BATTERY PACK AND POWER STORAGE DEVICE
20220367992 ยท 2022-11-17
Assignee
Inventors
Cpc classification
H02J7/0063
ELECTRICITY
H01M2220/10
ELECTRICITY
H01M10/6556
ELECTRICITY
H01M10/6568
ELECTRICITY
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M2220/20
ELECTRICITY
International classification
H01M10/627
ELECTRICITY
Abstract
A battery pack includes a pack case configured to form an appearance, a plurality of battery modules configured to include at least one battery cell; at least one insulation member provided between the plurality of battery modules; and an energy drain unit spaced apart from the insulation member and connected to any one battery module, the energy drain unit being configured to externally short-circuit any one battery module when thermal runaway occurs in at least one battery module.
Claims
1. A battery pack, comprising: a pack case; a plurality of battery modules provided inside the pack case, each battery module of the plurality of battery modules including at least one battery cell; at least one insulation member provided between the plurality of battery modules; and an energy drainer spaced apart from the at least one insulation member and connected to a first battery module among the plurality of battery modules, the energy drainer being configured to externally short-circuit the first battery module when thermal runaway occurs in at least one battery module among the plurality of battery modules.
2. The battery pack according to claim 1, wherein the energy drainer includes: a relay connected to a battery cell of the first battery module and configured to perform an on/off operation; and a resistor connected to the relay and provided outside the pack case.
3. The battery pack according to claim 2, wherein the energy drainer includes a drain case provided outside the pack case and configured to accommodate the relay and the resistor.
4. The battery pack according to claim 2, wherein when thermal runaway occurs in at least one battery module among the plurality of battery modules, the relay is switched on, and storage energy of at least one battery cell of the first battery module is converted into heat energy through the resistor.
5. The battery pack according to claim 2, wherein the resistor is connected to a cooler outside the energy drainer and is filled with a cooling agent supplied from the cooler.
6. The battery pack according to claim 5, wherein the resistor includes: a supply pipe configured to receive the cooling agent from the cooler; and a discharge pipe spaced apart from the supply pipe and configured to discharge the cooling agent to the cooler.
7. The battery pack according to claim 2, wherein the resistor is filled with an insulation oil.
8. The battery pack according to claim 1, wherein the plurality of battery modules include at least three battery modules so that each battery module of the at least three battery modules includes a plurality of battery cells, and wherein the at least three battery modules are stacked along a stacking direction of the plurality of battery cells.
9. The battery pack according to claim 8, wherein the energy drainer is connected to a battery module disposed at a center among the at least three battery modules.
10. An energy storage system, comprising: at least one battery pack as defined in claim 1.
Description
DESCRIPTION OF DRAWINGS
[0021] The accompanying drawings illustrate a preferred embodiment of the present disclosure and together with the foregoing disclosure, serve to provide further understanding of the technical features of the present disclosure, and thus, the present disclosure is not construed as being limited to the drawing.
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
BEST MODE
[0029] The present disclosure will become more apparent by describing in detail the embodiments of the present disclosure with reference to the accompanying drawings. It should be understood that the embodiments disclosed herein are illustrative only for better understanding of the present disclosure, and that the present disclosure may be modified in various ways. In addition, for ease understanding of the present disclosure, the accompanying drawings are not drawn to real scale, but the dimensions of some components may be exaggerated.
[0030]
[0031] Referring to
[0032] The battery pack 1 may include a pack case 10, battery modules 30, 40, 50, an insulation member 70, and an energy drain unit 100.
[0033] The pack case 10 may form the appearance of the battery pack 1. The pack case 10 may accommodate the battery modules 30, 40, 50 and the insulation member 70, explained later. To this end, the pack case 10 may have an accommodation space capable of accommodating the battery module 30, 40, 50 and the insulation member 70.
[0034] The battery modules 30, 40, 50 are provided in the pack case 10 and may include at least one battery cell 35, 45, 55 provided using secondary batteries. The battery modules 30, 40, 50 may be provided in plural.
[0035] The plurality of battery modules 30, 40, 50 may include at least three battery modules, and each battery module may include a plurality of battery cells 35, 45, 55. The plurality of battery modules 30, 40, 50 may be stacked on each other along a stacking direction of the plurality of battery cells 35, 45, 55.
[0036] The plurality of battery modules 30, 40, 50 may include a first battery module 30, a second battery module 40, and a third battery module 50.
[0037] The first battery module 30 may be provided at one side inside the pack case 10. In this embodiment, in the pack case 10, the first battery module 30 may be provided at a left side inside the pack case 10.
[0038] The first battery module 30 may include a plurality of battery cells 35.
[0039] The plurality of battery cells 35 are secondary batteries and may be provided as at least one of pouch-type secondary batteries, rectangular secondary batteries, and cylindrical secondary batteries. Hereinafter, in this embodiment, it will be described that the plurality of battery cells 35 are pouch-type secondary batteries.
[0040] The second battery module 40 is provided inside the pack case 10, and may be disposed between the first battery module 30 and the third battery module 50, explained later. The second battery module 40 may be connected to the energy drain unit 100, explained later.
[0041] The second battery module 40 may include a plurality of battery cells 45.
[0042] The plurality of battery cells 45 are secondary batteries and may be provided as at least one of pouch-type secondary batteries, rectangular secondary batteries, and cylindrical secondary batteries. Hereinafter, in this embodiment, it will be described that the plurality of battery cells 45 are pouch-type secondary batteries.
[0043] The plurality of battery cells 45 may be connected to the energy drain unit 100, explained later. The energy drain unit 100 connected to the plurality of battery cells 45 will be described later in more detail.
[0044] The third battery module 50 may be provided at one side inside the pack case 10. In this embodiment, in the pack case 10, the third battery module 50 may be provided at a right side inside the pack case 10. The third battery module 50 may be disposed opposite to the first battery module 30 with the second battery module 40 being interposed therebetween.
[0045] The third battery module 50 may include a plurality of battery cells 55.
[0046] The plurality of battery cells 55 are secondary batteries and may be provided as at least one of pouch-type secondary batteries, rectangular secondary batteries, and cylindrical secondary batteries. Hereinafter, in this embodiment, it will be described that the plurality of battery cells 55 are pouch-type secondary batteries.
[0047] The insulation member 70 may be provided between the plurality of battery modules 30, 40, 50.
[0048] Hereinafter, the insulation member 70 according to this embodiment will be examined in more detail.
[0049]
[0050] Referring to
[0051] The plurality of insulation members 70 may delay thermal propagation to neighboring battery modules when a high temperature occurs due to an abnormal situation in at least one battery module among the plurality of battery modules 30, 40, 50.
[0052] To this end, the plurality of insulation members 70 may be made of a material with low thermal conductivity. Referring to
[0053] The plurality of insulation members 70, 80 may be provided as a single member or a plurality of interlayer structures capable of delaying thermal propagation to neighboring battery modules 30, 40, 50 as much as possible.
[0054] The energy drain unit 100 may be spaced apart from the at least one insulation member 70, be connected to any one battery module 40 among the plurality of battery modules 30, 40, 50, and externally short-circuit the any one battery module 40 among the plurality of battery modules 30, 40, 50 when thermal runaway occurs in at least one battery module 30, 40, 50.
[0055] The energy drain unit 100 may be connected to the battery module 40 disposed at the center among the at least three battery modules 30, 40, 50. That is, the energy drain unit 100 may be connected to the second battery module 40 among the first to third battery modules 30, 40, 50.
[0056] Hereinafter, the energy drain unit 100 according to this embodiment will be described in more detail.
[0057]
[0058] Referring to
[0059] Specifically, when a thermal runaway situation occurs according to an abnormal situation of any one battery module 30, 40, 50 among the plurality of battery modules 30, 40, 50, the energy drain unit 100 may externally short-circuit a specific battery module 40 in order to effectively prevent thermal propagation to the battery modules 30, 40, 50 adjacent to the battery module 30, 40, 50 at which thermal runaway occurs.
[0060] Hereinafter, the energy drain unit 100 according to this embodiment will be described in more detail.
[0061] The energy drain unit 100 may include a drain case 110, a relay unit 130, and a resistor unit 150.
[0062] The drain case 110 is provided out of the pack case 10 and may accommodate the relay unit 130 and the resistor unit 150. To this end, the drain case 110 may have an accommodation space for accommodating the relay unit 130 and the resistor unit 150. Meanwhile, the drain case 110 may be provided to be detachably attached to the pack case 10.
[0063] The relay unit 130 may be provided inside the drain case 110 and may be connected to the any one battery module 40, namely the battery cell 45 of the second battery module 40, to enable an on/off operation. The on-off operation of the relay unit 130 may be provided using an electronic or mechanical structure, and the relay unit 130 may be operated in connection to a control unit or the like or be operated at a predetermined temperature or higher.
[0064] The resistor unit 150 is connected to the relay unit 130 and may be provided out of the pack case 10. Specifically, the resistor unit 150 may be provided inside the drain case 110, like the relay unit 130.
[0065] The resistor unit 150 may include a resistor material connected to the relay unit 130 and the battery cell 45 of the second battery module 40. Accordingly, when thermal runaway occurs in at least one battery module 30, 40, 50 among the plurality of battery modules 30, 40, 50, the relay unit 130 is switched on, and the storage energy of the at least one battery cell 45 of the any one battery module 40 may be converted into heat energy through the resistor material of the resistor unit 150.
[0066] The resistor unit 150 may be connected to a cooling device 200 for cooling the resistor material. Specifically, the resistor unit 150 is connected to the cooling device 200 out of the energy drain unit 100, and the inside of the resistor unit 150 may be filled with a cooling agent C supplied from the cooling device 200. Here, the cooling agent C may be made of an insulating material.
[0067] The resistor unit 150 may include a unit body 152, a supply pipe 154, and a discharge pipe 156.
[0068] The unit body 152 includes the resistor material, and the cooling agent C may be filled in the unit body 152. The unit body 152 is provided inside the drain case 110, and may be disposed to be spaced apart from the relay unit 130 by a predetermined distance.
[0069] The supply pipe 154 is used for receiving the cooling agent C from the cooling device 200, and may be provided at one side of the unit body 152 and be connected to the cooling device 200 to communicate with the cooling device 200. The supply pipe 154 may receive the cooling agent C from the cooling device 200 and guide the cooling agent C into the unit body 152.
[0070] The discharge pipe 156 is used for discharging the cooling agent C to the cooling device 200, and may be disposed at one side of the unit body 152 to be spaced apart from the supply pipe 154 by a predetermined distance and be connected to the cooling device 200 to communicate with the cooling device 200. The discharge pipe 156 may guide the cooling agent C inside the unit body 152 to be discharged to the cooling device 200.
[0071] Hereinafter, the thermal runaway prevention mechanism through the energy drain unit 100 when an abnormal situation such as thermal runaway occurs in the battery cells 35, 45, 55 of the battery pack 1 according to this embodiment due to overheating or the like will be described in more detail.
[0072]
[0073] Referring to
[0074] In this case, the insulation member 70 may preferentially block heat transfer to the neighboring battery module 40. In addition, when the abnormal situation occurs, the energy drain unit 100 may close the switch of the relay unit 130 at a predetermined temperature or higher or through a control unit.
[0075] Accordingly, the battery module 40 connected to the energy drain unit 100, namely the battery cells 45 of the second battery module 40, may be externally short-circuited through the energy drain unit 100. Specifically, the storage energy of the battery cells 45 of the second battery module 40 may be converted into heat energy through the resistor unit 150 of the energy drain unit 100.
[0076] Here, the energy of the battery cells 40 of the second battery module 40 may be approximately reduced to less than 30% SOC (State Of Charge). Also, as the SOC of the second battery module 40 connected to the energy drain unit 100 decreases, thermal propagation between the battery modules 30, 40, 50 may be more effectively prevented.
[0077] Referring to
[0078] Likewise, the battery cells 45 of the second battery module 40 may be externally short-circuited through the energy drain unit 100. Specifically, the storage energy of the battery cells 45 of the second battery module 40 may be converted into heat energy through the resistor unit 150 of the energy drain unit 100.
[0079] Accordingly, it is possible to effectively prevent thermal propagation to the neighboring battery modules 30, 50 by rapidly lowering the level of heat energy that may be transferred from the second battery module 40 to the first battery module 30 or the third battery module 50. At this time, it is also possible to delay heat transfer even through the insulation members 70.
[0080] Meanwhile, when the energy drain unit 100 is operated, the supply pipe 154 and the discharge pipe 156 of the resistor unit 150 may guide the cooling agent C to be supplied from the cooling device 200 to the unit body 152 and to be discharged out of the unit body 152, thereby allowing the cooling agent C to be smoothly circulated inside the unit body 152. Accordingly, the resistor unit 150 may effectively convert the storage energy of the battery cells 45 into heat energy while maintaining safety better.
[0081]
[0082] Since a battery pack 2 according to this embodiment is similar to the battery pack 1 of the former embodiment, features substantially identical or similar to the former embodiment will not be described again, and features different from the former embodiment will be described in detail.
[0083] Referring to
[0084] The pack case 10, the battery module 30, 40, 50, and the insulation member 70 are substantially identical or similar to those of the former embodiment, and thus will not be described in detail again.
[0085] The energy drain unit 300 may include a drain case 310, a relay unit 330 and a resistor unit 350.
[0086] The drain case 310 and the relay unit 330 are substantially identical or similar to the drain case 110 and the relay unit 130 of the former embodiment, and thus will not be described in detail again.
[0087] The resistor unit 350 includes a resistor material and may be filled with an insulation oil 355 therein. The insulation oil 355 may cool the resistor material inside the resistor unit 350.
[0088] In the battery pack 2 according to this embodiment, since the insulation oil 355 is filled in the resistor unit 350 of the energy drain unit 300, the resistor unit 350 may be cooled more conveniently without additionally connecting a separate cooling device 200.
[0089] According to various embodiments as above, it is possible to provide a battery pack 1, 2, which may more rapidly suppress heat propagation or thermal propagation caused by thermal runaway when an abnormal situation occurs at the battery cell 35, 45, 55 of the plurality of battery modules 30, 40, 50, and an energy storage system including the battery pack 1, 2.
[0090] While the embodiments of the present disclosure have been shown and described, it should be understood that the present disclosure is not limited to the specific embodiments described, and that various changes and modifications can be made within the scope of the present disclosure by those skilled in the art, and these modifications should not be understood individually from the technical ideas and views of the present disclosure.