected using an electrical connection method such as laser welding, thereby achieving an electrical connection between the first collection plate 45 and the first busbar 41.

[0041] As shown in Figure 5, in another embodiment, the first battery cell 20 may be a prismatic battery cell 22. The two electrodes of the prismatic battery cell 22 are also positioned facing upward. The energy storage power supply 100 may include a bracket 80. The bracket 80 may include a limiting groove, and the bracket 80 is provided on the top of the prismatic battery cell 22 to allow the electrodes of the prismatic battery cell 22 to pass through the limiting groove. The bracket 80 may be made of plastic, which prevents the two electrodes of the same prismatic battery cell 22 from being electrically connected through the bracket 80 and causing a short circuit. The energy storage power supply 100 may further include a second busbar 42 and a second collection plate 46. After the positioning of the electrodes of the prismatic battery cell 22 is completed using the bracket 80, the electrodes of two adjacent prismatic battery cells 22 can be connected by a single second busbar 42, and the second collection plate 46 can be connected to the second busbar 42. The second busbar 42 and the first busbar 41, and the second collection plate 46 and the first collection plate 45 are similar in features and functions, so they will not be described again here.

[0042] Please refer to Figures 6 to 9. In some embodiments, the at least one first battery cell 20 includes a plurality of cylindrical battery cells 23. firstA first through-hole 132 is provided in the bottom wall of the positioning groove 121. The electrodes at the bottom of the cylindrical battery cell 23 are inserted through the first through-hole 132. The energy storage power supply 100 includes a plurality of bus bars 40. The plurality of bus bars 40 are used to connect the plurality of cylindrical battery cells 23 in series and / or in parallel.

[0043] In this way, the safety of the first battery cell 20 can be improved.

[0044] For specifics, please refer to Figures 6 to 9. In one embodiment, the two electrodes of the cylindrical battery cell 23 are located at both ends, and these two electrodes can be distinguished as a first pole 231 and a second pole 232. The first pole 231 and the second pole 232 are the current interface when power is supplied from or when the cylindrical battery cell 23 is charged. The first pole 231 may be located at the bottom end of the cylindrical battery cell 23 as the positive electrode, and the second pole 232 may be located at the top end of the cylindrical battery cell 23 as the negative electrode, although of course, the polarity and position of the first pole 231 and the second pole 232 can be reversed. Multiple busbars 40 are divided into a third busbar 43 and a fourth busbar 44. The first pole 231 may pass through a first through-hole 132 and be electrically connected to the first pole 231 of an adjacent cylindrical battery cell 23 via the third busbar 43. The second pole 232 can be electrically connected directly to the second pole 232 of an adjacent cylindrical battery cell 23 via the fourth busbar 44. The third busbar 43 can electrically connect four or more first poles 231, and similarly, the fourth busbar 44 can electrically connect four or more second poles 232. In another embodiment, the energy storage power supply 100 may include a third collection plate 47 and a fourth collection plate 48. The third collection plate 47 is connected to the third busbar 43, and the fourth collection plate 48 is connected to the fourth busbar 44, thereby allowing state information of each cylindrical battery cell 23 to be collected through the third collection plate 47 and the fourth collection plate 48. The third busbar 43 and the fourth busbar 44 are similar in features and function to the first busbar 41, and the third collection plate 47 and the fourth collection plate 48 are also similar in features and function to the first collection plate 45, so they will not be repeated here.

[0045] Refer to Figures 6 and 8. In some embodiments, the energy storage power supply 100 further includes a cover plate 50. A housing groove 131 is provided on the outer wall surface of the first case 10 corresponding to the first positioning section 12. A first through hole 132 penetrates the bottom wall of the housing groove 131. Multiple bus bars 40 are located in the housing groove 131. The cover plate 50 is provided on the outer wall surface of the first case 10 and covers the housing groove 131.

[0046] In this way, it contributes to reducing the volume of the product.

[0047] For specifics, please refer to Figures 6 and 8. In one embodiment, the cylindrical battery cell 23 is first The first case 10 is housed vertically within the positioning groove 121. The outer wall surface of the bottom of the first case 10 is recessed inward to form a housing groove 131. The first pole 231 of the cylindrical battery cell 23 enters the housing groove 131 through the first through-hole 132. Multiple busbars 40 may include a third busbar 43. The third busbar 43 can connect to the first pole 231 within the housing groove 131, thereby integrating the first pole 231 and the third busbar 43 at the bottom of the first case 10, improving the overall degree of integration and reducing the volume of the product. The cover plate 50 is provided to cover the housing groove 131, further enhancing the integrity of the first case 10 and protecting the first pole 231 and the third busbar 43. The cover plate 50 is fixed to the first case 10 with bolts, but of course, it can be fixed in other ways, and is not limited thereto. In another embodiment, the energy storage power source 100 may include a third collection plate 47, which is connectable to a third busbar 43 within a housing groove 131.

[0048] Refer to Figure 6. In some embodiments, the energy storage power supply 100 further includes a thermally conductive adhesive. The thermally conductive adhesive 50 connects the cover plate 50 and the bus bar 40.

[0049] In this way, the temperature of the busbar 40 can be reduced.

[0050] For specifics, please refer to Figure 6. In one embodiment, the multiple busbars 40 may include a third busbar 43. When current passes through the third busbar 43, a certain amount of current loss occurs, generating heat. This accumulated heat raises the temperature of the third busbar 43 and the cylindrical battery cell 23, causing safety risks such as fire. Therefore, by filling the space between the third busbar 43 and the cover plate 50 with a thermally conductive adhesive, heat from the third busbar 43 is transferred to the cover plate 50, and the heat from the cover plate 50 is dissipated into the surrounding environment, thereby providing a cooling effect for the third busbar 43 and the cylindrical battery cell 23. The cover plate 50 may be made of aluminum, which has a relatively good heat transfer effect. The first case 10 can also be made of a material with good heat transfer properties, such as aluminum, which further transfers heat from the cover plate 50 to the first case 10, thereby enhancing the cooling effect on the third busbar 31 and the cylindrical battery cell 23.

[0051] Refer to Figure 6. In some embodiments, the energy storage power supply 100 further includes a sealing ring 60. The sealing ring 60 seals the cover plate 50 and the outer wall surface of the first case 10.

[0052] In this way, the sealing effect of the storage groove 131 can be enhanced.

[0053] For details, please refer to Figure 6. In one embodiment, a housing groove 131 is formed in the outer wall of the first case 10. A busbar assembly 40 is housed in the housing groove 131. In a humid operating environment, if the sealing effect of the housing groove 131 is poor, water vapor will enter the housing groove 131, causing the busbar 40 to rust or, in the worst case, to cause a short circuit. Therefore, when the cover plate 50 covers the housing groove 131, a sealing ring 60 is provided between the cover plate 50 and the outer wall of the first case 10 to further enhance the sealing effect of the housing groove 131 and isolate the busbar 40 in the housing tank 131 from water vapor in the outside.

[0054] Refer to Figures 1, 2, 8, 9, and 10. In some embodiments, the first case 10 includes a first housing 13 and a second housing 14. The first housing 13 is removably connected to the second housing 14 to form a housing cavity 11. A first positioning section 12 is provided in either the first housing 13 or the second housing 14.

[0055] This makes installation and repair easier.

[0056] Specifically, Figures 2, 8, and 9 show the structure of the first housing 13 in an embodiment where the first battery cell 20 is a cylindrical battery cell 23. Figure 10 shows the structure of the first housing 13 in an embodiment where the first battery cell 20 is a pouch battery cell 21 or a prismatic battery cell 22. Please refer to Figures 1, 2, 8, 9, and 10. In one embodiment, the first case 10 may include a first housing 13 located at the top and a second housing 14 located at the bottom. In some embodiments, the first housing 13 and the second housing 14 may be located at the front and rear or left and right sides of the first case 10, or at two diagonal corners of the first case 10. The first housing 13 and the second housing 14 are removably connected to each other by means of screws, fasteners, or clamps. The first housing 13 and the second housing 14 form a housing cavity 11 and house the first battery cell 20. This improves the ease of assembly and disassembly / repair.

[0057] See also the diagram. In some embodiments, the energy storage power supply 100 may further include a panel 70 provided in the first case 10. The panel 70 can display information such as the current charge level and battery temperature of the energy storage power supply 100. The panel 70 further includes a port for connecting the energy storage power supply 100 to an electrical device or a charging device, thereby enabling the first battery cell 20 to supply power to an electrical device or receive power from a charging device.

[0058] In related technologies, two battery brackets are generally used to secure both ends of the battery cells, their corresponding electrical connection components, and the collection plate, forming a battery pack which is then attached to an external housing. As a result, the energy storage power supply has many components, is bulky, is costly, and has a complex installation procedure. On the other hand, the external housing needs to reserve space for the battery pack, which further increases the volume of the energy storage power supply.

[0059] Please refer to Figures 11 to 13. In the embodiment of this application, an energy storage power supply 100 is provided. The energy storage power supply 100 includes a second case 101, the second case 101 having a second positioning portion 111 on its inner wall; at least one second battery cell 103, the second battery cell 103 having a first end 1301 inserted into the second positioning portion 111, and at least one second battery cell 103 having two electrodes 133 on its second end 1302 opposite to the first end 1301; a fixing device 15 for fixing the second end 1302 of at least one second battery cell 103; and an electrical connection component 17 electrically connected to the second end 1302 of at least one second battery cell 103.

[0060] In the energy storage power supply 100 described above, a second positioning section 111 is provided on the inner wall of the second case 101, and the first end 1301 of the second battery cell 103 may be directly inserted into the second positioning section 111, eliminating the need to fix it with a bracket and then assemble it into the second case 101. This reduces the number of parts, simplifies the installation procedure, eliminates the need for reserved mounting space in the second case 101, reduces the cost of the energy storage power supply 100, and allows for a smaller volume. Furthermore, the second end 1302 of the second battery cell 103 can be fixed by a fixing device 15 and connected to an electrical connection component 17, thereby achieving overall fixing and electrical connection of the second battery cell 103 within the second case 101.

[0061] Specifically, in one embodiment, as shown in Figures 11 and 12, at least a portion of the second case 101 of the energy storage power supply 100 is provided to surround and form a housing cavity 112, and a second positioning section 111 is provided inside the housing cavity 112, which is used to guide and fix one end of at least one second battery cell 103. Compared to a method in which both ends of the second battery cell 103 are fixed with two brackets, the use of brackets is reduced, assembly steps are omitted, and production costs can be reduced.

[0062] In one embodiment, as shown in Figure 11, the second battery cell 103 includes a first end 1301 and a second end 1302 that are oriented in opposite directions, and the stability of the second battery cell 103 is ensured by fixing the first end 1301 and the second end 1302 of the second battery cell 103, respectively, within the energy storage power source 100.

[0063] It will be understood that the first end 1301 and the second end 1302 of the second battery cell 103 may be the lower end and upper end, left end and right end, front end and rear end, or other opposite ends of the second battery cell 103, respectively. This relates to factors such as the shape and orientation of the second battery cell 103. The second battery cell 103 can be safely installed in the energy storage power supply 100 by fixing the first end 1301 and the second end 1302, respectively, with the second positioning unit 111 and the fixing device 15, ensuring the normal operation of the energy storage power supply 100, and no specific limitations are imposed here.

[0064] In one embodiment, a second positioning section 111 is provided on the inner wall of the second case 101, which is equivalent to one of the brackets being integrated into the second case 101. In other words, the second positioning section 111 and the second case 101 are an integrated structure that cannot be removed. This allows one end of the second battery cell 103 to be directly attached to the second case 101, realizing a "cell to pack" (CTP) structure. This can also be called a moduleless technology, as it eliminates or reduces assembly modules (including parts such as brackets and bolts), does not require reserved mounting space, and enables cost reduction and miniaturization of the product.

[0065] In one embodiment, the second positioning unit 111 may be provided at different locations on the inner wall of the second case 101, for example, on the inner wall, inner bottom wall, or other locations. This ensures that the first end 1301 of at least one second battery cell 103 is fixed to the second positioning unit 111, and as a result, that at least one end of the second battery cell 103 is stably positioned within the energy storage power source 100. No specific limitations are imposed here.

[0066] For example, in one case, the second positioning portion 111 may be a positioning groove that matches the shape and size of the first end 1301. As shown in Figure 11, for example, if the second positioning portion 111 is a cylindrical groove, the first end 1301 of at least one second battery cell 103 will each form an interference fit with a corresponding number of positioning grooves, thereby improving the stability of the connection between the second battery cell 103 and the second positioning portion 111.

[0067] In one embodiment, as shown in Figure 11, the energy storage power supply 100 includes a fixture 15 which is detachably connected within the energy storage power supply 100, positioned opposite the second positioning portion 111, and can be used to secure the second end 1302, ensuring that the second end 1302 is stably positioned within the energy storage power supply 100, improving the overall stability of at least one second battery cell 103, and ensuring the safe operation of the energy storage power supply 100.

[0068] In one embodiment, as shown in Figure 11, the electrical connection component 17 is a busbar and is used to connect multiple second battery cells 103 in series and / or parallel when there are multiple second battery cells 103.

[0069] In one embodiment, as shown in Figure 11, there are multiple electrical connection components 17, each with multiple positioning holes (not shown). The fixing device 15 is provided with multiple positioning posts (not shown) corresponding to the multiple positioning holes, and the positioning holes and positioning posts are connected in correspondence. For example, the positioning holes and positioning posts may form an interference fit, be fixed with screws, or be connected in other ways, thereby ensuring that the electrical connection components 17 are fixedly mounted on the fixing device 15 and that connection stability is good.

[0070] In one embodiment, the fixture 15 is provided with a plurality of second through-holes 1511 to ensure that the second end 1302 of at least one second battery cell 103 is exposed through the plurality of second through-holes 1511. This ensures that the electrical connection component 17 is electrically connected to at least one second battery cell 103, and that the energy storage power supply 100 can discharge / output power to the outside or charge / input power to the inside.

[0071] As shown in Figures 11 and 12, it will be understood that the electrical connection component 17 forms an electrical connection with at least one second battery cell 103 by welding. This allows the electrical connection component 17 to connect at least one second battery cell 103 in series and / or parallel, so that the energy storage power supply 100 can provide an appropriate power supply voltage to meet the user's usage needs.

[0072] For example, in one case, the electrical connection component 17 connects each positive electrode column of at least one second battery cell 103 to form an overall positive connection port, and connects each negative electrode column to form an overall negative connection port. That is, the electrical connection component 17 connects at least one second battery cell 103 in parallel, so that at least one second battery cell 103 forms a stable output power supply, ensuring the normal operation and good durability of the energy storage power supply 100.

[0073] In another example, the electrical connection component 17 alternately connects each positive and negative electrode post of at least one second battery cell 103, so that the positive and negative electrode posts connected to the two ends of the electrical connection component 17 become the positive and negative connection ports, respectively. That is, the electrical connection component 17 connects at least one second battery cell 103 in series, so that at least one second battery cell 103 forms a high-voltage output power source, meeting the user's power usage needs.

[0074] In one embodiment, as shown in Figures 11 and 12, the energy storage power supply 100 further includes a collection plate 19 on which nickel straps are arranged in rows along the left-right direction, and the nickel straps are connected and fixed to electrical connection components 17 by welding. For example, the welding method may be laser welding, which ensures that the energy storage power supply 100 collects and acquires status information for each second battery cell 103 in a timely manner. The status information for the second battery cell 103 may include information such as temperature, current, or voltage, which ensures the safe operation of the energy storage power supply 100.

[0075] That is, after the electrical connection components 17 and each second battery cell 103 are welded together, the collection plate 19 can be fixed to the corresponding position on the electrical connection components 17 via screws. Once the collection plate 19 is fixed in place, the nickel straps of the collection plate 19 and the electrical connection components 17 are connected via an electrical connection method such as laser welding, thereby achieving an electrical connection between the collection plate 19 and the electrical connection components 17.

[0076] Furthermore, the first end 1301 may be a non-polarized end, the second end 1302 may be a polarized end, and there may be at least two poles of different electrical properties. In this way, in the energy storage power supply 100, the electrical connection component 17 and the collection plate 19 are provided only at the second end 1302 of the second battery cell 103, and the electrical connection component 17 and the collection plate 19 are electrically connected to the positive and negative poles located at the second end 1302 of the second battery cell 103, respectively. This ensures normal charging and discharging of the second battery cell 103, saves the number and space required for the electrical connection component 17 and the collection plate 19, and contributes to the miniaturization design of the energy storage power supply 100.

[0077] Please refer to Figures 14 to 21. In some embodiments, the second positioning portion 111 is located on the inner bottom wall 113 or inner wall 115 of the second case 101.

[0078] In this way, the second battery cell 103 is ensured to be stably installed on the inner bottom wall 113 or inner wall 115 of the second case 101, meeting the mounting needs of different products.

[0079] Specifically, in one embodiment, as shown in Figures 14 to 17, the second positioning portion 111 is located on the inner bottom wall 113 of the second case 101, that is, the second positioning portion 111 does not come into contact with the side of the second case 101. This allows for the formation of an installation space for the second battery cell 103 inward, perpendicular to the plane of the paper. As a result, the inner bottom wall 113 of the second case 101 and the shielding plate (not shown) forming the second positioning portion 111 surround it, forming a stable support structure and ensuring that the first end 1301 of the second battery cell 103 is stably installed on the second positioning portion 111.

[0080] It will be understood that the inner bottom wall 113 of the second case 101 can function as a support base, supporting the second battery cell 103 installed in the second positioning section 111, thereby improving the stability of the installation of the second battery cell 103 and ensuring the safe operation of the second battery cell 103.

[0081] In one example, as shown in Figure 15, the second battery cell 103 may be in the form of a sheet or a block, and may be used to attach the second positioning part 111 which is installed in a rectangular groove, thereby ensuring the stability of the second battery cell 103.

[0082] In another example, as shown in Figures 14, 16, and 17, the second battery cell 103 may be cylindrical and can be used to mount the second positioning unit 111 which is installed in a cylindrical groove, thereby ensuring the stability of the second battery cell 103.

[0083] In other examples, the second battery cell 103 may have a different shape to match the correspondingly shaped second positioning section 111. This ensures stable installation of the second battery cell 103. No specific limitations are imposed here.

[0084] In one embodiment, as shown in Figures 18 to 21, the second positioning portion 111 is located on the inner wall 115 of the second case 101, that is, the second positioning portion 111 is in direct contact with the side of the second case 101. This allows for the formation of an installation space for the second battery cell 103 inward perpendicular to the plane of the paper. As a result, the inner wall 115 of the second case 101, the inner bottom wall 113, and the shielding plate (not shown) forming the second positioning portion 111 surround the second battery cell 103, forming a stable support structure and ensuring that the first end 1301 of the second battery cell 103 is stably installed in the second positioning portion 111.

[0085] The inner wall 115 of the second case 101 can be considered part of the shielding plate and can be used to position and fix the second battery cell 103. This ensures that the second battery cell 103 is stably installed in the second positioning section 111, and at the same time, the inner bottom wall 113 of the second case 101 can function as a support base, supporting the second battery cell 103 installed in the second positioning section 111, thereby improving the stability of the installation of the second battery cell 103 and ensuring the safe operation of the second battery cell 103.

[0086] In one example, as shown in Figures 18 and 19, the second battery cell 103 may be in the form of a sheet or a block, and may be used to attach the second positioning part 111 installed in a rectangular groove, thereby ensuring the stability of the second battery cell 103.

[0087] In another example, as shown in Figure 20, the second battery cell 103 may be cylindrical and can be used to mount the second positioning unit 111 installed in a cylindrical groove, thereby ensuring the stability of the second battery cell 103.

[0088] In yet another example, as shown in Figure 21, the second battery cell 103 may be a hollow cylindrical shape and be used to attach the ring-shaped second positioning portion 111, ensuring the stability of the second battery cell 103.

[0089] In another example, the second battery cell 103 may have a different shape to match the correspondingly shaped second positioning section 111. This ensures stable installation of the second battery cell 103. No specific limitations are imposed here.

[0090] In summary, the second positioning unit 111 is located on the inner bottom wall 113 or inner wall 115 of the second case 101, saving the use of brackets and mounting space, thereby improving the number of second battery cells 103 that can be installed and their energy density, and enhancing practicality.

[0091] Please refer to Figure 14. In some embodiments, a plurality of retaining posts 1131 are formed in an array-like manner on the inner bottom wall 113 of the second case 101, and the second positioning section 111 is formed between adjacent 2x2 rows of retaining posts 1131. second This is a positioning groove.

[0092] In this way, the first end 1301 of the cylindrical second battery cell 103 is guided and fixed, ensuring good safety.

[0093] Specifically, in one embodiment, multiple fasteners 1131 are arranged in multiple columns across multiple rows, and between adjacent 2x2 fasteners 1131 second Positioning grooves are defined, and multiple second battery cells 103 are installed at intervals, thereby improving safety.

[0094] A structure formed by multiple retaining posts 1131, which are spaced apart second It will be understood that the positioning grooves allow multiple second battery cells 103 to be arranged at intervals, thereby reducing problems such as thermal expansion due to direct contact between multiple second battery cells 103, and reducing situations in which multiple second battery cells 103 deform by pushing against each other when the energy storage power source 100 collides, thus reducing safety risks.

[0095] In one implementation configuration, as shown in Figure 14, cylindrical grooves can be defined between adjacent 2x2 mounting posts 1131, thereby ensuring stable installation of the cylindrical second battery cell 103 and improving its stability.

[0096] In detail, the outer periphery wall of each retaining column 1131 is formed as an arc-shaped surface and is provided to surround it to form a cylindrical groove. This cylindrical groove matches the outer periphery wall of the second battery cell 103, ensuring a connection between the second battery cell 103 and the second positioning unit 111, and reducing vibration.

[0097] In other embodiments, second The positioning groove may have other shapes, such as a rectangle, but no specific limitations are imposed here, as long as it ensures the stable installation of the second battery cell 103 of different shapes.

[0098] In one embodiment, as shown in Figures 11 and 14, the height of the retaining column 1131 is preferably less than or equal to the height of the second case 101 in Figure 11. This ensures that the height of the second positioning section 111 is also less than or equal to the height of the second case 101 in Figure 11, thereby guaranteeing that the second battery cell 103 is stably installed in the second positioning section 111. Of course, the height of the retaining column 1131 may be greater than the height of the second case 101 in Figure 11. In that case, the height of the second positioning section 111 can be made to exceed the height of the second case 101 in Figure 11, and other connecting parts can be used to stably fix the electronic components (e.g., inverter, etc.) at the second end 1302 of the second battery cell 103 within the energy storage power supply 100. However, no specific limitations are set here.

[0099] Here, the second case 101 in Figure 11 may be a single-sided second case 101, for example, the lower case into which the second positioning unit 111 is incorporated, the left-side case into which the second positioning unit 111 is incorporated, or a single-sided second case 101 in any other direction, but no specific limitations are imposed here.

[0100] Refer to Figure 16. In some embodiments, a plurality of limiting bars 1132 are formed on the inner bottom wall 113 of the second case 101, the plurality of limiting bars 1132 include S-shaped sides 1133, and the second positioning section 111 is formed between two adjacent S-shaped sides. third This is a positioning groove.

[0101] In this way, the first end 1301 of the cylindrical second battery cell 103 third The second battery cell 103 is inserted into the positioning groove, and its side surface is in close contact with the S-shaped side surface 1133, thereby improving the stability of the second battery cell 103.

[0102] Specifically, in one embodiment, a plurality of limiting bars 1132 are arranged in multiple rows on the inner bottom wall 113 of the second case 101, and each limiting bar 1132 includes two S-shaped sides 1133 facing opposite directions, and a plurality of bars are spaced apart in the row direction. third Multiple positioning grooves are formed and arranged offset in the row direction. third Positioning grooves are formed. This ensures that multiple second battery cells 103 are installed at intervals in the second positioning section 111, thereby improving safety.

[0103] It will be understood that the spaced grooves using the S-shaped side 1133 allow multiple second battery cells 103 to be spaced apart, reducing problems such as thermal expansion due to direct contact between multiple second battery cells 103, and the situation in which multiple second battery cells 103 push against each other and deform when the energy storage power source 100 collides, thereby reducing safety risks.

[0104] In one embodiment, as shown in Figure 16, the limiting bars 1132 may be arranged in three rows along the left-right direction, and multiple cylindrical grooves can be defined between the two S-shaped sides 1133 of each limiting bar 1132, thereby ensuring that multiple cylindrical second battery cells 103 are stably installed and safely spaced apart, thus improving the stability of the cylindrical second battery cells 103.

[0105] In other embodiments, the limiting bar 1132 may be of a different quantity. third The positioning groove may also be of other shapes, such as a rectangle, to ensure that second battery cells 103 of different shapes can be stably installed. No specific limitations are imposed here.

[0106] Please refer to Figures 18 to 21. In some embodiments, an integrated bracket 1151 is formed on the inner wall 115 of the second case 101, and the second positioning portion 111 is a positioning groove formed on the integrated bracket 1151.

[0107] In this way, the battery cell bracket is saved, and the first end 1301 of the second battery cell 103 is stabilized and fixed by the inner wall 115 of the second case 101, thereby reducing costs.

[0108] Specifically, in one embodiment, as shown in Figures 18 to 21, an integrated bracket 1151 is formed on the inner wall 115 of the second case 101, and a second positioning portion 111 is formed by the inner wall 115 and the integrated bracket 1151, so that the first end 1301 of the second battery cell 103 is positioned on the second positioning portion 111 and supported by the inner bottom wall 113, and as a result the stability of the second battery cell 103 is guaranteed.

[0109] In one embodiment, the second case 101 and the integrated bracket 1151 can be integrally molded by injection molding, saving external brackets and mounting space, and improving the structural strength of the second case 101 and the integrated bracket 1151, thereby ensuring the safe installation of the second battery cell 103.

[0110] In other embodiments, the second case 101 and the integrated bracket 1151 may be molded in other ways to ensure the secure installation of the second battery cell 103, and no specific limitations are imposed here.

[0111] In one embodiment, as shown in Figure 18, the integrated bracket 1151 may be formed on two opposing inner walls 115 within the second case 101, thereby forming a plurality of rectangular positioning grooves that can be used to install the sheet-like or block-like second battery cell 103, thereby ensuring the stability and safety of the second battery cell 103.

[0112] In one embodiment, as shown in Figure 19, the integrated bracket 1151 may be formed on a single inner wall 115 within the second case 101 (as shown in Figure 19), or on two adjacent inner walls 115 or three inner walls 115 within the second case 101 (not shown), and the integrated bracket 1151 may have a rectangular frame shape and form a plurality of rectangular positioning grooves that can be used to install the sheet-like or block-like second battery cell 103, thereby ensuring the stability and safety of the second battery cell 103. No specific limitations are set here.

[0113] In one embodiment, as shown in Figure 20, the integrated bracket 1151 may be formed on a single inner wall 115 within the second case 101 (as shown in Figure 20), or on two adjacent inner walls 115 or three inner walls 115 within the second case 101 (not shown), and the integrated bracket 1151 may be provided with a plurality of cylindrical positioning grooves that can be used to install the cylindrical second battery cell 103, thereby ensuring the stability and safety of the second battery cell 103. No specific limitations are set here.

[0114] In one embodiment, as shown in Figure 21, the integrated bracket 1151 may be formed on a single inner wall 115 within the second case 101 (as shown in Figure 21), or on two adjacent inner walls 115 or three inner walls 115 within the second case 101 (not shown), and the integrated bracket 1151 may be an array of cylinders and an outer frame, and may be provided with a plurality of ring-shaped positioning grooves that can be used to install the hollow cylindrical second battery cell 103 to ensure the stability and safety of the second battery cell 103. No specific limitations are set here.

[0115] In summary, the second case 101 and the integrated bracket 1151 have an integrated structure, saving on external brackets and mounting space, thus ensuring stable installation of the second battery cell 103 and reducing costs.

[0116] Please refer to Figures 14 to 21. In some embodiments, the positioning groove is circular or rectangular.

[0117] In this way, it is ensured that the cylindrical second battery cell 103 and the rectangular second battery cell 103 can be stably installed in positioning grooves that match their respective shapes, thereby improving the adaptability and safety of second battery cells 103 of different shapes.

[0118] Specifically, in one embodiment, as shown in Figures 14, 16, 17, 20, and 21, the positioning groove is circular and can be used to install a cylindrical second battery cell 103, the cylindrical second battery cell 103 is matched and connected to the circular positioning groove, and the safety of the cylindrical second battery cell 103 is improved.

[0119] In another embodiment, as shown in Figures 15, 18, and 19, the positioning groove is rectangular and can be used to install a sheet-like or block-shaped second battery cell 103, the sheet-like or block-shaped second battery cell 103 is matched and connected to the rectangular positioning groove, and the safety of the sheet-like or block-shaped second battery cell 103 is improved.

[0120] In one example, it will be understood that the second battery cell 103 ensures stable installation by forming a positioning groove and interference fit, thereby ensuring the safe operation of the second battery cell 103.

[0121] In another example, when the second battery cell 103 is placed in the positioning groove, injecting adhesive ensures that the second battery cell 103 is stably connected to the positioning groove, thereby ensuring the safe operation of the second battery cell 103.

[0122] Here, the adhesive may be a thermally conductive adhesive, which enhances the connection effect of the second battery cell 103, while also allowing the heat generated by the second battery cell 103 to be dissipated through the second case 101, effectively cooling the second battery cell and improving safety.

[0123] In summary, the circular or rectangular positioning groove ensures stable installation of both cylindrical and rectangular second battery cells 103, improving the adaptability of installation for second battery cells 103 of different shapes and enhancing practicality.

[0124] In some embodiments, the second battery cell 103 includes one of a cylindrical battery cell and a sheet-shaped battery cell.

[0125] In this way, by providing second battery cells 103 of different shapes, the actual needs of users are met.

[0126] Specifically, in one embodiment, the second battery cell 103 includes one of a cylindrical battery cell and one of a sheet-shaped battery cell, that is, the energy storage power source 100 can operate using either a cylindrical battery cell or a sheet-shaped battery cell, meeting the user's power usage needs without any specific limitations.

[0127] In one embodiment, the second battery cell 103 may be a cylindrical battery cell. As shown in Figure 11, it may be fitted and installed in a second case 101 which is provided with a plurality of cylindrical second positioning units 111, ensuring the charging and discharging process of the energy storage power supply 100.

[0128] In another embodiment, the second battery cell 103 may be a sheet-type battery cell (not shown), which may be fitted and installed within a second case 101 provided with a plurality of rectangular second positioning sections 111, thereby ensuring the charging and discharging process of the energy storage power source 100. Here, the sheet-type battery cell may be formed by stacking a plurality of second battery cells 103 side by side.

[0129] For example, the sheet-type battery cell can be a pouch battery cell 21 made of an aluminum-plastic film or a steel-plastic film, which has the advantage of being small in volume and having a high energy density for a single second battery cell 103. At the same time, in the event of a safety risk, the external housing of the pouch battery cell 21 can also release internal stress in the form of expansion or cracking to enhance the safety of the pouch battery cell 21. As shown in Figures 15, 18, and 19, the width of the pouch battery cell 21 may match the width of the second positioning section 111 (e.g., left-right direction), and they may be arranged stacked along the length direction (e.g., front-back direction). Of course, the width of the pouch battery cell 21 may be about half the width of the second positioning section 111, in which case the pouch battery cell 21 can be placed in two rows within the second positioning section 111, while also reserving space for accommodating adhesive and ensuring the stable fixation of the pouch battery cell.

[0130] Refer to Figure 22. In some embodiments, the second battery cell 103 includes two electrodes 133 located at the second end 1302 of the second battery cell 103.

[0131] In this way, the structure of the energy storage power source 100 is simplified, the welding space is reduced, and miniaturization is achieved.

[0132] Specifically, in one embodiment, as shown in Figures 11 and 22, the second battery cell 103 includes a first end 1301 and a second end 1302, which are arranged in opposite directions and are stably connected through a second positioning part 111 and a fixing part 15, respectively, thereby ensuring the safe operation of the second battery cell 103.

[0133] In one embodiment, the second battery cell 103 includes two electrodes 133 located at the second end 1302 of the second battery cell 103, that is, the first end 1301 may be an end without electrodes 133 that can be connected in conjunction with the second positioning unit 111, while the second end 1302 may be an end with two electrodes 133 that can be connected in conjunction with a fixing component 15, an electrical connection component 17, and a collection plate 19, etc., thereby ensuring power input and output.

[0134] In one embodiment, as shown in Figures 11 and 22, the two electrodes 133 may include a third electrode column 1331 and a fourth electrode column 1332, where the third electrode column 1331 is the positive electrode column and the fourth electrode column 1332 is the negative electrode column. This forms a positive and negative interface for the second battery cell 103, ensuring charging or discharging of the second battery cell 103. Of course, the third electrode column 1331 may be the negative electrode column and the fourth electrode column 1332 may be the positive electrode column, but no specific limitations are imposed here.

[0135] In other words, in one embodiment, of the two electrodes 133, one is a positive electrode and the other is a negative electrode.

[0136] In this way, charging or discharging functions can be realized on the same side of the second battery cell 103, reducing the number of wiring and welding steps and contributing to the miniaturization of the energy storage power supply 100.

[0137] The two electrodes 133 are located at the second end 1302 of the second battery cell 103, that is, the two electrodes 133 are located on the same side of the second battery cell 103. This reduces the number of electrical connection components 17 and collection plates 19 located at the first end 1301, reduces welding steps, saves mounting space, lowers costs, and contributes to the miniaturization design and good practicality of the energy storage power supply 100.

[0138] In other embodiments, the first end 1301 may be an end with two electrodes 133, and the second end 1302 may be an end without electrodes 133, thereby ensuring the normal operation of the energy storage power supply 100. No specific limitations are imposed here.

[0139] In some embodiments, the two electrodes 133 may be protrusions of different shapes or sizes.

[0140] In this way, it becomes easier to distinguish the positive and negative electrodes of the second battery cell 103 based on the shape or size of the protrusions, improving the accuracy of mounting and connecting the second battery cell 103 and ensuring the safe use of the energy storage power supply 100.

[0141] Specifically, in one embodiment, the two electrodes 133 are convex columns of different shapes or sizes, which makes it easier to distinguish between the two electrodes 133 and satisfies the user's power supply needs to connect the second battery cell 103 in series or parallel to ensure correct wiring of the second battery cell 103.

[0142] The convex poles may be the third pole 1331 and fourth pole 1332, which have different shapes and properties as shown in Figure 22. It will be understood that the fact that the convex poles may be circular and elliptical makes it easier to distinguish the tangents and ensures safe use.

[0143] That is, a circular convex column may be the positive pole and an elliptical convex column may be the negative pole, or a circular convex column may be the negative pole and an elliptical convex column may be the negative pole. Of course, the convex column may have other shapes, and no specific limitations are imposed here.

[0144] In some embodiments, a protruding column is provided at the second end 1302 of the second battery cell 103, the protruding column constitutes one of the two electrodes 133, and the other part of the second end 1302 of the second battery cell 103 constitutes the other of the two electrodes 133.

[0145] In this way, the second battery cell 103 provides charge input and discharge output at the second terminal 1302, ensuring the normal operation of the energy storage power supply 100.

[0146] Specifically, in one embodiment, a protruding column is provided at the second end 1302 of the second battery cell 103, so that the protruding column can be made into one electrode 133, that is, one terminal of the second battery cell 103.

[0147] In one embodiment, the other portion of the second end 1302 of the second battery cell 103 constitutes the other of the two electrodes 133. That is, the other electrode 133 can be formed on the other portion of the second end 1302, excluding the area occupied by the protrusion, for example, by providing another protrusion on the other portion of the second end 1302, or in other forms, to form another terminal of the second battery cell 103, thereby ensuring the realization of the charging input and discharging output functions of the second end 1302 of the second battery cell 103, while simultaneously reducing the welding space required to provide the second battery cell 103 at both ends, thus improving practicality.

[0148] Refer to Figure 11. In some embodiments, the fastener 15 includes a split bracket 151, the split bracket 151 having a plurality of second positioning parts (not shown), the second positioning parts being used to fix the second end 1302, and the second positioning parts being provided with a second through hole 1511 for the protruding column.

[0149] In this way, the second end 1302 of the second battery cell 103 is stably installed, and the overall stability of the second battery cell 103 is ensured.

[0150] Specifically, in one embodiment, as shown in Figure 11, the split bracket 151 may be a removable bracket, provided on the second end 1302 of the second battery cell 103 and fixed to the second case 101 by screws 152, thereby ensuring that the second battery cell 103 is stably installed within the energy storage power source 100.

[0151] As shown in Figure 11, a screw 152 may be provided on the split bracket 151, and a corresponding screw hole with threads may be provided in the second case 101. Therefore, the split bracket 151 can be detachably connected to the second case 101, which will ensure the assembly, maintenance, and replacement of the second battery cell 103.

[0152] In one embodiment, the split bracket 151 has a plurality of second positioning portions (not shown), which may be blind holes that match the shape and size of the second end 1302 of the second battery cell 103, and are used to form an interference fit and fix the second end 1302 of the second battery cell 103 onto the split bracket 151.

[0153] In one embodiment, the split bracket 151 has a plurality of second through-holes 1511, and the diameter of the second through-holes 1511 is smaller than the diameter of the second end 1302 of the second battery cell 103, and is arranged concentrically with the second positioning portion (not shown), so that the second end 1302 of the second battery cell 103 comes into contact with the second positioning portion, that is, comes into contact with the split bracket 151 around the second through-holes 1511, thereby fixing the second end 1302 of the second battery cell 103. In addition, since the first end 1301 of the second battery cell 103 is fixed by the second positioning portion 111, it is ensured that the entire second battery cell 103 is stably fixed within the energy storage power source 100.

[0154] Furthermore, the two electrodes 133 are located at the second end 1302 of the second battery cell 103, so that the two electrodes 133 protrude from the second through-hole 1511 and are welded to the electrical connection component 17, thereby electrically connecting the second battery cell 103 to the electrical connection component 17 and ensuring a normal charging and discharging process of the second battery cell 103.

[0155] In one embodiment, the second through-hole 1511 may be a cylindrical hole or a hole of another shape, thereby ensuring that the second end 1302 of the second battery cell 103 abuts against the split bracket 151 and is fixed in the position of the second through-hole 1511. No specific limitations are imposed here.

[0156] In some embodiments, the fastener 15 includes a fixing adhesive.

[0157] In this way, the second battery cell 103 is stably installed within the energy storage power source 100, and the safe operation of the second battery cell 103 is guaranteed.

[0158] Specifically, the fixing component 15 includes a fixing adhesive, that is, when the first end 1301 of the second battery cell 103 is fixed to the second position part 111, the entire second battery cell 103 is stably connected within the energy storage power source 100 by the fixing adhesive, and the safe operation of the second battery cell 103 is guaranteed.

[0159] In one embodiment, if the first end 1301 of at least one second battery cell 103 is inserted into and connected to the second positioning section 111, it will be understood that, since the second positioning section 111 arranges the second battery cells 103 in an array, it is sufficient to simply inject fixing adhesive into the housing cavity 112 of the second case 101 and guide it into the gaps between the multiple second battery cells 103. This ensures that the second ends 1302 of the multiple second battery cells 103 are also stably connected within the energy storage power supply 100, and that the second battery cells 103 as a whole are stably installed and operate safely.

[0160] In one embodiment, the fixing adhesive may be a structural adhesive.

[0161] On the other hand, structural adhesives can withstand heavy loads. By injecting structural adhesive into the gaps between multiple second battery cells 103, the impact resistance of the second battery cells 103 can be enhanced. If the second case 101 of the energy storage power source 100 is damaged and a direct impact is applied to the second battery cells 103, the structural adhesive can withstand a portion of the impact force and simultaneously transmit that impact force to the entire second battery cell 103, thereby mitigating impact damage.

[0162] On the other hand, structural adhesives have good corrosion resistance, so even if some of the second battery cells 103 leak electrolyte due to structural damage, or if electrolyte is ejected from the explosion-proof valve (not shown) of the second battery cell 103 due to thermal runaway, the structural adhesive can prevent further leakage of electrolyte and avoid corrosion to other second battery cells 103 or other structural components.

[0163] Furthermore, the structural adhesive also possesses good thermal conductivity, which helps to lower the operating temperature of the second battery cell 103 by transferring the heat generated from the second battery cell 103 to the second positioning section 111 and the second case 101, thereby ensuring the safe operation of the second battery cell 103.

[0164] Please refer to Figure 23. In some embodiments, the second case 101 includes a third housing 117 and a fourth housing 119, the third housing 117 being removably connected to the fourth housing 119, and the second positioning unit 111 being provided on the third housing 117 or the fourth housing 119.

[0165] In this way, assembly and maintenance become easier, making it practical and convenient.

[0166] Specifically, in one embodiment, as shown in Figure 23, the second case 101 includes a third housing 117 and a fourth housing 119, where the third housing 117 is the lower case and the fourth housing 119 may be the upper case, and the third housing 117 and the fourth housing 119 are arranged opposite each other and can be matched and connected in a manner such as screw threads, fasteners, or clamps, thereby providing a relatively stable sealed environment, which ensures the safe and stable operation of the second battery cell 103 within the energy storage power supply 100.

[0167] In some embodiments, the third housing 117 and the fourth housing 119 may be located in the front-rear or left-right portions of the second case 101, or the third housing 117 and the fourth housing 119 may be located at two diagonal corners of the second case 101.

[0168] The third housing 117 and the fourth housing 119 are removably connected to each other by means of screws, fasteners, or clamps. The third housing 117 and the fourth housing 119 form a surrounding cavity 11 and house the second battery cell 103. It will be understood that this improves the ease of assembly and disassembly for repair.

[0169] In one embodiment, the second positioning section 111 is provided on the third housing 117 or the fourth housing 119. It will be understood that if the third housing 117 is the lower case, the second positioning section 111 is provided on the third housing 117 and serves to fix and support the second battery cell 103, and if the fourth housing 119 is the lower case, the second positioning section 111 is provided on the fourth housing 119 and serves to fix and support the second battery cell 103. When installed on the side of the second case 101, the second positioning section 111 may be provided on either the third housing 117 or the fourth housing 119, and in either case, the fixing and support of the second battery cell 103 is ensured, thereby ensuring the normal operation of the second battery cell 103.

[0170] See also Figure 23. In some embodiments, the energy storage power supply 100 includes an inverter 201, a battery management system 203, a motherboard 25, and a front panel 27 located outside the second case 101, all of which are located within the second case 101.

[0171] Here, the inverter 201 is installed on the second battery cell 103 and may be electrically connected to the second battery cell 103, converting the DC electricity from the second battery cell 103 into AC electricity and supplying it to the electrical equipment.

[0172] The battery management system 203 is installed between the second battery cell 103 and the inverter 201 and is used to monitor the status information of the second battery cell 103, such as current, temperature, or voltage. This prevents overcharging, over-discharging, and short circuits of the second battery cell 103, thereby protecting the second battery cell 103 from damage.

[0173] The motherboard 25 can be electrically connected to the second battery cell 103 and the inverter 201, and receives user commands through a user input interface to control the charging or discharging process of the second battery cell 103 and the inverter 201.

[0174] The front panel 27 is electrically connected to the motherboard 25 and can display information such as the current battery level and temperature of the energy storage power supply 100. The front panel 27 may further include ports for connecting the energy storage power supply 100 to electrical devices and ports for connecting to charging devices. This allows the second battery cell 103 to supply power to electrical devices and receive charge from charging devices.

[0175] In one embodiment, the energy storage power source 100 may further include a handle 29 and a foot pad 31.

[0176] Here, the handle 29 is U-shaped and connected to the fourth housing 119, and at the same time, it is foldable and can be housed in a groove formed by the fourth housing 119, so that the energy storage power supply 100 can be easily lifted and installed, saving labor and being practical.

[0177] In one example, the handle 29 may be integrally molded from a hollow aluminum material, ensuring support strength while reducing the weight of the energy storage power supply 100.

[0178] In one embodiment, there may be multiple foot pads 31, which may be provided at the bottom of the third housing 117, increasing the frictional force at the bottom of the energy storage power supply 100, preventing the energy storage power supply from unintentionally slipping, colliding with or falling, and improving the safety of the energy storage power supply 100.

[0179] In one example, to reduce costs while ensuring friction, the material of the foot pad 31 may be plastic.

[0180] Please refer to Figure 11. In some embodiments, the second positioning section 111 and the second case 101 are integrally molded parts.

[0181] In this way, the continuity and structural strength of the second positioning section 111 and the second case 101 are improved, and the safety and stability of the energy storage power supply 100 are guaranteed.

[0182] Specifically, in one embodiment, the second positioning portion 111 and the second case 101 are integrally molded parts, which can improve the stability of the connection between the second positioning portion 111 and the second case 101 and provide the second case 101 with good support strength. This ensures that the second positioning portion 111 is stably connected to the first end 1301 of the second battery cell 103, and further ensures the safety of the second battery cell 103.

[0183] In one embodiment, the second positioning section 111 and the second case 101 can be integrally molded by an injection molding process or by other processes. This ensures that the second positioning section 111 and the second case 101 become a single molded part, thereby reducing the use of brackets and the space required for their placement. No specific limitations are imposed here.

[0184] Although embodiments of this application have been shown and described, those skilled in the art will understand that a variety of modifications, combinations, alterations, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of this application, and that the scope of this application is limited by the claims and their equivalents.

[0185] (Cross-reference of related applications) This application claims priority and rights to Chinese patent applications No. 202310738695.2 and 202321597643.X, filed with the China National Intellectual Property Administration on June 20, 2023, the entire contents of which are incorporated herein by reference, and also claims priority and rights to Chinese patent applications No. 202410160594.6 and 202420281888.X, filed with the China National Intellectual Property Administration on February 4, 2024, the entire contents of which are incorporated herein by reference. [Explanation of Symbols]

[0186] 100 Energy storage power source 10. First Case 11 containment cavities 12 First positioning section 121 first Positioning groove 13 First Housing 131 Storage groove 132 First Through Hole 14 Second Housing 20 First battery cell 21 pouch battery cells 22 rectangular battery cells 23 Cylindrical battery cells 24 sheet-type battery cells - 231 First pole pillar 232 Second pole 30 Reinforcement Ribs 40 Bus Bar 41 First Bus Bar 42 Second Bus Bar 43 Third Bus Bar 44 Fourth Bus Bar 45 First collection board 46 Second collection board 47 Third Collection Board 48 Fourth Collection Board 50 Cover Plates 60 sealing rings 70 panels 80 bracket 100 Energy storage power source 101 Second Case 103 Second battery cell 15 Fixtures 17 Electrical connection components 19 Collection board 201 Inverter 203 Battery Management System 25 Motherboards 27 Front Panel 29 Handle 31 Foot pads 111 Second positioning section 112-seat capacity 113 Inner bottom wall 115 Inner wall 117 Third Housing 119 Fourth Housing 1301 First end 1302 Second end 133 Electrode 151 Split Bracket 152 screws 1131 Retaining post 1132 Limit bar 1133 S-shaped side 1151 Integrated Bracket 1331 Third pole pillar 1332 Fourth pole pillar 1511 Second Through Hole

Claims

1. In energy storage power sources, A case wherein a first positioning portion is provided on the inner wall of the case, and the first positioning portion and the case are an integrated structure, At least two battery cells, each including a first end and a second end opposite to the first end, the first end of each battery cell being inserted into the first positioning portion, and the second end of each battery cell being provided with two electrodes, A busbar electrically connected to the two electrodes of the aforementioned battery cell, Multiple second positioning sections are formed, and each second positioning section includes a fixing device that secures the second end, An inverter is provided on the second end side of the battery cell, electrically connected to the battery cell, and converts the DC electricity from the battery cell into AC electricity. A panel provided in the case, configured to display relevant information of the energy storage power supply, wherein the relevant information includes the battery level and battery temperature of the energy storage power supply, and the panel further includes a port for connecting the energy storage power supply to an electrical appliance or charging device. An energy storage power source, including a handle provided on the case.

2. The energy storage power supply according to claim 1, wherein the first positioning portion includes a plurality of fixing holes, the first end of the battery cell is inserted into the fixing holes, and the second positioning portion includes a plurality of second through holes, the second end of the battery cell is exposed through the second through holes.

3. The energy storage power source according to claim 2, wherein the battery cell is a cylindrical battery cell and the fixing hole is cylindrical.

4. The energy storage power supply according to claim 1, wherein the first positioning portion includes a first positioning recess, the first positioning recess is formed in the bottom wall of the case and surrounds a cavity, the first positioning recess houses a first battery cell, and the first end of the battery cell is inserted into the bottom of the first positioning recess.

5. The energy storage power source according to claim 4, wherein the battery cell is a prismatic battery cell, the fixing device includes a restricting recessed portion, and the second electrode of the battery cell passes through the restricting recessed portion.

6. The first positioning section is formed on the bottom wall of the case and consists of multiple fasteners arranged in an array-like manner. The energy storage power supply according to claim 1, comprising a retaining column, wherein a second positioning recess is formed between four adjacent retaining columns, and the first end of the battery cell is inserted into the second positioning recess.

7. The energy storage power supply according to claim 1, wherein the first positioning portion includes a plurality of limiting bars formed in the inner bottom wall of the case, the plurality of limiting bars include S-shaped sides, a third positioning recess is formed between two adjacent S-shaped sides, and the first end of the battery cell is inserted into the third positioning recess.

8. The energy storage power supply according to claim 1, wherein the second positioning portion includes a plurality of second through holes, the bus bar is provided on one side of the fixture away from the battery cell, and the second end of the battery cell is exposed to the second through hole and electrically connected to the bus bar.

9. The energy storage power supply according to claim 1, further comprising a battery management system, the battery management system being provided between the battery cell and the inverter and used to monitor the state information of the battery cell.

Citation Information

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