Immersion-cooled battery module, and battery pack and vehicle including same

The liquid-immersion-cooled battery module addresses poor cooling and thermal runaway issues by directly contacting battery cells with a coolant, enhancing cooling performance and energy density while reducing module size and weight through integrated circuit boards and insulating blocks.

JP7810799B2Active Publication Date: 2026-02-03LG ENERGY SOLUTION LTD
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Patent Information

Application Number
JP2024531137
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-10-28
Filing Date
2023-07-24
Publication Date
2026-02-03
Estimated Expiration
2043-07-24

AI Technical Summary

Technical Problem

Conventional battery cooling technologies face poor cooling performance and difficulty in preventing thermal runaway, leading to increased volume, weight, and manufacturing costs, while existing liquid-cooled systems require extensive piping and space, reducing energy density.

Method used

A liquid-immersion-cooled battery module that directly contacts battery cells with a coolant, utilizing a module case with integrated circuit boards and a waterproof connector for signal transmission, and insulating blocks to enhance cooling and prevent thermal runaway, while minimizing space and weight.

Benefits of technology

Improves cooling performance, prevents thermal runaway, reduces module volume and weight, and enhances energy density by eliminating the need for additional cooling means and piping, while facilitating electrical connections and monitoring.

✦ Generated by Eureka AI based on patent content.

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Abstract

An immersion cooled battery module according to one embodiment of the present invention includes a plurality of sub-battery modules; a module case having an opening at at least one end and accommodating the plurality of sub-battery modules and a coolant in an internal space connected to the opening; a sealing cover airtightly covering the opening; a plurality of circuit boards corresponding to the plurality of sub-battery modules, the circuit boards being accommodated in the internal space and configured to detect electrical signals related to the plurality of sub-battery modules; and a waterproof connector coupled to the sealing cover and configured to transmit electrical signals detected by each of the plurality of circuit boards to the outside of the module case.
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Description

[Technical Field]

[0001] This application claims priority based on Korean Patent Application No. 10-2022-0141140, filed on October 28, 2022, the entire contents of which are incorporated herein by reference in their entirety in the specification and drawings thereof.

[0002] The present invention relates to an immersion-cooled battery module, and a battery pack and vehicle including the same, and more particularly to an immersion-cooled battery module in which rechargeable battery cells are cooled by direct contact with a coolant, and a battery pack and vehicle including the same. [Background technology]

[0003] Generally, secondary batteries refer to batteries that can be repeatedly charged and discharged, such as lithium-ion batteries, lithium polymer batteries, nickel-cadmium batteries, nickel-metal hydride batteries, nickel-zinc batteries, etc. The most basic secondary battery cell provides an output voltage of about 2.5V to 4.2V.

[0004] In recent years, as such secondary batteries have been applied to devices and systems requiring high output voltages and large charging capacities, such as electric vehicles and energy storage systems (ESS), battery modules in which a large number of battery cells are densely arranged in a limited space and connected in series, parallel, or a combination of series and parallel, and battery packs in which such battery modules are even more densely arranged and connected in series, parallel, or a combination of series and parallel, have become widely used. In order for such battery modules and battery packs in which a large number of battery cells are densely arranged in a limited space to operate normally, the temperature of the battery cells must be maintained at an appropriate level.

[0005] However, as disclosed in Patent Document 1, the conventional technology cools the battery cells using a heat sink that contacts only the lower edge portion of the battery cell. Therefore, this conventional technology has problems such as poor cooling performance of the battery cell and difficulty in preventing thermal runaway that occurs in the battery cell. Furthermore, this conventional technology cannot control fires that occur when a battery cell experiences thermal runaway, making it difficult to prevent chain reactions of thermal runaway in other battery cells and other battery modules around the battery cell where thermal runaway occurs.

[0006] Furthermore, as disclosed in Patent Document 2, the conventional technology of cooling battery cells built into a battery module using insulating oil provides cases 200, 300 for accommodating battery cell stacks 100 for each battery cell stack, and supplies and discharges insulating oil through independent piping 500, 600, 700 for each case 200, 300. Therefore, this conventional technology requires a large amount of space for installing piping for the insulating oil, which not only increases the manufacturing cost of a battery pack including the battery module, but also increases the overall volume and weight of the battery pack, thereby reducing the energy density. [Prior art documents] [Patent documents]

[0007] [Patent Document 1] Korean Patent Publication No. 10-2019-0053574 [Patent Document 2] Korean Patent Publication No. 10-2021-0048855 Summary of the Invention [Problem to be solved by the invention]

[0008] The technical problem to be solved by the present invention is to provide a liquid-immersion-cooled battery module that prevents thermal runaway or cascading thermal runaway of battery cells included in the battery module by improving the cooling performance of the battery module, and a battery pack and vehicle including the same.

[0009] Another technical problem to be solved by the present invention is to provide a liquid-immersion-cooled battery module that can improve energy density by minimizing an increase in the volume and weight occupied by the battery module, as well as a battery pack and a vehicle including the same. [Means for solving the problem]

[0010] An immersion-cooled battery module according to one aspect of the present invention is a battery module in which battery cells are cooled by direct contact with a coolant, and includes: a plurality of sub-battery modules, each including a battery cell stack in which a plurality of battery cells are stacked; a module case having an opening at at least one end and accommodating the plurality of sub-battery modules and coolant in an internal space connected to the opening; a sealing cover airtightly covering the opening; a plurality of circuit boards corresponding to the plurality of sub-battery modules, the circuit boards being accommodated in the internal space and configured to detect electrical signals related to the plurality of sub-battery modules; and a waterproof connector coupled to the sealing cover and configured to transmit the electrical signals detected by each of the plurality of circuit boards to the outside of the module case.

[0011] In one embodiment, the plurality of circuit boards may include a first circuit board that detects a first electrical signal associated with a first sub-battery module among the plurality of sub-battery modules, and a second circuit board that detects a second electrical signal associated with a second sub-battery module among the plurality of sub-battery modules, and the first circuit board may be configured to transmit the first electrical signal and the second electrical signal transmitted from the second circuit board to the outside through the waterproof connector.

[0012] In one embodiment, the device may further include a flat flexible cable (FFC) configured to electrically connect the first circuit board and the second circuit board and transmit the second electrical signal detected by the second circuit board to the first circuit board.

[0013] In one embodiment, each of the plurality of circuit boards may include a flexible printed circuit board (FPCB).

[0014] In one embodiment, the sealing cover has a through hole into which at least a portion of the waterproof connector is inserted, and the waterproof connector may include: a connector body coupled to the second surface of the sealing cover, which is one of a first surface of the sealing cover adjacent to the internal space and a second surface of the sealing cover opposite the first surface, and covering a first opening of the through hole formed on the second surface; at least one contact pin supported by the connector body and extending in a direction away from the internal space of the module case; and at least one connecting pin electrically connected to the at least one contact pin, extending from the connector body toward the internal space through the through hole, and electrically connecting to a first circuit board of the plurality of circuit boards.

[0015] In one embodiment, the waterproof connector may further include a sealing member interposed between the connector body and the second surface of the sealing cover to seal the periphery of the first opening of the through hole.

[0016] In one embodiment, the sealing cover may further include a connecting circuit board coupled to the first surface of the sealing cover to cover a second opening of the through hole formed on the first surface and electrically connected to the at least one connecting pin, and a cable having one end electrically connected to the connecting circuit board and the other end electrically connected to the first circuit board.

[0017] In one embodiment, the battery pack may further include an insulating block made of an insulating material and disposed between a first sub-battery module and a second sub-battery module that are disposed adjacent to each other among the plurality of sub-battery modules, with one end in close contact with the first sub-battery module and the other end in close contact with the second sub-battery module.

[0018] In one embodiment, the insulating block may have a communication groove provided at a peripheral portion of the insulating block that is in close contact with the inner surface of the module case, for allowing the coolant to pass from the first sub-battery module side to the second sub-battery module side.

[0019] In one embodiment, the communication groove may extend from the first sub-battery module side to the second sub-battery module side and may be configured to narrow toward the second sub-battery module side so that the flow rate of the coolant passing through the communication groove increases.

[0020] In one embodiment, the battery module may further include a connecting member electrically connecting the first sub-battery module and the second sub-battery module, and the insulating block may include a support groove into which at least a portion of the connecting member is inserted and supported.

[0021] In one embodiment, the cooling fluid may include an insulating oil or a dielectric liquid.

[0022] A battery pack according to another aspect of the present invention includes an immersion-cooled battery module according to any one of the above-described embodiments.

[0023] According to yet another aspect of the present invention, a vehicle includes an immersion-cooled battery module according to any one of the above-described embodiments. [Effects of the Invention]

[0024] According to one aspect of the present invention, battery cells accommodated in a module case of a battery module are cooled through direct contact with a coolant flowing into the module case, thereby eliminating the need for battery cell cooling means such as a thermal pad and a heat sink, improving the cooling performance of the battery cells, and effectively preventing thermal runaway of the battery cells. Furthermore, when a fire occurs due to thermal runaway of a battery cell, the coolant flowing into and filling the module case functions as a fire extinguisher, thereby preventing a chain reaction of thermal runaway of other battery cells and other battery modules around the battery cell where thermal runaway occurred.

[0025] In addition, a plurality of sub-battery modules, each including a battery cell stack in which a plurality of battery cells are stacked, are housed in a single module case to form a single battery module, thereby reducing the number of battery modules included in the battery pack. As a result, in a battery pack including a plurality of battery modules, the space occupied by the inlets and outlets provided in each battery module and the space occupied by piping required to supply and recover coolant to and from each battery module are reduced, thereby reducing the manufacturing cost of the battery pack, as well as the overall volume and weight of the battery pack and improving the energy density of the battery pack.

[0026] Furthermore, one of the plurality of circuit boards corresponding to the plurality of sub-battery modules transmits the electrical signals detected by it and the electrical signals detected by the remaining circuit boards to the outside through a single waterproof connector, thereby facilitating electrical connection between the battery module and an external electrical device, simplifying the wiring structure of a battery pack including a plurality of battery modules, and enabling the status of the battery module to be monitored for each sub-battery module.

[0027] In addition, since the waterproof connector is coupled to a sealing cover having an inlet or an outlet and is disposed in a space reserved for connecting the inlet or outlet to a pipe, there is no need to reserve a separate space for enabling the electrical connection of the waterproof connector within the battery pack, and the electrical connection of the waterproof connector is facilitated.

[0028] In addition, an insulating module disposed between a first sub-battery module and a second sub-battery module disposed adjacent to each other among the plurality of sub-battery modules is in close contact with the first sub-battery module and the second sub-battery module, respectively, to support the first sub-battery module and the second sub-battery module, thereby ensuring the electrical safety of the sub-battery modules while preventing damage to the sub-battery modules due to physical impacts, vibrations, etc.

[0029] In addition, a communication groove that allows the coolant to pass through is provided in the peripheral portion of the insulating block that is in close contact with the inner surface of the module case, thereby smoothing the flow of the coolant and, as a result, further improving the cooling performance of the battery module.

[0030] In addition, the inner periphery of the first end cover is inserted into a first insertion hole formed between the wall portion of the first sealing cover and the opening edge of the module case, and the opening edge of the module case is inserted into a second insertion groove formed between the inner periphery and outer periphery of the first end cover to form a serpentine sealing structure, thereby minimizing the risk of leakage of coolant that has flowed into the inside of the battery module.

[0031] In addition, the sealing tape, liquid sealant, and structural adhesive applied to the sealing structure of the battery module triple-block the leakage of the coolant, thereby improving the durability and safety of the immersion-cooled battery module.

[0032] Furthermore, a person having ordinary skill in the art to which the present invention pertains will easily understand from the following description that various embodiments of the present invention can solve various technical problems not described above. [Brief explanation of the drawings]

[0033] [Figure 1]1 is a perspective view showing an immersion-cooled battery module according to an embodiment of the present invention; FIG. [Figure 2] FIG. 2 is an exploded perspective view showing the immersion-cooled battery module shown in FIG. 1. [Figure 3] 1 is an exploded perspective view showing a battery assembly accommodated in a module case of an immersion-cooled battery module according to an embodiment of the present invention; [Figure 4] 4 is an enlarged view of an insulating block of the battery assembly shown in FIG. 3. [Figure 5] FIG. 5 is a vertical cross-sectional view showing a portion A1 of FIG. [Figure 6] 1 is a perspective view showing a first sealing cover of an immersion-cooled battery module according to an embodiment of the present invention. FIG. [Figure 7] FIG. 4 is a vertical cross-sectional view showing a first sealing cover coupled to a module case. [Figure 8] FIG. 2 is a perspective view showing a first end cover of an immersion-cooled battery module according to an embodiment of the present invention. [Figure 9] 9 is a vertical cross-sectional view taken along line SS' of the first end cover shown in FIG. 8. FIG. [Figure 10] FIG. 4 is a vertical cross-sectional view showing a first end cover coupled to a module case. [Figure 11] FIG. 11 is an enlarged view showing a portion A2 of FIG. [Figure 12] 1 is a diagram illustrating a battery pack according to an embodiment of the present invention. [Figure 13] 1 is a diagram illustrating a vehicle according to an embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0034] In order to clarify the solution to the technical problem of the present invention, the embodiments of the present invention will be described in detail with reference to the drawings. However, in the description of the present invention, if the description of related prior art may obscure the gist of the present invention, the description will be omitted.

[0035] Furthermore, the terms used in this specification are defined in consideration of the functions of the present invention, and may vary depending on the intentions or practices of the designer, manufacturer, etc. Therefore, the definitions of terms to be described below should be based on the entire contents of this specification.

[0036] For reference, the components of the present invention shown in the drawings may be partially or entirely reduced in size, enlarged, omitted, or simplified in order to facilitate technical understanding.

[0037] FIG. 1 is a perspective view showing an immersion-cooled battery module 10 according to one embodiment of the present invention.

[0038] FIG. 2 is an exploded perspective view showing the immersion-cooled battery module 10 shown in FIG.

[0039] 1 and 2, a battery module 10 according to an embodiment of the present invention is configured to cool battery cells accommodated in the interior space of a module case 100 by direct contact with a coolant. To this end, the battery module 10 may include a module case 100, a battery assembly 200, a first sealing cover 11 and a second sealing cover 110′, a waterproof connector 120, and a first end cover 130 and a second end cover 130′.

[0040] The module case 100 extends in a first direction (Y-axis direction) and has an opening at at least one of both ends in the first direction, and is configured to accommodate the plurality of sub-battery modules and coolant in an internal space connected to the opening.

[0041] For example, the module case 100 may have an internal space extending in a first direction (Y-axis direction) and an opening communicating with the internal space. In one embodiment, the module case 100 may be configured as a tube having an opening at each end in the first direction. The module case 100 may be made of a metal material having a certain strength. In addition, the module case 100 may be integrally formed through extrusion molding or a sheet metal process to prevent leakage of the coolant.

[0042] The battery assembly 200 may include a plurality of battery cells and may be housed in the internal space of the module case 100. As will be described further below, the battery assembly 200 may include a plurality of sub-battery modules each including a battery cell stack in which a plurality of battery cells are stacked, and a plurality of circuit boards corresponding to the sub-battery modules. In this case, the plurality of circuit boards may be configured to detect electrical signals related to the plurality of sub-battery modules.

[0043] The first sealing cover 110 and the second sealing cover 110' may be configured to cover and seal the opening of the module case 100, and may include at least one of an inlet 112 for introducing coolant into the internal space of the module case 100 and an outlet 112' for discharging the coolant that has flowed into the internal space to the outside of the module case 100.

[0044] The first sealing cover 110 and the second sealing cover 110' may include a first sealing cover 110 having the inlet 112 and covering an opening at one end of the module case 100, and a second sealing cover 110' having the outlet 112' and covering an opening at the other end of the module case 100. In this case, high voltage (HV) terminals 114, 114' that provide output of the battery module 10 and a waterproof connector 120 may be disposed on the first sealing cover 110.

[0045] The waterproof connector 120 is coupled to and supported by the first sealing cover 110, and is electrically connected to the circuit board of the battery assembly 200, and may be configured to transmit electrical signals detected by each circuit board to the outside of the module case 100.

[0046] The first end cover 130 and the second end cover 130' may be configured to cover the first sealing cover 110 and the second sealing cover 110' coupled to the opening of the module case 100. The first end cover 130 and the second end cover 130' may include a first end cover 130 that covers the first sealing cover 110 coupled to the opening at one end of the module case 100, and a second end cover 130' that covers the second sealing cover 110' coupled to the opening at the other end of the module case 100.

[0047] The coolant used in the present invention may include an insulating oil or a dielectric liquid having a high withstand voltage, for example, trioctyl phosphate (TOP), tributyl phosphate (TOB), triphenyl phosphate, trimethyl phosphate, or tripropyl phosphate.

[0048] In a modified embodiment, the modified sealing cover that covers and seals the opening of the module case that houses the battery assemblies may be configured to have both an inlet and an outlet. In this case, the module case may be configured so that an opening to which the modified sealing cover is coupled is provided at only one longitudinal end, and the other longitudinal end of the module case is closed. Therefore, according to this modified embodiment, the structures corresponding to the second sealing cover 110' and second end cover 130' shown in FIGS. 1 and 2 can be omitted. In this case, the coolant that flows in through the inlet of the modified sealing cover may circulate within the interior space of the module case, cool the battery cells, and then be discharged through the outlet of the modified sealing cover.

[0049] As described above, according to one embodiment of the present invention, the battery cells accommodated in the module case 100 of the battery module 10 are cooled through direct contact with the coolant flowing into the module case 100, thereby eliminating the need for battery cell cooling means such as a thermal pad and a heat sink, improving the cooling performance of the battery cells and effectively preventing thermal runaway of the battery cells. Furthermore, when a fire occurs due to thermal runaway of a battery cell, the coolant flowing into and filling the module case functions as a fire extinguisher, thereby preventing a chain reaction of thermal runaway of other battery cells and other battery modules around the battery cell where thermal runaway occurred.

[0050] FIG. 3 is an exploded perspective view showing a battery assembly 200 housed in a module case of a liquid immersion cooling battery module according to an embodiment of the present invention.

[0051] As shown in FIG. 3, the battery assembly 200 may include a plurality of sub-battery modules 210 and 220, an insulating block 230, and a plurality of circuit boards 240 and 250.

[0052] Each of the plurality of sub-battery modules 210, 220 includes a battery cell stack in which a plurality of battery cells 212, 222 are stacked, and may be accommodated in the internal space of the module case 100 and arranged side by side along the longitudinal direction (Y-axis direction) of the module case 100.

[0053] For example, the battery assembly 200 may include a first sub-battery module 210 and a second sub-battery module 220.

[0054] In this case, the first sub-battery module 210 may include a first battery cell stack in which a plurality of battery cells 212 are stacked in the width direction (X-axis direction) of the module case 100, a first bus bar frame 214 arranged at one end of the first battery cell stack in the longitudinal direction (Y-axis direction), and a second bus bar frame 216 arranged at the other end of the first battery cell stack in the longitudinal direction.

[0055] The second sub-battery module 220 may also include a second battery cell stack in which a plurality of battery cells 222 are stacked in the width direction (X-axis direction) of the module case 100, a third bus bar frame 224 arranged at one end of the second battery cell stack in the longitudinal direction (Y-axis direction), and a fourth bus bar frame 226 arranged at the other end of the second battery cell stack in the longitudinal direction.

[0056] The first bus bar frame 214, the second bus bar frame 216, the third bus bar frame 224, and the fourth bus bar frame 226 may be configured to support bus bars 214a that electrically connect the electrode leads of the battery cells to the electrode leads of other battery cells or to separate terminals.

[0057] In addition, the battery cells constituting the battery cell stack of each of the sub-battery modules 210 and 220 may include a pouch-type battery cell in which an electrode assembly and an electrolyte material are housed inside a pouch-type case.

[0058] The insulating block 230 may be made of an insulating material and may be disposed between the first sub battery module 210 and the second sub battery module 220, which are disposed adjacent to each other among the plurality of sub battery modules. One end of the insulating block 230 may be in close contact with the first sub battery module 210, and the other end of the insulating block 230 may be in close contact with the second sub battery module 220.

[0059] As described above, the insulating block 230 is in close contact with the adjacent sub-battery modules 210, 220 to support the sub-battery modules 210, 220, thereby ensuring the electrical safety of the sub-battery modules 210, 220 and preventing damage to the sub-battery modules 210, 220 due to physical impacts, vibrations, etc.

[0060] The plurality of circuit boards 240, 250 may include circuit boards in a number corresponding to the plurality of sub-battery modules 210, 220. The plurality of circuit boards 240, 250 may be accommodated in the internal space of the module case 100 and configured to detect electrical signals related to the plurality of sub-battery modules 210, 220. Such circuit boards may be disposed on the upper ends of the corresponding sub-battery modules.

[0061] Each of these multiple circuit boards 240, 250 may be made of a flexible printed circuit board (FPCB).

[0062] For example, the plurality of circuit boards 240 and 250 may include a first circuit board 240 corresponding to the first sub-battery module 210 and a second circuit board 250 corresponding to the second sub-battery module 220 .

[0063] The first circuit board 240 may be configured to detect a first electrical signal related to the first sub battery module 210 among the plurality of sub battery modules 210, 220. In this case, the first electrical signal may include an electrical signal indicating the output voltage, output current, or charging state of the battery cells included in the first sub battery module 210.

[0064] The second circuit board 250 may be configured to detect a second electrical signal related to the second sub battery module 220 among the plurality of sub battery modules 210, 220. In this case, the second electrical signal may include an electrical signal indicating the output voltage, output current, or charging state of the battery cells included in the second sub battery module 220.

[0065] In addition, the first circuit board 240 may be configured to receive a second electrical signal from the second circuit board 250, collect the first electrical signal detected by itself and the second electrical signal received from the second circuit board 250, and transmit the collected signals to the outside through the waterproof connector 120.

[0066] Therefore, the battery assembly 200 may further include a flexible flat cable (FFC) 260. The flexible flat cable 260 may be configured to electrically connect the first circuit board 240 and the second circuit board 250 and transmit a second electrical signal detected by the second circuit board 250 to the first circuit board 240.

[0067] Generally, the length of a battery module corresponds to the length of the battery cells that make up the battery module. However, since the immersion-cooled battery module 10 according to one embodiment of the present invention includes multiple sub-battery modules 210, 220 arranged side by side in its longitudinal direction (Y-axis direction), it has a length more than twice that of a typical battery module including battery cells of the same size as the present invention. For example, while a typical battery module is manufactured with a length of about 500 mm to 610 mm, the immersion-cooled battery module 10 according to one embodiment of the present invention can be manufactured with a length of 1000 mm or more.

[0068] FIG. 4 is an enlarged view of the insulating block 230 of the battery assembly shown in FIG.

[0069] 4, the insulating block 230 may be disposed between the adjacent first and second sub battery modules 210 and 220. One end of the insulating block 230 may be in close contact with the first sub battery module 210, and the other end of the insulating block 230 may be in close contact with the second sub battery module 220.

[0070] In one embodiment, the insulating block 230 may be configured so that its periphery is in close contact with the inner surface of the module case 100. In this case, the insulating block 230 may include a communication groove 232.

[0071] The communication groove 232 may be provided in the peripheral portion of the insulating block 230 that is in close contact with the inner surface of the module case 100, and configured to allow the coolant to pass from the first sub-battery module 210 side to the second sub-battery module 220 side. Therefore, the communication groove 232 may have a shape that extends from the first sub-battery module 210 side to the second sub-battery module 220 side.

[0072] In addition, the communication groove 232 is configured to narrow from the first sub-battery module 210 side toward the second sub-battery module 220 side, thereby increasing the flow rate of the coolant passing through the communication groove 232. As a result, it is possible to prevent a phenomenon in which the flow rate of the coolant that has flowed into the module case 100 decreases as it moves from the first sub-battery module 210 side to the second sub-battery module 220 side, causing a decrease in cooling performance.

[0073] In one embodiment, the battery assembly 200 may further include a connecting member 218 that electrically connects the first sub-battery module 210 and the second sub-battery module 220. The connecting member 218 may be made of a conductive material such as metal.

[0074] In this case, the insulating block 230 may have a support groove 234 into which at least a portion of the connecting member 218 is inserted and supported.

[0075] FIG. 5 shows a vertical cross-sectional view of part A1 in FIG.

[0076] As shown in FIG. 5, one end of the insulating block 230 may be in close contact with the second bus bar frame 216 of the first sub-battery module, and the other end of the insulating block 230 may be in close contact with the fourth bus bar frame 226 of the second sub-battery module.

[0077] The second bus bar frame 216 may be configured to support bus bars or terminals electrically connected to the battery cells 212 of the first sub-battery module, and the fourth bus bar frame 226 may be configured to support bus bars or terminals electrically connected to the battery cells 222 of the second sub-battery module.

[0078] The connecting member 218 may be configured such that one end thereof is connected to a bus bar or terminal arranged on the second bus bar frame 216, and the other end thereof extends along the support groove 234 of the insulating block 230 to be connected to a bus bar or terminal arranged on the fourth bus bar frame 226.

[0079] In one embodiment, the second bus bar frame 216, which is in close contact with the insulating block 230, may include a first coupling protrusion 216a that is inserted into and coupled to a first coupling groove 236a formed in the insulating block 230. In this case, the first coupling protrusion 216a may extend in a first direction (e.g., the Y-axis direction) toward the insulating block 230 and then bend in a second direction (e.g., the Z-axis direction) intersecting the first direction. The first coupling groove 236a may be configured to be molded to fit the first coupling protrusion 216a.

[0080] Furthermore, the fourth bus bar frame 226, which is in close contact with the insulating block 230, may include second coupling protrusions 226a that are inserted into and coupled to second coupling grooves 236b formed in the insulating block 230. In this case, the second coupling protrusions 226a may extend in a third direction toward the insulating block 230 and then bend in a fourth direction (e.g., the Z-axis direction) that intersects with the third direction. The second coupling grooves 236b may be configured to be molded to fit the second coupling protrusions 226a.

[0081] In addition, in one embodiment, the module case 100 may include stoppers 102 that protrude from an inner surface defining the internal space thereof to support the insulating block 230 and thereby limit movement of the insulating block 230. In this case, the stoppers 102 are in close contact with both ends of the insulating block 230 and can limit movement of the insulating block 230 to prevent the insulating block 230 from moving out of its normal position and biasing toward the first sub-battery module 210 or the second sub-battery module 220.

[0082] In this manner, the insulating block 230 is in close contact with the sub-battery module to support the sub-battery module, and the stopper 102 restricts the movement of the insulating block 230, thereby ensuring the electrical safety of the sub-battery module and preventing damage to the sub-battery module due to physical impacts, vibrations, etc.

[0083] FIG. 6 is a perspective view showing a first sealing cover 110 of a liquid immersion cooling type battery module according to an embodiment of the present invention.

[0084] 6, the first sealing cover 110 may include an inlet 112 for introducing a coolant into the internal space of the module case 100, and may be configured to be inserted into an opening of the module case 100 to airtightly cover the opening. To this end, the first sealing cover 110 may include a cover portion 110a, a fixing portion 110b, and a wall portion 110c.

[0085] The cover portion 110a may be configured such that its periphery has a shape that matches with the opening of the module case 100 and is inserted into the opening.

[0086] The fixing portion 110b may be configured to protrude from a first surface of the cover portion 110a adjacent to the internal space of the module case 100 toward the internal space, and have its periphery attached to and fixed to the inner surface of the module case 100. To this end, a double-sided adhesive sealing tape may be attached to the periphery of the fixing portion 110b facing the inner surface of the module case 100.

[0087] The wall portion 110c may be configured to protrude from a second surface of the cover portion 110a, which is the surface opposite to the first surface, and to face the inner surface of the module case 100 forming the periphery of the opening at a predetermined distance. In this case, the wall portion 110c may be configured in the form of a roof (loop) that goes around the periphery of the cover portion 110a.

[0088] As will be described further below, the wall portion 110c of the first sealing cover 110, together with the peripheral portion of the cover portion 110a and the inner surface of the module case 100 forming the periphery of the opening, may form a first insertion groove into which the inner peripheral edge of the end cover 130 described below is inserted.

[0089] Meanwhile, high voltage (HV) terminals 114, 114′ that provide the output of the battery module 10 and a waterproof connector 120 may be arranged on a second surface of the first sealing cover 110. In this case, the waterproof connector 120 may be fixed to the first sealing cover 110 by a fastening member 120a such as a bolt.

[0090] FIG. 7 is a vertical cross-sectional view showing the first sealing cover 110 coupled to the module case 100. As shown in FIG.

[0091] As shown in FIG. 7, the first sealing cover 110 has an inlet 112 for introducing a coolant into the internal space of the module case 100, and can be inserted into an opening at one end of the module case 100 to airtightly cover the opening.

[0092] Therefore, the cover portion 110 a of the first sealing cover 110 may be configured so that its periphery is fitted to the opening of the module case 100 .

[0093] The fixing portion 110b of the first sealing cover 110 protrudes from the first surface of the cover portion 110a toward the inner space of the module case 100, and its periphery is attached to the inner surface of the module case 100 and fixed thereto.

[0094] Therefore, a sealing tape 118a capable of double-sided adhesion may be attached to the peripheral surface of the fixing portion 110b that faces the inner surface of the module case 100. In this case, the sealing tape 118a may have a multi-layer structure in which an adhesive layer is provided on each side of a base layer made of a waterproof material.

[0095] For example, the base layer of the sealing tape 118a may include one or more material layers made of one or more of polyimide, polypropylene, polyethylene, and polyethylene terephthalate. The adhesive layer of the sealing tape 118a may be made of one or more of polymethyl methacrylate, polyethyl methacrylate, and polybutyl methacrylate. The sealing tape 118a may further include a release paper covering the adhesive layer. Such a release paper can be removed by an operator immediately before applying the sealing tape 118a.

[0096] The wall portion 110c may be configured to protrude from a second surface of the cover portion 110a, which is opposite to the first surface adjacent to the internal space of the module case 100, in a direction away from the internal space of the module case 100, and to face the inner surface of the module case 100 forming the periphery of the opening at a predetermined interval. As described above, the wall portion 110c may be configured in the form of a roof that goes around the periphery of the cover portion 110a.

[0097] The wall portion 110c of the first sealing cover 110 may form a first insertion groove G1 together with the peripheral portion of the cover portion 110a and the inner surface of the module case 100 that forms the periphery of the opening. In addition, a liquid sealant 118b such as sealing glue may be applied to the inner surface of the first insertion groove G1.

[0098] In addition, a structural adhesive 104 having high shear strength may be applied to the outer surface of one end of the module case 100 where the opening is located. Such structural adhesive 104 may include a polymer alloy adhesive or a polyimide adhesive. As will be described further below, the outer periphery of a first end cover 130 (described below) may be attached and fixed to the outer surface of the module case 100 to which the structural adhesive 104 is applied.

[0099] Meanwhile, the first sealing cover 110 may have a through hole 116 into which at least a portion of the waterproof connector 120 is inserted.

[0100] The waterproof connector 120 may also include a connector body 122 , a contact pin 124 , and a connecting pin 126 .

[0101] The connector body 122 may be coupled to a second surface of the first sealing cover 110, which is adjacent to the internal space of the module case 100, and the second surface of the first sealing cover 110, which is opposite to the first surface, and configured to cover the first opening of the through hole 116 formed on the second surface. The connector body 122 of the waterproof connector 120 may be made of insulating polymer synthetic resin, and may be fixed to the first sealing cover 110 by a fastening member such as a bolt.

[0102] In one embodiment, the waterproof connector 120 may further include a sealing member 124a interposed between the connector body 122 and the second surface of the first sealing cover 110 to seal the periphery of the first opening of the through hole 116. In this case, the sealing member 124a may include a sealant or a gasket, or may include both.

[0103] The contact pins 124 may be supported by the connector body 122 and configured to extend in a direction away from the internal space of the module case 100. Furthermore, the contact pins 124 may come into contact with and be electrically connected to corresponding contact pins of a corresponding connector (not shown) connected to the waterproof connector 120. For this reason, the contact pins 124 may be made of a conductive metal material. The waterproof connector 120 may include one or more such contact pins 124.

[0104] The connecting pin 126 may be configured to be electrically connected to the contact pin 124, extend from the connector body 122 through the through hole 116 toward the internal space of the module case 100, and be electrically connected to the first circuit board 240 of the multiple circuit boards 240, 250 housed in the module case 100. For this reason, the connecting pin 126 may be made of a conductive metal material. The waterproof connector 120 may include one or more such connecting pins 126.

[0105] In one embodiment, the contact pins 124 and the connecting pins 126 may be integrally formed. Also, in one embodiment, the connector body 122 may be integrally formed with the contact pins 124 and the connecting pins 126 through an insert molding process.

[0106] Meanwhile, the battery module 10 may further include a connection circuit board 128 and a cable 128 a for electrical connection between the waterproof connector 120 and the first circuit board 240 .

[0107] In this case, the connecting circuit board 128 may be coupled to a first surface of the first sealing cover 110 adjacent to the internal space of the module case 100, cover the second opening of the through hole 116 formed in the first surface, and be configured to be electrically connected to the connecting pin 126. To this end, the connecting circuit board 128 may have via holes into which the connecting pins 126 are inserted. The connecting pins 126 inserted into the via holes may be further fixed to the connecting circuit board 128 through a soldering process.

[0108] The cable 128a may be configured such that one end is electrically connected to the connection circuit board 128 and the other end is electrically connected to the first circuit board 240. The cable 128a may include a flexible flat cable (FFC). The first circuit board 240 connected to the cable 128a in this manner may be electrically connected to the bus bar 214a connected to the electrode lead of the battery cell 212. In this case, the bus bar 214a may be coupled to and fixed to the first bus bar frame 214.

[0109] 1 and 2, the second sealing cover 110' covering the opening at the other end of the module case 100 includes an outlet 112' for discharging the coolant that has flowed into the internal space of the module case 100, and may be inserted into the opening at the other end to airtightly cover the opening at the other end. Therefore, the second sealing cover 110' may include components corresponding to the cover portion 110a, the fixing portion 110b, and the wall portion 110c of the first sealing cover 110. However, the second sealing cover 110' does not have components corresponding to the HV terminals 114, 114' or the waterproof connector 120.

[0110] FIG. 8 is a perspective view showing a first end cover 130 of an immersion-cooled battery module according to one embodiment of the present invention.

[0111] 8, the first end cover 130 may be configured to cover the first sealing cover 110 coupled to the opening at one end of the module case 100. The first end cover 130 may include an inlet hole 132 through which the inlet 112 of the first sealing cover 110 passes, and a connector hole 138 through which at least a portion of the waterproof connector 120 is inserted and exposed to the outside.

[0112] In addition, the first end cover 130 may further include terminal holes 134, 134' through which the HV terminals 114, 114' arranged on the first sealing cover 110 pass, and support portions 136, 136' that support the ends of the HV terminals 114, 114' that pass through the terminal holes 134, 134' and extend to the outside.

[0113] FIG. 9 is a vertical cross-sectional view of the first end cover 130 taken along line SS' shown in FIG.

[0114] 9, the first end cover 130 may have a cap structure that covers one end of the module case 100 to which the first sealing cover 110 is coupled. The first end cover 130 may include an inner periphery 130a and an outer periphery 130b.

[0115] The inner peripheral edge 130a may be configured to extend toward the internal space of the module case 100 and be inserted into a first insertion groove G1 formed by the wall portion 110c of the first sealing cover 110, the peripheral portion of the cover portion 110a, and the inner surface of the module case 100.

[0116] The outer peripheral edge 130b can be configured to extend toward the outer surface of the module case 100 and be bonded to the outer surface portion to which the structural adhesive 104 is applied.

[0117] In addition, the inner periphery 130a and the outer periphery 130b may be spaced apart at a predetermined interval to form a second insertion groove G2 into which the opening edge of the module case 100 is inserted.

[0118] FIG. 10 is a vertical cross-sectional view showing the first end cover 130 coupled to the module case 100. As shown in FIG.

[0119] As shown in FIG. 10, the inner peripheral edge 130a of the first end cover 130 extends toward the internal space of the module case 100 and can be inserted into a first insertion hole formed between the wall portion 110c of the first sealing cover 110 and the opening edge of the module case 100.

[0120] Furthermore, an outer peripheral edge 130b of the first end cover 130 extends toward the outer surface of the module case 100 and can be bonded to the outer surface portion to which the structural adhesive 104 is applied.

[0121] The opening edge of the module case 100 can be inserted into a second insertion groove G2 formed between the inner peripheral edge 130a and the outer peripheral edge 130b of the first end cover 130.

[0122] Meanwhile, the terminal end of the waterproof connector 120 can be inserted into and supported in a connector hole 138 of the first end cover 130 .

[0123] FIG. 11 is an enlarged view showing the A2 portion of FIG.

[0124] 11, an inner periphery 130a of the first end cover 130 extends toward the interior space of the module case 100 and can be inserted into a first insertion hole G1 formed between a wall portion 110c of the first sealing cover 110 and an opening edge 100a of the module case 100. In this case, a liquid sealant 118b can be interposed between the inner periphery 130a of the first end cover 130 inserted into the first insertion hole G1 and the inner surface of the first insertion hole G1.

[0125] Furthermore, the outer peripheral edge 130b of the first end cover 130 can extend to the outer surface side of the module case 100 and be bonded to the outer surface of the opening edge 100a to which the structural adhesive 104 has been applied.

[0126] Meanwhile, the opening edge 100 a of the module case 100 can be inserted into a second insertion groove formed between the inner peripheral edge 130 a and the outer peripheral edge 130 b of the first end cover 130 .

[0127] In this way, the inner periphery 130a of the first end cover 130 is inserted into the first insertion hole G1 formed between the wall portion 110c of the first sealing cover 110 and the opening edge 100a of the module case 100, and the opening edge 100a of the module case 100 is inserted into the second insertion groove G2 formed between the inner periphery 130a and outer periphery 130b of the first end cover 130, forming a serpentine-shaped sealing structure, thereby minimizing the risk of leakage of coolant that has flowed into the interior of the battery module 10.

[0128] In addition, the sealing tape 118a, liquid sealant 118b, and structural adhesive 104 applied to the sealing structure of the battery module 10 triple-block the leakage of the coolant, thereby improving the durability and safety of the liquid-immersion cooled battery module 10.

[0129] 1 and 2, the second end cover 130', which covers the opening at the other end of the module case 100 together with the second sealing cover 110', may have an outlet hole through which the outlet 112' of the second sealing cover 110' passes, and may cover the opening at the other end to which the second sealing cover 110' is coupled. Therefore, the second end cover 130' may include structures corresponding to the inner periphery 130a and outer periphery 130b of the first end cover 130. Meanwhile, the second end cover 130' does not include structures corresponding to the terminal holes 134, 134' and connector hole 138 of the first end cover 130.

[0130] FIG. 12 shows a battery pack 20 according to one embodiment of the present invention.

[0131] 12, a battery pack 20 according to an embodiment of the present invention may include a battery module 10 according to an embodiment of the present invention and pack cases 22, 24 that accommodate one or more battery modules 10. The pack cases 22, 24 may have a plurality of mounting spaces for accommodating and mounting a plurality of battery modules.

[0132] 12 , the battery pack 20 may further include a coolant tank for storing the coolant, a pump for circulating the coolant stored in the coolant tank through the supply pipe 26 and the recovery pipe 28, and a chiller for removing heat from the coolant recovered through the recovery pipe 28.

[0133] The battery pack 20 may further include various electrical components (not shown) that control the charge / discharge operation of the battery modules 10 housed in the pack cases 22 and 24, or that monitor the SOC (State of Charge), SOH (State of Health), etc. These electrical components may be housed in the pack cases 22 and 24 together with the battery modules 10.

[0134] FIG. 13 shows a vehicle 2 according to one embodiment of the present invention.

[0135] As shown in FIG. 13, a vehicle 2 according to one embodiment of the present invention may include one or more battery modules 10 according to any one of the various embodiments described above, or may include at least one battery pack 20 including the battery module 10.

[0136] The battery module 10 or the battery pack 20 applied to the vehicle 2 can provide electrical energy required for various operations of the vehicle 2.

[0137] For reference, the battery module according to an embodiment of the present invention may be applied to an energy storage system (ESS) and various electric devices in addition to a vehicle.

[0138] As described above, according to one embodiment of the present invention, the battery cells accommodated in the module case of the battery module are cooled through direct contact with the coolant flowing into the module case, thereby eliminating the need for battery cell cooling means such as a thermal pad and a heat sink, improving the cooling performance of the battery cells, and effectively preventing thermal runaway of the battery cells. Furthermore, when a fire occurs due to thermal runaway of a battery cell, the coolant flowing into and filling the module case functions as a fire extinguisher, thereby preventing a chain reaction of thermal runaway of other battery cells and other battery modules around the battery cell where thermal runaway occurred.

[0139] In addition, a plurality of sub-battery modules, each including a battery cell stack in which a plurality of battery cells are stacked, are housed in a single module case to form a single battery module, thereby reducing the number of battery modules included in the battery pack. As a result, in a battery pack including a plurality of battery modules, the space occupied by the inlets and outlets provided for each battery module and the space occupied by piping required to supply coolant to and recover coolant from each battery module are reduced, thereby reducing the manufacturing cost of the battery pack, as well as the overall volume and weight of the battery pack and improving the energy density of the battery pack.

[0140] Furthermore, one of the plurality of circuit boards corresponding to the plurality of sub-battery modules transmits the electrical signals detected by it and the electrical signals detected by the remaining circuit boards to the outside through a single waterproof connector, thereby facilitating electrical connection between the battery module and an external electrical device, simplifying the wiring structure of a battery pack including a plurality of battery modules, and enabling the status of the battery module to be monitored for each sub-battery module.

[0141] In addition, since the waterproof connector is coupled to a sealing cover having an inlet or an outlet and is disposed in a space reserved for connecting the inlet or outlet to a pipe, there is no need to reserve a separate space for enabling the electrical connection of the waterproof connector within the battery pack, and the electrical connection of the waterproof connector is facilitated.

[0142] In addition, an insulating module disposed between a first sub-battery module and a second sub-battery module disposed adjacent to each other among the plurality of sub-battery modules is in close contact with the first sub-battery module and the second sub-battery module, respectively, to support the first sub-battery module and the second sub-battery module, thereby ensuring the electrical safety of the sub-battery modules while preventing damage to the sub-battery modules due to physical impacts, vibrations, etc.

[0143] In addition, a communication groove that allows the coolant to pass through is provided in the peripheral portion of the insulating block that is in close contact with the inner surface of the module case, thereby smoothing the flow of the coolant and, as a result, further improving the cooling performance of the battery module.

[0144] In addition, the inner periphery of the first end cover is inserted into a first insertion hole formed between the wall portion of the first sealing cover and the opening edge of the module case, and the opening edge of the module case is inserted into a second insertion groove formed between the inner periphery and outer periphery of the first end cover to form a serpentine sealing structure, thereby minimizing the risk of leakage of coolant that has flowed into the inside of the battery module.

[0145] In addition, the sealing tape, liquid sealant, and structural adhesive applied to the sealing structure of the battery module triple-block the leakage of the coolant, thereby improving the durability and safety of the immersion-cooled battery module.

[0146] Furthermore, it goes without saying that the embodiments of the present invention can solve various other technical problems in the art, as well as in related arts, other than those described in this specification.

[0147] Although the present invention has been described with reference to specific embodiments, those skilled in the art will clearly understand that various modifications can be made within the technical scope of the present invention. Therefore, the above-described embodiments should be considered from an illustrative perspective, not a limiting perspective. In other words, the true scope of the technical concept of the present invention is defined by the claims, and all differences within the scope of equivalents thereto should be construed as being included in the present invention. [Explanation of symbols]

[0148] 100 module case 100a Opening edge 102 Stopper 104 Structural adhesive 104 Structural Adhesives 110 First sealing cover 110' Second ceiling cover 110a Cover part 110b Fixed part 110c wall section 112 Entrance 112' Exit 114 HV terminal 114' HV terminal 116 Through hole 118a Sealing tape 118b Liquid sealant 120 Waterproof Connector 120a Fastening member 122 Connector body 124 contact pins 124a Sealing material 126 connecting pin 128 Connected Circuit Board 128a cable 130 First end cover 130' 2nd end cover 130a inner periphery 130b Outer periphery 132 Entrance hole 134 Terminal hole 134' terminal hole 136 Support part 136' Support 138 Connector hole 200 Battery Assembly 210 First sub-battery module 212 battery cells 214 First bus bar frame 214a busbar 216 Second bus bar frame 216a 1st connecting protrusion 218 Connecting member 220 Second sub-battery module 222 battery cells 224 3rd bus bar frame 226 4th bus bar frame 226a 2nd connecting protrusion 230 Insulation Block 232 Communication groove 234 Support groove 236a 1st coupling groove 236b 2nd coupling groove 240 1st circuit board 250 2nd circuit board 260 Flexible Flat Cable (FFC) 300 cases 500 Piping 600 Piping 700 Piping G1 First insertion groove G2 Second insertion groove

Claims

1. A liquid-immersion cooled battery module in which battery cells are cooled by direct contact with a coolant, a plurality of sub-battery modules each including a battery cell stack in which a plurality of battery cells are stacked; a module case having an opening at at least one end and accommodating the plurality of sub-battery modules and the coolant in an internal space connected to the opening; a sealing cover that airtightly covers the opening; a plurality of circuit boards corresponding to the plurality of sub-battery modules, the circuit boards being accommodated in the internal space and configured to detect electrical signals related to the plurality of sub-battery modules; a waterproof connector coupled to the sealing cover and configured to transmit electrical signals detected by each of the plurality of circuit boards to an outside of the module case, the sealing cover has a through hole into which at least a portion of the waterproof connector is inserted; The waterproof connector is a connector body coupled to the second surface of the sealing cover, the second surface being opposite to the first surface, and covering the first opening of the through hole formed in the second surface; at least one contact pin supported by the connector body and extending in a direction away from the interior space of the module case; at least one connecting pin electrically connected to at least one of the contact pins, extending from the connector body through the through hole toward the internal space, and electrically connected to a first circuit board among the plurality of circuit boards; a connection circuit board coupled to the first surface of the sealing cover to cover a second opening of the through hole formed on the first surface and electrically connected to the at least one connection pin; a cable having one end electrically connected to the connection circuit board and the other end electrically connected to the first circuit board.

2. The plurality of circuit boards include: a first circuit board for detecting a first electrical signal associated with a first sub-battery module among the plurality of sub-battery modules; a second circuit board for detecting a second electrical signal associated with a second sub-battery module among the plurality of sub-battery modules; The first circuit board is 2. The liquid-immersion cooled battery module according to claim 1, configured to transmit the first electrical signal and the second electrical signal transmitted from the second circuit board to the outside through the waterproof connector.

3. 3. The liquid immersion cooled battery module according to claim 2, further comprising a flexible flat cable electrically connecting the first circuit board and the second circuit board and configured to transmit the second electrical signal detected by the second circuit board to the first circuit board.

4. The immersion cooled battery module according to claim 1 , wherein each of the plurality of circuit boards comprises a flexible printed circuit board.

5. 2. The liquid immersion cooled battery module of claim 1, wherein the waterproof connector further includes a sealing member interposed between the connector body and the second surface of the sealing cover to seal a periphery of the first opening of the through hole.

6. 2. The liquid-immersion-cooled battery module according to claim 1, further comprising an insulating block made of an insulating material and disposed between a first sub-battery module and a second sub-battery module disposed adjacent to each other among the plurality of sub-battery modules.

7. A liquid-immersion cooled battery module in which battery cells are cooled by direct contact with a coolant, a plurality of sub-battery modules each including a battery cell stack in which a plurality of battery cells are stacked; a module case having an opening at at least one end and accommodating the plurality of sub-battery modules and the coolant in an internal space connected to the opening; a sealing cover that airtightly covers the opening; a plurality of circuit boards corresponding to the plurality of sub-battery modules, the circuit boards being accommodated in the internal space and configured to detect electrical signals related to the plurality of sub-battery modules; a waterproof connector coupled to the sealing cover and configured to transmit electrical signals detected by each of the plurality of circuit boards to an outside of the module case, further including an insulating block made of an insulating material and disposed between a first sub-battery module and a second sub-battery module disposed adjacent to each other among the plurality of sub-battery modules; The insulating block is a liquid immersion cooling type battery module, the liquid immersion cooling type battery module including: a communication groove provided on a peripheral portion of the insulating block that is in close contact with an inner surface of the module case, the communication groove allowing the coolant to pass from the first sub-battery module side to the second sub-battery module side.

8. The communicating groove is 8. The liquid immersion cooling battery module of claim 7, wherein the communicating groove extends from the first sub-battery module side to the second sub-battery module side and tapers toward the second sub-battery module side so that a flow rate of the coolant passing through the communicating groove increases.

9. A liquid-immersion cooled battery module in which battery cells are cooled by direct contact with a coolant, a plurality of sub-battery modules each including a battery cell stack in which a plurality of battery cells are stacked; a module case having an opening at at least one end and accommodating the plurality of sub-battery modules and the coolant in an internal space connected to the opening; a sealing cover that airtightly covers the opening; a plurality of circuit boards corresponding to the plurality of sub-battery modules, the circuit boards being accommodated in the internal space and configured to detect electrical signals related to the plurality of sub-battery modules; a waterproof connector coupled to the sealing cover and configured to transmit electrical signals detected by each of the plurality of circuit boards to an outside of the module case, further including an insulating block made of an insulating material and disposed between a first sub-battery module and a second sub-battery module disposed adjacent to each other among the plurality of sub-battery modules; a connecting member electrically connecting the first sub-battery module and the second sub-battery module, The insulating block is a support groove into which at least a portion of the connecting member is inserted and supported.

10. The liquid-immersion cooled battery module according to claim 1 , wherein the cooling liquid comprises insulating oil or dielectric liquid.

11. A battery pack comprising the immersion-cooled battery module according to any one of claims 1 to 10.

12. A vehicle comprising the immersion cooled battery module of any one of claims 1 to 10.

Citation Information

Patent Citations

  • Square-shaped sealed type secondary battery, battery module and battery pack

    JP2004213922A

  • Battery module having tubular spacers to facilitate cell cooling

    JP2022529445A

  • Battery module with cooling structure using insulating oil, battery pack including same, and automobile

    JP2023543305A

  • Battery module

    KR1020190053574A

  • Battery module and battery pack including the same

    KR1020210048855A