Current distribution device, cooling device, battery pack and power consumption device

The flow dividing device addresses high flow resistance and space occupancy issues in battery cooling by separating cooling medium paths, improving efficiency and energy density through a compact design.

JP2025146732AActive Publication Date: 2025-10-03AESC JAPAN LTD
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Patent Information

Application Number
JP2025039895
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-03-22
Filing Date
2025-03-13
Publication Date
2025-10-03
Estimated Expiration
2045-03-13

AI Technical Summary

Technical Problem

Existing cooling devices for battery modules suffer from high flow resistance and space occupancy due to bent cooling pipes, affecting heat exchange efficiency and reducing energy density.

Method used

A flow dividing device with a flow distribution box body and mounting structure that separates cooling medium paths, eliminating the need for bent pipes and integrating inlet and outlet channels, ensuring flow volume and speed while saving space.

Benefits of technology

Reduces flow resistance, saves space, and increases energy density by optimizing cooling efficiency and uniformity, enhancing battery pack performance and safety.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

To provide a current distribution device, a cooling device, a battery pack, and a power consumption device, which have a better cooling effect and increase the energy density of a battery pack.SOLUTION: In a cooling system, a current distribution device includes a current distribution box body and a mounting structure provided on the current distribution box body, and the current distribution box body has a first flow path space and a second flow path space that are not connected to each other inside. The mounting structure includes a mounting passage and a partition member, and the mounting passage is provided in the current distribution box body and communicates with both the first flow path space and the second flow path space, and the partition member is provided within the mounting passage and separates the mounting passage into a first communication passage and a second communication passage.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present invention relates to the field of battery technology, and more particularly to current shunting devices, cooling devices, battery packs, and power-using devices. [Background technology]

[0002] In the related art, power batteries generally use a cooling device to cool the battery modules to prevent the temperature of the battery modules from rising excessively, thereby preventing the risk of thermal runaway. The cooling device generally includes a cooling water channel and a cooling member communicating with the cooling water channel, the cooling water channel being used to divert the cooling medium, and the cooling member being used to exchange heat with the battery modules.

[0003] However, cooling pipes often need to be bent for installation, which increases the flow resistance of the cooling pipes and occupies a large space, affecting the heat exchange efficiency of the cooling device and reducing the energy density of the battery pack. Summary of the Invention [Problem to be solved by the invention]

[0004] SUMMARY OF THE INVENTION The present invention provides a flow shunting device, a cooling device, a battery pack and a power-using device to solve the problem of poor cooling effect of the cooling devices in the related art. [Means for solving the problem]

[0005] On the other hand, the present invention provides a flow dividing device including a flow dividing box body and a mounting structure provided on the flow dividing box body, The flow dividing box body has a first flow path space and a second flow path space that are not in communication with each other, the mounting structure includes a mounting passage for mounting the cooling member and a partition member provided in the mounting passage, the mounting passage being provided in the flow distribution box body and communicating with both the first flow path space and the second flow path space; The partition member separates the mounting passage into independent first and second communication passages, so that the first flow path space communicates with the cooling member only through the first communication passage, and the second flow path space communicates with the cooling member only through the second communication passage, thereby providing a flow dividing device.

[0006] According to the solution to the above problem, the flow distribution device includes a flow distribution box body and a mounting structure disposed within the flow distribution box body, and the flow distribution box can distribute the cooling medium. This eliminates the need for a connecting structure, thereby ensuring the flow volume and flow speed of the cooling medium and saving space otherwise occupied by bent pipes. On the other hand, the liquid inlet and outlet channels are integrated within the flow distribution box body, eliminating the need for separate liquid inlet and outlet channels at both ends of the battery module, further saving space and improving the energy density of the battery pack.

[0007] In some embodiments, the partition member includes: a separation section disposed within the mounting passage and separating the mounting passage into a first communication passage and a second communication passage; a first blocking section disposed within the first communication passage and sealing the second flow passage from the first communication passage; and a second blocking section disposed within the second communication passage and sealing the first flow passage from the second communication passage. The first flow passage and the second flow passage both extend along a first direction, and the first flow passage and the second flow passage are spaced apart. Here, the first direction is the length direction of the flow distribution box body.

[0008] This arrangement ensures that the cooling water entering the cooling element does not mix.

[0009] In some embodiments, the first flow path space and the second flow path space are spaced apart in the second direction, and the mounting passage is provided on a side of the flow distribution box body, and the mounting passage overlaps a projected portion of the first flow path space in the second direction, and the mounting passage overlaps a projected portion of the second flow path space in the second direction, where the second direction is perpendicular to the first direction.

[0010] By arranging them in this manner, the lengths of the first flow path space and the second flow path space can be unified and made independent of each other, which makes it easier to arrange the mounting structure.

[0011] In some embodiments, the flow distribution box body includes an outer shell and a partition plate, the outer shell has a flow path space therein, the partition plate separates the flow path space into a first flow path space and a second flow path space, and the mounting passage passes through the outer shell to connect the first flow path space and the second flow path space.

[0012] By arranging the components in this manner, the structure of the flow dividing box body is simplified and processing is facilitated.

[0013] In some embodiments, the partition plate has a first surface facing the first flow space and a second surface facing the second flow space; the first communication passage includes a first wall body close to the first surface and a second wall body close to the second surface, the first wall body and the second wall body surrounding the first communication passage, the first blocking portion sealing a gap between the second surface and the second wall body and blocking communication between the second flow path space and the first communication passage, The second communication passage includes a third wall body close to the first surface and a fourth wall body close to the second surface, the third wall body and the fourth wall body surrounding the second communication passage, and the second blocking portion seals the gap between the first surface and the third wall body, blocking communication between the first flow path space and the second communication passage.

[0014] With this arrangement, the partition plate separates the first flow path space and the second flow path space, and the mounting passage extends through the outer shell to the partition plate, while simultaneously communicating with both the first flow path space and the second flow path space. Because the mounting passage extends to the partition plate, the first blocking section and the second blocking section can achieve a sealing function by utilizing the position of the partition plate.

[0015] In some embodiments, the shell, divider plate, and divider member are of unitary construction.

[0016] In some embodiments, the flow distribution box body further includes an inlet communicating with the first flow path space and an outlet communicating with the second flow path space.

[0017] By arranging in this way, the flow distribution box can be connected to the coolant circulation system to realize the circulation of the coolant.

[0018] On the other hand, the present invention is a flow dividing device, which is the flow dividing device described above; a cooling member having a cooling passage through which a cooling medium flows, a first end of the cooling member being an open end and a second end of the cooling member being a closed end, the inlet and outlet of the cooling passage both being located at the first end of the cooling member, the first end of the cooling member being inserted into an attachment passage of a flow dividing device, the inlet communicating with the first communication passage and the outlet communicating with the second communication passage.

[0019] By applying the above cooling device, it is possible to reduce the flow resistance of the coolant on the one hand, reduce the occupied space on the other hand, and increase the energy density of the battery pack.

[0020] In some embodiments, the cooling elements are multiple, the multiple cooling elements being spaced apart in a first direction, and the mounting structures include multiple mounting structures in one-to-one correspondence with the cooling elements, where the first direction is the length direction of the flow distribution box body.

[0021] This arrangement can improve the cooling efficiency and cooling uniformity of the cooling device.

[0022] In some embodiments, the first end of the cooling member is sealed to the wall of the mounting passage, which can reduce the risk of leakage of the cooling liquid.

[0023] In some embodiments, an adhesive is provided between the first end of the cooling member and the wall of the mounting passage.

[0024] In the above structure, the adhesive connection method can improve the connection stability between the cooling member and the mounting passage.

[0025] In some embodiments, the cooling member includes a casing and a partition plate, the casing having a cooling passage therein, the partition plate being disposed within the cooling passage and separating the cooling passage into a liquid inlet cooling passage and a liquid outlet cooling passage, the liquid inlet cooling passage communicating with the first communication passage and the liquid outlet cooling passage communicating with the second communication passage.

[0026] In the above structure, the partition plate can separate the cooling passage into a liquid inlet cooling passage and a liquid outlet cooling passage, thereby preventing the water inlet circuit and the water outlet channel from mixing within the cooling member and ensuring the circulation effect of the cooling medium.

[0027] In some embodiments, the first end of the casing is an open end and the second end of the casing is a closed end, the partition plate extends from the open end of the casing toward the closed end of the casing, and a gap is formed between the partition plate and an end face of the closed end, and the liquid inlet cooling passage and the liquid outlet cooling passage communicate with each other through the gap.

[0028] In the above structure, the inlet cooling passage and the outlet cooling passage are separated by providing a partition plate, thereby ensuring the circulation effect of the cooling medium.

[0029] In some embodiments, the cooling member includes a cooling plate, and the cooling plate is provided with a plurality of placement grooves along the flow direction of the cooling medium, and the placement grooves are used to place the cells.

[0030] In the above structure, the processing method of the cooling plate is simple, and the contact area with the battery module is large, so that the cooling effect of the battery module can be effectively guaranteed. Furthermore, the space occupied by the cooling plate is small, so that the space occupied by the cooling device can be further reduced.

[0031] In some embodiments, the cooling plate has two opposing plate surfaces each having an alignment groove, and the alignment grooves on the opposing sides of the cooling plate are offset from each other in a first direction, where the first direction is the length direction of the flow distribution box body.

[0032] By arranging the cells in this manner, the contact area between the cells and the cooling plate can be increased.

[0033] In some embodiments, the cooling plate is corrugated in a first direction.

[0034] By arranging it in this manner, when the cells in the battery module are cylindrical cells, the contact area between the wavy-shaped cooling plate and the side of the cylindrical cell becomes larger, resulting in a better cooling effect.

[0035] On the other hand, the present invention is A case body, a battery module installed within the case body, the battery module including at least one cell; The battery pack includes a cooling device that is installed in the case body and in contact with the battery module, and is the cooling device.

[0036] The cooling device has the advantages of high cooling efficiency and small occupied space, and the battery pack equipped with it has the advantages of higher safety and higher energy density.

[0037] In some embodiments, the width direction of the cooling member of the cooling device coincides with the length direction of the cell.

[0038] By arranging the cooling member in this manner, contact between the cooling member and the side surface of the unit cell can be achieved, thereby ensuring the cooling effect.

[0039] In some embodiments, the battery module includes a plurality of sub-modules, each of which includes a plurality of cells, and the cooling device includes a plurality of cooling members, each of which is in contact with at least one cooling member.

[0040] By arranging the sub-modules in this manner, the temperature of each sub-module can be reduced by being cooled through the cooling member, thereby improving the cooling effect of the cooling device on the battery modules.

[0041] In some embodiments, each sub-module includes multiple rows of cells arranged along the height of the battery pack, and a cooling element is arranged between two adjacent rows of cells, the cooling element having a first heat exchange surface and a second heat exchange surface, both of which are in contact with the side surfaces of the cells.

[0042] This arrangement allows the cells in each row to come into contact with the cooling member, thereby further improving the cooling effect of the cooling device and ensuring uniform cooling of the battery module.

[0043] The present invention also provides a power-using device including the battery pack. The battery pack has the advantages of higher energy density and better safety performance, so the power-using device including the battery pack also has the advantages of good battery performance and high safety.

[0044] The flow distribution device provided by the present invention includes a flow distribution box, which includes a flow distribution box body and a mounting structure installed on the flow distribution box body. The flow distribution box body has a first flow passage space and a second flow passage space that are not connected to each other, and the first flow passage space functions as a liquid inlet passage for the flow distribution box body, and the second flow passage space may function as a liquid outlet passage for the flow distribution box body. The first flow passage space includes a first communication passage, and the second flow passage space includes a second communication passage, so that the cooling element can be connected to the first communication passage and the second communication passage, thereby realizing the circulation of the cooling liquid within the cooling element.

[0045] Specifically, the flow distribution box body and the cooling element may be connected and communicated through a mounting structure. The mounting structure includes a mounting passage and a partition member. The mounting passage is installed in the flow distribution box body and communicates with both the first flow path space and the second flow path space. The partition member is installed within the mounting passage and separates the mounting passage into a first communication passage and a second communication passage. Therefore, the cooling element may be inserted into the mounting passage, and the first and second communication passages may form non-communicating passages within the mounting passage even after separation by the partition member. The cooling medium in the first flow path space flows into the inlet end of the cooling element through the first communication passage, circulates within the cooling passage, and then discharges into the second communication passage via the outlet end. Then, the cooling medium flows from the second communication passage into the second flow path space, thereby achieving circulation of the cooling medium.

[0046] In this embodiment, a diversion box is used as a cooling medium diversion device, eliminating the need for a conventional method of diversion through cooling pipes and eliminating the need for a connection structure, thereby ensuring the flow volume and flow speed of the cooling medium. [Effects of the Invention]

[0047] Furthermore, the distribution box integrates the inlet and outlet channels, the cooling member mounting passage, and the distribution partition, eliminating the need to install separate inlet and outlet channels on both ends of the battery module. This effectively saves space taken up by the distribution box itself, allowing the battery module to have a larger installation space and ultimately increasing the energy density of the battery pack. [Brief explanation of the drawings]

[0048] The drawings herein are incorporated in and constitute a part of the specification, illustrate embodiments consistent with the present invention, and together with the specification, serve to explain the principles of the invention.

[0049] [Figure 1] 1 is a three-dimensional view of a cooling device provided by an embodiment of the present invention; [Figure 2]FIG. 1 is a plan view of a cooling device provided by an embodiment of the present invention. [Figure 3] 3 is a cross-sectional view of the cooling device of FIG. 2 taken along the line AA. [Figure 4] FIG. 4 is an enlarged structural view of a portion C of the cooling device of FIG. 3. [Figure 5] 3 is a cross-sectional view of the cooling device of FIG. 2 taken along the line BB. [Figure 6] FIG. 6 is an enlarged structural view of a portion D of the cooling device in FIG. 5. [Figure 7] FIG. 2 is a plan view of a partial structure of a cooling device provided by an embodiment of the present invention. [Figure 8] FIG. 8 is a cross-sectional view of the cooling device of FIG. 7 taken in the FF direction. [Figure 9] FIG. 2 is a plan view of a cooling element of a cooling device provided by an embodiment of the present invention. [Figure 10] 10 is a cross-sectional view of the cooling member of FIG. 9 taken along the EE direction. [Figure 11] FIG. 2 is a side view of a cooling plate of a cooling device provided by an embodiment of the present invention. [Figure 12] 1 is a three-dimensional view of a flow dividing box of a cooling device provided by an embodiment of the present invention; [Figure 13] FIG. 2 is a three-dimensional cross-sectional view of a distribution box of a cooling device provided by an embodiment of the present invention. [Figure 14] 1 is a structural schematic diagram of a battery pack provided by an embodiment of the present invention; [Figure 15] 1 is an exploded view of a battery module and a cooling device of a battery pack provided by an embodiment of the present invention; [Figure 16] FIG. 14 is a spatial rendering of the diversion box of FIG. 13 from another angle. [Figure 17] 14 is a spatial rendering of yet another angle of the diverter box of FIG. 13. The accompanying drawings above illustrate specific embodiments of the present invention, and the following description provides a more detailed description. These drawings and the description provided herein are not intended to limit the scope of the inventive concept in any way, but rather to explain the inventive concept to those skilled in the art by reference to specific embodiments. DETAILED DESCRIPTION OF THE INVENTION

[0050] In order to clarify the purpose, means for solving the problems and advantages of the present invention, the means for solving the problems of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some of the embodiments of the present invention, but not all of the embodiments. All other embodiments that can be obtained by those skilled in the art based on the embodiments of the present invention without any creative work also belong to the protection scope of the present invention.

[0051] In the related art, a power battery generally includes a battery pack, which includes a case body, a battery module installed in the case body, and a cooling device for cooling the battery module. The role of the cooling device is to lower the temperature of the battery module and prevent the temperature of the battery module from rising excessively, thereby preventing the risk of thermal runaway.

[0052] The cooling devices in the related art generally include a cooling pipe for circulating a cooling medium, which can exchange heat with the battery modules and thereby lower the temperature of the battery modules. The cooling pipe includes a main cooling pipe and a branch cooling pipe, and the main cooling pipe communicates with a plurality of branch cooling pipes, thereby branching the cooling medium. The branch cooling pipes can communicate with a cooling member such as a cooling plate that contacts the battery modules, thereby cooling the battery modules.

[0053] However, the cooling pipes have many connections and bends, which increases the flow resistance of the cooling pipes and affects the flow rate of the cooling medium.

[0054] Secondly, the main cooling pipe and the branch cooling pipe are generally installed at an angle, which causes the cooling device to occupy a relatively large space inside the battery pack, thereby compressing the installation space of the battery module, reducing the energy density of the battery pack, and affecting the performance of the battery.

[0055] Furthermore, the process of connecting the cooling pipes is complicated, the processing efficiency is low, and the production cost is high, which is disadvantageous in cost control of the cooling device.

[0056] The present invention provides a flow splitter device. The flow splitter device includes a flow splitter box body and a mounting structure installed within the flow splitter box body. The flow splitter box can split the coolant flow, eliminating the need for conventional cooling pipes. On the one hand, it does not require the installation of a connection structure or the bending of a flow splitter plate, ensuring the flow volume and speed of the coolant and saving space otherwise occupied by bending pipes. On the other hand, the flow splitter box body integrates the inlet and outlet channels, eliminating the need for separate inlet and outlet channels at both ends of the battery module, further saving space and improving the energy density of the battery pack.

[0057] The following describes the shunting device, cooling device, and battery pack provided by the embodiments of the present invention with reference to the drawings. It should be noted that the shunting device and cooling device provided by the embodiments of the present invention can be applied to a battery pack, and the cells in the battery pack can be secondary batteries. That is, the battery in the embodiments of the present invention can be charged and discharged and can be recycled. Specific types of batteries can include, but are not limited to, lithium batteries. Furthermore, applications in which batteries are used include electronic products, energy storage equipment, and transportation, such as, but not limited to, mobile communication devices, new energy vehicles, and drones.

[0058] FIG. 1 is a three-dimensional view of a cooling device provided by an embodiment of the present invention. FIG. 2 is a plan view of a cooling device provided by an embodiment of the present invention. FIG. 3 is a cross-sectional view of the cooling device of FIG. 2 taken along the line AA. FIG. 4 is an enlarged structural view of part C of the cooling device of FIG. 3. FIG. 5 is a cross-sectional view of the cooling device of FIG. 2 taken along the line BB. FIG. 6 is an enlarged structural view of part D of the cooling device of FIG. 5. FIG. 7 is a plan view of a partial structure of a cooling device provided by an embodiment of the present invention. FIG. 8 is a cross-sectional view of the cooling device of FIG. 7 taken along the line FF. FIG. 12 is a three-dimensional view of the main body of the diverter box of a cooling device provided by an embodiment of the present invention. FIG. 13 is a three-dimensional cross-sectional view of the diverter box of a cooling device provided by an embodiment of the present invention.

[0059] As shown in FIGS. 1 to 6, 7, 8, 12 and 13, the flow dividing device of this embodiment includes a flow dividing box body 100 and a mounting structure installed in the flow dividing box body.

[0060] Here, the flow distribution box body 100 is provided with a first flow path space 110 and a second flow path space 120 that are not in communication with each other.

[0061] The mounting structure includes a mounting passage 130 for mounting the cooling element 200, and a partition member 140 installed in the mounting passage 130. The mounting passage 130 is installed in the flow distribution box body 100, and is in communication with both the first flow path space 110 and the second flow path space 120.

[0062] The partition member 140 separates the mounting passage 130 into an independent first communication passage 111 and a second communication passage 121, so that the first flow path space 110 communicates with the cooling member 200 only through the first communication passage 111, and the second flow path space 120 communicates with the cooling member 200 only through the second communication passage 121.

[0063] When the means for solving the problem of this embodiment is applied, a first flow path space 110 and a second flow path space 120 that are not connected to each other are provided within the flow diversion box body 100, and the first flow path space 110 may function as a liquid inlet passage for the flow diversion box body 100, and the second flow path space 120 may function as a liquid outlet passage for the flow diversion box body 100. The first flow path space 110 includes a first communication passage 111, and the second flow path space 120 includes a second communication passage 121, so that the cooling element 200 can be connected to the first communication passage 111 and the second communication passage 121, thereby realizing the circulation of the coolant within the cooling element 200.

[0064] Specifically, the flow distribution box body 100 and the cooling element 200 may be connected and communicated with each other through a mounting structure. The mounting structure includes a mounting passage 130 and a partition member 140. The mounting passage 130 is installed in the flow distribution box body 100 and communicates with both the first flow path space 110 and the second flow path space 120. The mounting passage 130 is used to connect the cooling element 200, and the partition member 140 is installed within the mounting passage 130. The partition member 140 separates the mounting passage 130 into a first communication passage 111 and a second communication passage 121. Therefore, the cooling element 200 may be inserted into the mounting passage 130, and the first communication passage 111 and the second communication passage 121 may form passages that are not connected to each other within the mounting passage 130 even after separation by the partition member 140. The cooling medium in the first flow path space 110 flows into the inlet end of the cooling member 200 through the first communication passage 111, circulates within the cooling passage, and then is discharged from the outlet end to the second communication passage 121, and then flows from the second communication passage 121 into the second flow path space 120, thereby realizing circulation of the cooling medium.

[0065] In this embodiment, a diversion box is used as a cooling medium diversion device, eliminating the need for a conventional method of diversion through cooling pipes and providing a connection structure, thereby ensuring the flow volume and flow speed of the cooling medium.

[0066] In addition, the water inlet and outlet channels, the installation passage 130 for installing the cooling member, and the partition member 140 for the water distribution box are integrated inside the box, eliminating the need to install separate water inlet and outlet pipes on both ends of the battery module. This effectively saves space occupied by the water distribution box body, allowing the battery module to have a larger installation space and ultimately improving the energy density of the battery pack.

[0067] As shown in FIGS. 4, 6 to 8, 12 and 13, in some embodiments, the partition member 140 includes a separation portion 141, a first blocking portion 142 and a second blocking portion 143.

[0068] Here, the separating portion 141 is installed in the mounting passage 130 and separates the mounting passage 130 into a first communication passage 111 and a second communication passage 121, thereby forming two mutually independent passages within the mounting passage 130. The first blocking portion 142 is installed in the first communication passage 111 and seals the second flow path space 120 and the first communication passage 111, so that the first communication passage 111 communicates only with the first flow path space 110. The second blocking portion 143 is installed in the second communication passage 121 and seals the first flow path space 110 and the second communication passage 121, so that the second communication passage 121 communicates only with the second flow path space 120.

[0069] By employing the above-described partition member 140, the mounting passage 130 may form a first communication passage 111 and a second communication passage 121 that are independent of each other through the separation portion 141. The first blocking portion 142 may seal the second flow passage space 120 and the first communication passage 111 while simultaneously realizing communication between the first communication passage 111 and the first flow passage space 110, so that the water inlet passage can flow into the cooling element 200 without mixing with the water discharge passage. The second blocking portion 143 may seal the first flow passage space 110 and the second communication passage 121 while simultaneously realizing communication between the second communication passage 121 and the second flow passage space 120, so that the water discharge passage can flow into the cooling element 200 without mixing with the water inlet passage, thereby ensuring the cooling effect of the cooling device.

[0070] 1, 4, 6, 8, 12, and 13, in some embodiments, the first flow path space 110 and the second flow path space 120 both extend along a first direction (the x direction in FIG. 1), and are spaced apart from each other. Here, the first direction is the length direction of the flow distribution box body 100. This arrangement allows the first flow path space 110 and the second flow path space 120 to have the same length and be independent from each other, which facilitates the installation of the mounting structure.

[0071] 1, 4, 6, 8, 12, and 13, in some embodiments, the first flow path space 110 and the second flow path space 120 are spaced apart in the second direction (the y direction shown in FIG. 1). The mounting passage 130 is located on the side of the flow distribution box body 100, and the projections of the mounting passage 130 and the first flow path space 110 in the second direction overlap, and the projections of the mounting passage 130 and the second flow path space 120 in the second direction also overlap. Here, the second direction is perpendicular to the first direction.

[0072] This arrangement makes it possible to rationalize the layout of the first flow path space 110, the second flow path space 120, and the mounting passage 130 on the flow distribution box body 100. The mounting passage 130 forms a three-way structure that allows the first flow path space 110, the second flow path space 120, and the cooling passage to communicate with each other, and the installation of the partition member 140 prevents the inlet water channel in the first flow path space 110 and the outlet water channel in the second flow path space 120 from mixing.

[0073] It is further noted that by providing the mounting passage 130 and the partition member 140 within the flow dividing box body 100, the inlet water channel and the outlet water channel can be separated within the flow dividing box body 100 without the need for additional separation structures, which ensures a compact design of the cooling device and effectively saves the space occupied by the cooling device.

[0074] As shown in Figures 4, 6 to 8, 12 and 13, in some embodiments, the flow distribution box body 100 includes an outer shell 150 and a partition plate 160. The outer shell 150 contains a flow path space, and the partition plate 160 separates the flow path space into a first flow path space 110 and a second flow path space 120. The mounting passage 130 passes through the outer shell 150, connecting the first flow path space 110 and the second flow path space 120. This arrangement simplifies the structure of the flow distribution box body 100 and makes it easier to process.

[0075] Specifically, the flow distribution box body 100 may be formed by extrusion molding. The material of the flow distribution box body 100 may be aluminum or an aluminum alloy, such as Al3003 or Al6061. The above materials have high thermal conductivity and light weight, which helps improve the heat conduction efficiency of the cooling device 10 and reduce the weight of the cooling device 10.

[0076] 4, 6 to 8, 12, and 13, in some embodiments, the partition plate 160 has a first surface facing the first flow path space 110 and a second surface facing the second flow path space 120. The first communication path 111 includes a first wall 1111 close to the first surface and a second wall 1112 close to the second surface, and the first wall 1111 and the second wall 1112 surround the first communication path 111. The first blocking portion 142 blocks communication between the second flow path space 120 and the first communication path 111 by sealing the gap between the second surface and the second wall 1112.

[0077] Correspondingly, in some embodiments, the second communication passage 121 includes a third wall 1211 close to the first surface and a fourth wall 1212 close to the second surface, and the third wall 1211 and the fourth wall 1212 surround the second communication passage 121. The second blocking portion 143 blocks communication between the first flow path space 110 and the second communication passage 121 by sealing the gap between the first surface and the third wall 1211.

[0078] With this arrangement, the partition plate 160 separates the first flow path space 110 and the second flow path space 120, and the mounting passage 130 extends through the outer shell 150 to the partition plate 160. At the same time, the mounting passage 130 may communicate with both the first flow path space 110 and the second flow path space 120. Because the mounting passage 130 extends to the partition plate 160, the first blocking portion 142 and the second blocking portion 143 can achieve a sealing effect by utilizing the position of the partition plate 160.

[0079] Specifically, the first communication passage 111 includes a first wall 1111 close to the first surface and a second wall 1112 close to the second surface, and the first wall 1111 and the second wall 1112 can surround the first communication passage 111. The second blocking portion 143 can seal the gap between the first surface and the third wall 1211, thereby blocking the second flow path space 120 from the first communication passage 111 and allowing the first flow path space 110 to communicate only with the first communication passage 111.

[0080] Correspondingly, the second communication passage 121 includes a third wall 1211 close to the first surface and a fourth wall 1212 close to the second surface, and the third wall 1211 and the fourth wall 1212 can surround the second communication passage 121. The second blocking portion 143 blocks the gap between the first surface and the third wall 1211, thereby blocking the first flow path space 110 from the second communication passage 121 and allowing the second flow path space 120 to communicate only with the second communication passage 121.

[0081] It should be further explained that in some embodiments, the shell 150, the divider plate 160, and the divider member 140 are of unitary construction and are fabricated by extrusion.

[0082] 16 is a spatial rendering of the diverter box of FIG. 13 from a different angle, and FIG. 17 is a spatial rendering of the diverter box of FIG. 13 from yet another angle. That is, FIG. 16 and FIG. 17 show different perspectives of FIG. 13. FIG. 16 and FIG. 17 more intuitively show the structure and installation positions of the separation section 141, first blocking section 142, and second blocking section 143 in the partition member 140.

[0083] 12, in some embodiments, the flow distribution box body 100 also has a liquid inlet 112 communicating with the first flow path space 110 and a liquid outlet 122 communicating with the second flow path space 120. The liquid inlet 112 and the liquid outlet 122 can be used to connect to a cooling medium circulating device, thereby realizing the circulation of the cooling medium.

[0084] Meanwhile, the present invention also provides a cooling device, and an embodiment of the cooling device includes a flow dividing device and a cooling member 200 .

[0085] Here, the flow dividing device is the above-mentioned flow dividing device. The cooling member 200 has a cooling passage through which a cooling medium flows, and the first end of the cooling member 200 is an open end and the second end of the cooling member 200 is a closed end. The inlet 112 and outlet of the cooling passage are both located at the first end of the cooling member 200. The first end of the cooling member 200 is inserted into the mounting passage 130 of the flow dividing device, so that the inlet 112 communicates with the first communication passage 111 and the outlet communicates with the second communication passage 121.

[0086] In the above structure, the first end of the cooling element 200 may be inserted into the mounting passage 130. However, since the inlet and outlet channels must be installed separately, a partition member 140 is required to separate the mounting passage 130 to avoid a reduction in the cooling effect due to the two channels mixing. Specifically, the partition member 140 may be installed within the mounting passage 130 to separate the mounting passage 130 into a first communication channel 111 and a second communication channel 121 that do not communicate with each other. The cooling medium in the first flow passage space 110 flows into the cooling passage through the first communication channel 111 and the inlet end, circulates within the cooling passage, and then flows into the second flow passage space 120 via the outlet end and the second communication channel 121, thereby achieving circulation of the cooling medium. Therefore, by installing the partition member 140 within the mounting passage 130 to form the first communication channel 111 and the second communication channel 121 that do not communicate with each other, the overall structure of the flow distribution box body 100 is simpler and more compact, which helps to save space occupied by the flow distribution box body 100.

[0087] In other embodiments not shown, the cooling member may include a plurality of parallel-mounted cooling tubes or cooling coils or other cooling components.

[0088] 1 and 2 , in some embodiments, there are a plurality of cooling members 200, and the cooling members 200 are spaced apart in a first direction, and the mounting structure includes a plurality of mounting structures corresponding to the cooling members 200 in a one-to-one correspondence, where the first direction is the length direction of the flow distribution box body 100.

[0089] In the above structure, there are multiple cooling members 200, and each cooling member 200 can be in contact with the battery module 400, thereby improving the cooling effect of the battery module 400. At the same time, the multiple cooling members 200 also increase the uniformity of the cooling device 10 to the battery module 400, reducing the probability of excessive local temperature rise in the battery module 400 and reducing the risk of thermal runaway of the single cells.

[0090] The specific structure of the cooling member will be described below with reference to the accompanying drawings.

[0091] Figure 9 is a plan view of a cooling element of a cooling device provided by an embodiment of the present invention, Figure 10 is a cross-sectional view of the cooling element of Figure 9 taken along the EE direction, and Figure 11 is a side view of a cooling plate of a cooling device provided by an embodiment of the present invention.

[0092] As shown in Figures 1, 2 and 9 to 11, the first end of the cooling element 200 extends into the mounting passage 130 and is hermetically connected to the hole wall of the mounting passage 130, thereby reducing the risk of cooling medium leakage.

[0093] Specifically, as shown in FIGS. 1 and 2, in some embodiments, an adhesive is applied between the first end of the cooling member 200 and the wall of the mounting passage 130 .

[0094] In the above structure, the adhesive connection method on the one hand improves the connection stability between the cooling element 200 and the mounting passage 130, and on the other hand realizes a seal between the first end of the cooling element 200 and the hole wall of the mounting passage 130, thereby reducing the risk of cooling medium leakage.

[0095] Specifically, when installing the cooling element 200, a first end of the cooling element 200 may be inserted into the mounting passage 130, and then an adhesive may be injected to seal the gap between the first end of the cooling element 200 and the hole wall of the mounting passage 130. Compared with welding, this connection method has the advantages of simpler processes and higher processing efficiency.

[0096] Of course, in some embodiments, the first end of the cooling element can be inserted into the mounting passage in a press-fit manner, thereby ensuring a tight seal between the cooling element 200 and the mounting passage.

[0097] Alternatively, in some embodiments, sealing can be achieved by providing a sealing ring between the cooling member and the bore wall of the mounting passage.

[0098] 9 and 10 , in some embodiments, the cooling member 200 includes a casing 210 and a partition plate 220, a cooling passage is provided in the casing 210, and the partition plate 220 is installed in the cooling passage to separate the cooling passage into an inlet cooling passage 231 and a discharge cooling passage 232. The inlet cooling passage 231 communicates with the first communication passage 111, and the discharge cooling passage 232 communicates with the second communication passage 121.

[0099] In the above structure, the partition plate 220 can separate the cooling passage into an inlet cooling passage 231 and an outlet cooling passage 232, thereby preventing the inlet water circuit and the outlet water channel from mixing within the cooling element 200 and ensuring the circulation effect of the cooling medium.

[0100] Specifically, the cooling medium flows as follows: it first enters the first flow path space 110, passes through the first communication passage 111 and flows into the inlet cooling passage 231, then flows from the inlet cooling passage 231 into the outlet cooling passage 232, passes through the second communication passage 121 and collects in the second flow path space 120, and finally is discharged from the diversion box body.

[0101] 10 , in some embodiments, a first end of casing 210 is an open end and a second end of casing 210 is a closed end. Partition plate 220 extends from the open end of casing 210 toward the closed end of casing 210, with a gap between partition plate 220 and the end face of the closed end. Inlet cooling passage 231 and outlet cooling passage 232 communicate with each other through this gap.

[0102] In the above structure, the partition plate 220 is provided to separate the inlet cooling passage 231 and the outlet cooling passage 232, so that the inlet cooling passage 231 and the outlet cooling passage 232 form a "U-shaped" passage, which ensures the circulation effect of the cooling medium.

[0103] It should be noted that a plurality of partition plates 220 may be included, and a plurality of partition plates 220 may be installed at intervals across the width of the casing 210 to form a plurality of "U-shaped" passages within the cooling passage, thereby allowing the cooling medium to flow in an orderly manner and with the same flow direction after entering the cooling passage, thereby preventing turbulence within the cooling space and improving the smoothness of the cooling medium flow.

[0104] 1, 2, and 11, in some embodiments, the cooling member 200 includes a cooling plate. The cooling plate is simple to process and has a large contact area with the battery module, which can effectively ensure the cooling effect of the battery module. Furthermore, the cooling plate occupies a small space, which can further reduce the space occupied by the cooling device.

[0105] As shown in Figure 11, the cooling plate has a plurality of arrangement grooves 211 formed along the flow direction of the cooling medium, and the arrangement grooves 211 are used to arrange the cells. The arrangement grooves 211 can increase the contact area between the cells and the cooling plate. Specifically, the groove walls of the arrangement grooves 211 can be aligned with the side walls of the cells, thereby increasing the contact area between the arrangement grooves 211 and the cells.

[0106] 11, in some embodiments, the cooling plate has two opposing plate surfaces each having a groove 211, and the grooves 211 on the opposing sides of the cooling plate are offset from each other in the first direction. This arrangement allows both sides of the cooling plate to form heat exchange surfaces in contact with the cells, thereby ensuring the cooling effect of the cooling plate.

[0107] In some embodiments, the cooling plate is corrugated in a first direction, as shown in Figure 11. When the cells in the battery module are cylindrical cells, the corrugated cooling plate can be in close contact with the side surfaces of the cylindrical cells over a larger area, resulting in better cooling effect.

[0108] It should be noted that the cooling element may be processed and molded by extrusion molding. The material of the cooling element may be aluminum or an aluminum alloy, such as Al3003 or Al6061. The above materials have high thermal conductivity and light weight, which helps improve the heat conduction efficiency of the cooling device and reduce the weight of the cooling device.

[0109] Meanwhile, the present invention provides a battery pack. Figure 14 is a structural schematic diagram of a battery pack provided by an embodiment of the present invention. Figure 15 is an exploded view of a battery module and a cooling device of the battery pack provided by an embodiment of the present invention.

[0110] As shown in FIGS. 14 and 15, the battery pack 20 of this embodiment includes a case body 300, a battery module 400, and a cooling device 10.

[0111] Here, the case body 300 includes a case bottom 310 and a case lid 320 that is placed over the case bottom 310, and an accommodation space is formed between the case bottom 310 and the case lid 320, in which the battery module 400 and the cooling device 10 may be disposed. The battery module 400 includes at least one cell, and both the battery module 400 and the cooling device 10 are installed in the accommodation space of the case body 300. The cooling device 10 can be fitted into contact with the battery module 400, thereby cooling the battery module 400.

[0112] For example, the battery module 400 may be a conventional battery module (including cells and a positioning structure outside the cells), or may be a battery module formed by directly combining cells.

[0113] The cooling device has the advantage of occupying a small space, so that a battery pack equipped with the cooling device has a larger battery module installation space, which results in a higher energy density and better performance of the battery pack.Furthermore, the cooling device has the advantages of high cooling efficiency and good cooling uniformity, so that a battery pack equipped with the cooling device has the advantages of a lower risk of thermal runaway and better safety.

[0114] 14 and 15, in some embodiments, the width direction of the cooling member 200 of the cooling device 10 coincides with the length direction of the cells. By arranging it in this manner, the cooling member comes into contact with the side surfaces of the cells, thereby ensuring the cooling effect.

[0115] It should be noted that the "side surface of the cell" refers to the surface of the cell other than the surface on which the electrodes are located. For example, if the cell is a cylindrical battery, the "side surface of the cell" refers to the cylindrical side surface of the cylindrical battery other than the surface on which the positive and negative electrodes are located. If the cell is a prismatic battery, the "side surface of the cell" refers to the surface on which the positive and negative electrodes are located.

[0116] 14 and 15, the cells are cylindrical cells, and the cylindrical cells are installed horizontally in the battery pack. To ensure the cooling effect of the cooling member 200, the heat exchange surface of the cooling member 200 should be in contact with the side surface of the cylindrical cells, thereby ensuring the cooling effect.

[0117] 14 and 15 , in some embodiments, a battery module 400 includes multiple sub-modules 410, each of which includes multiple cells. The cooling device 10 includes multiple cooling members 200, and each sub-module 410 is in contact with and fitted to at least one cooling member 200. This allows each sub-module 410 to be cooled through the cooling member 200 and reduce its temperature, improving the cooling effect of the cooling device 10 on the battery module 400. At the same time, the multiple cooling members 200 improve the cooling uniformity of the cooling device 10 on the battery module 400, reducing the probability of excessive local temperature increases in the battery module 400 and reducing the risk of thermal runaway in the cells.

[0118] 14 and 15 , in some embodiments, each sub-module 410 includes multiple rows of cells arranged along the height of the battery pack 20. That is, the cells are arranged horizontally within the battery pack 20. A cooling element 200 is installed between two adjacent rows of cells, and the cooling element 200 has a first heat exchange surface and a second heat exchange surface, both of which are in contact with and fit onto the side surfaces of the cells. This arrangement allows all of the cells in each row to come into contact with the cooling element, which further improves the cooling effect of the cooling device and ensures uniform cooling of the battery module.

[0119] Meanwhile, the present invention provides a power-using device (not shown), which includes the battery pack 20. Since a battery pack has the advantages of higher energy density and better safety performance, a power-using device including the battery pack also has the advantages of good battery performance and high safety.

[0120] In describing the present invention, it should be clearly stated that, unless otherwise clearly specified and limited, terms such as "attached," "interconnected," and "connected" should be interpreted broadly. For example, they may refer to a fixed connection, an indirect connection via an intermediate medium, an internal communication between two elements, or an interactive relationship between two elements. Those skilled in the art can understand the specific meaning of these terms in the present invention according to the specific circumstances.

[0121] In describing the present invention, it should be understood that the orientations or positional relationships indicated by terms such as "upper," "lower," "front," "rear," "vertical," "horizontal," "top," "bottom," "inner," and "outer" are based on the orientations or positional relationships shown in the drawings. These are intended to facilitate and simplify the description of the present invention only, and do not imply that the devices or elements indicated or implied must have a particular orientation or be configured and operated in a particular orientation. Therefore, they should not be understood as limitations on the present invention.

[0122] Terms such as "first," "second," "third," and "fourth," when present, in the present specification and claims, as well as in the drawings, are used to distinguish between similar objects and do not necessarily indicate a particular order or chronological relationship. It should be understood that such numerals, when used, are interchangeable, under appropriate circumstances, such that the embodiments of the present invention described herein can be practiced in orders other than those illustrated or described herein.

[0123] Furthermore, the terms "comprises" and "having," and any variations thereof, are intended to be non-exclusive inclusive. For example, a process, method, system, product, or apparatus that includes a series of steps or units need not be limited to those steps or units expressly recited, but may include other steps or units that are not expressly recited or that are inherent to the process, method, product, or apparatus.

[0124] Finally, it should be noted that the above embodiments are for illustrating the means for solving the problems of the present invention, but are not intended to limit the same. Although the present invention has been described in detail with reference to the above embodiments, those skilled in the art should understand that they can still make modifications to the means for solving the problems described in the above embodiments, or make equivalent substitutions for some or all of the technical features thereof, and these modifications or substitutions do not cause the essence of the corresponding means for solving the problems to depart from the scope of the means for solving the problems of the embodiments of the present invention. [Industrial Applicability]

[0125] The present invention provides a flow shunting device, a cooling device, a battery pack and a power-using device, and solves the problem of low cooling efficiency of the cooling devices in the prior art. [Explanation of symbols]

[0126] 10 Cooling device 20 Battery pack 100 Diversion box body 110 First flow path space 111 First series of aisles 1111 First wall 1112 Second wall 112 Liquid inlet 120 Second flow path space 121 Second communication passage 1211 Third wall 1212 Fourth wall 122 drainage port 130 Installation passage 140 Partition member 141 Separation section 142 First Interceptor 143 Second Interceptor 150 outer shell 160 Partition 200 Cooling member 210 Casing 211 Placement groove 220 Partition 231 Inlet cooling passage 232 Drainage cooling passage 300 case body 310 Case bottom 320 Case Lid 400 Battery Module 410 submodules

Claims

1. A flow dividing device including a flow dividing box body and a mounting structure provided on the flow dividing box body, a first flow path space and a second flow path space that are not in communication with each other are provided inside the flow distribution box body, the mounting structure includes a mounting passage for mounting a cooling member and a partition member provided in the mounting passage, the mounting passage being provided in the flow distribution box body and communicating with both the first flow path space and the second flow path space; The partition member separates the mounting passage into independent first and second communication passages, so that the first flow path space communicates with the cooling member only through the first communication passage, and the second flow path space communicates with the cooling member only through the second communication passage.

2. The partition member is a separation portion provided in the mounting passage and separating the mounting passage into the first communication passage and the second communication passage; a first blocking portion provided in the first communication passage and blocking communication between the second flow path space and the first communication passage; The flow dividing device according to claim 1 , further comprising: a second blocking portion provided in the second communication passage, blocking communication between the first flow path space and the second communication passage.

3. 2. The flow distribution device of claim 1, wherein the first flow path space and the second flow path space both extend along a first direction, and the first flow path space and the second flow path space are spaced apart, and the first direction is the longitudinal direction of the flow distribution box body.

4. 4. The flow dividing device of claim 3, wherein the first flow path space and the second flow path space are spaced apart in a second direction, the mounting passage is provided on a side of the flow dividing box body, the mounting passage and the first flow path space overlap in their projected portions in the second direction, and the mounting passage and the second flow path space overlap in their projected portions in the second direction, and wherein the second direction is perpendicular to the first direction.

5. The flow distribution box body includes an outer shell and a first partition plate; A flow path space is provided within the outer shell, 3. The flow dividing device according to claim 2, wherein the first partition plate separates the flow path space into a first flow path space and a second flow path space, and the mounting passage passes through the outer shell to connect the first flow path space and the second flow path space.

6. the first partition plate has a first surface facing the first flow path space and a second surface facing the second flow path space, the first communication passage includes a first wall body close to the first surface and a second wall body close to the second surface, the first wall body and the second wall body surrounding the first communication passage, and the first blocking portion blocks communication between the second flow path space and the first communication passage by sealing a gap between the second surface and the second wall body, 6. The flow dividing device according to claim 5, wherein the second communication passage includes a third wall body close to the first surface and a fourth wall body close to the second surface, the third wall body and the fourth wall body surrounding the second communication passage, and the second blocking portion blocks communication between the first flow path space and the second communication passage by sealing a gap between the first surface and the third wall body.

7. The flow dividing device of claim 5 , wherein the outer shell, the first partition plate, and the partition member are of a one-piece molded structure.

8. The diversion device according to any one of claims 1 to 7, wherein the diversion box body further has a first liquid inlet port communicating with the first flow path space and a first liquid outlet communicating with the second flow path space.

9. A flow dividing device, the flow dividing device being the flow dividing device according to any one of claims 1 to 7; a cooling member having a cooling passage through which a cooling medium flows, a first end of the cooling member being an open end and a second end of the cooling member being a closed end, a second inlet and a second outlet of the cooling passage both being located at the first end of the cooling member, and the first end of the cooling member being inserted into the mounting passage of the flow dividing device, so that the second inlet communicates with the first communication passage and the second outlet communicates with the second communication passage; A cooling device including:

10. 10. The cooling device according to claim 9, wherein there are a plurality of cooling members, the plurality of cooling members being spaced apart in a first direction, and the plurality of mounting passages being provided in one-to-one correspondence with the cooling members, wherein the first direction is the longitudinal direction of the distribution box body.

11. The cooling device according to claim 9 , wherein the first end of the cooling member is sealedly connected to a hole wall of the mounting passage.

12. The cooling device according to claim 11 , wherein the first end of the cooling member and the hole wall of the mounting passage are bonded together.

13. 10. The cooling device according to claim 9, wherein the cooling member includes a casing and a second partition plate, the casing having a cooling passage therein, the second partition plate being provided within the cooling passage and separating the cooling passage into a liquid inlet cooling passage and a liquid outlet cooling passage, the liquid inlet cooling passage communicating with the first communication passage, and the liquid outlet cooling passage communicating with the second communication passage.

14. 14. The cooling device of claim 13, wherein the first end of the casing is an open end, the second end of the casing is a closed end, the second partition plate extends from the open end of the casing toward the closed end of the casing, and a gap is provided between the second partition plate and an end face of the closed end, and the liquid inlet cooling passage and the liquid outlet cooling passage communicate with each other through the gap.

15. 10. The cooling device according to claim 9, wherein the cooling member includes a cooling plate, the cooling plate having a plurality of arrangement grooves formed along a flow direction of a cooling medium, the arrangement grooves being for arranging a plurality of electric cells.

16. The cooling device of claim 15, wherein the arrangement grooves are respectively provided on the plate surfaces of opposite sides of the cooling plate, and the arrangement grooves located on opposite sides of the cooling plate are offset from each other in a first direction, where the first direction is the longitudinal direction of the distribution box body.

17. The cooling device of claim 16 , wherein the cooling plate is corrugated in the first direction.

18. A case body, a battery module installed within the case body and including at least one cell; the cooling device being the cooling device according to claim 9, which is installed inside the case body and contacts the battery module; Includes battery pack.

19. 19. The battery pack according to claim 18, wherein a width direction of the cooling member of the cooling device coincides with a length direction of the unit cells.

20. 19. The battery pack according to claim 18, wherein the battery module includes a plurality of sub-modules, each of the sub-modules includes a plurality of the cells, the cooling device includes a plurality of cooling members, and each of the sub-modules is in contact with at least one of the cooling members.

21. 21. The battery pack of claim 20, wherein each sub-module includes multiple rows of cells arranged along the height direction of the battery pack, one cooling member is arranged between two adjacent rows of cells, the cooling member has a first heat exchange surface and a second heat exchange surface, and both the first heat exchange surface and the second heat exchange surface are in contact with side surfaces of the cells.

22. 20. A power-using device comprising the battery pack of claim 18.

Citation Information

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